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'Follow the Water': Microbial Water Acquisition in Desert Soils.

Authors :
Cowan DA
Cary SC
DiRuggiero J
Eckardt F
Ferrari B
Hopkins DW
Lebre PH
Maggs-Kölling G
Pointing SB
Ramond JB
Tribbia D
Warren-Rhodes K
Source :
Microorganisms [Microorganisms] 2023 Jun 27; Vol. 11 (7). Date of Electronic Publication: 2023 Jun 27.
Publication Year :
2023

Abstract

Water availability is the dominant driver of microbial community structure and function in desert soils. However, these habitats typically only receive very infrequent large-scale water inputs (e.g., from precipitation and/or run-off). In light of recent studies, the paradigm that desert soil microorganisms are largely dormant under xeric conditions is questionable. Gene expression profiling of microbial communities in desert soils suggests that many microbial taxa retain some metabolic functionality, even under severely xeric conditions. It, therefore, follows that other, less obvious sources of water may sustain the microbial cellular and community functionality in desert soil niches. Such sources include a range of precipitation and condensation processes, including rainfall, snow, dew, fog, and nocturnal distillation, all of which may vary quantitatively depending on the location and geomorphological characteristics of the desert ecosystem. Other more obscure sources of bioavailable water may include groundwater-derived water vapour, hydrated minerals, and metabolic hydro-genesis. Here, we explore the possible sources of bioavailable water in the context of microbial survival and function in xeric desert soils. With global climate change projected to have profound effects on both hot and cold deserts, we also explore the potential impacts of climate-induced changes in water availability on soil microbiomes in these extreme environments.

Details

Language :
English
ISSN :
2076-2607
Volume :
11
Issue :
7
Database :
MEDLINE
Journal :
Microorganisms
Publication Type :
Academic Journal
Accession number :
37512843
Full Text :
https://doi.org/10.3390/microorganisms11071670