Silicon and soil microorganisms improve rhizospheric soil health with bacterial community, plant growth, performance and yield
The interaction of silicon and soil microorganisms stimulates crop enhancement to ensure sustainable agriculture. Silicon may potentially increase nutrient availability in rhizosphere with improved plants’ growth, development as it does not produce phytotoxicity. The rhizospheric microbiome accommod...
Main Authors: | , , , , , , , , |
---|---|
Format: | Article |
Language: | English |
Published: |
Taylor & Francis Group
2022-12-01
|
Series: | Plant Signaling & Behavior |
Subjects: | |
Online Access: | http://dx.doi.org/10.1080/15592324.2022.2104004 |
_version_ | 1797351883893899264 |
---|---|
author | Krishan K. Verma Xiu-Peng Song Dong-Mei Li Munna Singh Jian-Ming Wu Rajesh Kumar Singh Anjney Sharma Bao-Qing Zhang Yang-Rui Li |
author_facet | Krishan K. Verma Xiu-Peng Song Dong-Mei Li Munna Singh Jian-Ming Wu Rajesh Kumar Singh Anjney Sharma Bao-Qing Zhang Yang-Rui Li |
author_sort | Krishan K. Verma |
collection | DOAJ |
description | The interaction of silicon and soil microorganisms stimulates crop enhancement to ensure sustainable agriculture. Silicon may potentially increase nutrient availability in rhizosphere with improved plants’ growth, development as it does not produce phytotoxicity. The rhizospheric microbiome accommodates a variety of microbial species that live in a small area of soil directly associated with the hidden half plants’ system. Plant growth-promoting rhizobacteria (PGPR) play a major role in plant development in response to adverse climatic conditions. PGPRs may enhance the growth, quality, productivity in variety of crops, and mitigate abiotic stresses by reprogramming stress-induced physiological variations in plants via different mechanisms, such as synthesis of indole-3-acetic acid, 1-aminocyclopropane-1-carboxylate deaminase, exopolysaccharides, volatile organic compounds, atmospheric nitrogen fixation, and phosphate solubilization. Our article eye upon interactions of silicon and plant microbes which seems to be an opportunity for sustainable agriculture for series of crops and cropping systems in years to come, essential to safeguard the food security for masses. |
first_indexed | 2024-03-08T13:08:10Z |
format | Article |
id | doaj.art-4286c4de77004be2ade7ac42834fd47c |
institution | Directory Open Access Journal |
issn | 1559-2316 1559-2324 |
language | English |
last_indexed | 2024-03-08T13:08:10Z |
publishDate | 2022-12-01 |
publisher | Taylor & Francis Group |
record_format | Article |
series | Plant Signaling & Behavior |
spelling | doaj.art-4286c4de77004be2ade7ac42834fd47c2024-01-18T15:58:22ZengTaylor & Francis GroupPlant Signaling & Behavior1559-23161559-23242022-12-0117110.1080/15592324.2022.21040042104004Silicon and soil microorganisms improve rhizospheric soil health with bacterial community, plant growth, performance and yieldKrishan K. Verma0Xiu-Peng Song1Dong-Mei Li2Munna Singh3Jian-Ming Wu4Rajesh Kumar Singh5Anjney Sharma6Bao-Qing Zhang7Yang-Rui Li8Key Laboratory of Sugarcane Biotechnology and Genetic Improvement (Guangxi), Ministry of Agriculture and Rural Affairs/Guangxi Key Laboratory of Sugarcane Genetic Improvement/Sugarcane Research Institute, Guangxi Academy of Agricultural Sciences/ Sugarcane Research Center, Chinese Academy of Agricultural Sciences, Nanning, ChinaKey Laboratory of Sugarcane Biotechnology and Genetic Improvement (Guangxi), Ministry of Agriculture and Rural Affairs/Guangxi Key Laboratory of Sugarcane Genetic Improvement/Sugarcane Research Institute, Guangxi Academy of Agricultural Sciences/ Sugarcane Research Center, Chinese Academy of Agricultural Sciences, Nanning, ChinaKey Laboratory of Sugarcane Biotechnology and Genetic Improvement (Guangxi), Ministry of Agriculture and Rural Affairs/Guangxi Key Laboratory of Sugarcane Genetic Improvement/Sugarcane Research Institute, Guangxi Academy of Agricultural Sciences/ Sugarcane Research Center, Chinese Academy of Agricultural Sciences, Nanning, ChinaUniversity of LucknowKey Laboratory of Sugarcane Biotechnology and Genetic Improvement (Guangxi), Ministry of Agriculture and Rural Affairs/Guangxi Key Laboratory of Sugarcane Genetic Improvement/Sugarcane Research Institute, Guangxi Academy of Agricultural Sciences/ Sugarcane Research Center, Chinese Academy of Agricultural Sciences, Nanning, ChinaKey Laboratory of Sugarcane Biotechnology and Genetic Improvement (Guangxi), Ministry of Agriculture and Rural Affairs/Guangxi Key Laboratory of Sugarcane Genetic Improvement/Sugarcane Research Institute, Guangxi Academy of Agricultural Sciences/ Sugarcane Research Center, Chinese Academy of Agricultural Sciences, Nanning, ChinaKey Laboratory of Sugarcane Biotechnology and Genetic Improvement (Guangxi), Ministry of Agriculture and Rural Affairs/Guangxi Key Laboratory of Sugarcane Genetic Improvement/Sugarcane Research Institute, Guangxi Academy of Agricultural Sciences/ Sugarcane Research Center, Chinese Academy of Agricultural Sciences, Nanning, ChinaKey Laboratory of Sugarcane Biotechnology and Genetic Improvement (Guangxi), Ministry of Agriculture and Rural Affairs/Guangxi Key Laboratory of Sugarcane Genetic Improvement/Sugarcane Research Institute, Guangxi Academy of Agricultural Sciences/ Sugarcane Research Center, Chinese Academy of Agricultural Sciences, Nanning, ChinaKey Laboratory of Sugarcane Biotechnology and Genetic Improvement (Guangxi), Ministry of Agriculture and Rural Affairs/Guangxi Key Laboratory of Sugarcane Genetic Improvement/Sugarcane Research Institute, Guangxi Academy of Agricultural Sciences/ Sugarcane Research Center, Chinese Academy of Agricultural Sciences, Nanning, ChinaThe interaction of silicon and soil microorganisms stimulates crop enhancement to ensure sustainable agriculture. Silicon may potentially increase nutrient availability in rhizosphere with improved plants’ growth, development as it does not produce phytotoxicity. The rhizospheric microbiome accommodates a variety of microbial species that live in a small area of soil directly associated with the hidden half plants’ system. Plant growth-promoting rhizobacteria (PGPR) play a major role in plant development in response to adverse climatic conditions. PGPRs may enhance the growth, quality, productivity in variety of crops, and mitigate abiotic stresses by reprogramming stress-induced physiological variations in plants via different mechanisms, such as synthesis of indole-3-acetic acid, 1-aminocyclopropane-1-carboxylate deaminase, exopolysaccharides, volatile organic compounds, atmospheric nitrogen fixation, and phosphate solubilization. Our article eye upon interactions of silicon and plant microbes which seems to be an opportunity for sustainable agriculture for series of crops and cropping systems in years to come, essential to safeguard the food security for masses.http://dx.doi.org/10.1080/15592324.2022.2104004plant microbesenvironmental pressureplant growth-developmentproductivitystress resistancesustainable agriculturesilicon |
spellingShingle | Krishan K. Verma Xiu-Peng Song Dong-Mei Li Munna Singh Jian-Ming Wu Rajesh Kumar Singh Anjney Sharma Bao-Qing Zhang Yang-Rui Li Silicon and soil microorganisms improve rhizospheric soil health with bacterial community, plant growth, performance and yield Plant Signaling & Behavior plant microbes environmental pressure plant growth-development productivity stress resistance sustainable agriculture silicon |
title | Silicon and soil microorganisms improve rhizospheric soil health with bacterial community, plant growth, performance and yield |
title_full | Silicon and soil microorganisms improve rhizospheric soil health with bacterial community, plant growth, performance and yield |
title_fullStr | Silicon and soil microorganisms improve rhizospheric soil health with bacterial community, plant growth, performance and yield |
title_full_unstemmed | Silicon and soil microorganisms improve rhizospheric soil health with bacterial community, plant growth, performance and yield |
title_short | Silicon and soil microorganisms improve rhizospheric soil health with bacterial community, plant growth, performance and yield |
title_sort | silicon and soil microorganisms improve rhizospheric soil health with bacterial community plant growth performance and yield |
topic | plant microbes environmental pressure plant growth-development productivity stress resistance sustainable agriculture silicon |
url | http://dx.doi.org/10.1080/15592324.2022.2104004 |
work_keys_str_mv | AT krishankverma siliconandsoilmicroorganismsimproverhizosphericsoilhealthwithbacterialcommunityplantgrowthperformanceandyield AT xiupengsong siliconandsoilmicroorganismsimproverhizosphericsoilhealthwithbacterialcommunityplantgrowthperformanceandyield AT dongmeili siliconandsoilmicroorganismsimproverhizosphericsoilhealthwithbacterialcommunityplantgrowthperformanceandyield AT munnasingh siliconandsoilmicroorganismsimproverhizosphericsoilhealthwithbacterialcommunityplantgrowthperformanceandyield AT jianmingwu siliconandsoilmicroorganismsimproverhizosphericsoilhealthwithbacterialcommunityplantgrowthperformanceandyield AT rajeshkumarsingh siliconandsoilmicroorganismsimproverhizosphericsoilhealthwithbacterialcommunityplantgrowthperformanceandyield AT anjneysharma siliconandsoilmicroorganismsimproverhizosphericsoilhealthwithbacterialcommunityplantgrowthperformanceandyield AT baoqingzhang siliconandsoilmicroorganismsimproverhizosphericsoilhealthwithbacterialcommunityplantgrowthperformanceandyield AT yangruili siliconandsoilmicroorganismsimproverhizosphericsoilhealthwithbacterialcommunityplantgrowthperformanceandyield |