Literature DB >> 34508284

Towards sustainable agriculture: rhizosphere microbiome engineering.

Saira Bano1, Xiaogang Wu1, Xiaojun Zhang2.   

Abstract

Soil microbiomes are extremely complex, with dense networks of interconnected microbial species underpinning vital functions for the ecosystem. In advanced agricultural research, rhizosphere microbiome engineering is gaining much attention, as the microbial community has been acknowledged to be a crucial partner of associated plants for their health fitness and yield. However, single or combined effects of a wide range of soil biotic and abiotic factors impact the success of engineered microbiomes, as these microbial communities exhibit uneven structural and functional networks in diverse soil conditions. Therefore, once a deep understanding of major influential factors and corresponding microbial responses is developed, the microbiome can be more effectively manipulated and optimized for cropping benefits. In this mini-review, we propose the concept of a microbiome-mediated smart agriculture system (MiMSAS). We summarize some of the advanced strategies for engineering the rhizosphere microbiome to withstand the stresses imposed by dominant abiotic and biotic factors. This work will help the scientific community gain more clarity about engineered microbiome technologies for increasing crop productivity and environmental sustainability.Key points• Individual or combined effects of soil biotic and abiotic variables hamper the implementation of engineered microbiome technologies in the field.• As a traditional approach, reduced-tillage practices coinciding with biofertilization can promote a relatively stable functional microbiome.• Increasing the complexity and efficiency of the synthetic microbiome is one way to improve its field-application success rate.• Plant genome editing/engineering is a promising approach for recruiting desired microbiomes for agricultural benefit.
© 2021. The Author(s), under exclusive licence to Springer-Verlag GmbH Germany, part of Springer Nature.

Entities:  

Keywords:  Biotic and abiotic factors; Microbiome engineering; Plant engineering; Rhizosphere microbiome; Synthetic microbiome

Mesh:

Year:  2021        PMID: 34508284     DOI: 10.1007/s00253-021-11555-w

Source DB:  PubMed          Journal:  Appl Microbiol Biotechnol        ISSN: 0175-7598            Impact factor:   5.560


  112 in total

1.  Functional overlap of the Arabidopsis leaf and root microbiota.

Authors:  Yang Bai; Daniel B Müller; Girish Srinivas; Ruben Garrido-Oter; Eva Potthoff; Matthias Rott; Nina Dombrowski; Philipp C Münch; Stijn Spaepen; Mitja Remus-Emsermann; Bruno Hüttel; Alice C McHardy; Julia A Vorholt; Paul Schulze-Lefert
Journal:  Nature       Date:  2015-12-02       Impact factor: 49.962

2.  Responses of soil bacterial and fungal communities to extreme desiccation and rewetting.

Authors:  Romain L Barnard; Catherine A Osborne; Mary K Firestone
Journal:  ISME J       Date:  2013-07-04       Impact factor: 10.302

3.  Halotolerant PGPRs Prevent Major Shifts in Indigenous Microbial Community Structure Under Salinity Stress.

Authors:  Nidhi Bharti; Deepti Barnawal; Deepamala Maji; Alok Kalra
Journal:  Microb Ecol       Date:  2014-12-28       Impact factor: 4.552

4.  Factoring Ecological, Societal, and Economic Considerations into Inoculant Development.

Authors:  Terrence H Bell; Laura M Kaminsky; Beth K Gugino; John E Carlson; Rondy J Malik; Kevin L Hockett; Ryan V Trexler
Journal:  Trends Biotechnol       Date:  2019-06       Impact factor: 19.536

5.  Structure and function of the global topsoil microbiome.

Authors:  Mohammad Bahram; Falk Hildebrand; Sofia K Forslund; Jennifer L Anderson; Nadejda A Soudzilovskaia; Peter M Bodegom; Johan Bengtsson-Palme; Sten Anslan; Luis Pedro Coelho; Helery Harend; Jaime Huerta-Cepas; Marnix H Medema; Mia R Maltz; Sunil Mundra; Pål Axel Olsson; Mari Pent; Sergei Põlme; Shinichi Sunagawa; Martin Ryberg; Leho Tedersoo; Peer Bork
Journal:  Nature       Date:  2018-08-01       Impact factor: 49.962

6.  Nutrient- and Dose-Dependent Microbiome-Mediated Protection against a Plant Pathogen.

Authors:  Maureen Berg; Britt Koskella
Journal:  Curr Biol       Date:  2018-07-26       Impact factor: 10.834

Review 7.  Plant Microbiome Engineering: Expected Benefits for Improved Crop Growth and Resilience.

Authors:  Inessa Arif; Maria Batool; Peer M Schenk
Journal:  Trends Biotechnol       Date:  2020-05-22       Impact factor: 19.536

8.  Disease-induced assemblage of a plant-beneficial bacterial consortium.

Authors:  Roeland L Berendsen; Gilles Vismans; Ke Yu; Yang Song; Ronnie de Jonge; Wilco P Burgman; Mette Burmølle; Jakob Herschend; Peter A H M Bakker; Corné M J Pieterse
Journal:  ISME J       Date:  2018-03-08       Impact factor: 10.302

Review 9.  Plant Growth-Promoting Rhizobacteria: Context, Mechanisms of Action, and Roadmap to Commercialization of Biostimulants for Sustainable Agriculture.

Authors:  Rachel Backer; J Stefan Rokem; Gayathri Ilangumaran; John Lamont; Dana Praslickova; Emily Ricci; Sowmyalakshmi Subramanian; Donald L Smith
Journal:  Front Plant Sci       Date:  2018-10-23       Impact factor: 5.753

10.  Characterizing both bacteria and fungi improves understanding of the Arabidopsis root microbiome.

Authors:  Joy Bergelson; Jana Mittelstrass; Matthew W Horton
Journal:  Sci Rep       Date:  2019-01-10       Impact factor: 4.379

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  2 in total

1.  Field evaluation of the effect of Aspergillus niger on lettuce growth using conventional measurements and a high-throughput phenotyping method based on aerial images.

Authors:  Patrick Vieira Silva; Lucas Medeiros Pereira; Gustavo de Souza Marques Mundim; Gabriel Mascarenhas Maciel; Rodrigo Bezerra de Araújo Gallis; Gilberto de Oliveira Mendes
Journal:  PLoS One       Date:  2022-09-19       Impact factor: 3.752

Review 2.  Perspectives on Converting Keratin-Containing Wastes Into Biofertilizers for Sustainable Agriculture.

Authors:  Qingxin Li
Journal:  Front Microbiol       Date:  2022-06-20       Impact factor: 6.064

  2 in total

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