Microbial consortia increase thermal tolerance of corals

被引:0
|
作者
Justine A. Gilbert
Ross Hill
Martina A. Doblin
Peter J. Ralph
机构
[1] University of Technology,Plant Functional Biology and Climate Change Cluster, School of the Environment
[2] Sydney,School of Biological, Earth and Environmental Sciences
[3] University of New South Wales,undefined
来源
Marine Biology | 2012年 / 159卷
关键词
Microbial Consortium; Coral Bleaching; Bacterial Consortium; Maximum Quantum Yield; Coral Skeleton;
D O I
暂无
中图分类号
学科分类号
摘要
This study examined the response of a coral holobiont to thermal stress when the bacterial community was treated with antibiotics. Colonies of Pocillopora damicornis were exposed to broad and narrow-spectrum antibiotics targeting coral-associated α and γ-Proteobacteria. Corals were gradually heated from the control temperature of 26 to 31 °C, and measurements were made of host, zooxanthellar and microbial condition. Antibiotics artificially reduced the abundance and activity of bacteria, but had minimal effect on zooxanthellae photosynthetic efficiency or host tissue protein content. Heated corals without antibiotics showed significant declines in FV/FM, typical of thermal stress. However, heated corals treated with antibiotics showed severe tissue loss in addition to a decline in FV/FM. This study demonstrated that a disruption to the microbial consortium diminished the resilience of the holobiont. Corals exposed to antibiotics under control temperature did not bleach, suggesting that temperature may be an important factor influencing the activity, diversity and ecological function of the holobiont bacterial community.
引用
收藏
页码:1763 / 1771
页数:8
相关论文
共 50 条
  • [21] Microbial Regulation in Gorgonian Corals
    Hunt, Laura R.
    Smith, Stephanie M.
    Downum, Kelsey R.
    Mydlarz, Laura D.
    MARINE DRUGS, 2012, 10 (06): : 1225 - 1243
  • [22] Quinolone-mediated metabolic cross-feeding develops aluminium tolerance in soil microbial consortia
    Ma, Zhiyuan
    Jiang, Meitong
    Liu, Chaoyang
    Wang, Ertao
    Bai, Yang
    Yuan, Mengting Maggie
    Shi, Shengjing
    Zhou, Jizhong
    Ding, Jixian
    Xie, Yimei
    Zhang, Hui
    Yang, Yan
    Shen, Renfang
    Crowther, Thomas W.
    Zhang, Jiabao
    Liang, Yuting
    NATURE COMMUNICATIONS, 2024, 15 (01)
  • [23] Engineering Microbial Consortia towards Bioremediation
    Li, Xianglong
    Wu, Shanghua
    Dong, Yuzhu
    Fan, Haonan
    Bai, Zhihui
    Zhuang, Xuliang
    WATER, 2021, 13 (20)
  • [24] Single strain control of microbial consortia
    Fedorec, Alex J. H.
    Karkaria, Behzad D.
    Sulu, Michael
    Barnes, Chris P.
    NATURE COMMUNICATIONS, 2021, 12 (01)
  • [25] Plant Growth Stimulation by Microbial Consortia
    Santoyo, Gustavo
    Guzman-Guzman, Paulina
    Parra-Cota, Fannie Isela
    Santos-Villalobos, Sergio de los
    Orozco-Mosqueda, Ma. del Carmen
    Glick, Bernard R.
    AGRONOMY-BASEL, 2021, 11 (02):
  • [26] Microbial consortia for multiple pollutant biodegradation
    Hamer, G
    PURE AND APPLIED CHEMISTRY, 1997, 69 (11) : 2343 - 2356
  • [27] Engineering microbial consortia by division of labor
    Garrett W. Roell
    Jian Zha
    Rhiannon R. Carr
    Mattheos A. Koffas
    Stephen S. Fong
    Yinjie J. Tang
    Microbial Cell Factories, 18
  • [28] Communication and Collaboration in Synthetic Microbial Consortia
    Collins, Cynthia H.
    BIOPHYSICAL JOURNAL, 2016, 110 (03) : 11A - 11A
  • [29] MICROBIAL TRANSFORMATION OF STYRENE BY ANAEROBIC CONSORTIA
    GRBICGALIC, D
    CHURCHMANEISEL, N
    MRAKOVIC, I
    JOURNAL OF APPLIED BACTERIOLOGY, 1990, 69 (02): : 247 - 260
  • [30] Engineered microbial consortia: strategies and applications
    Katherine E. Duncker
    Zachary A. Holmes
    Lingchong You
    Microbial Cell Factories, 20