OpenAlex Citation Counts

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OpenAlex is a bibliographic catalogue of scientific papers, authors and institutions accessible in open access mode, named after the Library of Alexandria. It's citation coverage is excellent and I hope you will find utility in this listing of citing articles!

If you click the article title, you'll navigate to the article, as listed in CrossRef. If you click the Open Access links, you'll navigate to the "best Open Access location". Clicking the citation count will open this listing for that article. Lastly at the bottom of the page, you'll find basic pagination options.

Requested Article:

Impact of Plastic Particles on the Horizontal Transfer of Antibiotic Resistance Genes to Bacterium: Dependent on Particle Sizes and Antibiotic Resistance Gene Vector Replication Capacities
Xiaojie Hu, Michael Gatheru Waigi, Bing Yang, et al.
Environmental Science & Technology (2022) Vol. 56, Iss. 21, pp. 14948-14959
Closed Access | Times Cited: 81

Showing 1-25 of 81 citing articles:

Microplastics exacerbate co-occurrence and horizontal transfer of antibiotic resistance genes
Xi Yu, Zhenchao Zhou, Xinyi Shuai, et al.
Journal of Hazardous Materials (2023) Vol. 451, pp. 131130-131130
Closed Access | Times Cited: 61

Phthalates Promote Dissemination of Antibiotic Resistance Genes: An Overlooked Environmental Risk
Jing Wu, Zhou Jun-hua, Dong‐Feng Liu, et al.
Environmental Science & Technology (2023) Vol. 57, Iss. 17, pp. 6876-6887
Closed Access | Times Cited: 44

Unraveling the nexus: Microplastics, antibiotics, and ARGs interactions, threats and control in aquaculture – A review
Shiyu Xie, Naima Hamid, Tingting Zhang, et al.
Journal of Hazardous Materials (2024) Vol. 471, pp. 134324-134324
Closed Access | Times Cited: 12

Microplastics mediates the spread of antimicrobial resistance plasmids via modulating conjugal gene expression
Qiu Yang, Z. Y. Lin, Dehao Gan, et al.
Environment International (2025) Vol. 195, pp. 109261-109261
Open Access | Times Cited: 1

Microplastic biofilm: An important microniche that may accelerate the spread of antibiotic resistance genes via natural transformation
Huixiang Wang, Kai-Wen Xu, Jing Wang, et al.
Journal of Hazardous Materials (2023) Vol. 459, pp. 132085-132085
Closed Access | Times Cited: 30

Fate and transport of biological microcontaminants bound to microplastics in the soil environment
Lane W. Maguire, Courtney M. Gardner
The Science of The Total Environment (2023) Vol. 892, pp. 164439-164439
Open Access | Times Cited: 27

Augmented dissemination of antibiotic resistance elicited by non-antibiotic factors
Shuyao Zhu, Bingqing Yang, Zhiqiang Wang, et al.
Ecotoxicology and Environmental Safety (2023) Vol. 262, pp. 115124-115124
Open Access | Times Cited: 27

Size-dependent promotion of micro(nano)plastics on the horizontal gene transfer of antibiotic resistance genes in constructed wetlands
Yanhui Zhao, Zhen Hu, Huimin Xie, et al.
Water Research (2023) Vol. 244, pp. 120520-120520
Closed Access | Times Cited: 25

Do microbial decomposers find micro- and nanoplastics to be harmful stressors in the aquatic environment? A systematic review of in vitro toxicological research
V.C. Shruti, Gurusamy Kutralam-Muniasamy, Fermín Pérez‐Guevara
The Science of The Total Environment (2023) Vol. 903, pp. 166561-166561
Closed Access | Times Cited: 22

Photoaged microplastics enhanced the antibiotic resistance dissemination in WWTPs by altering the adsorption behavior of antibiotic resistance plasmids
Qian Guo, Mengjun Wang, Siyuan Jin, et al.
The Science of The Total Environment (2024) Vol. 919, pp. 170824-170824
Closed Access | Times Cited: 9

Phthalates Boost Natural Transformation of Extracellular Antibiotic Resistance Genes through Enhancing Bacterial Motility and DNA Environmental Persistence
Jing Wu, Yun-Hui Lv, Dan Sun, et al.
Environmental Science & Technology (2024) Vol. 58, Iss. 17, pp. 7291-7301
Closed Access | Times Cited: 9

Characterising global antimicrobial resistance research explains why One Health solutions are slow in development: An application of AI-based gap analysis
Cai Chen, Shu‐Le Li, Yaoyang Xu, et al.
Environment International (2024) Vol. 187, pp. 108680-108680
Open Access | Times Cited: 7

Silver nanoparticles facilitate phage-borne resistance gene transfer in planktonic and microplastic-attached bacteria
Qiurong Zhang, Huixian Zhou, Ping Jiang, et al.
Journal of Hazardous Materials (2024) Vol. 469, pp. 133942-133942
Closed Access | Times Cited: 6

Biofilms on pipelines shape the microbiome and antibiotic resistome in drinking water
Wenfang Lin, Keqian Zhao, Qihui Wu, et al.
Water Research (2025) Vol. 274, pp. 123136-123136
Closed Access

Microplastics, Nanoplastics and Nanoparticles: Emerging Dynamic Carriers of Extracellular DNA Antibiotic Resistance Genes in the Environment
Periyasamy Sivalingam, S. Farook Basha, Maheswaran Easwaran, et al.
BioNanoScience (2025) Vol. 15, Iss. 1
Closed Access

Pyroligneous acid amendments alleviated antibiotic resistance genes pollution in agricultural soil via inhibiting horizontal gene transformation
Mengying Shao, Xiaohan Ma, Min Zhang, et al.
Chemical Engineering Journal (2025), pp. 160070-160070
Closed Access

Plant Diversity Reduces the Risk of Antibiotic Resistance Genes in Agroecosystems
Shu Li, Xing Zhou, Liangliang Liu, et al.
Advanced Science (2025)
Open Access

The nexus of microplastics, food and antimicrobial resistance in the context of aquatic environment: Interdisciplinary linkages of pathways
S. Dogra, Manish Kumar, Jian Zang
Journal of Contaminant Hydrology (2025) Vol. 269, pp. 104512-104512
Closed Access

Biochar reversed antibiotic resistance genes spread in biodegradable microplastics and Cu co-contaminated soil by lowering Cu bio-availability and regulating denitrification process
Zhenyu Wang, Ying Sun, Xuejiang Wang, et al.
Journal of environmental chemical engineering (2025), pp. 115761-115761
Closed Access

Chlorination (but Not UV Disinfection) Generates Cell Debris that Increases Extracellular Antibiotic Resistance Gene Transfer via Proximal Adsorption to Recipients and Upregulated Transformation Genes
Qingbin Yuan, Pingfeng Yu, Yuan Cheng, et al.
Environmental Science & Technology (2022) Vol. 56, Iss. 23, pp. 17166-17176
Closed Access | Times Cited: 32

Nanoplastic–plant interaction and implications for soil health
Pingfan Zhou, Liuwei Wang, Jing Gao, et al.
Soil Use and Management (2022) Vol. 39, Iss. 1, pp. 13-42
Open Access | Times Cited: 29

Distinct responses of Pseudomonas aeruginosa PAO1 exposed to different levels of polystyrene nanoplastics
Yuxin Hu, Yuanyuan Kang, Fang Huang, et al.
The Science of The Total Environment (2022) Vol. 852, pp. 158214-158214
Closed Access | Times Cited: 27

What happens when nanoparticles encounter bacterial antibiotic resistance?
Yan Xu, Houyu Li, Xiaojing Li, et al.
The Science of The Total Environment (2023) Vol. 876, pp. 162856-162856
Open Access | Times Cited: 15

Size effects of microplastics on antibiotic resistome and core microbiome in an urban river
Wenfang Lin, Shaoheng Cao, Qihui Wu, et al.
The Science of The Total Environment (2024) Vol. 919, pp. 170716-170716
Closed Access | Times Cited: 5

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