Walker TR, Fequet L. Current trends of unsustainable plastic production and micro(nano)plastic pollution. TrAC Trends Anal Chem. 2023;160:116984.
Google Scholar
Microplastics in drinking water World Health Organization World Health Organization 2019 28/08/2019. Report No.: 978-92-4-151619-8.
Cai Z, Li M, Zhu Z, Wang X, Huang Y, Li T, et al. Biological degradation of plastics and microplastics: a recent perspective on associated mechanisms and influencing factors. Microorganisms. 2023;11:1661.
Aydın RB, Yozukmaz A, Şener İ, Temiz F, Giannetto D. Occurrence of microplastics in most consumed fruits and vegetables from Turkey and public risk assessment for consumers. Life. 2023;13:1686.
Google Scholar
Lim X. Microplastics are everywhere—but are they harmful. Nature. 2021;593:22–5.
Google Scholar
Susanti N, Mardiastuti A, Wardiatno Y. Microplastics and the impact of plastic on wildlife: a literature review. IOP Conf. Ser Earth Environ Sci. 2020;528:012013.
Wootton N, Ferreira M, Reis-Santos P, Gillanders BM. A comparison of microplastic in fish from Australia and Fiji. Front Mar Sci. 2021;8:690991.
Google Scholar
Hale RC, Seeley ME, La Guardia MJ, Mai L, Zeng EY. A global perspective on microplastics. J Geophys Res Oceans. 2020;125:e2018JC014719.
Google Scholar
Gasperi J, Wright SL, Dris R, Collard F, Mandin C, Guerrouache M, et al. Microplastics in air: are we breathing it in? Curr Opin Environ Sci Health. 2018;1:1–5.
Google Scholar
Yang L, Zhang Y, Kang S, Wang Z, Wu C. Microplastics in soil: a review on methods, occurrence, sources, and potential risk. Sci Total Environ. 2021;780:146546.
Google Scholar
Zhang D, Wu C, Liu Y, Li W, Li S, Peng L, et al. Microplastics are detected in human gallstones and have the ability to form large cholesterol-microplastic heteroaggregates. J Hazard Mater. 2024;467:133631.
Horvatits T, Tamminga M, Liu B, Sebode M, Carambia A, Fischer L, et al. Microplastics detected in cirrhotic liver tissue. EBioMedicine. 2022;82:104147.
Yang Y, Xie E, Du Z, Peng Z, Han Z, Li L, et al. Detection of various microplastics in patients undergoing cardiac surgery. Environ Sci Technol. 2023;57:10911–8.
Google Scholar
Braun T, Ehrlich L, Henrich W, Koeppel S, Lomako I, Schwabl P, et al. Detection of microplastic in human placenta and meconium in a clinical setting. Pharmaceutics. 2021;13:921.
Google Scholar
Huang S, Huang X, Bi R, Guo Q, Yu X, Zeng Q, et al. Detection and analysis of microplastics in human sputum. Environ Sci Technol. 2022;56:2476–86.
Google Scholar
Wang Y-L, Lee Y-H, Hsu Y-H, Chiu I-J, Huang CC-Y, Huang C-C, et al. The kidney-related effects of polystyrene microplastics on human kidney proximal tubular epithelial cells HK-2 and male C57BL/6 mice. Environ Health Perspect. 2021;129:057003.
Google Scholar
Wang W, Guan J, Feng Y, Nie L, Xu Y, Xu H, et al. Polystyrene microplastics induced nephrotoxicity associated with oxidative stress, inflammation, and endoplasmic reticulum stress in juvenile rats. Front Nutr. 2023;9:1059660.
Google Scholar
Microplastics European Commission [cited 2024 Feb 28]. Available from: https://environment.ec.europa.eu/topics/plastics/microplastics_en#:~:text=Related%20links-,Overview,hard%20to%20remove%20from%20nature
Critical Aspects of Sustainability (CAS): MIcro- and Nanoplastics (MNP) U.S. National Science Foundation U.S. National Science Foundation [cited 2024 Feb 28]. Available from: https://www.nsf.gov/pubs/2020/nsf20050/nsf20050.jsp#1
Plastics—Environmental Aspects—State of knowledge and methodologies. International Standards Organisation International Standards Organisation 2024 [cited 2024 Feb 28]. Available from: https://www.iso.org/obp/ui/#iso:std:iso:tr:21960:ed-1:v1:en:en%20
Schneider M, Stracke F, Hansen S, Schaefer UF. Nanoparticles and their interactions with the dermal barrier. Derm-Endocrinol. 2009;1:197–206.
Google Scholar
Yee MS-L, Hii L-W, Looi CK, Lim W-M, Wong S-F, Kok Y-Y, et al. Impact of microplastics and nanoplastics on human health. Nanomaterials. 2021;11:496.
Google Scholar
Wu P, Lin S, Cao G, Wu J, Jin H, Wang C, et al. Absorption, distribution, metabolism, excretion and toxicity of microplastics in the human body and health implications. J Hazard Mater. 2022;437:129361.
Google Scholar
Zhu L, Xie C, Chen L, Dai X, Zhou Y, Pan H, et al. Transport of microplastics in the body and interaction with biological barriers, and controlling of microplastics pollution. Ecotoxicol Environ Saf. 2023;255:114818.
Google Scholar
Prata JC, da Costa JP, Lopes I, Duarte AC, Rocha-Santos T. Environmental exposure to microplastics: an overview on possible human health effects. Sci Total Environ. 2020;702:134455.
Google Scholar
Gautam R, Jo J, Acharya M, Maharjan A, Lee D, Kc PB, et al. Evaluation of potential toxicity of polyethylene microplastics on human derived cell lines. Sci Total Environ. 2022;838:156089.
Google Scholar
Fleury J-B, Baulin VA. Microplastics destabilize lipid membranes by mechanical stretching. Proc Natl Acad Sci USA. 2021;118:e2104610118.
Google Scholar
Yang X, Chen H, Zheng Y, Qu S, Wang H, Yi F. Disease burden and long-term trends of urinary tract infections: a worldwide report. Front Public Health. 2022;10:888205.
Google Scholar
Vanholder R, Annemans L, Brown E, Gansevoort R, Gout-Zwart JJ, Lameire N, et al. Reducing the costs of chronic kidney disease while delivering quality health care: a call to action. Nat Rev Nephrol. 2017;13:393–409.
Google Scholar
The urinary tract and how it works National Institute of Diabetes and Digestive and Kidney Diseases [cited 2024]. Available from: https://www.niddk.nih.gov/health-information/urologic-diseases/urinary-tract-how-it-works#:~:text=The%20urinary%20tract%20is%20the,Kidneys
Arksey H, O’Malley L. Scoping studies: towards a methodological framework. Int J Soc Res Methodol. 2005;8:19–32.
Google Scholar
JBI Mevidence Synthesis 2024 Edition JBI; [cited 2024]. Available from: https://jbi-global-wiki.refined.site/space/MANUAL
Kung JY. Polyglot search translator. J Can Health Libraries Assoc. 2022;43:35.
Research Rabbit [05/03/2024]. Available from: https://www.researchrabbit.ai/
TERA Farmer [05/03/2023]. Available from:https://terafarmer.tera-tools.com/
Perplexity.ai. Available from: https://www.perplexity.ai/
EndNote X9 [05/03/2024]. Available from: https://endnote.com/
Systematic Review Accelerator. Available from: https://sr-accelerator.com/#/
Covidence [05/03/2024]. Available from: https://Covidence.org
Landis JR, Koch GG. The measurement of observer agreement for categorical data. Biometrics. 1977;33:159–74.
Song X, Chen T, Chen Z, Du L, Qiu X, Zhang Y, et al. Micro(nano)plastics in human urine: a surprising contrast between Chongqing’s urban and rural regions. Sci Total Environ. 2024;917:170455.
La Porta E WCN23-0982 The burden of plastic in human health: presence of microplastics in kidney and their prospective nephrotoxicity. Kidney Int Rep. 2023;8:S254.
Zhu Z, Liao R, Shi Y, Li J, Cao J, Liao B, et al. Polystyrene nanoplastics induce apoptosis of human kidney proximal tubular epithelial cells via oxidative stress and MAPK signaling pathways. Environ Sci Pollut Res Int. 2023;30:110579–89.
Chen YC, Chen KF, Lin KA, Chen JK, Jiang XY, Lin CH The nephrotoxic potential of polystyrene microplastics at realistic environmental concentrations. J Hazard Mater. 2022;427:127871.
Li Y, Li Y, Li J, Song Z, Zhang C, Guan B. Toxicity of polystyrene nanoplastics to human embryonic kidney cells and human normal liver cells: Effect of particle size and Pb(2+) enrichment. Chemosphere. 2023;328:138545.
Google Scholar
Xiao M, Li X, Zhang X, Duan X, Lin H, Liu S, et al. Assessment of cancer-related signaling pathways in responses to polystyrene nanoplastics via a kidney-testis microfluidic platform (KTP). Sci Total Environ. 2023;857:159306.
Zhang G, Cao G, Luo R-H, Song Q, Zeng Y, Liu K, et al. Microplastics interact with SARS-CoV-2 and facilitate host cell infection. Environ Sci Nano. 2022;9:2653–64.
Google Scholar
WHO calls for more research into microplastics and a crackdown on plastic pollution: World Health Organisation [cited 2024 Mar 18]. Available from: https://www.who.int/news/item/22-08-2019-who-calls-for-more-research-into-microplastics-and-a-crackdown-on-plastic-pollution
Beltrame A, Rumeo N, La Porta E, Verzola D, Angeletti A, Lugani F, et al. PRO-inflammatory effects of bisphenol A and polyethylene microplastics on human renal tubular cells. Nephrol Dial Transplant. 2023;38:gfad063c_5502.
Cervello C, Bruschi M, Candiano G, Kajana X, Garbarino A, Rumeo N, et al. Microplastics: first extended proteomic analysis on kidney tubular cells. Nephrol Dial Transplant. 2023;38:gfad063a_6225.
Yarbakht M, Sarau G, Kling L, Müller-Deile J, Kotb A, Christiansen S, et al. Analyzing the effect of microplastic particles on human podocytes. Nephrology Dialysis Transplantation. 2021;36:gfab079.0011.
Goodman KE, Hua T, Sang QA. Effects of polystyrene microplastics on human kidney and liver cell morphology, cellular proliferation, and metabolism. ACS Omega. 2022;7:34136–53.
Morrison M, Trevisan R, Ranasinghe P, Merrill GB, Santos J, Hong A, et al. A growing crisis for One Health: impacts of plastic pollution across layers of biological function. Front Mar Sci. 2022;9:980705.
Google Scholar
Exacoustos O, Artini C, Massardo S, Caboni C, Pastorino A, Chiarenza S, et al. First identification and characterization of microplastics in human kidney and urine. Nephrol Dial Transplant. 2023;38:gfad063a_6111.
Massardo S, Verzola D, Alberti S, Caboni C, Santostefano M, Eugenio Verrina E, et al. MicroRaman spectroscopy detects the presence of microplastics in human urine and kidney tissue. Environ Int. 2024;184:108444.
Florence AT, Hillery AM, Hussain N, Jani PU. Factors affecting the oral uptake and translocation of polystyrene nanoparticles: histological and analytical evidence. J Drug Target. 1995;3:65–70.
Google Scholar
Liu L, Xu K, Zhang B, Ye Y, Zhang Q, Jiang W. Cellular internalization and release of polystyrene microplastics and nanoplastics. Sci Total Environ. 2021;779:146523.
Google Scholar
Banerjee A, Shelver WL. Micro- and nanoplastic induced cellular toxicity in mammals: a review. Sci Total Environ. 2021;755:142518.
Google Scholar
Deng Y, Zhang Y, Lemos B, Ren H. Tissue accumulation of microplastics in mice and biomarker responses suggest widespread health risks of exposure. Sci Rep. 2017;7:46687.
Google Scholar
Çobanoğlu H, Belivermiş M, Sıkdokur E, Kılıç Ö, Çayır A. Genotoxic and cytotoxic effects of polyethylene microplastics on human peripheral blood lymphocytes. Chemosphere. 2021;272:129805.
Google Scholar
Zhang Y, Wang S, Olga V, Xue Y, Lv S, Diao X, et al. The potential effects of microplastic pollution on human digestive tract cells. Chemosphere. 2022;291:132714.
Google Scholar
Goodman KE, Hare JT, Khamis ZI, Hua T, Sang Q-XA. Exposure of human lung cells to polystyrene microplastics significantly retards cell proliferation and triggers morphological changes. Chem Res Toxicol. 2021;34:1069–81.
Google Scholar
Barceló D, Picó Y, Alfarhan AH. Microplastics: detection in human samples, cell line studies, and health impacts. Environ Toxicol Pharmacol. 2023;101:104204.
Schirinzi GF, Pérez-Pomeda I, Sanchís J, Rossini C, Farré M, Barceló D. Cytotoxic effects of commonly used nanomaterials and microplastics on cerebral and epithelial human cells. Environ Res. 2017;159:579–87.
Google Scholar
Choi YJ, Park JW, Lim Y, Seo S, Hwang DY. In vivo impact assessment of orally administered polystyrene nanoplastics: biodistribution, toxicity, and inflammatory response in mice. Nanotoxicology. 2021;15:1180–98.
Google Scholar
Dailianis S, Rouni M, Ainali NM, Vlastos D, Kyzas GZ, Lambropoulou DA, et al. New insights into the size-independent bioactive potential of pristine and UV-B aged polyethylene microplastics. Sci Total Environ. 2024;918:170616.
Brown A, Kumar S, Tchounwou PB. Cisplatin-based chemotherapy of human cancers. J Cancer Sci Ther. 2019;11:97.
Google Scholar
Hu Z, Yu J, Gui G, Chen Y, Huang R, Jiang L, et al. Cisplatin for testicular germ cell tumors: a rapid review. J Evid Based Med. 2016;9:144–51.
Google Scholar
Fennell D, Summers Y, Cadranel J, Benepal T, Christoph D, Lal R, et al. Cisplatin in the modern era: the backbone of first-line chemotherapy for non-small cell lung cancer. Cancer Treat Rev. 2016;44:42–50.
Google Scholar
Song M, Cui M, Liu K. Therapeutic strategies to overcome cisplatin resistance in ovarian cancer. Eur J Med Chem. 2022;232:114205.
Google Scholar
Schaeffers AW, Devriese LA, van Gils CH, Dankbaar JW, Voortman J, de Boer JP, et al. Low dose cisplatin weekly versus high dose cisplatin every three weeks in primary chemoradiotherapy in head and neck cancer patients with low skeletal muscle mass: the CISLOW-study protocol. Plos one. 2023;18:e0294147.
Google Scholar
Zhou Y-D, Hou J-G, Yang G, Jiang S, Chen C, Wang Z, et al. Icariin ameliorates cisplatin-induced cytotoxicity in human embryonic kidney 293 cells by suppressing ROS-mediated PI3K/Akt pathway. Biomed Pharmacother 2019;109:2309–17.
Google Scholar
Passos RS, Davenport A, Busquets R, Selden C, Silva LB, Baptista JS, et al. Microplastics and nanoplastics in haemodialysis waters: Emerging threats to be in our radar. Environ Toxicol Pharmacol. 2023;102:104253.
Google Scholar
Liang Y, Liu D, Zhan J, Liu X, Li P, Ma X, et al. Polystyrene microplastics induce kidney injury via gut barrier dysfunction and C5a/C5aR pathway activation. Environ Pollut. 2024;342:122909.
Google Scholar
Xu W, Ye S, Liu W, Guo H, Zhang L, Wei S, et al. Single-cell RNA-seq analysis decodes the kidney microenvironment induced by polystyrene microplastics in mice receiving a high-fat diet. J Nanobiotechnol. 2024;22:13.
Google Scholar
Uchino S, Bellomo R, Goldsmith D. The meaning of the blood urea nitrogen/creatinine ratio in acute kidney injury. Clin Kidney J. 2012;5:187–91.
Google Scholar
Marfella R, Prattichizzo F, Sardu C, Fulgenzi G, Graciotti L, Spadoni T, et al. Microplastics and nanoplastics in atheromas and cardiovascular events. N. Engl J Med. 2024;390:900–10.
Google Scholar
Gimbrone MA Jr, García-Cardeña G. Endothelial cell dysfunction and the pathobiology of atherosclerosis. Circ Res. 2016;118:620–36.
Google Scholar
Lee HS, Amarakoon D, Wei CI, Choi KY, Smolensky D, Lee SH. Adverse effect of polystyrene microplastics (PS-MPs) on tube formation and viability of human umbilical vein endothelial cells. Food Chem Toxicol. 2021;154:112356.
Google Scholar
Lu YY, Li H, Ren H, Zhang X, Huang F, Zhang D, et al. Size-dependent effects of polystyrene nanoplastics on autophagy response in human umbilical vein endothelial cells. J Hazard Mater. 2022;421:126770.
Google Scholar
Birder LA. Is there a role for oxidative stress and mitochondrial dysfunction in age-associated bladder disorders? Tzu Chi Med J. 2020;32:223–6.
Google Scholar
Birder LA, de Groat WC. Mechanisms of disease: involvement of the urothelium in bladder dysfunction. Nat Clin Pr Urol. 2007;4:46–54.
Google Scholar
Richards CJ, Burgers TCQ, Vlijm R, Roos WH, Åberg C. Rapid Internalization of Nanoparticles by Human Cells at the Single Particle Level. ACS Nano. 2023;17:16517–16529.
Google Scholar
Firdessa R, Oelschlaeger TA, Moll H. Identification of multiple cellular uptake pathways of polystyrene nanoparticles and factors affecting the uptake: relevance for drug delivery systems. Eur J Cell Biol. 2014;93:323–37.
Google Scholar
Fu Y, Fan M, Xu L, Wang H, Hu Q, Jin Y. Amino-functionalized polystyrene nano-plastics induce mitochondria damage in human umbilical vein endothelial cells. Toxics. 2022;10:215.
Google Scholar
Wang S, Han Q, Wei Z, Wang Y, Xie J, Chen M. Polystyrene microplastics affect learning and memory in mice by inducing oxidative stress and decreasing the level of acetylcholine. Food Chem Toxicol. 2022;162:112904.
Google Scholar
Nausch B, Heppner TJ, Nelson MT. Nerve-released acetylcholine contracts urinary bladder smooth muscle by inducing action potentials independently of IP3-mediated calcium release. Am J Physiol Regul Integr Comp Physiol. 2010;299:R878–88.
Google Scholar
Cavanaugh KJ, Cohen TS, Margulies SS. Stretch increases alveolar epithelial permeability to uncharged micromolecules. Am J Physiol Cell Physiol. 2006;290:C1179–88.
Google Scholar
Yang W, Jannatun N, Zeng Y, Liu T, Zhang G, Chen C, et al. Impacts of microplastics on immunity. Front Toxicol. 2022;4:956885.
Google Scholar
Brouwer H, Porbahaie M, Boeren S, Busch M, Bouwmeester H. The in vitro gastrointestinal digestion-associated protein corona of polystyrene nano-and microplastics increases their uptake by human THP-1-derived macrophages. Part Fibre Toxicol. 2024;21:4.
Google Scholar
Wang C, Wu W, Pang Z, Liu J, Qiu J, Luan T, et al. Polystyrene microplastics significantly facilitate influenza A virus infection of host cells. J Hazard Mater. 2023;446:130617.
Google Scholar
Sooriyakumar P, Bolan N, Kumar M, Singh L, Yu Y, Li Y, et al. Biofilm formation and its implications on the properties and fate of microplastics in aquatic environments: a review. J Hazard Mater Adv. 2022;6:100077.
Google Scholar
Hossain MR, Jiang M, Wei Q, Leff LG. Microplastic surface properties affect bacterial colonization in freshwater. J Basic Microbiol. 2019;59:54–61.
Google Scholar
Zhao Q, Zhu L, Weng J, Jin Z, Cao Y, Jiang H, et al. Detection and characterization of microplastics in the human testis and semen. Sci Total Environ. 2023;877:162713.
Google Scholar
Montano L, Giorgini E, Notarstefano V, Notari T, Ricciardi M, Piscopo M, et al. Raman Microspectroscopy evidence of microplastics in human semen. Sci Total Environ. 2023;901:165922.
Google Scholar
Geng Y, Liu Z, Hu R, Huang Y, Li F, Ma W, et al. Toxicity of microplastics and nanoplastics: invisible killers of female fertility and offspring health. Front Physiol. 2023;14:1254886.
Google Scholar
Zhang Y, Lu J, Wu J, Wang J, Luo Y. Potential risks of microplastics combined with superbugs: enrichment of antibiotic resistant bacteria on the surface of microplastics in mariculture system. Ecotoxicol Environ Saf. 2020;187:109852.
Google Scholar
Mariano S, Tacconi S, Fidaleo M, Rossi M, Dini L. Micro and nanoplastics identification: classic methods and innovative detection techniques. Front Toxicol. 2021;3:636640.
Google Scholar
Barnett AN, Arshad M, Nabi D. A snapshot into the invasion of plastics in human urine. chemRxiv:chemrxiv-2023-rp3vd [Preprint]. 2023 [cited 2023 Jul 25]: [29 p.]. Available from: https://doi.org/10.26434/chemrxiv-2023-rp3vd.
Pironti C, Notarstefano V, Ricciardi M, Motta O, Giorgini E, Montano L. First evidence of microplastics in human urine, a preliminary study of intake in the human body. Toxics. 2022;11:40.
Massardo S, La Porta E, Verrina EE, Lugani F, Alberti S, Caboni C, et al. First detection of microplastics fragments in human urine and kidney tissues: TH-PO1020. J Am Soc Nephrol. 2023;34:376–7.
Krafft C, Popp J, Bronsert P, Miernik A. Raman spectroscopic imaging of human bladder resectates towards intraoperative cancer assessment. Cancers. 2023;15:2162.
link
