当前位置:< 首页 > 师资队伍 > 水土保持与林学系 > 教授 > 正文

师资队伍

师资队伍

教授

研究领域:环境污染化学、环境生态学、林木生理学

主讲课程: 本科生:《生态学》、《森林生态学》、《资源环境进展与前言》 研究生:《资源环境前沿》、《中外主文献研读》、《学术道德与论文写作》

电子邮箱: maming@swu.edu.cn

教育及工作经历

2018.6-至今, 西南大学, 资源环境学院, 教授

2015.1-2016.1, 加拿大魁北克大学蒙特利尔分校(UQAM), 博士后

2014.11-2019.12, 中国科学院寒区与旱区环境工程研究所, 博士后

2004.6-2018.6, 西南大学, 资源环境学院, 助教、讲师、副教授

2010.9–2013.12, 西南大学, 农业环境保护, 博士

2006.9–2009.6, 西北农林科技大学, 生态学, 硕士

2000.9–2004.6, 西北农林科技大学, 森林生态与游憩, 学士


学术兼职

担任重庆土壤学会森林土壤及水土保持专业委员会副主任;

担任PNAS, Nat. Commun., Sci. Bull., Environ. Sci. Technol., J. Hazard. Mater., J. Clean. Prod., Sci. Total Environ., Environ. Pollut., Ecotoxicol. Environ. Saf., J. Environ. Manage., J. Environ. Sci., Chemosphere等期刊的审稿专家;

担任Scientific Reports期刊编辑;

担任重庆市科技局重点项目评审专家。


获奖荣誉

重庆市社会科学优秀成果二等奖,2020年12月

重庆市科学技术三等奖,2017年7月

宜宾西南大学研究院优秀科研团队,2025年

西南大学优秀指导教师,2017年6月

西南大学本科优秀毕业论文指导教师二等奖(学生:冯爽),2024年6月


主持科研项目

(1)国家自然科学基金面上项目, 42177198, 主持.

(2)国家自然科学基金面上项目, 41877382, 主持.

(3)国家自然科学基金面上项目, 41573105, 主持.

(4)国家自然科学基金青年项目, 41103040, 主持.

(5)重庆市科技局技术创新与应用发展(川渝联合实施重点研发)项目,CSTB2022TIADCUX0007,主持.

(6)四川省自然科学基金面上项目, 2024NSFSC0062, 主持.

(7)重庆市生态环境局生态环保专项, CQEE2022-STHBZZ118, 主持.

(8)重庆市自然科学基金一般项目, cstc2016jcyjA0461,主持.

(9)重庆市自然科学基金一般项目, cstc2011jjA20007,主持.

(10)教育部中央高校基本科研业务重点项目, XDJK2018B043, 主持.

(11)教育部中央高校基本科研业务重点项目, XDJK2013B044, 主持.

(12)教育部中央高校基本科研业务一般项目, XDJK2011C082, 主持.

(13)中国科学院重大专项项目, 土壤同位素样品分析, 主持.

(14)国家重点基础研究发展计划, 2013CB430003, 主研.

(15) 为四川正则方维工程咨询有限公司提供项目咨询及技术服务, 2025-01至2027-01, 20万元, 主持.


代表性学术成果(时间倒序)

2026年

(1)Wang X, Wang S, Gao L, Guo P, Du H, Ma M*, Rennenberg H. Nitric oxide enhanced cadmium resistance of Robinia pseudoacacia-rhizobia symbiosis by modulating cadmium speciation, antioxidant defense, and nitrogen fixation. Plant Soil. 2026, 520(1), 663-686. (2026-03)

(2)Sun X, Li H, Wu C, Xiong B, Qu X, Song X, Du H, Mao Q, Zhang D, Li P, Wang D, Agathokleous E*, Ma M*. Hormesis and chelation pathway shifts govern dose-segmented Hg0 detoxification in Spanish moss. Environmental Chemistry and Ecotoxicology, 2026, 8, 2137-2150. (2026-05)

(3)Li H, Wu C, Song X, Sun X, Qu X, Xiong B, Du H, He X*, Ma M*, Mao Q*.Concentration-dependent alleviation of lead toxicity in rapeseed by elevated CO2 is associated with rhizosphere microbiome remodeling. Ecotoxicology and Environmental Safety, 2026, 323, 120535. (2026-08)

(4)Qu X, He C, Xiong B, Wu C, Li H, Song X, Wang S, Du H*, Ma M*. OsSultr1;1 and OsZIP4 mediate cadmium uptake and transport in rice: evidence from high and low Cd-accumulators. J. Hazard. Mater. 2026, 517, 143496. (2026-09)

(5)Xiong B, Ma X, Wang S, Guo P, Sun X, Gao Y, Du H*, Ma M*, Wang D. Metabolic adaptations of rice roots to methylmercury exposure: Insights from high and low accumulating rice cultivars. Food Chemistry, 2026, 500, 147425. (2026-01)

(6)Gao Y, Xiong B, Huang X, Sun X, Du H*, Ma M*, Luo F. Endophytic bacteria and fungi from atmospheric mercury bioindicator Tillandsia usneoides (Spanish moss) alleviate mercury stress and promote plant growth. Environmental Chemistry and Ecotoxicology, 2026, 8, 881-893. (2026-01)

2025年

(1)Sun X, Du H, Mao Q, Li P, Agathokleous E*, Ma M*, Mechanisms of Hg0 uptake, transport, distribution and redistribution in leaves of Hg bioindicator Tillandsia usneoides (Spanish moss). Environ. Sci. Technol. 2025, 59(24),12158-12168. (2025-06)

(2)Wang S, Wang T, Gao L, Du H, Wang D, Ma M*, Rennenberg H. Iron assisted mercury-resistance mechanism of Robinia pseudoacacia revealed by metabolome and transcriptome association analysis. Tree Physiol. 2025, 45(1), tpae166. (2025-01)

(3)Zou D, Du H*, Zhang F, Gao L, Xiong B, Guo P, Ma M*. Responses of Robinia pseudoacacia co-inoculated with rhizobia and arbuscular mycorrhizal fungi to cadmium under nitrogen excess condition. Plant Soil 2025, 508(1-2), 908-924. (2025-03)

(4)Wang X, Wang S, Gao L, Guo P, Du H, Ma M*, Rennenberg H. Multiple insights into the protective role of nitric oxide upon cadmium exposure of Robinia pseudoacacia L. by promoting cell wall biosynthesis. Plant Physiol. Biochem. 2025, 220, 109544. (2025-03)

(5)Gao L, Wang S, Du H, Zou D, Fan X, Zhao W, Mao Q, Ma M*, Rennenberg H. Multi-omics insights into rhizobium-induced cadmium tolerance in Robinia pseudoacacia: antioxidant-metabolic coordination and transporter activation. Plant Soil. 2025, 514, 513-533. (2025-10)

(6)Gao Y, Xiong B, Sun X, Huang X, Du H*, Ma M*. Liquiritin and L-Dopa mitigate gaseous elemental mercury toxicity in Tillandsia usneoides: Insights into metabolic reprogramming and phytoremediation potential. J. Hazard. Mater. 2025, 496, 139637. (2025-07)

(7)Xiong B, Cheng H, Deng Y, Imanaka T, Igarashi Y, Ma M, Du H*, Wang D. Mercury absorption and transformation by microbes during sulfate-driven anaerobic oxidation of methane following anaerobic digestion of municipal wastewater sludge. Environ. Res., 2025, 267, 120689. (2025-02)

2024年

(1)Guo P, Du H, Zhao W, Xiong B, Wang M, He M, Flemetakis E, Hänsch R, Ma M*, Rennenberg H, Wang D. Selenium- and chitosan-modified biochars reduce methylmercury contents in rice seeds with recruiting Bacillus to inhibit methylmercury production. J. Hazard. Mater. 2024, 465, 133236. (2024-03)

(2)Gao L, Wang S, Zou D, Fan X, Guo P, Du H, Zhao W, Mao Q, Li H, Ma M*, Rennenberg H. Physiological responses of low- and high-cadmium accumulating Robinia pseudoacacia-rhizobium symbioses to cadmium stress. Environ. Pollut. 2024, 345, 123456. (2024-03)

(3)Zhang F, Zou D, Wang J, Xiong B, Gao L, Guo P, Du H, Ma M*, Rennenberg H. Co-inoculation of rhizobia and AMF improves the growth, nutrient uptake, and cadmium resistance of black locust grown in sand culture. Physiol. Plantarum 2024, 176(2), e14205. (2024-03)

(4)Guo P, Du H, Mao Q, Deng Y, Wang X, Li J, Xiong B, Fan X, Wang D, Agathokleous E, Ma M*. The duality of sulfate-reducing bacteria: Reducing methylmercury production in rhizosphere but enhancing accumulation in rice plants. J. Hazard. Mater. 2024, 476, 135049. (2024-09)

(5)Fan X, Mao Q, Zou D, Guo P, Du H, Chen T, He C, Xiong B, Ma M*. Integrated transcriptomics and metabolomics revealed the physiological response and molecular mechanism of Brassica napus to cadmium under elevated CO2. Plant Physiol. Biochem. 2024, 216,109127. (2024-09)

2023年

(1)Wang S, Yao H, Li L, Du H, Guo P, Wang D, Rennenberg H, Ma M*. Differentially-expressed genes related to glutathione metabolism and heavy metal transport reveals an adaptive, genotype-specific mechanism to Hg2+ exposure in rice (Oryza sativa L.). Environ. Pollut. 2023, 324, 121340. (2023-05)

(2)Guo P, Rennenberg H, Du H, Wang T, Gao L, Flemetakis E, Hänsch R, Ma M*, Wang D. Bacterial assemblages imply methylmercury production at the rice-soil system. Environ. Int. 2023, 108, 108066. (2023-08)

(3)Wang X, Du H, Ma M*, Rennenberg H. The dual role of nitric oxide (NO) in plant responses to cadmium exposure. Sci. Total Environ. 2023, 892, 164597. (2023-09)

(4)Gao Y, Cheng H, Xiong B, Du H*, Liu L, Imanaka T, Igarashi Y, Ma M*, Wang D, Luo F. Biogeochemical transformation of mercury driven by microbes involved in anaerobic digestion of municipal wastewater. J. Environ. Manage. 2023, 344, 118640. (2023-10)

(5)Yang L, Yang G, Wang J, Xiong B, Guo P, Wang T, Du H*, Ma M, Wang D. Seasonal changes in total mercury and methylmercury in subtropical decomposing litter correspond to the abundances of nitrogen-fixing and methylmercury-degrading bacteria. J. Hazard. Mater. 2023, 442, 130064. (2023-01)

(6)Yan X, Guan D, Li J, Song Y, Tao H, Zhang X, Ma M, Ji J, Zhao W. Fate of Cd during mineral transformation by sulfate-reducing bacteria in clay-size fractions from soils with high geochemical background. J. Hazard. Mater. 2023, 459, 132213. (2023-10)

2022年

(1)Li J, Zhao W, Du H, Guan Y, Ma M*, Rennenberg H. The symbiotic system of sulfate-reducing bacteria and clay-sized fraction of purplish soil strengthens cadmium fixation through iron-bearing minerals. Sci. Total Environ. 2022, 820, 153253. (2022-05)

(2)Du H, Xie H, Ma M*, Igarashi Y, Luo F*. Modified methods obtain high-quality DNA and RNA from anaerobic activated sludge at a wide range of temperatures. J. Microbiol. Methods 2022, 199, 106532. (2022-08)

2021年

(1)Hu B, Mithöfer A, Reichelt M, Eggert K, Peters FS, Ma M*, Schumacher J, Kreuzwieser J, von Wirén N, Rennenberg H. Systemic reprogramming of phytohormone profiles and metabolic traits by virulent Diplodia infection in its pine (Pinus sylvestris L.) host. Plant Cell Environ. 2021, 44, 2744–2764. (2021-08)

(2)Guo P, Du H, Wang D, Ma M*. Effects of mercury stress on methylmercury production in rice rhizosphere, methylmercury uptake in rice and physiological changes of leaves. Sci. Total Environ. 2021, 765, 142682. (2021-04)

(3)Du H, Guo P, Wang T, Ma M*, Wang D. Significant bioaccumulation and biotransformation of methyl mercury by organisms in rice paddy ecosystems: A potential health risk to humans. Environ. Pollut. 2021, 273, 116341. (2021-03)

(4)Du H, Sun T, Liu Y, An S, Xie H, Wang D, Igarashi Y, Imanaka T, Luo F*, Ma M*. Bacteria and archaea involved in anaerobic mercury methylation and methane oxidation in anaerobic sulfate–rich reactors. Chemosphere, 2021, 274, 129773. (2021-01)

(5)Wang T, Yang G, Du H, Guo P, Sun T, An S, Wang D, Ma M*. Migration characteristics and potential determinants of mercury in long-term decomposing litterfall of two subtropical forests. Ecotoxicol. Environ. Saf. 2021, 208, 111402. (2021-01)

(6)Mao Q, Tang L, Ji W, Rennenberg H, Hu B*, Ma M*. Elevated CO2 and soil mercury stress affect photosynthetic characteristics and mercury accumulation of rice. Ecotoxicol. Environ. Saf. 2021, 208, 111605. (2021-01)

2020年

(1)Ma M, Wendehenne D, Philippot L, Haensch R, Flemetakis E, Hu B*, Rennenberg H. Physiological significance of pedospheric nitric oxide for root growth, development, and organismic interactions. Plant Cell Environ. 2020, 43(10), 2336−2354. doi: 10.1111/pce.13850. (2020-07)

(2)Sun S, Ma M*, He X, Obrist D, Zhang Q, Yin X, Sun T, Huang J, Guo J, Kang S*, Qin D. Vegetation mediated mercury flux and atmospheric mercury in the Alpine permafrost region of the central Tibetan Plateau. Environ. Sci. Technol. 2020, 54(10), 6043-6052. (2020-04)

(3)Du H, Sun T, Wang D, Ma M*. Bacterial and archaeal compositions and influencing factors in soils under different submergence time in a mercury-sensitive reservoir. Ecotoxicol. Environ. Saf. 2020, 191, 110155. (2020-03)

2019年

(1)Ma M, Du H, Wang D*. Mercury methylation by anaerobic microorganisms: a review. Crit Rev Environ. Sci. Technol. 2019, 49(20), 1893-1936. (2019-10)

(2)Ma M, Du H, Sun T, An S, Yang G, Wang D*. Characteristics of archaea and bacteria in rice rhizosphere along a mercury gradient. Sci. Total Environ. 2019, 650, 1640-1651. (2019-02)

(3)Ma M, Du H, Wang D*. A new perspective is required to understand the role of forest ecosystems in global mercury cycle: a review. Bull. Environ. Contam. Toxicol. 2019, 102(5), 650-656.

(4)杨光,孙涛,安思危,郭攀,马明*. 中亚热带常绿阔叶林枯落物分解过程中汞的动态变化及迁移机理.生态学报, 2019, 39(6), 1-8. (2019-03)

2018年及之前

(1)Ma M, Du H, Wang D*, Sun T. Mercury methylation in the soils and sediments of Three Gorges Reservoir Region. J Soils Sediments 2018, 18, 1100-1109.

(2)Ma M, Sun T, Du H, Wang D*. A two-year study on mercury fluxes from the soil under different vegetation cover in a subtropical region, south China. Atmosphere, 2018, 9(1), 1-9. doi:10.3390/atmos9010030.

(3)郭攀,孙涛,杨光,马明*. 四面山大洪湖底泥与水界面汞的迁移转化规律. 环境科学, 2018, 39(12), 185-191. (2018-12)

(4)Ma M, Du H, Wang D*, Kang S*, Sun T. Biotically mediated mercury methylation in the soils and sediments of Nam Co Lake, Tibetan Plateau. Environ Pollut, 2017, 227, 243-251.

(5)Ma M, Du H, Wang D*, Sun T, An S, Yang G. The fate of mercury and its relationship with carbon, nitrogen and bacterial communities during litter decomposing in two subtropical forests. Appl Geochem, 2017, 86, 26-35.

(6)Ma M, Wang D*, Du H, Sun T, Zhao Z, Wang Y, Wei S. Mercury dynamics and mass balance in a subtropical forest, southwestern China. Atmos Chem Phys, 2016, 16, 4529-4537.

(7)Ma M, Wang D*, Sun T, Zhao Z, Du H. Forest runoff increase mercury output from subtropical forest catchments:an example from an alpine reservoir in a national nature reserve (southwestern China). Environ Sci Pollut Res, 2015, 22, 2745-2756.

(8)Ma M, Wang D*, Du H, Sun T, Zhao Z, Wei S. Atmospheric mercury deposition and its contribution of the regional atmospheric transport to mercury pollution at a national forest nature reserve, southwest China. Environ Sci Pollut Res, 2015, 22, 20007-20018.

(9)Ma M, Wang D*, Sun R, Shen Y, Huang L. Gaseous mercury emissions from subtropical forested and open field soils in a national nature reserve, southwest China. Atmos Environ, 2013, 64(1), 116-123.

(10)马明,赖大坤,孙涛,杨光,王定勇*.中亚热带典型林分汞的输入/输出平衡.中国环境科学, 2017,37(12), 4744-4750.

(11)马明, 孙涛, 李定凯, 王定勇*. 缙云山常绿阔叶林湿沉降过程中不同空间层次水质变化特征.环境科学, 2017,38(12),161-167.

(12)杨光,孙涛,安思危,马明*.重庆缙云山4种典型植被覆盖下汞的释放通量及影响因素.环境科学, 2017, 38(11), 4774-4781.

(13)马明, 王定勇*, 申源源, 孙荣国, 黄礼昕. 中亚热带针阔混交林土壤-大气界面释汞通量研究.环境科学, 2014, 35(1), 85-92.


地址:重庆市北碚区天生路2号

邮编:400716

电话:023-68251249

西南大学资源环境学院

西大资环研究生会

青听资环

西大资环B站

版权所有 @2022西南大学资源环境学院