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此信息发布于:2012-11-12 |
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Zhang C, Jeong CB, Lee JS, Wang DZ, Wang MH*, 2019. Transgenerational proteome plasticity in resilience of a marine copepod in response to environmentally relevant concentrations of microplastics. Environmental Science & Technology |
|
Wang M, Jeong C B, Lee Y H, Lee J-S. Effects of ocean acidification on copepods. Aquatic Toxicology, 2018, 196(1):17. |
|
Wang M-H, Jeong C-B, Li Y, Lee J-S. Different transcriptomic responses of two marine copepods, Tigriopus japonicus and Pseudodiaptomus annandalei, to a low dose of mercury chloride (HgCl2). Aquatic Toxicology, 2017, 187:124-131. |
|
Li Y, Wang W X, Wang M. Alleviation of mercury toxicity to a marine copepod under multigenerational exposure by ocean acidification: Scientific Reports, 2017, 7(1):324. |
|
Xu X, Shi L, Wang M. Comparative quantitative proteomics unveils putative mechanisms involved into mercury toxicity and tolerance in Tigriopus japonicus under multigenerational exposure scenario. Environmental Pollution, 2016, 218:1287-1297. |
|
Wang Y-Y, Wang D-Z, Lin L, Wang M-H. Quantitative proteomic analysis reveals proteins involved in the neurotoxicity of marine medaka Oryzias melastigma, chronically exposed to inorganic mercury. Chemosphere, 2015, 119(119C):1126-1133. |
|
Ming-Hua Wang, Yu-Yu Wang, Juan Wang, Hua-Sheng Hong, Da-Zhi Wang*. 2013. Quantitative proteomic analysis reveals the mode-of-action for chronic mercury hepatotoxicity to marine medaka (Oryzias melastigma). Aquatic Toxicology 130-131: 123-131. |
|
Juan Wang, Yu-Yu Wang, Lin Lin, Hua-Sheng Hong, Da-Zhi Wang*. 2012. Quantitative proteomic analysis of okadaic acid treated mice small intestine reveals differentially expressed proteins involved in diarrhetic shellfish poisoning. Journal of Proteomics, 75 (7): 2038-2052. |
|
Jianshe Wang, Jun-Jiang, Hong-Xia Zhang, Jun-Ping Wang, Hua Cai, Cheng Li, Kang-Bai Li, Jing Liu, Xue-Jiang Guo, Guang-Xun Zou, Da-Zhi Wang, Yi-Qun Deng*, Jia-Yin Dai*. 2011. Integrated transcriptional and proteomic Analysis with in vitro biochemical assay reveal the important role of CYP3A46 in T-2 toxin hydroxylation in porcine primary hepatocytes. Molecular & Cellular Proteomics, 10: 1-18. |
|
Ming-Hua Wang, Yu-Yu Wang, Juan Wang, Lin Lin, Hua-Sheng Hong, Da-Zhi Wang*. 2011. Proteomic profiles of medaka (Oryzias melastigma) liver and brain experimentally exposed to acute inorganic mercury. Aquatic Toxicology, 103: 129-139. |
|
Li Tian, Ming-Hua Wang, Xiao-Min Li, Paul Kwan Sing Lam, Ming-Fu Wang, Da-Zhi Wang, Hong Nong Chou, Ying Li, Leo Lai Chan. 2011. Proteomic modification in gills and brains of medaka fish (Oryzias melastigma) after exposure to a sodium channel activator neurotoxin, brevetoxin-1. Aquatic Toxicology, 104: 211-217. |
|
Minghua Wang, Leo Lai Chan, Mengzi Si, Huasheng Hong, and Dazhi Wang*. 2010. Proteomic analysis of hepatic tissue of zebrafish (Danio rerio) experimentally exposed to chronic microcystin-LR. Toxicological Sciences, 131: 60-69. |
|
Minghua Wang, Dazhi Wang*, Lin Lin, Huasheng Hong. 2010. Protein profiles in zebrafish (Danio rerio) brains exposed to chronic microcystin-LR. Chemosphere, 81(6): 716-24. |
|
Yanhong Wei, Leo. L. Chan, Da-Zhi Wang, Hongxia Zhang, Jianshe Wang, Jiayin Dai*. 2008. Proteomic Analysis of Hepatic Protein Profiles in Rare Minnow (Gobiocypris rarus) Exposed to Perfluorooctanoic Acid. Journal of Proteome Research, 7: 1729-1739 |
|
Li HY, Shi L, Wang DZ, Wang MH*, 2015. Impacts of mercury exposure on life history traits of Tigriopus japonicus: multigeneration effects and recovery from pollution. Aquatic Toxicology, 166: 42-49. |
|
Wang YY, Wang DZ, Lin L, Wang MH*, 2015. Quantitative proteomic analysis reveals proteins involved in the neurotoxicity of marine medaka Oryzias melastigma chronically exposed to inorganic mercury. Chemosphere, 119: 1126-1133. |
|
Xu XQ, Shi L, Wang MH*, 2016. Comparative quantitative proteomics unveils putative mechanisms involved into mercury toxicity and tolerance in Tigriopus japonicus under multigenerational exposure scenario. Environmental Pollution, 218: 1287-1297. |
|
Park JC, Han J, Lee MC, Kang HM, Jeong CB, Hwang DS, Wang MH, Lee JS*, 2017. Adverse effects of BDE-47 on life cycle parameters, antioxidant system, and activation of MAPK signaling pathway in the rotifer Brachionus koreanus. Aquatic Toxicology, 186: 105-112. |
|
Lee YH, Kang HM, Kim DH, Wang MH, Jeong CB*, Lee JS*, 2017. Adverse effects of methylmercury (MeHg) on life parameters, antioxidant systems, and MAPK signaling pathways in the copepod Tigriopus japonicus. Aquatic Toxicology, 184: 133-141. |
|
Xie ZX, Chen F, Zhang SF, Wang MH, Zhang H, Kong LF, Dai MH, Hong HS, Lin L, Wang DZ*, 2017. Metaproteomics of marine viral concentrates reveals key viral populations and abundant periplasmic proteins in the oligotrophic deep chlorophyll maximum of the South China Sea. Environmental Microbiology, 20: 477-491. |
|
Wang MH, Jeong CB, Li Y, Lee JS*, 2017. Different transcriptomic responses of two marine copepods, Tigriopus japonicus and Pseudodiaptomus annandalei, to a low dose of mercury chloride (HgCl2). Aquatic Toxicology, 187: 124-131. |
|
Wang M-H, Lee J-S, & Li Y. Global proteome profiling of a marine copepod and the mitigating effect of ocean acidification on mercury toxicity after multigenerational exposure. Environmental Science & Technology, 2017, 51(10), 5820. |
|
Wang M-H, Chen-Z, & Lee J-S. Quantitative shotgun proteomics associates molecular-Level cadmium toxicity responses with compromised growth and reproduction in a marine copepod under multigenerational exposure. Environ. Sci. Technol. 2018, 52, 1612−1623. |
|
Li H-Y, Lin S, & Wang D-Z. Impacts of mercury exposure on life history traits of Tigriopus
japonicus: Multigeneration effects and recovery from pollution. Aquatic Toxicology. 2015. 166,42-49. |
|
Jeong CB, Kang HM, Lee YH, Kim MS, Lee JS, Seo JS, Wang MH, Lee JS*, 2018. Nanoplastic ingestion enhances toxicity of persistent organic pollutants (POPs) in the monogonont rotifer Brachionus koreanus via multixenobiotic resistance (MXR) disruption. Environmental Science & Technology, 52: 11411-11418. |
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