| [1] |
Sun Y, Xie S, Zang J, Wu M, Tao J, et al. 2024. Terrestrial plastisphere as unique niches for fungal communities. |
| [2] |
Li Y, Yan Q, Zou C, Li X, Wang J, et al. 2025. Microplastic-induced alterations in soil aggregate-associated carbon stabilization pathways: Evidence from δ13C signature analysis. |
| [3] |
Nizzetto L, Bussi G, Futter MN, Butterfield D, Whitehead PG. 2016. A theoretical assessment of microplastic transport in river catchments and their retention by soils and river sediments. |
| [4] |
Rillig MC, Kim SW, Zhu YG. 2024. The soil plastisphere. |
| [5] |
Klein S, Worch E, Knepper TP. 2015. Occurrence and spatial distribution of microplastics in river shore sediments of the Rhine-Main area in Germany. |
| [6] |
Li Y, Zhang J, Xu L, Li R, Zhang R, et al. 2025. Leaf absorption contributes to accumulation of microplastics in plants. |
| [7] |
Piotrowska-Długosz A, Kobierski M, Długosz J. 2021. Enzymatic activity and physicochemical properties of soil profiles of luvisols. |
| [8] |
Rillig MC, Ingraffia R, de Souza Machado AA. 2017. Microplastic incorporation into soil in agroecosystems. |
| [9] |
Dong W, Zhang Z, Chen B, Sun D, Liu E. 2024. Plastic mulch stimulates denitrification by interaction between soil environment and denitrifying bacteria. |
| [10] |
Qian H, Zhang M, Liu G, Lu T, Qu Q, et al. 2018. Effects of soil residual plastic film on soil microbial community structure and fertility. |
| [11] |
Lu XM, Lu LB, Huang XC, Liu XP. 2025. Co-transport of polyethylene microplastics and antibiotic resistance genes in soil: influencing factors, mechanisms, and control strategies. |
| [12] |
Chu WC, Wu YX, Liu FF. 2025. Bio-based microplastics as vectors of resistance genes under combined pressure of antibiotics and heavy metals in marine environment. |
| [13] |
Bandopadhyay S, Martin-Closas L, Pelacho AM, DeBruyn JM. 2018. Biodegradable plastic mulch films: Impacts on soil microbial communities and ecosystem functions. |
| [14] |
Sintim HY, Flury M. 2017. Is biodegradable plastic mulch the solution to agriculture's plastic problem? |
| [15] |
Vaccari F, Forestieri B, Papa G, Bandini F, Huerta-Lwanga E, et al. 2022. Effects of micro and nanoplastics on soil fauna gut microbiome: an emerging ecological risk for soil health. |
| [16] |
Zhang S, Cui L, Zhao Y, Xie H, Song M, et al. 2024. The critical role of microplastics in the fate and transformation of sulfamethoxazole and antibiotic resistance genes within vertical subsurface-flow constructed wetlands. |
| [17] |
Xu G, Yu Y. 2021. Polystyrene microplastics impact the occurrence of antibiotic resistance genes in earthworms by size-dependent toxic effects. |
| [18] |
Lozano YM, Aguilar-Trigueros CA, Onandia G, Maaß S, Zhao T, et al. 2021. Effects of microplastics and drought on soil ecosystem functions and multifunctionality. |
| [19] |
Yu Z, Wang J, Wang S, Jiang Y, Liu J, et al. 2025. Mechanisms of polyethylene microplastics on microbial community assembly and carbon-nitrogen transformation potentials in soils with different textures. |
| [20] |
Jia J, de Goede R, Li Y, Zhang J, Wang G, et al. 2025. Unlocking soil health: are microbial functional genes effective indicators? |
| [21] |
Wang X, Xing Y, Lv M, Zhang T, Ya H, et al. 2022. Recent advances on the effects of microplastics on elements cycling in the environment. |
| [22] |
Zeb A, Liu W, Meng L, Lian J, Wang Q, et al. 2022. Effects of polyester microfibers (PMFs) and cadmium on lettuce (Lactuca sativa) and the rhizospheric microbial communities: a study involving physio-biochemical properties and metabolomic profiles. |
| [23] |
Dai Z, Zhang N, Ma X, Wang F, Peng J, et al. 2024. Microplastics strengthen nitrogen retention by intensifying nitrogen limitation in mangrove ecosystem sediments. |
| [24] |
Huang W and Xia X. 2024. Element cycling with micro(nano)plastics. |
| [25] |
Zhang X, Li Y, Lei J, Li Z, Tan Q, et al. 2023. Time-dependent effects of microplastics on soil bacteriome. |
| [26] |
Meng F, Yang X, Riksen M, Geissen V. 2022. Effect of different polymers of microplastics on soil organic carbon and nitrogen - a mesocosm experiment. |
| [27] |
Ren X, Tang J, Liu X, Liu Q. 2020. Effects of microplastics on greenhouse gas emissions and the microbial community in fertilized soil. |
| [28] |
Yao S, Li X, Wang T, Jiang X, Song Y, et al. 2023. Soil metabolome impacts the formation of the eco-corona and adsorption processes on microplastic surfaces. |
| [29] |
Romera-Castillo C, Pinto M, Langer TM, Alvarez-Salgado XA, Herndl GJ. 2018. Dissolved organic carbon leaching from plastics stimulates microbial activity in the ocean. |
| [30] |
Lin J, Chen B, Dong H, Zhang W, Kumar A, et al. 2025. Effects of soil moisture fluctuation and microplastics types on soil organic matter decomposition and carbon dynamics. |
| [31] |
Wang J, Tanentzap AJ, Sun Y, Shi J, Tao J, et al. 2025. Microplastic-derived dissolved organic matter regulates soil carbon respiration via microbial ecophysiological controls. |
| [32] |
Gao B, Yao H, Li Y, Zhu Y. 2021. Microplastic addition alters the microbial community structure and stimulates soil carbon dioxide emissions in vegetable-growing soil. |
| [33] |
Su P, Bu N, Liu X, Sun Q, Wang J, et al. 2024. Stimulated soil CO2 and CH4 emissions by microplastics: a hierarchical perspective. |
| [34] |
Han L, Zhang B, Li D, Chen L, Feng Y, et al. 2022. Co-occurrence of microplastics and hydrochar stimulated the methane emission but suppressed nitrous oxide emission from a rice paddy soil. |
| [35] |
Wang L, Lu X, Yao Y, Liu X, Ge T, et al. 2025. Mechanisms associated with lower methane emissions from paddy soil by aged polylactic acid microplastics. |
| [36] |
Rillig MC. 2018. Microplastic disguising as soil carbon storage. |
| [37] |
Lan G, Huang X, Li T, Huang Y, Liao Y, et al. 2025. Effect of microplastics on carbon, nitrogen and phosphorus cycle in farmland soil: a meta-analysis. |
| [38] |
Li X, Jiang X, Song Y, Chang SX. 2021. Coexistence of polyethylene microplastics and biochar increases ammonium sorption in an aqueous solution. |
| [39] |
Fei Y, Huang S, Zhang H, Tong Y, Wen D, et al. 2020. Response of soil enzyme activities and bacterial communities to the accumulation of microplastics in an acid cropped soil. |
| [40] |
Zhu F, Yan Y, Doyle E, Zhu C, Jin X, et al. 2022. Microplastics altered soil microbiome and nitrogen cycling: the role of phthalate plasticizer. |
| [41] |
Huang S, Guo T, Feng Z, Li B, Cai Y, et al. 2023. Polyethylene and polyvinyl chloride microplastics promote soil nitrification and alter the composition of key nitrogen functional bacterial groups. |
| [42] |
Seeley ME, Song B, Passie R, Hale RC. 2020. Microplastics affect sedimentary microbial communities and nitrogen cycling. |
| [43] |
Su P, Gao C, Zhang X, Zhang D, Liu X, et al. 2023. Microplastics stimulated nitrous oxide emissions primarily through denitrification: A meta-analysis. |
| [44] |
Pold G, Saghaï A, Jones CM, Hallin S. 2025. Denitrification is a community trait with partial pathways dominating across microbial genomes and biomes. |
| [45] |
Sun X, Zhang X, Xia Y, Tao R, Zhang M, et al. 2022. Simulation of the effects of microplastics on the microbial community structure and nitrogen cycle of paddy soil. |
| [46] |
Rong L, Zhao L, Zhao L, Cheng Z, Yao Y, et al. 2021. LDPE microplastics affect soil microbial communities and nitrogen cycling. |
| [47] |
Shen M, Song B, Zhou C, Almatrafi E, Hu T, et al. 2022. Recent advances in impacts of microplastics on nitrogen cycling in the environment: A review. |
| [48] |
Kuypers MMM, Marchant HK, and Kartal B. 2018. The microbial nitrogen-cycling network. |
| [49] |
Throbäck IN, Enwall K, Jarvis Å, and Hallin S. 2004. Reassessing PCR primers targeting nirS, nirK and nosZ genes for community surveys of denitrifying bacteria with DGGE. |
| [50] |
Liu N, Liao P, Zhang J, Zhou Y, Luo L, et al. 2020. Characteristics of denitrification genes and relevant enzyme activities in heavy-metal polluted soils remediated by biochar and compost. |
| [51] |
Fang C, Yang Y, Zhang S, He Y, Pan S, et al. 2024. Unveiling the impact of microplastics with distinct polymer types and concentrations on tidal sediment microbiome and nitrogen cycling. |
| [52] |
Zhu YG, Johnson TA, Su JQ, Qiao M, Guo GX, et al. 2013. Diverse and abundant antibiotic resistance genes in Chinese swine farms. |
| [53] |
Niu L, Liu W, Juhasz A, Chen J, Ma L. 2022. Emerging contaminants antibiotic resistance genes and microplastics in the environment: Introduction to 21 review articles published in CREST during 2018–2022. |
| [54] |
Zhao Y, Li L, Huang Y, Xu X, Liu Z, et al. 2025. Global soil antibiotic resistance genes are associated with increasing risk and connectivity to human resistome. |
| [55] |
Wang C, Zhao J, Xing B. 2021. Environmental source, fate, and toxicity of microplastics. |
| [56] |
Sun M, Ye M, Jiao W, Feng Y, Yu P, et al. 2018. Changes in tetracycline partitioning and bacteria/phage-comediated ARGs in microplastic-contaminated greenhouse soil facilitated by sophorolipid. |
| [57] |
Zhang QQ, Ma ZR, Cai YY, Li HR, Ying GG. 2021. Agricultural plastic pollution in China: Generation of plastic debris and emission of phthalic acid esters from agricultural films. |
| [58] |
Song R, Sun Y, Li X, Ding C, Huang Y, et al. 2022. Biodegradable microplastics induced the dissemination of antibiotic resistance genes and virulence factors in soil: a metagenomic perspective. |
| [59] |
Wang Y, Wang X, Li Y, Liu Y, Sun Y, et al. 2021. Effects of coexistence of tetracycline, copper and microplastics on the fate of antibiotic resistance genes in manured soil. |
| [60] |
Li K, Xu L, Bai X, Zhang G, Zhang M, et al. 2024. Potential environmental risks of field bio/non-degradable microplastic from mulching residues in farmland: Evidence from metagenomic analysis of plastisphere. |
| [61] |
Rochman CM. 2018. Microplastics research—from sink to source. |
| [62] |
Sun M, Chao H, Zheng X, Deng S, Ye M, et al. 2020. Ecological role of earthworm intestinal bacteria in terrestrial environments: a review. |
| [63] |
Zhu D, Ma J, Li G, Rillig MC, Zhu YG. 2022. Soil plastispheres as hotspots of antibiotic resistance genes and potential pathogens. |
| [64] |
Yang Y, Li T, Liu P, Li H, Hu F. 2022. The formation of specific bacterial communities contributes to the enrichment of antibiotic resistance genes in the soil plastisphere. |
| [65] |
Sun Y, Cao N, Duan C, Wang Q, Ding C, et al. 2021. Selection of antibiotic resistance genes on biodegradable and non-biodegradable microplastics. |
| [66] |
Wang J, Peng C, Dai Y, Li Y, Jiao S, et al. 2022. Slower antibiotics degradation and higher resistance genes enrichment in plastisphere. |
| [67] |
Xia R, Yin X, Balcazar JL, Huang D, Liao J, et al. 2025. Bacterium-phage symbiosis facilitates the enrichment of bacterial pathogens and antibiotic-resistant bacteria in the plastisphere. |
| [68] |
Luo G, Fan L, Liang B, Guo J, Gao SH. 2025. Determining antimicrobial resistance in the plastisphere: lower risks of nonbiodegradable vs higher risks of biodegradable microplastics. |
| [69] |
Hao C, Chen TW, Wu D. 2022. A review on gut microbial diversity of soil animals. |
| [70] |
Wang D, Ren J, Tan Z, You J. 2020. Gut microbial profiles in nereis succinea and their contribution to the degradation of organic pollutants. |
| [71] |
Wu J, Bai Y, Lu B, Zhao W, Forstner C, et al. 2020. Silver sulfide nanoparticles reduce nitrous oxide emissions by inhibiting denitrification in the earthworm gut. |
| [72] |
Zhang W, Fu S. 2021. Special issue on the biodiversity and ecological functions of soil fauna. |
| [73] |
Gomes SI, Scott-Fordsmand JJ, and Amorim MJ. 2021. Alternative test methods for (nano) materials hazards assessment: Challenges and recommendations for regulatory preparedness. |
| [74] |
Ding J, Lv M, Wang Q, Zhu D, Chen QL, et al. 2023. Brand-specific toxicity of tire tread particles helps identify the determinants of toxicity. |
| [75] |
Wang YF, Qiao M, Zhu D, and Zhu YG. 2020. Antibiotic resistance in the collembolan gut microbiome accelerated by the nonantibiotic drug carbamazepine. |
| [76] |
Zhu D, Zheng F, Chen QL, Yang XR, Christie P, et al. 2018. Exposure of a soil collembolan to Ag nanoparticles and AgNO3 disturbs its associated microbiota and lowers the incidence of antibiotic resistance genes in the gut. |
| [77] |
Huerta Lwanga E, Gertsen H, Gooren H, Peters P, Salánki T, et al. 2016. Microplastics in the terrestrial ecosystem: implications for Lumbricus terrestris (Oligochaeta, Lumbricidae). |
| [78] |
Fueser H, Mueller MT, Weiss L, Höss S, Traunspurger W. 2019. Ingestion of microplastics by nematodes depends on feeding strategy and buccal cavity size. |
| [79] |
Panebianco A, Nalbone L, Giarratana F, Ziino G. 2019. First discoveries of microplastics in terrestrial snails. |
| [80] |
Zhang H, Zhang X, Sun H, Ling H, Xie R, et al. 2025. Polyvinyl chloride microplastic triggers bidirectional transmission of antibiotic resistance genes in soil-earthworm systems. |
| [81] |
Yu Y, Chen H, Hua X, Dang Y, Han Y, et al. 2020. Polystyrene microplastics (PS-MPs) toxicity induced oxidative stress and intestinal injury in nematode Caenorhabditis elegans. |
| [82] |
Zhu BK, Fang YM, Zhu D, Christie P, Ke X, et al. 2018. Exposure to nanoplastics disturbs the gut microbiome in the soil oligochaete Enchytraeus crypticus. |
| [83] |
Zhu D, Chen QL, An XL, Yang XR, Christie P, et al. 2018. Exposure of soil collembolans to microplastics perturbs their gut microbiota and alters their isotopic composition. |
| [84] |
Ding J, Zhu D, Wang HT, Lassen SB, Chen QL, et al. 2020. Dysbiosis in the gut microbiota of soil fauna explains the toxicity of tire tread particles. |
| [85] |
Li W, Huang T, Liu C, Wushouer H, Yang X, et al. 2025. Changing climate and socioeconomic factors contribute to global antimicrobial resistance. |
| [86] |
Wang H-T, Ma L, Zhu D, Ding J, Li G, et al. 2022. Responses of earthworm Metaphire vulgaris gut microbiota to arsenic and nanoplastics contamination. |
| [87] |
Zhang Y, Zhang X, Li X, He D. 2022. Interaction of microplastics and soil animals in agricultural ecosystems. |
| [88] |
Yu M, Van Der Ploeg M, Lwanga EH, Yang X, Zhang S, et al. 2019. Leaching of microplastics by preferential flow in earthworm (Lumbricus terrestris) burrows. |
| [89] |
Carlin J, Craig C, Little S, Donnelly M, Fox D, et al. 2020. Microplastic accumulation in the gastrointestinal tracts in birds of prey in central Florida, USA. |
| [90] |
Kwak JI, An YJ. 2021. Microplastic digestion generates fragmented nanoplastics in soils and damages earthworm spermatogenesis and coelomocyte viability. |
| [91] |
Brandon AM, Gao SH, Tian R, Ning D, Yang SS, et al. 2018. Biodegradation of polyethylene and plastic mixtures in mealworms (larvae of Tenebrio molitor) and effects on the gut microbiome. |
| [92] |
Huerta Lwanga E, Thapa B, Yang X, Gertsen H, Salánki T, et al. 2018. Decay of low-density polyethylene by bacteria extracted from earthworm's guts: A potential for soil restoration. |
| [93] |
Zhang Y, Li X, Xiao M, Feng Z, Yu Y, et al. 2022. Effects of microplastics on soil carbon dioxide emissions and the microbial functional genes involved in organic carbon decomposition in agricultural soil. |
| [94] |
Helmberger MS, Tiemann LK, Grieshop MJ. 2020. Towards an ecology of soil microplastics. |
| [95] |
Chang M, Sun P, Zhang L, Liu Y, Chen L, et al. 2024. Changes in characteristics and risk of freshwater microplastics under global warming. |
| [96] |
Krehl A, Schöllkopf U, Májeková M, Tielbörger K, Tomiolo S. 2022. Effects of plastic fragments on plant performance are mediated by soil properties and drought. |
| [97] |
Xiang Q, Zhu D, Chen QL, O'Connor P, Yang XR, et al. 2019. Adsorbed sulfamethoxazole exacerbates the effects of polystyrene (~2 μm) on gut microbiota and the antibiotic resistome of a soil collembolan. |
| [98] |
Li HQ, Shen YJ, Wang WL, Wang HT, Li H, et al. 2021. Soil pH has a stronger effect than arsenic content on shaping plastisphere bacterial communities in soil. |
| [99] |
Xue K, M. Yuan M, J. Shi Z, Qin Y, Deng Y, et al. 2016. Tundra soil carbon is vulnerable to rapid microbial decomposition under climate warming. |
| [100] |
Guo X, Gao Q, Yuan M, Wang G, Zhou X, et al. 2020. Gene-informed decomposition model predicts lower soil carbon loss due to persistent microbial adaptation to warming. |
| [101] |
Wang J, Liu H, Zeb A, Wang Q, Mo F, et al. 2025. Drought limits microplastic effects on soil greenhouse gas emissions by reducing microbial diversity. |
| [102] |
Li S, Zhong L, Zhang B, Fan C, Gao Y, et al. 2024. Microplastics induced the differential responses of microbial-driven soil carbon and nitrogen cycles under warming. |
| [103] |
De Vries FT, Griffiths RI, Bailey M, Craig H, Girlanda M, et al. 2018. Soil bacterial networks are less stable under drought than fungal networks. |
| [104] |
Burnham JP. 2021. Climate change and antibiotic resistance: a deadly combination. |
| [105] |
Nnadi NE, Carter DA. 2021. Climate change and the emergence of fungal pathogens. |
| [106] |
Miner KR, D’Andrilli J, Mackelprang R, Edwards A, Malaska MJ, et al. 2021. Emergent biogeochemical risks from Arctic permafrost degradation. |
| [107] |
Lear G, Kingsbury J, Franchini S, Gambarini V, Maday S, et al. 2021. Plastics and the microbiome: impacts and solutions. |
| [108] |
Zarean M, Dave SH, Brar SK, Kwong RWM. 2025. Environmental drivers of antibiotic resistance: synergistic effects of climate change, co-pollutants, and microplastics. |
| [109] |
Yang G, Ryo M, Roy J, Lammel DR, Ballhausen MB, et al. 2022. Multiple anthropogenic pressures eliminate the effects of soil microbial diversity on ecosystem functions in experimental microcosms. |
| [110] |
Chen JY, Niu SH, Li HY, Liao XD, Xing SC. 2024. Multiomics analysis of the effects of manure-borne doxycycline combined with oversized fiber microplastics on pak choi growth and the risk of antibiotic resistance gene transmission. |
| [111] |
Miao LZ, Guo S, Wu J, Adyel TM, Liu ZL, et al. 2022. Polystyrene nanoplastics change the functional traits of biofilm communities in freshwater environment revealed by GeoChip 5.0. |
| [112] |
Zhang H, Zhu W, Zhang JB, Müller C, Wang LF, et al. 2024. Enhancing soil gross nitrogen transformation through regulation of microbial nitrogen-cycling genes by biodegradable microplastics. |
| [113] |
Domeignoz-Horta LA, Pold G, Liu XA, Frey SD, Melillo JM, et al. 2020. Microbial diversity drives carbon use efficiency in a model soil. |
| [114] |
Chen XP, Zhu D, Liu SY, Sun MM, Ye M, et al. 2025. Unique plastisphere viromes with habitat-dependent potential for modulating global methane cycle. |
| [115] |
Wang L, Lin D, Xiao KQ, Ma LJ, Fu YM, et al. 2024. Soil viral-host interactions regulate microplastic-dependent carbon storage. |
| [116] |
Wang Q, Liu W, Zhou Q, Wang S, Mo F, et al. 2024. Planting enhances soil resistance to microplastics: evidence from carbon emissions and dissolved organic matter stability. |
| [117] |
Li HZ, Bi QF, Yang K, Zheng BX, Pu Q, et al. 2019. D2O-isotope-labeling approach to probing phosphate-solubilizing bacteria in complex soil communities by single-cell Raman spectroscopy. |
| [118] |
Li J, Cai X, Li M, Zhang D, Li B, et al. 2025. In situ degradation of 2-methylnaphthalene by a soil Penicillium strain associated with fungal-bacterial interactions. |
| [119] |
Li J, Zhang D, Luo C, Li B, and Zhang G. 2023. In situ discrimination and cultivation of active degraders in soils by genome-directed cultivation assisted by SIP-Raman-activated cell sorting. |