Functional significance of microbial diversity in arid soils: biological soil crusts and nitrogen fixation as a model system

Author:

Barrón-Sandoval Alberto12,Martiny Jennifer B H2,Pérez-Carbajal Teresa1,Bullock Stephen H3,Leija Alfonso4,Hernández Georgina4,Escalante Ana E1ORCID

Affiliation:

1. Laboratorio Nacional de Ciencias de la Sostenibilidad (LANCIS), Instituto de Ecología, UNAM. Circuito Exterior s/n , junto al Jardín Botánico, Coyacán, Mexico City, 014510, Mexico

2. Department of Ecology and Evolutionary Biology, University of California , 321 Steinhaus Hall, Irvine, CA 92627, United States

3. Department of Conservation Biology, Center for Scientific Research and Higher Education of Ensenada (CICESE) , Ctra. Ensenada-Tijuana No. 3918 , Ensenada, 22860 Baja CA, Mexico

4. Centro de Ciencias Genómicas, Universidad Nacional Autónoma de México , Av, Universidad 1001, 62210 Cuernavaca, Morelos, Mexico

Abstract

Abstract Microbial communities respond to changes in environmental conditions; however, how compositional shifts affect ecosystem processes is still not well-understood and it is often assumed that different microbial communities will function equally under similar environmental conditions. We evaluated this assumption of functional redundancy using biological soil crusts (BSCs) from two arid ecosystems in Mexico with contrasting climate conditions (hot and cold deserts) following an experimental approach both in the field (reciprocal transplants) and in laboratory conditions (common garden), focusing on the community’s composition and potential for nitrogen fixation. Potential of nitrogen fixation was assessed through the acetylene reduction assay. Community composition and diversity was determined with T-RFLPs of nifH gene, high throughput sequencing of 16S rRNA gene amplicons and metagenomic libraries. BSCs tended to show higher potential nitrogen fixation rates when experiencing temperatures more similar to their native environment. Moreover, changes in potential nitrogen fixation, taxonomic and functional community composition, and diversity often depended on an interactive effect of origin of the communities and the environment they experienced. We interpret our results as legacy effects that result from ecological specialization of the BSC communities to their native environment. Overall, we present evidence of nonfunctional redundancy of BSCs in terms of nitrogen fixation.

Funder

National Science Foundation

Publisher

Oxford University Press (OUP)

Subject

Applied Microbiology and Biotechnology,Ecology,Microbiology

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