<?xml version="1.0" encoding="UTF-8"?>
<!DOCTYPE article PUBLIC "-//NLM//DTD JATS (Z39.96) Journal Publishing DTD v1.3 20210610//EN" "JATS-journalpublishing1-3.dtd">
<article article-type="research-article" dtd-version="1.3" xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xml:lang="ru"><front><journal-meta><journal-id journal-id-type="publisher-id">vestnik-bio-msu</journal-id><journal-title-group><journal-title xml:lang="ru">Вестник Московского университета. Серия 16. Биология</journal-title><trans-title-group xml:lang="en"><trans-title>Vestnik Moskovskogo universiteta. Seriya 16. Biologiya</trans-title></trans-title-group></journal-title-group><issn pub-type="ppub">0137-0952</issn><publisher><publisher-name>Lomonosov Moscow State University,  School of Biology</publisher-name></publisher></journal-meta><article-meta><article-id custom-type="elpub" pub-id-type="custom">vestnik-bio-msu-1050</article-id><article-categories><subj-group subj-group-type="heading"><subject>Research Article</subject></subj-group><subj-group subj-group-type="section-heading" xml:lang="ru"><subject>ОБЗОР</subject></subj-group><subj-group subj-group-type="section-heading" xml:lang="en"><subject>REVIEW</subject></subj-group></article-categories><title-group><article-title>Наночастицы в водной среде: риски и возможности их контроля с помощью микроводорослей</article-title><trans-title-group xml:lang="en"><trans-title>Nanoparticles in the aquatic environment: the risks associated with them and the possibilities of their mitigation with microalgae</trans-title></trans-title-group></title-group><contrib-group><contrib contrib-type="author" corresp="yes"><contrib-id contrib-id-type="orcid">https://orcid.org/0000-0002-8699-9112</contrib-id><name-alternatives><name name-style="eastern" xml:lang="ru"><surname>Гусев</surname><given-names>А. А.</given-names></name><name name-style="western" xml:lang="en"><surname>Gusev</surname><given-names>A. A.</given-names></name></name-alternatives><bio xml:lang="ru"><p>Гусев Александр Анатольевич – докт. биол. наук, директор НИИ экологии и биотехнологии</p><p>392000, г. Тамбов, ул. Интернациональная, д. 33;</p><p>119991, г. Москва, Ленинский просп., д. 4;</p><p>117997, г. Москва, Стремянный пер., д. 36</p><p>Тел.: 8-4752-53- 26-80</p></bio><bio xml:lang="en"><p>Technopark “Derzhavinsky”, Internatsionalnaya str. 33, Tambov, 392000; </p><p>Department of Functional Nanosystems and High-Temperature Materials,  Leninskii prosp. 4, Moscow, 119991;</p><p>Engineering Center, Stremiannii per. 36, Moscow 117997</p></bio><email xlink:type="simple">nanosecurity@mail.ru</email><xref ref-type="aff" rid="aff-1"/></contrib><contrib contrib-type="author" corresp="yes"><contrib-id contrib-id-type="orcid">https://orcid.org/0000-0001-8590-2529</contrib-id><name-alternatives><name name-style="eastern" xml:lang="ru"><surname>Захарова</surname><given-names>О. В.</given-names></name><name name-style="western" xml:lang="en"><surname>Zakharova</surname><given-names>O. V.</given-names></name></name-alternatives><bio xml:lang="ru"><p>Захарова Ольга Владимировна – канд. биол. наук, зав. лабораторией Перспективных биотехнологий НИИ экологии и биотехнологии </p><p>392000, г. Тамбов, ул. Интернациональная, д. 33;</p><p>119991, г. Москва, Ленинский просп., д. 4;</p><p>117997, г. Москва, Стремянный пер., д. 36</p><p>Тел.: 8-4752-53-26-80 </p></bio><bio xml:lang="en"><p>Technopark “Derzhavinsky”, Internatsionalnaya str. 33, Tambov, 392000; </p><p>Department of Functional Nanosystems and High-Temperature Materials,  Leninskii prosp. 4, Moscow, 119991;</p><p>Engineering Center, Stremiannii per. 36, Moscow 117997</p></bio><email xlink:type="simple">olgazakharova1@mail.ru</email><xref ref-type="aff" rid="aff-1"/></contrib><contrib contrib-type="author" corresp="yes"><contrib-id contrib-id-type="orcid">https://orcid.org/0000-0002-6134-5702</contrib-id><name-alternatives><name name-style="eastern" xml:lang="ru"><surname>Васюкова</surname><given-names>И. А.</given-names></name><name name-style="western" xml:lang="en"><surname>Vasyukova</surname><given-names>I. A.</given-names></name></name-alternatives><bio xml:lang="ru"><p>Васюкова Инна Анатольевна – канд. биол. наук, помощник директора НИИ нанотехнологии и наноматериалы</p><p>392000, г. Тамбов, ул. Интернациональная, д. 33</p><p>Тел.: 8-4752-53-26-80</p></bio><bio xml:lang="en"><p>Technopark “Derzhavinsky”, Internatsionalnaya str. 33, Tambov, 392000</p></bio><email xlink:type="simple">vasyukovaia@gmail.com</email><xref ref-type="aff" rid="aff-2"/></contrib><contrib contrib-type="author" corresp="yes"><contrib-id contrib-id-type="orcid">https://orcid.org/0000-0003-0099-6779</contrib-id><name-alternatives><name name-style="eastern" xml:lang="ru"><surname>Евтушенко</surname><given-names>Н. А.</given-names></name><name name-style="western" xml:lang="en"><surname>Evtushenko</surname><given-names>N. A.</given-names></name></name-alternatives><bio xml:lang="ru"><p>Евтушенко Надежда Александровна – мл. науч. сотр. лаборатории анализа ПЦР центра лесных биотехнологий и постгеномных технологий дирекции института инновационных технологий лесного комплекса</p><p>Россия, 394087, г. Воронеж, ул. Тимирязева, д. 8</p><p>Тел.: 8-473-253-78-47</p></bio><bio xml:lang="en"><p>Center for Forest Biotechnologies of the Directorate of Research Institute, Institute of Innovative Technologies of the Forestry Complex</p><p>Timiriazeva str. 8, Voronezh, 394087</p></bio><email xlink:type="simple">nadya.evtushenko.94@mail.ru</email><xref ref-type="aff" rid="aff-3"/></contrib><contrib contrib-type="author" corresp="yes"><contrib-id contrib-id-type="orcid">https://orcid.org/0000-0002-9047-3922</contrib-id><name-alternatives><name name-style="eastern" xml:lang="ru"><surname>Васильева</surname><given-names>С. Г.</given-names></name><name name-style="western" xml:lang="en"><surname>Vasilieva</surname><given-names>S. G.</given-names></name></name-alternatives><bio xml:lang="ru"><p>Васильева Светлана Геннадьевна – канд. биол. наук, науч. сотр. кафедры биоинженерии биологического факультета</p><p>119234, г. Москва, Ленинские горы, д. 1, стр. 12;</p><p>392000, г. Тамбов, ул. Интернациональная, д. 33</p><p>Тел.: 8-495-939-25-87</p></bio><bio xml:lang="en"><p>Department of Bioengineering, School of Biology, Leninskiye gory 1–12, Moscow, 119234</p><p>Institute of Natural Sciences, Internatsionalnaya str. 33, Tambov, 392000</p></bio><email xlink:type="simple">vankat2009@mail.ru</email><xref ref-type="aff" rid="aff-4"/></contrib><contrib contrib-type="author" corresp="yes"><contrib-id contrib-id-type="orcid">https://orcid.org/0000-0002-2900-1053</contrib-id><name-alternatives><name name-style="eastern" xml:lang="ru"><surname>Лукьянов</surname><given-names>А. А.</given-names></name><name name-style="western" xml:lang="en"><surname>Lukyanov</surname><given-names>A. A.</given-names></name></name-alternatives><bio xml:lang="ru"><p>Лукьянов Александр Андреевич – канд. биол. наук, науч. сотр. кафедры биоинженерии биологического факультета </p><p>119234, г. Москва, Ленинские горы, д. 1, стр. 12</p><p>ел.: 8-495-939-25-87</p></bio><bio xml:lang="en"><p>Department of Bioengineering, School of Biology, Leninskiye gory 1–12, Moscow, 119234</p></bio><email xlink:type="simple">lukyanov@mail.bio.msu.ru</email><xref ref-type="aff" rid="aff-5"/></contrib><contrib contrib-type="author" corresp="yes"><contrib-id contrib-id-type="orcid">https://orcid.org/0000-0002-7054-0024</contrib-id><name-alternatives><name name-style="eastern" xml:lang="ru"><surname>Лобакова</surname><given-names>Е. С.</given-names></name><name name-style="western" xml:lang="en"><surname>Lobakova</surname><given-names>E. S.</given-names></name></name-alternatives><bio xml:lang="ru"><p>Лобакова Елена Сергеевна – докт. биол. наук, проф. кафедры биоинженерии биологического факультета </p><p>119234, г. Москва, Ленинские горы, д. 1, стр. 12;</p><p>392000, г. Тамбов, ул. Интернациональная, д. 33</p><p>Тел.: 8-495-939-41-69</p></bio><bio xml:lang="en"><p>Department of Bioengineering, School of Biology, Leninskiye gory 1–12, Moscow, 119234</p><p>Institute of Natural Sciences, Internatsionalnaya str. 33, Tambov, 392000</p></bio><email xlink:type="simple">elena.lobakova@mail.bio.msu.ru</email><xref ref-type="aff" rid="aff-4"/></contrib><contrib contrib-type="author" corresp="yes"><name-alternatives><name name-style="eastern" xml:lang="ru"><surname>Скрипникова</surname><given-names>Е. В.</given-names></name><name name-style="western" xml:lang="en"><surname>Skripnikova</surname><given-names>E. V.</given-names></name></name-alternatives><bio xml:lang="ru"><p>Скрипникова Елена Владимировна – канд. биол. наук, директор Института естествознания </p><p>392000, г. Тамбов, ул. Интернациональная, д. 33</p><p>Тел.: 8-495- 939-25-87</p></bio><bio xml:lang="en"><p>Institute of Natural Sciences, Internatsionalnaya str. 33, Tambov, 392000</p></bio><email xlink:type="simple">elena_sk@mail.ru</email><xref ref-type="aff" rid="aff-2"/></contrib><contrib contrib-type="author" corresp="yes"><contrib-id contrib-id-type="orcid">https://orcid.org/0000-0001-6746-8511</contrib-id><name-alternatives><name name-style="eastern" xml:lang="ru"><surname>Соловченко</surname><given-names>А. Е.</given-names></name><name name-style="western" xml:lang="en"><surname>Solovchenko</surname><given-names>A. E.</given-names></name></name-alternatives><bio xml:lang="ru"><p>Соловченко Алексей Евгеньевич – докт. биол. наук, проф. кафедры биоинженерии биологического факультета </p><p>119234, г. Москва, Ленинские горы, д. 1, стр. 12;</p><p>392000, г. Тамбов, ул. Интернациональная, д. 33</p><p>Тел.: 8-495-939-25-87</p></bio><bio xml:lang="en"><p>Department of Bioengineering, School of Biology, Leninskiye gory 1–12, Moscow, 119234</p><p>Institute of Natural Sciences, Internatsionalnaya str. 33, Tambov, 392000</p></bio><email xlink:type="simple">solovchenko@mail.bio.msu.ru</email><xref ref-type="aff" rid="aff-4"/></contrib></contrib-group><aff-alternatives id="aff-1"><aff xml:lang="ru">Тамбовский государственный университет имени Г.Р. Державина; Национальный исследовательский технологический университет «МИСИС»; Российский экономический университет имени Г.В. Плеханова<country>Россия</country></aff><aff xml:lang="en">Derzhavin Tambov State University; National University of Science and Technology “MISIS”; Plekhanov Russian University of Economics<country>Russian Federation</country></aff></aff-alternatives><aff-alternatives id="aff-2"><aff xml:lang="ru">Тамбовский государственный университет имени Г.Р. Державина<country>Россия</country></aff><aff xml:lang="en">Derzhavin Tambov State University<country>Russian Federation</country></aff></aff-alternatives><aff-alternatives id="aff-3"><aff xml:lang="ru">Воронежский государственный лесотехнический университет имени Г.Ф. Морозова<country>Россия</country></aff><aff xml:lang="en">Morozov Voronezh State University of Forestry and Technologies<country>Russian Federation</country></aff></aff-alternatives><aff-alternatives id="aff-4"><aff xml:lang="ru">Московский государственный университет имени М.В. Ломоносова; Тамбовский государственный университет имени Г.Р. Державина<country>Россия</country></aff><aff xml:lang="en">Lomonosov Moscow State University; Derzhavin Tambov State University<country>Russian Federation</country></aff></aff-alternatives><aff-alternatives id="aff-5"><aff xml:lang="ru">Московский государственный университет имени М.В. Ломоносова<country>Россия</country></aff><aff xml:lang="en">Lomonosov Moscow State University<country>Russian Federation</country></aff></aff-alternatives><pub-date pub-type="collection"><year>2021</year></pub-date><pub-date pub-type="epub"><day>29</day><month>11</month><year>2021</year></pub-date><volume>76</volume><issue>4</issue><fpage>202</fpage><lpage>212</lpage><permissions><copyright-statement>Copyright &amp;#x00A9; Гусев А.А., Захарова О.В., Васюкова И.А., Евтушенко Н.А., Васильева С.Г., Лукьянов А.А., Лобакова Е.С., Скрипникова Е.В., Соловченко А.Е., 2021</copyright-statement><copyright-year>2021</copyright-year><copyright-holder xml:lang="ru">Гусев А.А., Захарова О.В., Васюкова И.А., Евтушенко Н.А., Васильева С.Г., Лукьянов А.А., Лобакова Е.С., Скрипникова Е.В., Соловченко А.Е.</copyright-holder><copyright-holder xml:lang="en">Gusev A.A., Zakharova O.V., Vasyukova I.A., Evtushenko N.A., Vasilieva S.G., Lukyanov A.A., Lobakova E.S., Skripnikova E.V., Solovchenko A.E.</copyright-holder><license license-type="creative-commons-attribution" xlink:href="https://creativecommons.org/licenses/by/4.0/" xlink:type="simple"><license-p>This work is licensed under a Creative Commons Attribution 4.0 License.</license-p></license></permissions><self-uri xlink:href="https://vestnik-bio-msu.elpub.ru/jour/article/view/1050">https://vestnik-bio-msu.elpub.ru/jour/article/view/1050</self-uri><abstract><p>Наночастицы (НЧ) относятся к опасным микрополлютантам – загрязнителям, проявляющим биотоксичность в низких (порядка нг/л) концентрациях. НЧ могут не только напрямую влиять на живые организмы, но и служить переносчиками органических и неорганических загрязнителей, а также усиливать токсическое действие других микрополлютантов. НЧ все шире применяются в промышленных и бытовых целях, что влечет за собой рост объемов их производства, выбросов НЧ в окружающую среду и связанные с этим риски для экосистем. Эти риски усиливаются из-за стойкости НЧ к биодеструкции в природных экосистемах и традиционных очистных сооружениях, а эффективные технологии удаления НЧ сложны и дороги, поэтому их повсеместное внедрение на очистных сооружениях пока невозможно. Тем не менее, несмотря на риски, связанные с НЧ, человечество не откажется от их использования в ближайшем будущем, поскольку они прочно вошли в современный технологический уклад. Биодеструкция и биосорбция НЧ с применением культур микроводорослей и водорослево-бактериальных консорциумов считаются перспективными подходами с точки зрения безопасности для окружающей среды и сохранения природных ресурсов. Развитию этого подхода препятствует фрагментарность сведений о действии НЧ на клетки микроводорослей и микробные сообщества. Настоящий обзор – попытка заполнить этот пробел, по крайней мере, частично. В обзоре рассматриваются распространенные типы промышленных НЧ на основе металлов и их оксидов, а также углеродные наноматериалы. Обсуждаются пути их поступления в водную среду, токсичность для живых организмов, накопление и пути трансформации в клетках, синергетические эффекты НЧ, тяжелых металлов и антибиотиков, а также способы биоудаления НЧ и наноматериалов из водных экосистем с помощью микроводорослей.</p></abstract><trans-abstract xml:lang="en"><p>Nanoparticles (NPs) are dangerous micro-pollutants that exhibit biotoxicity even in low (nanogram range) concentrations. Apart from direct toxicity to living organisms, NPs can absorb and transfer organic or inorganic toxicants, as well as potentiate the toxicity of other micropollutants. Increasing use of NPs in the industrial and domestic applications leads to their increased production and discharge into the environment giving rise to diverse risks for ecosystems. These risks are exacerbated by the resilience of NPs to biodegradation in natural ecosystems and traditional wastewater treatment plants. Efficient NPs removal technologies are complex and expensive, so they cannot be affordably replicated in common wastewater treatment plants. Despite the risks associated with NPs, humanity will not abandon their use in the nearest future, since the NPs are now at the foundation of many modern technologies. Biodestruction and biosorption of NPs using microalgae cultures and algal-bacterial consortia are considered promising approaches regarding the environmental safety and conservation of natural resources. However, the progress of this approach is hindered by paucity and fragmentary nature of the information about the effects of NPs on microalgae cells and microbial communities. This review attempts to fill this gap, at least partially, by considering common industrial NPs types based on metals and their oxides, as well as carbon nanomaterials. The pathways of their entry into aquatic ecosystems, toxicity to living organisms, accumulation and biotransformation in cells, synergistic effects of NPs in combination with heavy metals and antibiotics, as well as methods of bio-removal of NPs and nanomaterials from aquatic ecosystems using microalgae are discussed.</p></trans-abstract><kwd-group xml:lang="ru"><kwd>наночастицы</kwd><kwd>микроводоросли</kwd><kwd>биотоксичность</kwd><kwd>биоудаление</kwd><kwd>сточные воды</kwd><kwd>микрополлютанты</kwd></kwd-group><kwd-group xml:lang="en"><kwd>nanoparticles</kwd><kwd>microalgae</kwd><kwd>biotoxicity</kwd><kwd>bioremoval</kwd><kwd>wastewater</kwd><kwd>micropollutants</kwd></kwd-group><funding-group xml:lang="ru"><funding-statement>Работа выполнена при финансовой поддержке Российского научного фонда (проект № 21-74-20004, анализ данных по НЧ оксидов металлов и углерода) и Российского фонда фундаментальных исследований (проект «Аспиранты» № 20-34-90115, анализ данных по металлическим НЧ). Работу проводили без использования животных и без привлечения людей в качестве испытуемых. Авторы заявляют об отсутствии конфликта интересов.</funding-statement></funding-group><funding-group xml:lang="en"><funding-statement>The research was funded by Russian Science Foundation, project number 21-74-20004 (the part on metal-oxide and carbon nanoparticles) and Russian Foundation for Basic Research, project number 20-34-90115 (the part on metal nanoparticles).</funding-statement></funding-group></article-meta></front><back><ref-list><title>References</title><ref id="cit1"><label>1</label><citation-alternatives><mixed-citation xml:lang="ru">Nguyen H.T., Yoon Y., Ngo H.H., Jang A. The application of microalgae in removing organic micropollutants in wastewater // Crit. Rev. Environ. Sci. Technol. 2021. Vol. 51. P. 1187–1220.</mixed-citation><mixed-citation xml:lang="en">Nguyen H.T., Yoon Y., Ngo H.H., Jang A. The application of microalgae in removing organic micropollutants in wastewater // Crit. Rev. Environ. Sci. Technol. 2021. Vol. 51. P. 1187–1220.</mixed-citation></citation-alternatives></ref><ref id="cit2"><label>2</label><citation-alternatives><mixed-citation xml:lang="ru">Xu L., Wang Y.-Y., Huang J., Chen C.-Y., Wang Z.-X., Xie H. Silver nanoparticles: synthesis, medical applications and biosafety // Theranostics. 2020. Vol. 10. N 20. P. 8996–9031.</mixed-citation><mixed-citation xml:lang="en">Xu L., Wang Y.-Y., Huang J., Chen C.-Y., Wang Z.-X., Xie H. Silver nanoparticles: synthesis, medical applications and biosafety // Theranostics. 2020. Vol. 10. N 20. P. 8996–9031.</mixed-citation></citation-alternatives></ref><ref id="cit3"><label>3</label><citation-alternatives><mixed-citation xml:lang="ru">Jiang J., Pi J., Cai J. The advancing of zinc oxide nanoparticles for biomedical applications // Bioinorg. Chem. Appl. 2018. Vol. 2018: 1062562.</mixed-citation><mixed-citation xml:lang="en">Jiang J., Pi J., Cai J. The advancing of zinc oxide nanoparticles for biomedical applications // Bioinorg. Chem. Appl. 2018. Vol. 2018: 1062562.</mixed-citation></citation-alternatives></ref><ref id="cit4"><label>4</label><citation-alternatives><mixed-citation xml:lang="ru">Ziental D., Czarczynska-Goslinska B., Mlynarczyk D.T., Glowacka-Sobotta A., Stanisz B., Goslinski T., Sobotta L. Titanium dioxide nanoparticles: prospects and applications in medicine // Nanomaterials. 2020. Vol. 10. N 2: 387.</mixed-citation><mixed-citation xml:lang="en">Ziental D., Czarczynska-Goslinska B., Mlynarczyk D.T., Glowacka-Sobotta A., Stanisz B., Goslinski T., Sobotta L. Titanium dioxide nanoparticles: prospects and applications in medicine // Nanomaterials. 2020. Vol. 10. N 2: 387.</mixed-citation></citation-alternatives></ref><ref id="cit5"><label>5</label><citation-alternatives><mixed-citation xml:lang="ru">Li J., Li C., Zhao L., Pan X., Cai G., Zhu G. The application status, development and future trend of nanoiron materials in anaerobic digestion system // Chemosphere. 2021. Vol. 269: 129389.</mixed-citation><mixed-citation xml:lang="en">Li J., Li C., Zhao L., Pan X., Cai G., Zhu G. The application status, development and future trend of nanoiron materials in anaerobic digestion system // Chemosphere. 2021. Vol. 269: 129389.</mixed-citation></citation-alternatives></ref><ref id="cit6"><label>6</label><citation-alternatives><mixed-citation xml:lang="ru">Bezza F.A., Tichapondwa S.M., Chirwa E.M.N. Fabrication of monodispersed copper oxide nanoparticles with potential application as antimicrobial agents // Sci. Rep. 2020. Vol. 10. N 1: 16680.</mixed-citation><mixed-citation xml:lang="en">Bezza F.A., Tichapondwa S.M., Chirwa E.M.N. Fabrication of monodispersed copper oxide nanoparticles with potential application as antimicrobial agents // Sci. Rep. 2020. Vol. 10. N 1: 16680.</mixed-citation></citation-alternatives></ref><ref id="cit7"><label>7</label><citation-alternatives><mixed-citation xml:lang="ru">Hassanpour P., Panahi Y., Ebrahimi-Kalan A., Akbarzadeh A., Davaran S., Nasibova A., Khalilov R., Kavetskyy T. Biomedical applications of aluminium oxide nanoparticles // Micro Nano Lett. 2018. Vol. 13. N 9. P. 1227–1231.</mixed-citation><mixed-citation xml:lang="en">Hassanpour P., Panahi Y., Ebrahimi-Kalan A., Akbarzadeh A., Davaran S., Nasibova A., Khalilov R., Kavetskyy T. Biomedical applications of aluminium oxide nanoparticles // Micro Nano Lett. 2018. Vol. 13. N 9. P. 1227–1231.</mixed-citation></citation-alternatives></ref><ref id="cit8"><label>8</label><citation-alternatives><mixed-citation xml:lang="ru">Jahangirian H., Kalantari K., Izadiyan Z., RafieeMoghaddam R., Shameli K., Webster T.J. A review of small molecules and drug delivery applications using gold and iron nanoparticles // Int. J. Nanomed. 2019. Vol. 14. P. 1633–1657.</mixed-citation><mixed-citation xml:lang="en">Jahangirian H., Kalantari K., Izadiyan Z., RafieeMoghaddam R., Shameli K., Webster T.J. A review of small molecules and drug delivery applications using gold and iron nanoparticles // Int. J. Nanomed. 2019. Vol. 14. P. 1633–1657.</mixed-citation></citation-alternatives></ref><ref id="cit9"><label>9</label><citation-alternatives><mixed-citation xml:lang="ru">Yonezawa T. Application 78 – Preparation of metal nanoparticles and their application for materials // Nanoparticle technology handbook. 3rd Ed. / Eds. M. Naito, T. Yokoyama, K. Hosokawa, and K. Nogi. Amsterdam: Elsevier, 2018. P. 829–837.</mixed-citation><mixed-citation xml:lang="en">Yonezawa T. Application 78 – Preparation of metal nanoparticles and their application for materials // Nanoparticle technology handbook. 3rd Ed. / Eds. M. Naito, T. Yokoyama, K. Hosokawa, and K. Nogi. Amsterdam: Elsevier, 2018. P. 829–837.</mixed-citation></citation-alternatives></ref><ref id="cit10"><label>10</label><citation-alternatives><mixed-citation xml:lang="ru">Soares E.V., Soares H.M.V.M. Harmful effects of metal(loid) oxide nanoparticles // Appl. Microbiol. Biotechnol. 2021. Vol. 105. P. 1379–1394.</mixed-citation><mixed-citation xml:lang="en">Soares E.V., Soares H.M.V.M. Harmful effects of metal(loid) oxide nanoparticles // Appl. Microbiol. Biotechnol. 2021. Vol. 105. P. 1379–1394.</mixed-citation></citation-alternatives></ref><ref id="cit11"><label>11</label><citation-alternatives><mixed-citation xml:lang="ru">Piccinno F., Gottschalk F., Seeger S., Nowack B. Industrial production quantities and uses of ten engineered nanomaterials in Europe and the world // J. Nanopart. Res. 2012. Vol. 14. N 9: 1109.</mixed-citation><mixed-citation xml:lang="en">Piccinno F., Gottschalk F., Seeger S., Nowack B. Industrial production quantities and uses of ten engineered nanomaterials in Europe and the world // J. Nanopart. Res. 2012. Vol. 14. N 9: 1109.</mixed-citation></citation-alternatives></ref><ref id="cit12"><label>12</label><citation-alternatives><mixed-citation xml:lang="ru">Meyer J.S., Lyons-Darden T., Garman E.R., Middleton E.T., Schlekat C.E. Toxicity of nanoparticulate nickel to aquatic organisms: review and recommendations for improvement of toxicity tests // Environ. Toxicol. Chem. 2020. Vol. 39. N 10. P. 1861–1883.</mixed-citation><mixed-citation xml:lang="en">Meyer J.S., Lyons-Darden T., Garman E.R., Middleton E.T., Schlekat C.E. Toxicity of nanoparticulate nickel to aquatic organisms: review and recommendations for improvement of toxicity tests // Environ. Toxicol. Chem. 2020. Vol. 39. N 10. P. 1861–1883.</mixed-citation></citation-alternatives></ref><ref id="cit13"><label>13</label><citation-alternatives><mixed-citation xml:lang="ru">Lead J.R., Batley G.E., Alvarez P.J.J., Croteau M.-N., Handy R.D., McLaughlin M.J., Judy J.D., Schirmer K. Nanomaterials in the environment: behavior, fate, bioavailability, and effects–an updated review // Environ. Toxicol. Chem. 2018. Vol. 37. N 8. P. 2029–2063.</mixed-citation><mixed-citation xml:lang="en">Lead J.R., Batley G.E., Alvarez P.J.J., Croteau M.-N., Handy R.D., McLaughlin M.J., Judy J.D., Schirmer K. Nanomaterials in the environment: behavior, fate, bioavailability, and effects–an updated review // Environ. Toxicol. Chem. 2018. Vol. 37. N 8. P. 2029–2063.</mixed-citation></citation-alternatives></ref><ref id="cit14"><label>14</label><citation-alternatives><mixed-citation xml:lang="ru">Déniel M., Errien N., Daniel P., Caruso A., Lagarde F. Current methods to monitor microalgaenanoparticle interaction and associated effects // Aquat. Toxicol. 2019. Vol. 217: 105311.</mixed-citation><mixed-citation xml:lang="en">Déniel M., Errien N., Daniel P., Caruso A., Lagarde F. Current methods to monitor microalgaenanoparticle interaction and associated effects // Aquat. Toxicol. 2019. Vol. 217: 105311.</mixed-citation></citation-alternatives></ref><ref id="cit15"><label>15</label><citation-alternatives><mixed-citation xml:lang="ru">Pulido-Reyes G., Leganes F., Fernández-Piñas F., Rosal R. Bio-nano interface and environment: a critical review // Env. Toxicol. Chem. 2017. Vol. 36. N 12. P. 3181–3193.</mixed-citation><mixed-citation xml:lang="en">Pulido-Reyes G., Leganes F., Fernández-Piñas F., Rosal R. Bio-nano interface and environment: a critical review // Env. Toxicol. Chem. 2017. Vol. 36. N 12. P. 3181–3193.</mixed-citation></citation-alternatives></ref><ref id="cit16"><label>16</label><citation-alternatives><mixed-citation xml:lang="ru">Keller A.A., McFerran S., Lazareva A., Suh S. Global life cycle releases of engineered nanomaterials // J. Nanopart. Res. 2013. Vol. 15. N 6: 1692.</mixed-citation><mixed-citation xml:lang="en">Keller A.A., McFerran S., Lazareva A., Suh S. Global life cycle releases of engineered nanomaterials // J. Nanopart. Res. 2013. Vol. 15. N 6: 1692.</mixed-citation></citation-alternatives></ref><ref id="cit17"><label>17</label><citation-alternatives><mixed-citation xml:lang="ru">Bossa N., Chaurand P., Levard C., Borschneck D., Miche H., Vicente J., Geantet C., Aguerre-Chariol O., Michel F.M., Rose J. Environmental exposure to TiO2 nanomaterials incorporated in building material // Environ. Pollut. 2017. Vol. 220. P. 1160–1170.</mixed-citation><mixed-citation xml:lang="en">Bossa N., Chaurand P., Levard C., Borschneck D., Miche H., Vicente J., Geantet C., Aguerre-Chariol O., Michel F.M., Rose J. Environmental exposure to TiO2 nanomaterials incorporated in building material // Environ. Pollut. 2017. Vol. 220. P. 1160–1170.</mixed-citation></citation-alternatives></ref><ref id="cit18"><label>18</label><citation-alternatives><mixed-citation xml:lang="ru">Kaegi R., Ulrich A., Sinnet B., Vonbank R., Wichser A., Zuleeg S., Simmler H., Brunner S., Vonmont H., Burkhardt M., Boller M. Synthetic TiO2 nanoparticle emission from exterior facades into the aquatic environment // Environ. Pollut. 2008. Vol. 156. N 2. P. 233–239.</mixed-citation><mixed-citation xml:lang="en">Kaegi R., Ulrich A., Sinnet B., Vonbank R., Wichser A., Zuleeg S., Simmler H., Brunner S., Vonmont H., Burkhardt M., Boller M. Synthetic TiO2 nanoparticle emission from exterior facades into the aquatic environment // Environ. Pollut. 2008. Vol. 156. N 2. P. 233–239.</mixed-citation></citation-alternatives></ref><ref id="cit19"><label>19</label><citation-alternatives><mixed-citation xml:lang="ru">Bundschuh M., Filser J., Lüderwald S., McKee M.S., Metreveli G., Schaumann G.E., Schulz R., Wagner S. Nanoparticles in the environment: where do we come from, where do we go to? // Environ. Sci. Eur. 2018. Vol. 30. N 1: 6.</mixed-citation><mixed-citation xml:lang="en">Bundschuh M., Filser J., Lüderwald S., McKee M.S., Metreveli G., Schaumann G.E., Schulz R., Wagner S. Nanoparticles in the environment: where do we come from, where do we go to? // Environ. Sci. Eur. 2018. Vol. 30. N 1: 6.</mixed-citation></citation-alternatives></ref><ref id="cit20"><label>20</label><citation-alternatives><mixed-citation xml:lang="ru">Gondikas A.P., Kammer F. v.d., Reed R.B., Wagner S., Ranville J.F., Hofmann T. Release of TiO2 Nanoparticles from sunscreens into surface waters: a oneyear survey at the old danube recreational lake // Environ. Sci. Technol. 2014. Vol. 48. N 10. P. 5415–5422.</mixed-citation><mixed-citation xml:lang="en">Gondikas A.P., Kammer F. v.d., Reed R.B., Wagner S., Ranville J.F., Hofmann T. Release of TiO2 Nanoparticles from sunscreens into surface waters: a oneyear survey at the old danube recreational lake // Environ. Sci. Technol. 2014. Vol. 48. N 10. P. 5415–5422.</mixed-citation></citation-alternatives></ref><ref id="cit21"><label>21</label><citation-alternatives><mixed-citation xml:lang="ru">Andra S., Balu S.K., Jeevanandam J., Muthalagu M. Emerging nanomaterials for antibacterial textile fabrication // Naunyn-Schmiedeberg’s Arch. Pharmacol. 2021. Vol. 394. N 7. P. 1355–1382.</mixed-citation><mixed-citation xml:lang="en">Andra S., Balu S.K., Jeevanandam J., Muthalagu M. Emerging nanomaterials for antibacterial textile fabrication // Naunyn-Schmiedeberg’s Arch. Pharmacol. 2021. Vol. 394. N 7. P. 1355–1382.</mixed-citation></citation-alternatives></ref><ref id="cit22"><label>22</label><citation-alternatives><mixed-citation xml:lang="ru">Benn T.M., Westerhoff P. Nanoparticle silver released into water from commercially available sock fabrics // Environ. Sci. Technol. 2008. Vol. 42. N 11. P. 4133–4139.</mixed-citation><mixed-citation xml:lang="en">Benn T.M., Westerhoff P. Nanoparticle silver released into water from commercially available sock fabrics // Environ. Sci. Technol. 2008. Vol. 42. N 11. P. 4133–4139.</mixed-citation></citation-alternatives></ref><ref id="cit23"><label>23</label><citation-alternatives><mixed-citation xml:lang="ru">Sawicki K., Czajka M., Matysiak-Kucharek M., Fal B., Drop B., Męczyńska-Wielgosz S., Sikorska K., Kruszewski M., Kapka-Skrzypczak L. Toxicity of metallic nanoparticles in the central nervous system // Nanotechnol. Rev. 2019. Vol. 8. N 1. P. 175–200.</mixed-citation><mixed-citation xml:lang="en">Sawicki K., Czajka M., Matysiak-Kucharek M., Fal B., Drop B., Męczyńska-Wielgosz S., Sikorska K., Kruszewski M., Kapka-Skrzypczak L. Toxicity of metallic nanoparticles in the central nervous system // Nanotechnol. Rev. 2019. Vol. 8. N 1. P. 175–200.</mixed-citation></citation-alternatives></ref><ref id="cit24"><label>24</label><citation-alternatives><mixed-citation xml:lang="ru">Ermolin M.S., Fedotov P.S., Ivaneev A.I., Karandashev V.K., Fedyunina N.N., Eskina V.V. Isolation and quantitative analysis of road dust nanoparticles // J. Anal. Chem. 2017. Vol. 72. N 5. P. 520–532.</mixed-citation><mixed-citation xml:lang="en">Ermolin M.S., Fedotov P.S., Ivaneev A.I., Karandashev V.K., Fedyunina N.N., Eskina V.V. Isolation and quantitative analysis of road dust nanoparticles // J. Anal. Chem. 2017. Vol. 72. N 5. P. 520–532.</mixed-citation></citation-alternatives></ref><ref id="cit25"><label>25</label><citation-alternatives><mixed-citation xml:lang="ru">Galdames A., Ruiz-Rubio L., Orueta M., SánchezArzalluz M., Vilas-Vilela J.L. Zero-valent iron nanoparticles for soil and groundwater remediation // Int. J. Environ. Res. Public Health. 2020. Vol. 17. N 16: 5817.</mixed-citation><mixed-citation xml:lang="en">Galdames A., Ruiz-Rubio L., Orueta M., SánchezArzalluz M., Vilas-Vilela J.L. Zero-valent iron nanoparticles for soil and groundwater remediation // Int. J. Environ. Res. Public Health. 2020. Vol. 17. N 16: 5817.</mixed-citation></citation-alternatives></ref><ref id="cit26"><label>26</label><citation-alternatives><mixed-citation xml:lang="ru">Pirzadah B., Pirzadah T.B., Jan A., Hakeem K.R. Nanofertilizers: a way forward for green economy // Nanobiotechnology in agriculture: an approach towards sustainability / Eds. K.R. Hakeem and T.B. Pirzadah. Cham: Springer. P. 99–112.</mixed-citation><mixed-citation xml:lang="en">Pirzadah B., Pirzadah T.B., Jan A., Hakeem K.R. Nanofertilizers: a way forward for green economy // Nanobiotechnology in agriculture: an approach towards sustainability / Eds. K.R. Hakeem and T.B. Pirzadah. Cham: Springer. P. 99–112.</mixed-citation></citation-alternatives></ref><ref id="cit27"><label>27</label><citation-alternatives><mixed-citation xml:lang="ru">Rani U.A., Ng L.Y., Ng C.Y., Mahmoudi E. A review of carbon quantum dots and their applications in wastewater treatment // Adv. Colloid Interface Sci. 2020. Vol. 278: 102124.</mixed-citation><mixed-citation xml:lang="en">Rani U.A., Ng L.Y., Ng C.Y., Mahmoudi E. A review of carbon quantum dots and their applications in wastewater treatment // Adv. Colloid Interface Sci. 2020. Vol. 278: 102124.</mixed-citation></citation-alternatives></ref><ref id="cit28"><label>28</label><citation-alternatives><mixed-citation xml:lang="ru">Efimova S.S., Khaleneva D.A., Litasova E.V., Piotrovskiy L.B., Ostroumova O.S. The mechanisms of action of water-soluble aminohexanoic and malonic adducts of fullerene C60 with hexamethonium on model lipid membranes // Biochim. Biophys. Acta Biomembr. 2020. Vol. 1862. N 11: 183433.</mixed-citation><mixed-citation xml:lang="en">Efimova S.S., Khaleneva D.A., Litasova E.V., Piotrovskiy L.B., Ostroumova O.S. The mechanisms of action of water-soluble aminohexanoic and malonic adducts of fullerene C60 with hexamethonium on model lipid membranes // Biochim. Biophys. Acta Biomembr. 2020. Vol. 1862. N 11: 183433.</mixed-citation></citation-alternatives></ref><ref id="cit29"><label>29</label><citation-alternatives><mixed-citation xml:lang="ru">Moradlou O., Rabiei Z., Delavari N. Antibacterial effects of carbon quantum dots–hematite nanostructures deposited on titanium against gram-positive and gramnegative bacteria // J. Photochem. Photobiol. A: Chem. 2019. Vol. 379. P. 144–149.</mixed-citation><mixed-citation xml:lang="en">Moradlou O., Rabiei Z., Delavari N. Antibacterial effects of carbon quantum dots–hematite nanostructures deposited on titanium against gram-positive and gramnegative bacteria // J. Photochem. Photobiol. A: Chem. 2019. Vol. 379. P. 144–149.</mixed-citation></citation-alternatives></ref><ref id="cit30"><label>30</label><citation-alternatives><mixed-citation xml:lang="ru">Joshi P., Mishra R., Narayan R.J. Biosensing applications of carbon-based materials // Curr. Opin. Biomed. Eng. 2021. Vol. 18: 100274.</mixed-citation><mixed-citation xml:lang="en">Joshi P., Mishra R., Narayan R.J. Biosensing applications of carbon-based materials // Curr. Opin. Biomed. Eng. 2021. Vol. 18: 100274.</mixed-citation></citation-alternatives></ref><ref id="cit31"><label>31</label><citation-alternatives><mixed-citation xml:lang="ru">Li H.-Y., Li D., Guo Y., Yang Y., Wei W., Xie B. On-site chemosensing and quantification of Cr(VI) in industrial wastewater using one-step synthesized fluorescent carbon quantum dots // Sens. Actuators B Chem. 2018. Vol. 277. P. 30–38.</mixed-citation><mixed-citation xml:lang="en">Li H.-Y., Li D., Guo Y., Yang Y., Wei W., Xie B. On-site chemosensing and quantification of Cr(VI) in industrial wastewater using one-step synthesized fluorescent carbon quantum dots // Sens. Actuators B Chem. 2018. Vol. 277. P. 30–38.</mixed-citation></citation-alternatives></ref><ref id="cit32"><label>32</label><citation-alternatives><mixed-citation xml:lang="ru">Fallah Z., Zare E.N., Ghomi M., Ahmadijokani F., Amini M., Tajbakhsh M., Arjmand M., Sharma G., Ali H., Ahmad A., Makvandi P., Lichtfouse E., Sillanpää M., Varma R.S. Toxicity and remediation of pharmaceuticals and pesticides using metal oxides and carbon nanomaterials // Chemosphere. 2021. Vol. 275: 130055.</mixed-citation><mixed-citation xml:lang="en">Fallah Z., Zare E.N., Ghomi M., Ahmadijokani F., Amini M., Tajbakhsh M., Arjmand M., Sharma G., Ali H., Ahmad A., Makvandi P., Lichtfouse E., Sillanpää M., Varma R.S. Toxicity and remediation of pharmaceuticals and pesticides using metal oxides and carbon nanomaterials // Chemosphere. 2021. Vol. 275: 130055.</mixed-citation></citation-alternatives></ref><ref id="cit33"><label>33</label><citation-alternatives><mixed-citation xml:lang="ru">Velasco-Santos C., Martinez-Hernández A.L., Consultchi A., Rodriguez R., Castaño V.M. Naturally produced carbon nanotubes // Chem. Phys. Lett. 2003. Vol. 373. N 3–4. P. 272–276.</mixed-citation><mixed-citation xml:lang="en">Velasco-Santos C., Martinez-Hernández A.L., Consultchi A., Rodriguez R., Castaño V.M. Naturally produced carbon nanotubes // Chem. Phys. Lett. 2003. Vol. 373. N 3–4. P. 272–276.</mixed-citation></citation-alternatives></ref><ref id="cit34"><label>34</label><citation-alternatives><mixed-citation xml:lang="ru">Bäuerlein P.S., Emke E., Tromp P., Hofman J.A.M.H., Carboni A., Schooneman F., de Voogt P., van Wezel A.P. Is there evidence for man-made nanoparticles in the Dutch environment? // Sci. Total Environ. 2017. Vol. 576. P. 273–283.</mixed-citation><mixed-citation xml:lang="en">Bäuerlein P.S., Emke E., Tromp P., Hofman J.A.M.H., Carboni A., Schooneman F., de Voogt P., van Wezel A.P. Is there evidence for man-made nanoparticles in the Dutch environment? // Sci. Total Environ. 2017. Vol. 576. P. 273–283.</mixed-citation></citation-alternatives></ref><ref id="cit35"><label>35</label><citation-alternatives><mixed-citation xml:lang="ru">De Marchi L., Pretti C., Gabriel B., Marques P.A.A.P., Freitas R., Neto V. An overview of graphene materials: properties, applications and toxicity on aquatic environments // Sci. Total Environ. 2018. Vol. 631. P. 1440–1456.</mixed-citation><mixed-citation xml:lang="en">De Marchi L., Pretti C., Gabriel B., Marques P.A.A.P., Freitas R., Neto V. An overview of graphene materials: properties, applications and toxicity on aquatic environments // Sci. Total Environ. 2018. Vol. 631. P. 1440–1456.</mixed-citation></citation-alternatives></ref><ref id="cit36"><label>36</label><citation-alternatives><mixed-citation xml:lang="ru">Di Felice G., Colombo P. Nanoparticle-allergen complexes for allergen immunotherapy // Int. J. Nanomed. 2017. Vol. 12. P. 4493–4504.</mixed-citation><mixed-citation xml:lang="en">Di Felice G., Colombo P. Nanoparticle-allergen complexes for allergen immunotherapy // Int. J. Nanomed. 2017. Vol. 12. P. 4493–4504.</mixed-citation></citation-alternatives></ref><ref id="cit37"><label>37</label><citation-alternatives><mixed-citation xml:lang="ru">Singh S.P., Chinde S., Kamal S.S., Rahman M.F., Mahboob M., Grover P. Genotoxic effects of chromium oxide nanoparticles and microparticles in Wistar rats after 28 days of repeated oral exposure // Environ. Sci. Pollut. Res. Int. 2016. Vol. 23. N 4. P. 3914–3924.</mixed-citation><mixed-citation xml:lang="en">Singh S.P., Chinde S., Kamal S.S., Rahman M.F., Mahboob M., Grover P. Genotoxic effects of chromium oxide nanoparticles and microparticles in Wistar rats after 28 days of repeated oral exposure // Environ. Sci. Pollut. Res. Int. 2016. Vol. 23. N 4. P. 3914–3924.</mixed-citation></citation-alternatives></ref><ref id="cit38"><label>38</label><citation-alternatives><mixed-citation xml:lang="ru">Liu F., Chang X., Tian M., Zhu A., Zou L., Han A., Su L., Li S., Sun Y. Nano NiO induced liver toxicity via activating the NF-κB signaling pathway in rats // Toxicol. Res. 2017. Vol. 6. N 2. P. 242–250.</mixed-citation><mixed-citation xml:lang="en">Liu F., Chang X., Tian M., Zhu A., Zou L., Han A., Su L., Li S., Sun Y. Nano NiO induced liver toxicity via activating the NF-κB signaling pathway in rats // Toxicol. Res. 2017. Vol. 6. N 2. P. 242–250.</mixed-citation></citation-alternatives></ref><ref id="cit39"><label>39</label><citation-alternatives><mixed-citation xml:lang="ru">Shabbir S., Kulyar M.F. Toxicological consequences of titanium dioxide nanoparticles (TiO2NPs) and their jeopardy to human population // Bionanoscience. 2021. Vol. 11. N 2. P. 621–632.</mixed-citation><mixed-citation xml:lang="en">Shabbir S., Kulyar M.F. Toxicological consequences of titanium dioxide nanoparticles (TiO2NPs) and their jeopardy to human population // Bionanoscience. 2021. Vol. 11. N 2. P. 621–632.</mixed-citation></citation-alternatives></ref><ref id="cit40"><label>40</label><citation-alternatives><mixed-citation xml:lang="ru">Baranowska-Wójcik E., Szwajgier D., Oleszczuk P., Winiarska-Mieczan A. Effects of titanium dioxide nanoparticles exposure on human health-a review // Biol. Trace Elem. Res. 2020. Vol. 193. N 1. P. 118–129.</mixed-citation><mixed-citation xml:lang="en">Baranowska-Wójcik E., Szwajgier D., Oleszczuk P., Winiarska-Mieczan A. Effects of titanium dioxide nanoparticles exposure on human health-a review // Biol. Trace Elem. Res. 2020. Vol. 193. N 1. P. 118–129.</mixed-citation></citation-alternatives></ref><ref id="cit41"><label>41</label><citation-alternatives><mixed-citation xml:lang="ru">Wu T., Tang M. The inflammatory response to silver and titanium dioxide nanoparticles in the central nervous system // Nanomedicine. 2018. Vol. 13. N 2. P. 233–249.</mixed-citation><mixed-citation xml:lang="en">Wu T., Tang M. The inflammatory response to silver and titanium dioxide nanoparticles in the central nervous system // Nanomedicine. 2018. Vol. 13. N 2. P. 233–249.</mixed-citation></citation-alternatives></ref><ref id="cit42"><label>42</label><citation-alternatives><mixed-citation xml:lang="ru">Sarma S.J., Bhattacharya I., Brar S.K., Tyagi R.D., Surampalli R.Y. Carbon nanotube–bioaccumulation and recent advances in environmental monitoring // Crit. Rev. Environ. Sci. Technol. 2015. Vol. 45. N 9. P. 905–938.</mixed-citation><mixed-citation xml:lang="en">Sarma S.J., Bhattacharya I., Brar S.K., Tyagi R.D., Surampalli R.Y. Carbon nanotube–bioaccumulation and recent advances in environmental monitoring // Crit. Rev. Environ. Sci. Technol. 2015. Vol. 45. N 9. P. 905–938.</mixed-citation></citation-alternatives></ref><ref id="cit43"><label>43</label><citation-alternatives><mixed-citation xml:lang="ru">Khaliullin T.O., Yanamala N., Newman M.S., Kisin E.R., Fatkhutdinova L.M., Shvedova A.A. Comparative analysis of lung and blood transcriptomes in mice exposed to multi-walled carbon nanotubes // Toxicol. Appl. Pharmacol. 2020. Vol. 390: 114898.</mixed-citation><mixed-citation xml:lang="en">Khaliullin T.O., Yanamala N., Newman M.S., Kisin E.R., Fatkhutdinova L.M., Shvedova A.A. Comparative analysis of lung and blood transcriptomes in mice exposed to multi-walled carbon nanotubes // Toxicol. Appl. Pharmacol. 2020. Vol. 390: 114898.</mixed-citation></citation-alternatives></ref><ref id="cit44"><label>44</label><citation-alternatives><mixed-citation xml:lang="ru">Adedara I.A., Anao O.O., Forcados G.E., Awogbindin I.O., Agbowo A., Ola-Davies O.E., Patlolla A.K., Tchounwou P.B., Farombi E.O. Low doses of multi-walled carbon nanotubes elicit hepatotoxicity in rats with markers of oxidative stress and induction of pro-inflammatory cytokines // Biochem. Biophys. Res. Comm. 2018. Vol. 503. N 4. P. 3167–3173.</mixed-citation><mixed-citation xml:lang="en">Adedara I.A., Anao O.O., Forcados G.E., Awogbindin I.O., Agbowo A., Ola-Davies O.E., Patlolla A.K., Tchounwou P.B., Farombi E.O. Low doses of multi-walled carbon nanotubes elicit hepatotoxicity in rats with markers of oxidative stress and induction of pro-inflammatory cytokines // Biochem. Biophys. Res. Comm. 2018. Vol. 503. N 4. P. 3167–3173.</mixed-citation></citation-alternatives></ref><ref id="cit45"><label>45</label><citation-alternatives><mixed-citation xml:lang="ru">Liu X., Liu T., Song J., Hai Y., Luan F., Zhang H., Yuan Y., Li H., Zhao C. Understanding the interaction of single-walled carbon nanotube (SWCNT) on estrogen receptor: A combined molecular dynamics and experimental study // Ecotoxicol. Environ. Saf. 2019. Vol. 172. P. 373–379.</mixed-citation><mixed-citation xml:lang="en">Liu X., Liu T., Song J., Hai Y., Luan F., Zhang H., Yuan Y., Li H., Zhao C. Understanding the interaction of single-walled carbon nanotube (SWCNT) on estrogen receptor: A combined molecular dynamics and experimental study // Ecotoxicol. Environ. Saf. 2019. Vol. 172. P. 373–379.</mixed-citation></citation-alternatives></ref><ref id="cit46"><label>46</label><citation-alternatives><mixed-citation xml:lang="ru">Sasidharan A., Swaroop S., Koduri C.K., Girish C.M., Chandran P., Panchakarla L.S., Somasundaram V.H., Gowd G.S., Nair S., Koyakutty M. Comparative in vivo toxicity, organ biodistribution and immune response of pristine, carboxylated and PEGylated few-layer graphene sheets in Swiss albino mice: a three month study // Carbon. 2015. Vol. 95. P. 511–524.</mixed-citation><mixed-citation xml:lang="en">Sasidharan A., Swaroop S., Koduri C.K., Girish C.M., Chandran P., Panchakarla L.S., Somasundaram V.H., Gowd G.S., Nair S., Koyakutty M. Comparative in vivo toxicity, organ biodistribution and immune response of pristine, carboxylated and PEGylated few-layer graphene sheets in Swiss albino mice: a three month study // Carbon. 2015. Vol. 95. P. 511–524.</mixed-citation></citation-alternatives></ref><ref id="cit47"><label>47</label><citation-alternatives><mixed-citation xml:lang="ru">An W., Zhang Y., Zhang X., Li K., Kang Y., Akhtar S., Sha X., Gao L. Ocular toxicity of reduced graphene oxide or graphene oxide exposure in mouse eyes // Exp. Eye Res. 2018. Vol. 174. P. 59–69.</mixed-citation><mixed-citation xml:lang="en">An W., Zhang Y., Zhang X., Li K., Kang Y., Akhtar S., Sha X., Gao L. Ocular toxicity of reduced graphene oxide or graphene oxide exposure in mouse eyes // Exp. Eye Res. 2018. Vol. 174. P. 59–69.</mixed-citation></citation-alternatives></ref><ref id="cit48"><label>48</label><citation-alternatives><mixed-citation xml:lang="ru">Cupi D., Hartmann N.B., Baun A. Influence of pH and media composition on suspension stability of silver, zinc oxide, and titanium dioxide nanoparticles and immobilization of Daphnia magna under guideline testing conditions // Ecotoxicol. Environ. Saf. 2016. Vol. 127. P. 144–152.</mixed-citation><mixed-citation xml:lang="en">Cupi D., Hartmann N.B., Baun A. Influence of pH and media composition on suspension stability of silver, zinc oxide, and titanium dioxide nanoparticles and immobilization of Daphnia magna under guideline testing conditions // Ecotoxicol. Environ. Saf. 2016. Vol. 127. P. 144–152.</mixed-citation></citation-alternatives></ref><ref id="cit49"><label>49</label><citation-alternatives><mixed-citation xml:lang="ru">Wang F., Guan W., Xu L., Ding Z., Ma H., Ma A., Terry N. Effects of nanoparticles on algae: adsorption, distribution, ecotoxicity and fate // Appl. Sci. 2019. Vol. 9. N 8: 1534.</mixed-citation><mixed-citation xml:lang="en">Wang F., Guan W., Xu L., Ding Z., Ma H., Ma A., Terry N. Effects of nanoparticles on algae: adsorption, distribution, ecotoxicity and fate // Appl. Sci. 2019. Vol. 9. N 8: 1534.</mixed-citation></citation-alternatives></ref><ref id="cit50"><label>50</label><citation-alternatives><mixed-citation xml:lang="ru">Lee S., Kim K., Shon H.K., Kim S.D., Cho J. Biotoxicity of nanoparticles: effect of natural organic matter // J. Nanopart. Res. 2011. Vol. 13. N 7. P. 3051–3061.</mixed-citation><mixed-citation xml:lang="en">Lee S., Kim K., Shon H.K., Kim S.D., Cho J. Biotoxicity of nanoparticles: effect of natural organic matter // J. Nanopart. Res. 2011. Vol. 13. N 7. P. 3051–3061.</mixed-citation></citation-alternatives></ref><ref id="cit51"><label>51</label><citation-alternatives><mixed-citation xml:lang="ru">Levard C., Hotze E.M., Lowry G.V., Brown G.E. Environmental transformations of silver nanoparticles: impact on stability and toxicity // Environ. Sci. Technol. 2012. Vol. 46. N 13. P. 6900–6914.</mixed-citation><mixed-citation xml:lang="en">Levard C., Hotze E.M., Lowry G.V., Brown G.E. Environmental transformations of silver nanoparticles: impact on stability and toxicity // Environ. Sci. Technol. 2012. Vol. 46. N 13. P. 6900–6914.</mixed-citation></citation-alternatives></ref><ref id="cit52"><label>52</label><citation-alternatives><mixed-citation xml:lang="ru">Wang Z., Zhang L., Zhao J., Xing B. Environmental processes and toxicity of metallic nanoparticles in aquatic systems as affected by natural organic matter // Environ. Sci. Nano. 2016. Vol. 3. N 2. P. 240–255.</mixed-citation><mixed-citation xml:lang="en">Wang Z., Zhang L., Zhao J., Xing B. Environmental processes and toxicity of metallic nanoparticles in aquatic systems as affected by natural organic matter // Environ. Sci. Nano. 2016. Vol. 3. N 2. P. 240–255.</mixed-citation></citation-alternatives></ref><ref id="cit53"><label>53</label><citation-alternatives><mixed-citation xml:lang="ru">Collin B., Tsyusko O.V., Starnes D.L., Unrine J.M. Effect of natural organic matter on dissolution and toxicity of sulfidized silver nanoparticles to Caenorhabditis elegans // Environ. Sci. Nano. 2016. Vol. 3. N 4. P. 728–736.</mixed-citation><mixed-citation xml:lang="en">Collin B., Tsyusko O.V., Starnes D.L., Unrine J.M. Effect of natural organic matter on dissolution and toxicity of sulfidized silver nanoparticles to Caenorhabditis elegans // Environ. Sci. Nano. 2016. Vol. 3. N 4. P. 728–736.</mixed-citation></citation-alternatives></ref><ref id="cit54"><label>54</label><citation-alternatives><mixed-citation xml:lang="ru">Li L., Fernández-Cruz M., Connolly M., Schuster M., Navas J. Dissolution and aggregation of Cu nanoparticles in culture media: effects of incubation temperature and particles size // J. Nanopart. Res. 2015. Vol. 17. N 1: 38.</mixed-citation><mixed-citation xml:lang="en">Li L., Fernández-Cruz M., Connolly M., Schuster M., Navas J. Dissolution and aggregation of Cu nanoparticles in culture media: effects of incubation temperature and particles size // J. Nanopart. Res. 2015. Vol. 17. N 1: 38.</mixed-citation></citation-alternatives></ref><ref id="cit55"><label>55</label><citation-alternatives><mixed-citation xml:lang="ru">Fu L., Hamzeh M., Dodard S., Zhao Y., Sunahara G. Effects of TiO2 nanoparticles on ROS production and growth inhibition using freshwater green algae pre-exposed to UV irradiation // Environ. Toxicol. Pharmacol. 2015. Vol. 39. N 3. P. 1074–1080.</mixed-citation><mixed-citation xml:lang="en">Fu L., Hamzeh M., Dodard S., Zhao Y., Sunahara G. Effects of TiO2 nanoparticles on ROS production and growth inhibition using freshwater green algae pre-exposed to UV irradiation // Environ. Toxicol. Pharmacol. 2015. Vol. 39. N 3. P. 1074–1080.</mixed-citation></citation-alternatives></ref><ref id="cit56"><label>56</label><citation-alternatives><mixed-citation xml:lang="ru">Zhao J., Cao X., Liu X., Wang Z., Zhang C., White J.C., Xing B. Interactions of CuO nanoparticles with the algae Chlorella pyrenoidosa: adhesion, uptake, and toxicity // Nanotoxicol. 2016. Vol. 10. N 9. P. 1297–1305.</mixed-citation><mixed-citation xml:lang="en">Zhao J., Cao X., Liu X., Wang Z., Zhang C., White J.C., Xing B. Interactions of CuO nanoparticles with the algae Chlorella pyrenoidosa: adhesion, uptake, and toxicity // Nanotoxicol. 2016. Vol. 10. N 9. P. 1297–1305.</mixed-citation></citation-alternatives></ref><ref id="cit57"><label>57</label><citation-alternatives><mixed-citation xml:lang="ru">Wang Z., Zhang F., Vijver M.G., Peijnenburg W.J.G.M. Graphene nanoplatelets and reduced graphene oxide elevate the microalgal cytotoxicity of nano-zirconium oxide // Chemosphere. 2021. Vol. 276: 130015.</mixed-citation><mixed-citation xml:lang="en">Wang Z., Zhang F., Vijver M.G., Peijnenburg W.J.G.M. Graphene nanoplatelets and reduced graphene oxide elevate the microalgal cytotoxicity of nano-zirconium oxide // Chemosphere. 2021. Vol. 276: 130015.</mixed-citation></citation-alternatives></ref><ref id="cit58"><label>58</label><citation-alternatives><mixed-citation xml:lang="ru">Zhao J., Cao X., Wang Z., Dai Y., Xing B. Mechanistic understanding toward the toxicity of graphenefamily materials to freshwater algae // Water Res. 2017. Vol. 111. P. 18–27.</mixed-citation><mixed-citation xml:lang="en">Zhao J., Cao X., Wang Z., Dai Y., Xing B. Mechanistic understanding toward the toxicity of graphenefamily materials to freshwater algae // Water Res. 2017. Vol. 111. P. 18–27.</mixed-citation></citation-alternatives></ref><ref id="cit59"><label>59</label><citation-alternatives><mixed-citation xml:lang="ru">Tao X., Yu Y., Fortner J.D., He Y., Chen Y., Hughes J.B. Effects of aqueous stable fullerene nanocrystal (nC60) on Scenedesmus obliquus: Evaluation of the sub-lethal photosynthetic responses and inhibition mechanism // Chemosphere. 2015. Vol. 122. P. 162–167.</mixed-citation><mixed-citation xml:lang="en">Tao X., Yu Y., Fortner J.D., He Y., Chen Y., Hughes J.B. Effects of aqueous stable fullerene nanocrystal (nC60) on Scenedesmus obliquus: Evaluation of the sub-lethal photosynthetic responses and inhibition mechanism // Chemosphere. 2015. Vol. 122. P. 162–167.</mixed-citation></citation-alternatives></ref><ref id="cit60"><label>60</label><citation-alternatives><mixed-citation xml:lang="ru">Kwok K.W., Leung K.M., Flahaut E., Cheng J., Cheng S.H. Chronic toxicity of double-walled carbon nanotubes to three marine organisms: influence of different dispersion methods // Nanomedicine. 2010. Vol. 5. N 6. P. 951–961.</mixed-citation><mixed-citation xml:lang="en">Kwok K.W., Leung K.M., Flahaut E., Cheng J., Cheng S.H. Chronic toxicity of double-walled carbon nanotubes to three marine organisms: influence of different dispersion methods // Nanomedicine. 2010. Vol. 5. N 6. P. 951–961.</mixed-citation></citation-alternatives></ref><ref id="cit61"><label>61</label><citation-alternatives><mixed-citation xml:lang="ru">Lukhele L.P., Mamba B.B., Musee N., Wepener V. Acute toxicity of double-walled carbon nanotubes to three aquatic organisms // J. Nanomater. 2015. Vol. 2015. N 3: 219074.</mixed-citation><mixed-citation xml:lang="en">Lukhele L.P., Mamba B.B., Musee N., Wepener V. Acute toxicity of double-walled carbon nanotubes to three aquatic organisms // J. Nanomater. 2015. Vol. 2015. N 3: 219074.</mixed-citation></citation-alternatives></ref><ref id="cit62"><label>62</label><citation-alternatives><mixed-citation xml:lang="ru">Fan W., Liu Y., Xu Z., Wang X., Li X., Luo S. The mechanism of chronic toxicity to Daphnia magna induced by graphene suspended in a water column // Environ. Sci. Nano. 2016. Vol. 3. N 6. P. 1405–1415.</mixed-citation><mixed-citation xml:lang="en">Fan W., Liu Y., Xu Z., Wang X., Li X., Luo S. The mechanism of chronic toxicity to Daphnia magna induced by graphene suspended in a water column // Environ. Sci. Nano. 2016. Vol. 3. N 6. P. 1405–1415.</mixed-citation></citation-alternatives></ref><ref id="cit63"><label>63</label><citation-alternatives><mixed-citation xml:lang="ru">Tervonen K., Waissi G., Petersen E.J., Akkanen J., Kukkonen J.V.K. Analysis of fullerene-C60 and kinetic measurements for its accumulation and depuration in Daphnia magna // Environ. Toxicol. Chem. 2010. Vol. 29. N 5. P. 1072–1078.</mixed-citation><mixed-citation xml:lang="en">Tervonen K., Waissi G., Petersen E.J., Akkanen J., Kukkonen J.V.K. Analysis of fullerene-C60 and kinetic measurements for its accumulation and depuration in Daphnia magna // Environ. Toxicol. Chem. 2010. Vol. 29. N 5. P. 1072–1078.</mixed-citation></citation-alternatives></ref><ref id="cit64"><label>64</label><citation-alternatives><mixed-citation xml:lang="ru">De Marchi L., Neto V., Pretti C., Figueira E., Chiellini F., Morelli A., Soares A.M.V.M., Freitas R. Toxic effects of multi-walled carbon nanotubes on bivalves: Comparison between functionalized and nonfunctionalized nanoparticles // Sci. Total Environ. 2018. Vol. 622. P. 1532–1542.</mixed-citation><mixed-citation xml:lang="en">De Marchi L., Neto V., Pretti C., Figueira E., Chiellini F., Morelli A., Soares A.M.V.M., Freitas R. Toxic effects of multi-walled carbon nanotubes on bivalves: Comparison between functionalized and nonfunctionalized nanoparticles // Sci. Total Environ. 2018. Vol. 622. P. 1532–1542.</mixed-citation></citation-alternatives></ref><ref id="cit65"><label>65</label><citation-alternatives><mixed-citation xml:lang="ru">Bangeppagari M., Park S.H., Kundapur R.R., Lee S.J. Graphene oxide induces cardiovascular defects in developing zebrafish (Danio rerio) embryo model: In-vivo toxicity assessment // Sci. Total Environ. 2019. Vol. 673. P. 810–820.</mixed-citation><mixed-citation xml:lang="en">Bangeppagari M., Park S.H., Kundapur R.R., Lee S.J. Graphene oxide induces cardiovascular defects in developing zebrafish (Danio rerio) embryo model: In-vivo toxicity assessment // Sci. Total Environ. 2019. Vol. 673. P. 810–820.</mixed-citation></citation-alternatives></ref><ref id="cit66"><label>66</label><citation-alternatives><mixed-citation xml:lang="ru">Prakash J., Venkatesan M., Sebastian Prakash J, J., Bharath G., Anwer S., Veluswamy P., Prema D., Venkataprasanna K.S., Venkatasubbu G.D. Investigations on the invivo toxicity analysis of reduced graphene oxide/TiO2 nanocomposite in zebrafish embryo and larvae (Danio rerio) // Appl. Surf. Sci. 2019. Vol. 481. P. 1360–1369.</mixed-citation><mixed-citation xml:lang="en">Prakash J., Venkatesan M., Sebastian Prakash J, J., Bharath G., Anwer S., Veluswamy P., Prema D., Venkataprasanna K.S., Venkatasubbu G.D. Investigations on the invivo toxicity analysis of reduced graphene oxide/TiO2 nanocomposite in zebrafish embryo and larvae (Danio rerio) // Appl. Surf. Sci. 2019. Vol. 481. P. 1360–1369.</mixed-citation></citation-alternatives></ref><ref id="cit67"><label>67</label><citation-alternatives><mixed-citation xml:lang="ru">Souza J.P., Baretta J.F., Santos F., Paino I.M.M., Zucolotto V. Toxicological effects of graphene oxide on adult zebrafish (Danio rerio) // Aquat. Toxicol. 2017. Vol. 186. P. 11–18.</mixed-citation><mixed-citation xml:lang="en">Souza J.P., Baretta J.F., Santos F., Paino I.M.M., Zucolotto V. Toxicological effects of graphene oxide on adult zebrafish (Danio rerio) // Aquat. Toxicol. 2017. Vol. 186. P. 11–18.</mixed-citation></citation-alternatives></ref><ref id="cit68"><label>68</label><citation-alternatives><mixed-citation xml:lang="ru">Audira G., Lee J.-S., Siregar P., Malhotra N., Rolden M.J., Huang J.C., Chen K.H., Hsu H.S., Hsu Y., Ger T.R., Hsiao C.D. Comparison of the chronic toxicities of graphene and graphene oxide toward adult zebrafish by using biochemical and phenomic approaches // Environ. Pollut. 2021. Vol. 278: 116907.</mixed-citation><mixed-citation xml:lang="en">Audira G., Lee J.-S., Siregar P., Malhotra N., Rolden M.J., Huang J.C., Chen K.H., Hsu H.S., Hsu Y., Ger T.R., Hsiao C.D. Comparison of the chronic toxicities of graphene and graphene oxide toward adult zebrafish by using biochemical and phenomic approaches // Environ. Pollut. 2021. Vol. 278: 116907.</mixed-citation></citation-alternatives></ref><ref id="cit69"><label>69</label><citation-alternatives><mixed-citation xml:lang="ru">Malakootian M., Yaseri M., Faraji M. Removal of antibiotics from aqueous solutions by nanoparticles: a systematic review and meta-analysis // Environ. Sci. Pollut Res. 2019. Vol. 26. N 9. P. 8444–8458.</mixed-citation><mixed-citation xml:lang="en">Malakootian M., Yaseri M., Faraji M. Removal of antibiotics from aqueous solutions by nanoparticles: a systematic review and meta-analysis // Environ. Sci. Pollut Res. 2019. Vol. 26. N 9. P. 8444–8458.</mixed-citation></citation-alternatives></ref><ref id="cit70"><label>70</label><citation-alternatives><mixed-citation xml:lang="ru">Li M., Liu W., Slaveykova V.I. Effects of mixtures of engineered nanoparticles and metallic pollutants on aquatic organisms // Environments. 2020. Vol. 7. N 4: 27.</mixed-citation><mixed-citation xml:lang="en">Li M., Liu W., Slaveykova V.I. Effects of mixtures of engineered nanoparticles and metallic pollutants on aquatic organisms // Environments. 2020. Vol. 7. N 4: 27.</mixed-citation></citation-alternatives></ref><ref id="cit71"><label>71</label><citation-alternatives><mixed-citation xml:lang="ru">Tang Y., Li S., Qiao J., Wang H., Li L. Synergistic effects of nano-sized titanium dioxide and zinc on the photosynthetic capacity and survival of Anabaena sp. // Int. J. Mol. Sci. 2013. Vol. 14. N 7. P. 14395–14407.</mixed-citation><mixed-citation xml:lang="en">Tang Y., Li S., Qiao J., Wang H., Li L. Synergistic effects of nano-sized titanium dioxide and zinc on the photosynthetic capacity and survival of Anabaena sp. // Int. J. Mol. Sci. 2013. Vol. 14. N 7. P. 14395–14407.</mixed-citation></citation-alternatives></ref><ref id="cit72"><label>72</label><citation-alternatives><mixed-citation xml:lang="ru">Wang D., Hu J., Irons D.R., Wang J. Synergistic toxic effect of nano-TiO and As(V) on Ceriodaphnia dubia // Sci. Total Environ. 2011. Vol. 409. N 7. P. 1351–1356.</mixed-citation><mixed-citation xml:lang="en">Wang D., Hu J., Irons D.R., Wang J. Synergistic toxic effect of nano-TiO and As(V) on Ceriodaphnia dubia // Sci. Total Environ. 2011. Vol. 409. N 7. P. 1351–1356.</mixed-citation></citation-alternatives></ref><ref id="cit73"><label>73</label><citation-alternatives><mixed-citation xml:lang="ru">Yang W.W., Li Y., Miao A.J., Yang L.Y. Cd2+ toxicity as affected by bare TiO2 nanoparticles and their bulk counterpart // Ecotoxicol. Environ. Saf. 2012. Vol. 85. P. 44–51.</mixed-citation><mixed-citation xml:lang="en">Yang W.W., Li Y., Miao A.J., Yang L.Y. Cd2+ toxicity as affected by bare TiO2 nanoparticles and their bulk counterpart // Ecotoxicol. Environ. Saf. 2012. Vol. 85. P. 44–51.</mixed-citation></citation-alternatives></ref><ref id="cit74"><label>74</label><citation-alternatives><mixed-citation xml:lang="ru">Hartmann N.B., Legros S., Von der Kammer F., Hofmann T., Baun A. The potential of TiO2 nanoparticles as carriers for cadmium uptake in Lumbriculus variegatus and Daphnia magna // Aquat. Toxicol. 2012. Vol. 118–119. P. 1–8.</mixed-citation><mixed-citation xml:lang="en">Hartmann N.B., Legros S., Von der Kammer F., Hofmann T., Baun A. The potential of TiO2 nanoparticles as carriers for cadmium uptake in Lumbriculus variegatus and Daphnia magna // Aquat. Toxicol. 2012. Vol. 118–119. P. 1–8.</mixed-citation></citation-alternatives></ref><ref id="cit75"><label>75</label><citation-alternatives><mixed-citation xml:lang="ru">Peterson J.W., Burkhart R.S., Shaw D.C., Schuiling A.B., Haserodt M.J., Seymour M.D. Experimental determination of ampicillin adsorption to nanometer-size Al2O3 in water // Chemosphere. 2010. Vol. 80. N 11. P. 1268–1273.</mixed-citation><mixed-citation xml:lang="en">Peterson J.W., Burkhart R.S., Shaw D.C., Schuiling A.B., Haserodt M.J., Seymour M.D. Experimental determination of ampicillin adsorption to nanometer-size Al2O3 in water // Chemosphere. 2010. Vol. 80. N 11. P. 1268–1273.</mixed-citation></citation-alternatives></ref><ref id="cit76"><label>76</label><citation-alternatives><mixed-citation xml:lang="ru">Van Wieren E.M., Seymour M.D., Peterson J.W. Interaction of the fluoroquinolone antibiotic, ofloxacin, with titanium oxide nanoparticles in water: adsorption and breakdown // Sci. Total Environ. 2012. Vol. 441. P. 1–9.</mixed-citation><mixed-citation xml:lang="en">Van Wieren E.M., Seymour M.D., Peterson J.W. Interaction of the fluoroquinolone antibiotic, ofloxacin, with titanium oxide nanoparticles in water: adsorption and breakdown // Sci. Total Environ. 2012. Vol. 441. P. 1–9.</mixed-citation></citation-alternatives></ref><ref id="cit77"><label>77</label><citation-alternatives><mixed-citation xml:lang="ru">Surwade P., Ghildyal C., Weikel C., Luxton T., Peloquin D., Fan X., Shah V. Augmented antibacterial activity of ampicillin with silver nanoparticles against methicillin-resistant Staphylococcus aureus (MRSA) // J. Antibiot. 2019. Vol. 72. N 1. P. 50–53.</mixed-citation><mixed-citation xml:lang="en">Surwade P., Ghildyal C., Weikel C., Luxton T., Peloquin D., Fan X., Shah V. Augmented antibacterial activity of ampicillin with silver nanoparticles against methicillin-resistant Staphylococcus aureus (MRSA) // J. Antibiot. 2019. Vol. 72. N 1. P. 50–53.</mixed-citation></citation-alternatives></ref><ref id="cit78"><label>78</label><citation-alternatives><mixed-citation xml:lang="ru">Abo-Shama U.H., El-Gendy H., Mousa W.S., Hamouda R.A., Yousuf W.E., Hetta H.F., Abdeen E.E. Synergistic and antagonistic effects of metal nanoparticles in combination with antibiotics against some reference strains of pathogenic microorganisms // Infect. Drug. Resist. 2020. Vol. 13. P. 351–362.</mixed-citation><mixed-citation xml:lang="en">Abo-Shama U.H., El-Gendy H., Mousa W.S., Hamouda R.A., Yousuf W.E., Hetta H.F., Abdeen E.E. Synergistic and antagonistic effects of metal nanoparticles in combination with antibiotics against some reference strains of pathogenic microorganisms // Infect. Drug. Resist. 2020. Vol. 13. P. 351–362.</mixed-citation></citation-alternatives></ref><ref id="cit79"><label>79</label><citation-alternatives><mixed-citation xml:lang="ru">McShan D., Zhang Y., Deng H., Ray P.C., Yu H. Synergistic antibacterial effect of silver nanoparticles combined with ineffective antibiotics on drug resistant Salmonella typhimurium DT104 // J. Environ. Sci. Health C: Environ. Carcinog. Ecotoxicol. Rev. 2015. Vol. 33. N 3. P. 369–384.</mixed-citation><mixed-citation xml:lang="en">McShan D., Zhang Y., Deng H., Ray P.C., Yu H. Synergistic antibacterial effect of silver nanoparticles combined with ineffective antibiotics on drug resistant Salmonella typhimurium DT104 // J. Environ. Sci. Health C: Environ. Carcinog. Ecotoxicol. Rev. 2015. Vol. 33. N 3. P. 369–384.</mixed-citation></citation-alternatives></ref><ref id="cit80"><label>80</label><citation-alternatives><mixed-citation xml:lang="ru">Windiasti G., Feng J., Ma L., Hu Y., Hakeem M.J., Amoako K., Delaquis P., Lu X. Investigating the synergistic antimicrobial effect of carvacrol and zinc oxide nanoparticles against Campylobacter jejuni // Food Control. 2019. Vol. 96. P. 39–46.</mixed-citation><mixed-citation xml:lang="en">Windiasti G., Feng J., Ma L., Hu Y., Hakeem M.J., Amoako K., Delaquis P., Lu X. Investigating the synergistic antimicrobial effect of carvacrol and zinc oxide nanoparticles against Campylobacter jejuni // Food Control. 2019. Vol. 96. P. 39–46.</mixed-citation></citation-alternatives></ref><ref id="cit81"><label>81</label><citation-alternatives><mixed-citation xml:lang="ru">Hwang I.-S., Hwang J.H., Choi H., Kim K.-J., Lee D.G. Synergistic effects between silver nanoparticles and antibiotics and the mechanisms involved // J. Med. Microbiol. 2012. Vol. 61. N 12. P. 1719–1726.</mixed-citation><mixed-citation xml:lang="en">Hwang I.-S., Hwang J.H., Choi H., Kim K.-J., Lee D.G. Synergistic effects between silver nanoparticles and antibiotics and the mechanisms involved // J. Med. Microbiol. 2012. Vol. 61. N 12. P. 1719–1726.</mixed-citation></citation-alternatives></ref><ref id="cit82"><label>82</label><citation-alternatives><mixed-citation xml:lang="ru">Sun C., Li W., Xu Y., Hu N., Ma J., Cao W., Sun S., Hu C., Zhao Y., Huang Q. Effects of carbon nanotubes on the toxicities of copper, cadmium and zinc toward the freshwater microalgae Scenedesmus obliquus // Aquat. Toxicol. 2020. Vol. 224: 105504.</mixed-citation><mixed-citation xml:lang="en">Sun C., Li W., Xu Y., Hu N., Ma J., Cao W., Sun S., Hu C., Zhao Y., Huang Q. Effects of carbon nanotubes on the toxicities of copper, cadmium and zinc toward the freshwater microalgae Scenedesmus obliquus // Aquat. Toxicol. 2020. Vol. 224: 105504.</mixed-citation></citation-alternatives></ref><ref id="cit83"><label>83</label><citation-alternatives><mixed-citation xml:lang="ru">Freixa A., Acuña V., Sanchís J., Farré M., Barceló D., Sabater S. Ecotoxicological effects of carbon based nanomaterials in aquatic organisms // Sci. Total. Environ. 2018. Vol. 619. P. 328–337.</mixed-citation><mixed-citation xml:lang="en">Freixa A., Acuña V., Sanchís J., Farré M., Barceló D., Sabater S. Ecotoxicological effects of carbon based nanomaterials in aquatic organisms // Sci. Total. Environ. 2018. Vol. 619. P. 328–337.</mixed-citation></citation-alternatives></ref><ref id="cit84"><label>84</label><citation-alternatives><mixed-citation xml:lang="ru">Wang X., Qu R., Liu J., Wei Z., Wang L., Yang S., Huang Q., Wang Z. Effect of different carbon nanotubes on cadmium toxicity to Daphnia magna: the role of catalyst impurities and adsorption capacity // Environ. Pollut. 2016. Vol. 208. P. 732–738.</mixed-citation><mixed-citation xml:lang="en">Wang X., Qu R., Liu J., Wei Z., Wang L., Yang S., Huang Q., Wang Z. Effect of different carbon nanotubes on cadmium toxicity to Daphnia magna: the role of catalyst impurities and adsorption capacity // Environ. Pollut. 2016. Vol. 208. P. 732–738.</mixed-citation></citation-alternatives></ref><ref id="cit85"><label>85</label><citation-alternatives><mixed-citation xml:lang="ru">Schwab F., Bucheli T.D., Camenzuli L., Magrez A., Knauer K., Sigg L., Nowack B. Diuron sorbed to carbon nanotubes exhibits enhanced toxicity to Chlorella vulgaris // Environ. Sci. Technol. 2013. Vol. 47. N 13. P. 7012–7019.</mixed-citation><mixed-citation xml:lang="en">Schwab F., Bucheli T.D., Camenzuli L., Magrez A., Knauer K., Sigg L., Nowack B. Diuron sorbed to carbon nanotubes exhibits enhanced toxicity to Chlorella vulgaris // Environ. Sci. Technol. 2013. Vol. 47. N 13. P. 7012–7019.</mixed-citation></citation-alternatives></ref><ref id="cit86"><label>86</label><citation-alternatives><mixed-citation xml:lang="ru">Jang M.-H., Hwang Y.S. Effects of functionalized multi-walled carbon nanotubes on toxicity and bioaccumulation of lead in Daphnia magna // PLoS One. 2018. Vol. 13. N 3: e0194935.</mixed-citation><mixed-citation xml:lang="en">Jang M.-H., Hwang Y.S. Effects of functionalized multi-walled carbon nanotubes on toxicity and bioaccumulation of lead in Daphnia magna // PLoS One. 2018. Vol. 13. N 3: e0194935.</mixed-citation></citation-alternatives></ref><ref id="cit87"><label>87</label><citation-alternatives><mixed-citation xml:lang="ru">Zhang C., Chen X., Tan L., Wang J. Combined toxicities of copper nanoparticles with carbon nanotubes on marine microalgae Skeletonema costatum // Environ. Sci. Pollut. Res. 2018. Vol. 25. N 13. P. 13127–13133.</mixed-citation><mixed-citation xml:lang="en">Zhang C., Chen X., Tan L., Wang J. Combined toxicities of copper nanoparticles with carbon nanotubes on marine microalgae Skeletonema costatum // Environ. Sci. Pollut. Res. 2018. Vol. 25. N 13. P. 13127–13133.</mixed-citation></citation-alternatives></ref><ref id="cit88"><label>88</label><citation-alternatives><mixed-citation xml:lang="ru">Song B., Xu P., Zeng G., Gong J., Wang X., Yan J., Wang S., Zhang P., Cao W., Ye S. Modeling the transport of sodium dodecyl benzene sulfonate in riverine sediment in the presence of multi-walled carbon nanotubes // Water Res. 2018. Vol. 129. P. 20–28.</mixed-citation><mixed-citation xml:lang="en">Song B., Xu P., Zeng G., Gong J., Wang X., Yan J., Wang S., Zhang P., Cao W., Ye S. Modeling the transport of sodium dodecyl benzene sulfonate in riverine sediment in the presence of multi-walled carbon nanotubes // Water Res. 2018. Vol. 129. P. 20–28.</mixed-citation></citation-alternatives></ref><ref id="cit89"><label>89</label><citation-alternatives><mixed-citation xml:lang="ru">Sun Y., Liu X., Lv X., Wang T., Xue B. Synthesis of novel lignosulfonate-modified graphene hydrogel for ultrahigh adsorption capacity of Cr(VI) from wastewater // J. Clean. Prod. 2021. Vol. 295: 126406.</mixed-citation><mixed-citation xml:lang="en">Sun Y., Liu X., Lv X., Wang T., Xue B. Synthesis of novel lignosulfonate-modified graphene hydrogel for ultrahigh adsorption capacity of Cr(VI) from wastewater // J. Clean. Prod. 2021. Vol. 295: 126406.</mixed-citation></citation-alternatives></ref><ref id="cit90"><label>90</label><citation-alternatives><mixed-citation xml:lang="ru">Chenab K.K., Sohrabi B., Jafari A., Ramakrishna S. Water treatment: functional nanomaterials and applications from adsorption to photodegradation // Mater. Today Chem. 2020. Vol. 16: 100262.</mixed-citation><mixed-citation xml:lang="en">Chenab K.K., Sohrabi B., Jafari A., Ramakrishna S. Water treatment: functional nanomaterials and applications from adsorption to photodegradation // Mater. Today Chem. 2020. Vol. 16: 100262.</mixed-citation></citation-alternatives></ref><ref id="cit91"><label>91</label><citation-alternatives><mixed-citation xml:lang="ru">Martín-de-Lucía I., Campos-Mañas M.C., Agüera A., Leganés F., Fernández-Piñas F., Rosal R. Combined toxicity of graphene oxide and wastewater to the green alga Chlamydomonas reinhardtii // Environ. Sci. Nano. 2018. Vol. 5. P. 1729–1744.</mixed-citation><mixed-citation xml:lang="en">Martín-de-Lucía I., Campos-Mañas M.C., Agüera A., Leganés F., Fernández-Piñas F., Rosal R. Combined toxicity of graphene oxide and wastewater to the green alga Chlamydomonas reinhardtii // Environ. Sci. Nano. 2018. Vol. 5. P. 1729–1744.</mixed-citation></citation-alternatives></ref><ref id="cit92"><label>92</label><citation-alternatives><mixed-citation xml:lang="ru">Zhang X., Liu Y. Nanomaterials for radioactive wastewater decontamination // Environ. Sci. Nano. 2020. Vol. 7. N 4. P. 1008–1040.</mixed-citation><mixed-citation xml:lang="en">Zhang X., Liu Y. Nanomaterials for radioactive wastewater decontamination // Environ. Sci. Nano. 2020. Vol. 7. N 4. P. 1008–1040.</mixed-citation></citation-alternatives></ref><ref id="cit93"><label>93</label><citation-alternatives><mixed-citation xml:lang="ru">Mubarak N.M., Sahu J.N., Abdullah E.C., Jayakumar N.S., Ganesan P. Microwave-assisted synthesis of multi-walled carbon nanotubes for enhanced removal of Zn(II) from wastewater // Res. Chem. Intermed. 2016. Vol. 42. N 4. P. 3257–3281.</mixed-citation><mixed-citation xml:lang="en">Mubarak N.M., Sahu J.N., Abdullah E.C., Jayakumar N.S., Ganesan P. Microwave-assisted synthesis of multi-walled carbon nanotubes for enhanced removal of Zn(II) from wastewater // Res. Chem. Intermed. 2016. Vol. 42. N 4. P. 3257–3281.</mixed-citation></citation-alternatives></ref><ref id="cit94"><label>94</label><citation-alternatives><mixed-citation xml:lang="ru">Miao A.-J., Luo Z., Chen C.-S., Chin W.-C., Santschi P.H., Quigg A. Intracellular uptake: a possible mechanism for silver engineered nanoparticle toxicity to a freshwater alga Ochromonas danica // PloS One. 2010. Vol. 5. N 12: e15196.</mixed-citation><mixed-citation xml:lang="en">Miao A.-J., Luo Z., Chen C.-S., Chin W.-C., Santschi P.H., Quigg A. Intracellular uptake: a possible mechanism for silver engineered nanoparticle toxicity to a freshwater alga Ochromonas danica // PloS One. 2010. Vol. 5. N 12: e15196.</mixed-citation></citation-alternatives></ref><ref id="cit95"><label>95</label><citation-alternatives><mixed-citation xml:lang="ru">Mahana A., Guliy O.I., Mehta S.K. Accumulation and cellular toxicity of engineered metallic nanoparticle in freshwater microalgae: current status and future challenges // Ecotoxicol. Environ. Saf. 2021. Vol. 208: 111662.</mixed-citation><mixed-citation xml:lang="en">Mahana A., Guliy O.I., Mehta S.K. Accumulation and cellular toxicity of engineered metallic nanoparticle in freshwater microalgae: current status and future challenges // Ecotoxicol. Environ. Saf. 2021. Vol. 208: 111662.</mixed-citation></citation-alternatives></ref><ref id="cit96"><label>96</label><citation-alternatives><mixed-citation xml:lang="ru">Chen J., Li H., Han X., Wei X. Transmission and accumulation of nano-TiO2 in a 2-step food chain (Scenedesmus obliquus to Daphnia magna) // Bull. Environ. Contam. Toxicol. 2015. Vol. 95. N 2. P. 145–149.</mixed-citation><mixed-citation xml:lang="en">Chen J., Li H., Han X., Wei X. Transmission and accumulation of nano-TiO2 in a 2-step food chain (Scenedesmus obliquus to Daphnia magna) // Bull. Environ. Contam. Toxicol. 2015. Vol. 95. N 2. P. 145–149.</mixed-citation></citation-alternatives></ref><ref id="cit97"><label>97</label><citation-alternatives><mixed-citation xml:lang="ru">Mariano S., Panzarini E., Inverno M.D., Voulvoulis N., Dini L. Toxicity, Bioaccumulation and biotransformation of glucose-capped silver nanoparticles in green microalgae Chlorella vulgaris // Nanomaterials. 2020. Vol. 10. N 7: 1377.</mixed-citation><mixed-citation xml:lang="en">Mariano S., Panzarini E., Inverno M.D., Voulvoulis N., Dini L. Toxicity, Bioaccumulation and biotransformation of glucose-capped silver nanoparticles in green microalgae Chlorella vulgaris // Nanomaterials. 2020. Vol. 10. N 7: 1377.</mixed-citation></citation-alternatives></ref><ref id="cit98"><label>98</label><citation-alternatives><mixed-citation xml:lang="ru">Kalman J., Paul K., Khan F., Stone V., Fernandes T. Characterisation of bioaccumulation dynamics of three differently coated silver nanoparticles and aqueous silver in a simple freshwater food chain // Environ. Chem. 2015. Vol. 12. N 6. P. 662–672.</mixed-citation><mixed-citation xml:lang="en">Kalman J., Paul K., Khan F., Stone V., Fernandes T. Characterisation of bioaccumulation dynamics of three differently coated silver nanoparticles and aqueous silver in a simple freshwater food chain // Environ. Chem. 2015. Vol. 12. N 6. P. 662–672.</mixed-citation></citation-alternatives></ref><ref id="cit99"><label>99</label><citation-alternatives><mixed-citation xml:lang="ru">Ribeiro F., Gallego-Urrea J.A., Goodhead R.M., Van Gestel C.A., Moger J., Soares A.M., Loureiro S. Uptake and elimination kinetics of silver nanoparticles and silver nitrate by Raphidocelis subcapitata: The influence of silver behaviour in solution // Nanotoxicol. 2015. Vol. 9. N 6. P. 686–695.</mixed-citation><mixed-citation xml:lang="en">Ribeiro F., Gallego-Urrea J.A., Goodhead R.M., Van Gestel C.A., Moger J., Soares A.M., Loureiro S. Uptake and elimination kinetics of silver nanoparticles and silver nitrate by Raphidocelis subcapitata: The influence of silver behaviour in solution // Nanotoxicol. 2015. Vol. 9. N 6. P. 686–695.</mixed-citation></citation-alternatives></ref><ref id="cit100"><label>100</label><citation-alternatives><mixed-citation xml:lang="ru">Chen F., Xiao Z., Yue L., Wang J., Feng Y., Zhu X., Wang Z., Xing B. Algae response to engineered nanoparticles: current understanding, mechanisms and implications // Environ. Sci. Nano. 2019. Vol. 6. N 4. P. 1026–1042.</mixed-citation><mixed-citation xml:lang="en">Chen F., Xiao Z., Yue L., Wang J., Feng Y., Zhu X., Wang Z., Xing B. Algae response to engineered nanoparticles: current understanding, mechanisms and implications // Environ. Sci. Nano. 2019. Vol. 6. N 4. P. 1026–1042.</mixed-citation></citation-alternatives></ref><ref id="cit101"><label>101</label><citation-alternatives><mixed-citation xml:lang="ru">Oh N., Park J.-H. Endocytosis and exocytosis of nanoparticles in mammalian cells // Int. J. Nanomed. 2014. Vol. 9. Suppl. 1. P. 51–63.</mixed-citation><mixed-citation xml:lang="en">Oh N., Park J.-H. Endocytosis and exocytosis of nanoparticles in mammalian cells // Int. J. Nanomed. 2014. Vol. 9. Suppl. 1. P. 51–63.</mixed-citation></citation-alternatives></ref><ref id="cit102"><label>102</label><citation-alternatives><mixed-citation xml:lang="ru">Wang S., Lv J., Ma J., Zhang, S. Cellular internalization and intracellular biotransformation of silver nanoparticles in Chlamydomonas reinhardtii // Nanotoxicol. 2016. Vol. 10. N 8. P. 1129–1135.</mixed-citation><mixed-citation xml:lang="en">Wang S., Lv J., Ma J., Zhang, S. Cellular internalization and intracellular biotransformation of silver nanoparticles in Chlamydomonas reinhardtii // Nanotoxicol. 2016. Vol. 10. N 8. P. 1129–1135.</mixed-citation></citation-alternatives></ref><ref id="cit103"><label>103</label><citation-alternatives><mixed-citation xml:lang="ru">Bakaraki Turan N., Sari H., Onkal Engin G., Bilgili M. Nanoparticles in the aquatic environment: Usage, properties, transformation and toxicity–a review // Process Saf. Environ. Prot. 2019. Vol. 130. P. 238–249.</mixed-citation><mixed-citation xml:lang="en">Bakaraki Turan N., Sari H., Onkal Engin G., Bilgili M. Nanoparticles in the aquatic environment: Usage, properties, transformation and toxicity–a review // Process Saf. Environ. Prot. 2019. Vol. 130. P. 238–249.</mixed-citation></citation-alternatives></ref><ref id="cit104"><label>104</label><citation-alternatives><mixed-citation xml:lang="ru">Mortimer M., Petersen E.J., Buchholz B.A., Orias E., Holden P.A. Bioaccumulation of multiwall carbon nanotubes in Tetrahymena thermophila by direct feeding or trophic transfer // Environ. Sci. Technol. 2016. Vol. 50. N 16. P. 8876–8885.</mixed-citation><mixed-citation xml:lang="en">Mortimer M., Petersen E.J., Buchholz B.A., Orias E., Holden P.A. Bioaccumulation of multiwall carbon nanotubes in Tetrahymena thermophila by direct feeding or trophic transfer // Environ. Sci. Technol. 2016. Vol. 50. N 16. P. 8876–8885.</mixed-citation></citation-alternatives></ref><ref id="cit105"><label>105</label><citation-alternatives><mixed-citation xml:lang="ru">Allen B.L., Kichambare P.D., Gou P., Vlasova I.I., Kapralov A.A., Konduru N., Kagan V.E., Star A. Biodegradation of single-walled carbon nanotubes through enzymatic catalysis // Nano Lett. 2008. Vol. 8. N 11. P. 3899–3903.</mixed-citation><mixed-citation xml:lang="en">Allen B.L., Kichambare P.D., Gou P., Vlasova I.I., Kapralov A.A., Konduru N., Kagan V.E., Star A. Biodegradation of single-walled carbon nanotubes through enzymatic catalysis // Nano Lett. 2008. Vol. 8. N 11. P. 3899–3903.</mixed-citation></citation-alternatives></ref></ref-list><fn-group><fn fn-type="conflict"><p>The authors declare that there are no conflicts of interest present.</p></fn></fn-group></back></article>
