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Local root status: a neglected bio-factor that regulates the home-field advantage of leaf litter decomposition
Authors:" target="_blank">Kai Tian  " target="_blank">Xiangshi Kong  " target="_blank">Jianguo Gao  Yanyan Jia  " target="_blank">Hong Lin  " target="_blank">Zaihua He  Yanli Ji  Zhanlin Bei  Xingjun Tian
Institution:1.Department of Sustainable Agricultural Sciences,Rothamsted Research,Hertfordshire,UK;2.Department of Sustainable Agricultural Sciences,Rothamsted Research,Okehampton,UK;3.Inria/IRISA GenScale, Campus de Beaulieu,Rennes,France
Abstract:

Background and aims

Bacterial Non-Specific Acid Phosphatase (NSAP) enzymes are capable of dephosphorylating diverse organic phosphoesters but are rarely studied: their distribution in natural and managed environments is poorly understood. The aim of this study was to generate new insight into the environmental distribution of NSAPs and establish their potential global relevance to cycling of organic phosphorus.

Methods

We employed bioinformatic tools to determine NSAP diversity and subcellular localization in microbial genomes; used the corresponding NSAP gene sequences to census metagenomes from diverse ecosystems; studied the effect of long-term land management upon NSAP diversity and abundance.

Results

Periplasmic class B NSAPs are poorly represented in marine and terrestrial environments, reflecting their association with enteric and pathogenic bacteria. Periplasmic class A and outer membrane-associated class C NSAPs are cosmopolitan. NSAPs are more abundant in marine than terrestrial ecosystems and class C more abundant than class A genes, except in an acidic peat where class A genes dominate. A clear effect of land management upon gene abundance was identified.

Conclusions

NSAP genes are cosmopolitan. Class C genes are more widely distributed: their association with the outer-membrane of cells gives them a clear role in the cycling of organic phosphorus, particularly in soils.
Keywords:
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