Citation: | CHANG Kaiyun, WANG Zhongcheng, WEI Xiaomeng, LIU Qiumei, ZHAO Jin, ZHAO Jie, HE Xunyang. Screening and isolation of carbonic anhydrase-producing microorganisms from rocky karst habitats[J]. CARSOLOGICA SINICA, 2023, 42(6): 1202-1212. doi: 10.11932/karst20230606 |
[1] |
袁道先, 蔡桂鸿. 岩溶环境学[M]. 重庆: 重庆出版社, 1988.
|
[2] |
王世杰, 季宏兵, 欧阳自远, 周德全, 郑乐平, 黎廷宇. 碳酸盐岩风化成土作用的初步研究[J]. 中国科学(D辑), 1999, 29(5):441-449.
|
[3] |
曹建华, 袁道先, 潘根兴. 岩溶生态系统中的土壤[J]. 地球科学进展, 2003, 18(1):37-44. doi: 10.3321/j.issn:1001-8166.2003.01.006
CAO Jianhua, YUAN Daoxian, PAN Genxing. Some soil features in karst ecosystem[J]. Advance in Earth Sciences, 2003, 18(1):37-44. doi: 10.3321/j.issn:1001-8166.2003.01.006
|
[4] |
蒋忠诚, 杨德生, 曹建华. 中国水土流失防治与生态安全·西南岩溶卷[M]. 北京: 科学出版社, 2010.
|
[5] |
WANG Chenwei, LI Wei, SHEN Taiming, CHENG Wenli, YAN Zhuang, YU Longjiang. Influence of soil bacteria and carbonic anhydrase on karstification intensity and regulatory factors in a typical karst area[J]. Geoderma, 2018, 313:17-24. doi: 10.1016/j.geoderma.2017.10.016
|
[6] |
Mailloux Brian J, Alexandrova Ekaterina, Keimowitz Alison R, Wovkulich Karen, Freyer Greg A, Herron Michael, Stolz John F, Kenna Timothy C, Pichler Thomas, Polizzotto Matthew L, Dong Hailiang, Bishop Michael, Knappett Peter S K. Microbial mineral weathering for nutrient acquisition releases arsenic[J]. Applied and Environmental Microbiology, 2009, 75:2558-2565. doi: 10.1128/AEM.02440-07
|
[7] |
吴雁雯, 张金池. 微生物碳酸酐酶在岩溶系统碳循环中的作用与应用研究进展[J]. 生物学杂志, 2015, 32(3):78-83.
WU Yanwen, ZHANG Jinchi. Microbial carbonic anhydrase action and application on carbon cycling in karst dynamic system: A review[J]. Journal of Biology, 2015, 32(3):78-83.
|
[8] |
蒋忠诚, 章程, 罗为群, 肖琼, 吴泽燕. 我国岩溶地区碳汇研究进展与展望[J]. 中国岩溶, 2022, 41(3):345-355.
JIANG Zhongcheng, ZHANG Cheng, LUO Weiqun, XIAO Qiong, WU Zeyan. Research progress and prospect of carbon sink in karst region of China[J]. Carsologica Sinica, 2022, 41(3):345-355.
|
[9] |
刘再华. 碳酸酐酶对碳酸盐岩溶解的催化作用及其在大气CO2沉降中的意义[J]. 地球学报, 2001, 22(5):477-480.
LIU Zaihua. The role of carbonic anhydrase as an activator in carbonate rock dissolution and its significance in atmospheric CO2 precipitation[J]. Acta Geoscientica Sinica, 2001, 22(5):477-480.
|
[10] |
Li Wei, Yu Longjiang, Yuan Daoxian, Wu Yun, Zeng Xiandong. A study of the activity and ecological significance of carbonic anhydrase from soil and its microbes from different karst ecosystems of Southwest China[J]. Plant and Soil, 2005, 272(1):133-141.
|
[11] |
Li Wei, Yu Longjiang, Wu Yun, JIA Liping, Yuan Daoxian. Enhancement of Ca2+ release from limestone by microbial extracellular carbonic anhydrase[J]. Bioresource Technology, 2007, 98(4):950-953. doi: 10.1016/j.biortech.2006.03.021
|
[12] |
李永双, 范周周, 国辉, 周金星, 彭霞薇. 菌剂添加对不同树种根际土壤微生物及碳酸钙溶蚀的影响[J]. 中国岩溶, 2020, 39(6):854-862.
LI Yongshuang, FAN Zhouzhou, GUO Hui, ZHOU Jinxing, PENG Xiawei. Effects of microorganisms agent addition on soil microbes in different rhizosphere soils and calcium carbonate dissolution[J]. Carsologica Sinica, 2020, 39(6):854-862.
|
[13] |
易哲, 叶姜瑜, 李大荣, 窦建军, 石玉竹. 喀斯特地貌中碳酸酐酶微生物鉴定与特性研究[J]. 重庆理工大学学报(自然科学), 2017, 31(8):113-119.
YI Zhe, YE Jiangyu, LI Darong, DOU Jianjun, SHI Yuzhu. Identification and characterization of bacterium with carbonic anhydrase in karst landform[J]. Journal of Chongqing University of Technology (Natural Science), 2017, 31(8):113-119.
|
[14] |
邓洁, 李建宏, 管章玲, 胡碧洋, 赵蕾, 李朋富. 一株产碳酸酐酶附生菌对铜绿微囊藻(Microcystis aeruginosa)生长的影响[J]. 湖泊科学, 2012, 24(3):429-435. doi: 10.3969/j.issn.1003-5427.2012.03.015
DENG Jie, LI Jianhong, GUAN Zhangling, HU Biyang, ZHAO Lei, LI Pengfu. Effect of attached bacteria of carbonic anhydrase on the growth of Microcystis aeruginosa[J]. Journal of Lake Sciences, 2012, 24(3):429-435. doi: 10.3969/j.issn.1003-5427.2012.03.015
|
[15] |
陈羽. 会仙岩溶湿地藻与微生物及其碳酸酐酶的碳效应研究[D]. 桂林: 广西师范大学, 2014.
CHEN Yu. Research on the carbon effects of algae and microorganisms and their carbonic anhydrase in Huixian karst wetland[D]. Guilin: Guangxi Normal University, 2014.
|
[16] |
吕现福. 岩溶洞穴微生物群落特征及微生物在碳酸钙沉积中的作用[D]. 重庆: 西南大学, 2018.
LYU Xianfu. Geomicrobiology of karst cave: Bacterial community and controls on calcium carbonate formation[D]. Chongqing: Southwest University, 2018.
|
[17] |
Van Elsas J D, Duarte G F, Rosado A S, Smalla K. Microbiological and molecular biological methods for monitoring microbial inoculants and their effects in the soil environment[J]. Journal of Microbiological Methods, 1998, 32(2):133-154. doi: 10.1016/S0167-7012(98)00025-6
|
[18] |
Kizilkaya Ridvan. Yield response and nitrogen concentrations of spring wheat (Triticum aestivum) inoculated with Azotobacter chroococcum strains[J]. Ecological Engineering, 2008, 33(2):150-156. doi: 10.1016/j.ecoleng.2008.02.011
|
[19] |
黄芬, 黄艳梅, 高喜, 曹建华. 岩溶环境因子对桂林毛村岩溶区土壤微生物胞外碳酸酐酶活性的影响[J]. 南方农业学报, 2015, 46(10):1792-1797. doi: 10.3969/j:issn.2095-1191.2015.10.1792
HUANG Fen, HUANG Yanmei, GAO Xi, CAO Jianhua. Effects of karst environmental factors on activity of soil microorganic extracellular Carbonic anhydrase of karst area in Maocun village, Guilin[J]. Journal of Southern Agriculture, 2015, 46(10):1792-1797. doi: 10.3969/j:issn.2095-1191.2015.10.1792
|
[20] |
Lee Myungjin, Woo Sunggeun, Chae Myoungsoo, Shin Mincheol, Jung Haemin, Ten Leonid N. Stenotrophomonas daejeonensis sp. nov., isolated from sewage[J]. International Journal of Systematic and Evolutionary Microbiology, 2011, 61(3):598-604. doi: 10.1099/ijs.0.017780-0
|
[21] |
Ouattara Aboubakar Sidiki, Le Mer Jean, Joseph Manon, Macarie Hervé. Transfer of Pseudomonas pictorum Gray and Thornton 1928 to genus Stenotrophomonas as Stenotrophomonas pictorum comb. nov., and emended description of the genus Stenotrophomonas[J]. International Journal of Systematic and Evolutionary Microbiology, 2017, 67(6):1894-1900. doi: 10.1099/ijsem.0.001880
|
[22] |
Palleroni Norberto J, Bradbury John F. Stenotrophomonas, a new bacterial genus for Xanthomonas maltophilia (Hugh 1980) Swings et al. 1983[J]. International Journal of Systematic & Evolutionary Microbiology, 1993, 43(3):606-609.
|
[23] |
Hagemann Martin, Ribbeck Busch Kathrin, Klähn Stephan, Hasse Dirk, Steinbruch Robert, Berg Gabriele. The plant-associated bacterium Stenotrophomonas rhizophila expresses a new enzyme for the synthesis of the compatible solute glucosylglycerol[J]. Journal of Bacteriology, 2008, 190(17):5898-5906. doi: 10.1128/JB.00643-08
|
[24] |
Suckstorff I, Berg Gabriele. Evidence for dose-dependent effects on plant growth by Stenotrophomonas strains from different origins[J]. Journal of Applied Microbiology, 2003, 95(4):656-663. doi: 10.1046/j.1365-2672.2003.02021.x
|
[25] |
Horath Thomas, Bachofen Reinhard. Molecular characterization of an endolithic microbial community in dolomite rock in the central Alps (Switzerland)[J]. Microbial Ecology, 2009, 58:290-306. doi: 10.1007/s00248-008-9483-7
|
[26] |
唐源, 连宾, 程建中. 贵州喀斯特地区碳酸盐岩表生古菌群落结构及多样性研究:以南江大峡谷为例[J]. 中国岩溶, 2017, 36(2):193-201. doi: 10.11932/karst20170206
TANG Yuan, LIAN Bin, CHENG Jianzhong. Archaeal community structure and diversity of the carbonate rocks in karst regions, Guizhou: A case study of the Nanjiang canyon[J]. Carsologica Sinica, 2017, 36(2):193-201. doi: 10.11932/karst20170206
|
[27] |
Tang Yuan, Cheng Jianzhong, Lian Bin. Characterization of endolithic culturable microbial communities in carbonate rocks from a typical karst canyon in Guizhou (China)[J]. Polish Journal of Microbiology, 2016, 65(4):413-423. doi: 10.5604/17331331.1227667
|