個人簡介
梁小龍,中國科學(xué)院沈陽應(yīng)用生態(tài)研究所,污染生態(tài)與環(huán)境工程重點實驗室,研究員,博士生導(dǎo)師。長期從事土微生物生態(tài)學(xué)和土壤生物地球化學(xué)研究,在土壤病毒生態(tài)功能、土壤有機(jī)質(zhì)轉(zhuǎn)化和累積機(jī)制、土壤碳庫功能提升等方面取得多項成果。近五年以第一/通訊作者在Critical Reviews in Environmental Science and Technology、Soil Biology and Biochemistry等國際主流SCI源期刊發(fā)表論文16篇,參與撰寫英文專著兩部。主要研究成果包括:1)初步揭示了黑土土壤病毒時空格局、驅(qū)動因素及與微生物互作的機(jī)制;2)探究了土壤病毒影響微生物群落結(jié)構(gòu)及功能的機(jī)理;3)首次分析了土壤病毒驅(qū)動效應(yīng)對有機(jī)碳周轉(zhuǎn)、溫室氣體排放和微生物殘體積累的貢獻(xiàn)。相關(guān)成果獲得美國田納西大學(xué)“校長獎”和“農(nóng)學(xué)院卓越貢獻(xiàn)獎”。擔(dān)任Frontiers in Microbiology和Soil Science and Environment期刊的副主編、The Innovation、《生態(tài)學(xué)雜志》和《土壤通報》雜志的青年編委。
教育經(jīng)歷
(1) 2015-08 至 2019-09, The University of Tennessee, Knoxville, 微生物生態(tài), 博士
(2) 2012-08 至 2015-07, 中國科學(xué)院大學(xué), 微生物學(xué), 碩士
(3) 2008-08 至 2012-07, 四川師范大學(xué), 環(huán)境工程, 學(xué)士
研究工作經(jīng)歷
(1) 2019-10 至 2021-09,Washington University in Saint Louis,博士后
(2) 2021-10 至 2023-01,中國科學(xué)院沈陽應(yīng)用生態(tài)研究所,中國科學(xué)院污染生態(tài)與環(huán)境工程重點實驗室,副研究員
(3) 2023-02 至今,中國科學(xué)院沈陽應(yīng)用生態(tài)研究所,中國科學(xué)院污染生態(tài)與環(huán)境工程重點實驗室,研究員
研究方向
土壤病毒生態(tài)學(xué)、微生物生態(tài)學(xué)與生物地球化學(xué)、植物-微生物互作
承擔(dān)課題
(1)中國科學(xué)院百人計劃B類項目,土壤病毒驅(qū)動微生物過程和碳循環(huán)的關(guān)鍵機(jī)制,主持,金額:800萬,起止時間:2022-2025
(2)國家科學(xué)基金委面上基金,土壤病毒驅(qū)動微生物群落演替和土壤有機(jī)質(zhì)積累的機(jī)制,主持,金額:49萬,起止時間:2024-2026
(3)國家重點研發(fā)項目子課題,土壤不同來源有機(jī)組分的轉(zhuǎn)化特征和穩(wěn)定機(jī)制,主持,金額:60萬,起止時間:2022-2027
(4)遼寧省優(yōu)秀青年科學(xué)基金,土壤病毒驅(qū)動微生物群落演替和土壤有機(jī)質(zhì)周轉(zhuǎn)的機(jī)制,主持,金額:50萬,起止時間:2023-2025
(5)中國科學(xué)院沈陽應(yīng)用生態(tài)研究所重點自主項目,主持,噬菌體調(diào)控土壤碳固存的關(guān)鍵機(jī)制及增匯措施,金額:18.6萬,起止時間:2022-2024
(6)中國科學(xué)院沈陽應(yīng)用生態(tài)研究所環(huán)境污染過程與效應(yīng)創(chuàng)新組群:環(huán)境污染及全球變化影響下微生物生態(tài)效應(yīng)
(7)Simons Foundation Early Career Awards,Investigate the biogeochemical consequences of metabolic heterogeneity in marine microbial carbon degradation,參與 (Advisor: Dr. Alexander Bradley),起止時間:2019-2022
(8)美國農(nóng)業(yè)部資助項目,Soil health and substantial productivity: unveiling the role of soil viral biodiversity in agroecosystem function,參與,(Advisor: Dr. Mark Radosevich),起止時間:2018-2021
(9)美國國防部戰(zhàn)略環(huán)境研究與發(fā)展計劃SERDP資助項目,Examine the potential consequences of subsurface bioremediation: iron-oxide bioreductive processes and the propensity for contaminant-colloid co-transport and media structural breakdown,參與,(Advisor: Dr. Mark Radosevich),起止時間:2015-2017
已發(fā)表論文
(1)Liang X*, Radosevich M, DeBruyn JM, Wilhelm SW, McDearis R, Zhuang J. 2023. Incorporating viruses into soil ecology: a new dimension to understand biogeochemical cycling. Critical Reviews in Environmental Science and Technology. https://doi.org/10.1080/10643389.2023.2223123 (中科院二區(qū)/JCR一區(qū);影響因子=12.6)
(2)Liang X#, Wang X#, Zhang N*, Li B*. 2022. Biogeographical Patterns and Assembly of Bacterial Communities in Saline Soils of Northeast China. Microorganisms, 10(9): 1787. https://doi.org/10.3390/microorganisms10091787 (中科院二區(qū)/JCR二區(qū);影響因子=4.5)
(3)Deng C#, Liang X#, Zhang N*, Li B*, Wang X, Zeng N. Molecular mechanisms of plant growth promotion for methylotrophic Bacillus aryabhattai LAD. Frontiers in Microbiology, 13: 917382. https://doi.org/10.3389/fmicb.2022.917382 (中科院二區(qū)/JCR一區(qū);影響因子=5.2)
(4)Wang F#, Liang X#, Ding F, Ren L, Liang M, An T, Li S, Wang J, Liu L*. 2022. The active functional microbes contribute differently to soil nitrification and denitrification potential under long-term fertilizer regimes in north-east China. Frontiers in Microbiology, 13: 1021080.(中科院二區(qū)/JCR一區(qū);影響因子=5.2)https://doi.org/10.3389/fmicb.2022.1021080
(5)Deng C#, Zhang N#, Liang X*, Huang T, Li B*. 2022. Bacillus aryabhattai LAD impacts rhizosphere bacterial community structure and promotes maize plant growth. Journal of the Science of Food and Agriculture, 102(14): 6650-6657. https://doi.org/10.1002/jsfa.12032. (中科院二區(qū)/JCR一區(qū);影響因子=4.1)
(6)Duan N, Li L, Liang X, McDearis R, Fine AK, Cheng Z, Zhuang J, Radosevich M, Schaeffer SM*. 2022. Composition of soil viral and bacterial communities after long-term tillage, fertilization, and cover cropping management. Applied Soil Ecology, 177: 104510.
https://doi.org/10.1016/j.apsoil.2022.104510.(中科院二區(qū)/JCR二區(qū);影響因子=4.8)
(7)Duan N, Li L, Liang X, Fine A, Zhuang J, Radosevich M, Schaeffer SM*. 2022. Variation in bacterial community structure under long-term fertilization, tillage, and cover cropping in continuous cotton production. Frontiers in Microbiology, 13: 847005. http://doi.org/ 10.3389/fmicb.2022.847005.(中科院二區(qū)/JCR一區(qū);影響因子=5.2)
(8)Liang X*, Wang Y, Zhang Y, Li B, Radosevich M*. 2021. Bacteriophage-host depth distribution patterns in soil are maintained after nutrient stimulation in vitro. Science of the Total Environment, 787: 147589. doi: 10.1016/j.scitotenv.2021.147589.(中科院一區(qū)/JCR一區(qū);影響因子=9.8)
(9)Liang X, Wang Y, Zhang Y, Zhuang J, Radosevich M*. 2021. The effects of cover plants on soil viral abundance, community composition and correlation with bacterial community. Applied Soil Ecology, 168, 104138. https://doi.org/10.1016/j.apsoil.2021.104138. (中科院二區(qū)/JCR二區(qū);影響因子=4.8)
(10)Castel n-S nchez HG, D vila-Ramos R, Liang X, S nchez-Carbente MR. 2021. Viral metagenomics. in Metagenomics and Microbial Ecology: Techniques and Applications. Boca Raton, FL, USA. CRC Press Taylor and Francis Group. In press. doi: https://doi.org/10.1201/9781003042570-12.
(11)Wang F#, Liang X#, Ma S, Liu L*, Wang J*. 2021. Ammonia oxidizing archaea are dominant over comammox in soil nitrification under long-term nitrogen fertilization. Journal of Soils and Sediments, 21, 1800-1814. doi: 10.1007/s11368-021-02897-z. (中科院三區(qū)/JCR二區(qū);影響因子=3.6)
(12)Liang X, Zhang Y, Wommack KE, Wilhelm SW, DeBruyn JM, Sherfy AC, Zhuang J, Radosevich M*. 2020. Lysogenic reproductive strategies of viral communities vary with soil depth and are correlated with bacterial diversity. Soil Biology & Biochemistry, 144: 107767. doi: 10.1016/j.soilbio.2020.107767. (中科院一區(qū)/JCR一區(qū);影響因子=9.7)
(13)Liang X*, Wagner RE, Li B, Zhang N, Radosevich M*. 2020. Quorum sensing signals alter in vitro soil virus abundance and bacterial community composition. Frontiers in Microbiology, 11: 1287. doi: 10.3389/fmicb.2020.01287. (中科院二區(qū)/JCR一區(qū);影響因子=5.2)
(14)Roy K, Ghosh D, DeBruyn JM, Dasgupta T, Wommack KE, Liang X*, Wagner RE, Radosevich M*. 2020. Temporal dynamics of soil virus and bacterial populations in agricultural and early plant successional soils. Frontiers in Microbiology, 11: 1494. doi: 10.3389/fmicb.2020.01494. (中科院二區(qū)/JCR一區(qū);影響因子=5.2)
(15)Liang X, Radosevich M. 2020. Phage communication and the ecological implications on microbial interactions, diversity, and function. In Biocommunication of phages (pp. 71-86). Springer, Berlin, Heidelberg. doi: 10.1007/978-3-030-45885-0_3.
(16)Zheng L, Liang X, Shi R, Li P, Zhao J, Li G, Wang S, Han S, Radosevich M, Zhang Y*. 2020. Viral abundance and diversity of production fluids in the oil reservoir. Microorganisms, 8, 1429. doi: 10.3390/microorganisms8091429. (中科院二區(qū)/JCR二區(qū);影響因子=4.5)
(17)Liang X, Wagner RE, Zhuang J, DeBruyn JM, Wilhelm SW, Liu F, Yang L, Staton ME, Sherfy AC, Radosevich M*. 2019. Viral abundance and diversity vary with depth in a southeastern United States agricultural ultisol. Soil Biology & Biochemistry, 137: 107546. doi: 10.1016/j.soilbio.2019.107546. (中科院一區(qū)/JCR一區(qū);影響因子=9.7)
(18)Liang X, Radosevich M*. 2019. Commentary: A host-produced quorum-sensing autoinducer controls a phage lysis-lysogeny decision. Frontiers in Microbiology, 10: 1201. doi: 10.3389/fmicb.2019.01201. (中科院二區(qū)/JCR一區(qū);影響因子=5.2)
(19)Liang X, Zhuang J, L?ffler F, Zhang Y, DeBruyn JM, Wilhelm SW, Schaeffer S, Radosevich M*. 2019. Viral and bacterial community responses to anaerobic Fe(III) bioreduction during simulated subsurface bioremediation. Environmental Microbiology, 21: 2043-2055. doi:10.1111/1462-2920.14566. (中科院二區(qū)/JCR一區(qū);影響因子=5.1)
(20)Liang X, Radosevich M, L?ffler F, Schaeffer SM, Zhuang J*. 2019. Impact of microbial iron oxide reduction on the transport of diffusible tracers and non-diffusible nanoparticles in soils. Chemosphere, 220: 391-402. doi: 10.1016/j.chemosphere.2018.12.165. (中科院二區(qū)/JCR一區(qū);影響因子=8.8)
(21)Liang X#, Shi R#, Radosevich M, Zhao F, Zhang Y, Han S, Zhang Y*. 2017. Anaerobic lipopeptide biosurfactant production by an engineered bacterial strain for in situ microbial enhanced oil recovery. RSC Advances, 7: 20667-20676. doi: 10.1039/C7RA02453C. (中科院三區(qū)//JCR二區(qū);影響因子=3.9)
(22)Wilhelm SW*, Bird JT, Bonifer KS, Calfee BC, Chen T, Coy SR, Gainer PJ, Gann ER, Heatherly HT, Lee J, Liang X, [19 authors in total] et al. 2017. A Student’s Guide to Giant Viruses Infecting Small Eukaryotes: From Acanthamoeba to Zooxanthellae. Viruses, 9: 46. doi:10.3390/v9030046. (中科院三區(qū)/JCR二區(qū);影響因子=4.7)
(23)Zhao F, Liang X, Ban Y, Han S, Zhang J, Zhang Y, Ma F*. 2016. Comparison of methods to quantify rhamnolipid and optimization of oil spreading method. Tenside Surfactants Detergents, 53: 243-248. doi: 10.3139/113.110429. (中科院四區(qū)/JCR四區(qū);影響因子=1.058)
(24)Zhao F, Mandlaa M, Hao J, Liang X, Shi R, Han S, Zhang Y*. 2014. Optimization of culture medium for anaerobic production of rhamnolipid by recombinant Pseudomonas stutzeri Rhl for microbial enhanced oil recovery. Letters in Applied Microbiology, 59: 231-237. doi: 0.1111/lam.12269. (中科院四區(qū)/JCR三區(qū);影響因子=2.813)
(25)梁小龍, 趙峰, 史榮久, 班允赫, 周紀(jì)東, 韓斯琴, 張穎*. (2015) 厭氧產(chǎn)脂肽工程菌的構(gòu)建及其代謝活性評價. 應(yīng)用生態(tài)學(xué)報, 26: 2553-2560.
(26)梁小龍, 趙峰, 史榮久, 周紀(jì)東, 韓斯琴, 張穎*. (2014) 原生質(zhì)體融合構(gòu)建高效產(chǎn)脂肽工程菌. 中國生物工程雜志, 34: 76-84.
(27)陳丹丹, 梁小龍, 余雅琳, 羅繼輝, 胡佩*. (2012) 發(fā)酵增效劑對燃料乙醇發(fā)酵的影響. 發(fā)酵科技通訊, 41: 1-3.
學(xué)術(shù)獎勵和榮譽(yù)
2023 遼寧省優(yōu)秀青年基金
2020 The University of Tennessee’s Open Publishing Support Fund
2019 The Ohio State University Viromics Workshop Travel Award
2019 The Graduate Student Senate Travel Award, The University of Tennessee
2018 美國田納西大學(xué)“校長獎”
2018 美國田納西大學(xué)農(nóng)學(xué)院卓越貢獻(xiàn)獎
2018 The Graduate Student Senate Travel Award, The University of Tennessee
2017 The Graduate Student Senate Travel Award, The University of Tennessee




