GSTDTAP  > 气候变化
DOI10.1111/gcb.14342
A meta-analysis of temperature sensitivity as a microbial trait
Alster, Charlotte J.1,2; Weller, Zachary D.1,3; von Fischer, Joseph C.1,2
2018-09-01
发表期刊GLOBAL CHANGE BIOLOGY
ISSN1354-1013
EISSN1365-2486
出版年2018
卷号24期号:9页码:4211-4224
文章类型Article
语种英语
国家USA
英文摘要

Traits-based approaches in microbial ecology provide a valuable way to abstract organismal interaction with the environment and to generate hypotheses about community function. Using macromolecular rate theory (MMRT), we recently identified that temperature sensitivity can be characterized as a distinct microbial trait. As temperature is fundamental in controlling biological reactions, variation in temperature sensitivity across communities, organisms, and processes has the potential to vastly improve understanding of microbial response to climate change. These microbial temperature sensitivity traits include the heat capacity (CP double dagger), temperature optimum (T-opt), and point of maximum temperature sensitivity (TSmax), each of which provide unique insights about organismal response to changes in temperature. In this meta-analysis, we analyzed the distribution of these temperature sensitivity traits from bacteria, fungi, and mixed communities across a variety of biological systems (e.g., soils, oceans, foods, wastewater treatment plants) in order to identify commonalities in temperature responses across these diverse organisms and reaction rates. Our analysis of temperature sensitivity traits from over 350 temperature response curves reveals a wide distribution of temperature sensitivity traits, with T-opt and TSmax well within biological relevant temperatures. We find that traits vary significantly depending on organism type, microbial diversity, source environment, and biological process, with higher temperature sensitivity found in fungi than bacteria and in less diverse systems. Carbon dioxide production was found to be less temperature sensitive than denitrification, suggesting that changes in temperature will have a potentially larger impact on nitrogen-related processes. As climate changes, these results have important implications for basic understanding of the temperature sensitivity of biological reactions and for ecological understanding of species' trait distributions, as well as for improved treatment of temperature sensitivity in models.


英文关键词activation energy Arrhenius ecological theory functional traits macromolecular rate theory microbial trait Q10
领域气候变化 ; 资源环境
收录类别SCI-E
WOS记录号WOS:000441746900027
WOS关键词MACROMOLECULAR RATE THEORY ; ENZYME-CATALYZED RATES ; SOIL RESPIRATION ; BACTERIA ; DEPENDENCE ; DECOMPOSITION ; COMMUNITIES ; RESPONSES ; GROWTH ; ADAPTATION
WOS类目Biodiversity Conservation ; Ecology ; Environmental Sciences
WOS研究方向Biodiversity & Conservation ; Environmental Sciences & Ecology
引用统计
文献类型期刊论文
条目标识符http://119.78.100.173/C666/handle/2XK7JSWQ/17372
专题气候变化
资源环境科学
作者单位1.Colorado State Univ, Dept Biol, Ft Collins, CO 80523 USA;
2.Colorado State Univ, Grad Degree Program Ecol, Ft Collins, CO 80523 USA;
3.Colorado State Univ, Dept Stat, Ft Collins, CO 80523 USA
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GB/T 7714
Alster, Charlotte J.,Weller, Zachary D.,von Fischer, Joseph C.. A meta-analysis of temperature sensitivity as a microbial trait[J]. GLOBAL CHANGE BIOLOGY,2018,24(9):4211-4224.
APA Alster, Charlotte J.,Weller, Zachary D.,&von Fischer, Joseph C..(2018).A meta-analysis of temperature sensitivity as a microbial trait.GLOBAL CHANGE BIOLOGY,24(9),4211-4224.
MLA Alster, Charlotte J.,et al."A meta-analysis of temperature sensitivity as a microbial trait".GLOBAL CHANGE BIOLOGY 24.9(2018):4211-4224.
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