4.8 Article

Latent functional diversity may accelerate microbial community responses to temperature fluctuations

期刊

ELIFE
卷 11, 期 -, 页码 -

出版社

eLIFE SCIENCES PUBL LTD
DOI: 10.7554/eLife.80867

关键词

bacteria; temperature; diversity; thermal response; Other

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资金

  1. BBSRC DTP scholarship
  2. NERC
  3. [BB/J014575/1]
  4. [NE/M020843/1]
  5. [NE/S000348/1]

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The response of complex microbial communities to climatic fluctuations is still not well understood. This study investigated how bacterial communities in soil can respond to changes in environmental temperature through a combination of phenotypic plasticity and species sorting. The results showed that distinct communities with different phylogenetic and functional characteristics emerged at different temperatures, with K-strategist taxa favored under cooler conditions and r-strategist taxa favored under warmer conditions. The study also found that the dynamic emergence of distinct communities across a wide range of temperatures is driven by the resuscitation of latent functional diversity.
How complex microbial communities respond to climatic fluctuations remains an open question. Due to their relatively short generation times and high functional diversity, microbial populations harbor great potential to respond as a community through a combination of strain-level phenotypic plasticity, adaptation, and species sorting. However, the relative importance of these mechanisms remains unclear. We conducted a laboratory experiment to investigate the degree to which bacterial communities can respond to changes in environmental temperature through a combination of phenotypic plasticity and species sorting alone. We grew replicate soil communities from a single location at six temperatures between 4 & DEG;C and 50 & DEG;C. We found that phylogenetically and functionally distinct communities emerge at each of these temperatures, with K-strategist taxa favored under cooler conditions and r-strategist taxa under warmer conditions. We show that this dynamic emergence of distinct communities across a wide range of temperatures (in essence, community-level adaptation) is driven by the resuscitation of latent functional diversity: the parent community harbors multiple strains pre-adapted to different temperatures that are able to 'switch on' at their preferred temperature without immigration or adaptation. Our findings suggest that microbial community function in nature is likely to respond rapidly to climatic temperature fluctuations through shifts in species composition by resuscitation of latent functional diversity.

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