Cargando…

Synergistic Practicing of Rhizobacteria and Silicon Improve Salt Tolerance: Implications from Boosted Oxidative Metabolism, Nutrient Uptake, Growth and Grain Yield in Mung Bean

Plant growth promoting rhizobacteria (PGPR) and silicon (Si) are known for alleviating abiotic stresses in crop plants. In this study, Bacillus drentensis and Enterobacter cloacae strains of PGPR and foliar application of Si were tested for regulating the antioxidant metabolism and nutrient uptake o...

Descripción completa

Detalles Bibliográficos
Autores principales: Mahmood, Sajid, Daur, Ihsanullah, Yasir, Muhammad, Waqas, Muhammad, Hirt, Heribert
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9370704/
https://www.ncbi.nlm.nih.gov/pubmed/35956457
http://dx.doi.org/10.3390/plants11151980
_version_ 1784766888281112576
author Mahmood, Sajid
Daur, Ihsanullah
Yasir, Muhammad
Waqas, Muhammad
Hirt, Heribert
author_facet Mahmood, Sajid
Daur, Ihsanullah
Yasir, Muhammad
Waqas, Muhammad
Hirt, Heribert
author_sort Mahmood, Sajid
collection PubMed
description Plant growth promoting rhizobacteria (PGPR) and silicon (Si) are known for alleviating abiotic stresses in crop plants. In this study, Bacillus drentensis and Enterobacter cloacae strains of PGPR and foliar application of Si were tested for regulating the antioxidant metabolism and nutrient uptake on grain yield of mung bean under irrigation of saline water (3.12 and 7.81 dS m(−1)). Bacterial inoculation and supplemental Si (1 and 2 kg ha(−1)) reduced salinity-induced oxidative stress in mung bean leaves. The improved salt stress tolerance was achieved by enhancing the activities of catalase (45%), peroxidase (43%) and ascorbate peroxidase (48%), while decreasing malondialdehyde levels (57%). Enhanced nutrient uptake of magnesium 1.85 mg g(−1), iron 7 mg kg(−1), zinc 49.66 mg kg(−1) and copper 12.92 mg kg(−1) in mung bean seeds was observed with foliar application of Si and PGPR inoculation. Biomass (7.75 t ha(−1)), number of pods per plant (16.02) and 1000 seed weight (60.95 g) of plants treated with 2 kg Si ha(−1) and B. drentensis clearly outperformed treatments with Si or PGPR alone. In conclusion, application of Si and PGPR enhances mung bean productivity under saline conditions, thereby helping exploitation of agriculture in low productive areas.
format Online
Article
Text
id pubmed-9370704
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-93707042022-08-12 Synergistic Practicing of Rhizobacteria and Silicon Improve Salt Tolerance: Implications from Boosted Oxidative Metabolism, Nutrient Uptake, Growth and Grain Yield in Mung Bean Mahmood, Sajid Daur, Ihsanullah Yasir, Muhammad Waqas, Muhammad Hirt, Heribert Plants (Basel) Article Plant growth promoting rhizobacteria (PGPR) and silicon (Si) are known for alleviating abiotic stresses in crop plants. In this study, Bacillus drentensis and Enterobacter cloacae strains of PGPR and foliar application of Si were tested for regulating the antioxidant metabolism and nutrient uptake on grain yield of mung bean under irrigation of saline water (3.12 and 7.81 dS m(−1)). Bacterial inoculation and supplemental Si (1 and 2 kg ha(−1)) reduced salinity-induced oxidative stress in mung bean leaves. The improved salt stress tolerance was achieved by enhancing the activities of catalase (45%), peroxidase (43%) and ascorbate peroxidase (48%), while decreasing malondialdehyde levels (57%). Enhanced nutrient uptake of magnesium 1.85 mg g(−1), iron 7 mg kg(−1), zinc 49.66 mg kg(−1) and copper 12.92 mg kg(−1) in mung bean seeds was observed with foliar application of Si and PGPR inoculation. Biomass (7.75 t ha(−1)), number of pods per plant (16.02) and 1000 seed weight (60.95 g) of plants treated with 2 kg Si ha(−1) and B. drentensis clearly outperformed treatments with Si or PGPR alone. In conclusion, application of Si and PGPR enhances mung bean productivity under saline conditions, thereby helping exploitation of agriculture in low productive areas. MDPI 2022-07-29 /pmc/articles/PMC9370704/ /pubmed/35956457 http://dx.doi.org/10.3390/plants11151980 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Mahmood, Sajid
Daur, Ihsanullah
Yasir, Muhammad
Waqas, Muhammad
Hirt, Heribert
Synergistic Practicing of Rhizobacteria and Silicon Improve Salt Tolerance: Implications from Boosted Oxidative Metabolism, Nutrient Uptake, Growth and Grain Yield in Mung Bean
title Synergistic Practicing of Rhizobacteria and Silicon Improve Salt Tolerance: Implications from Boosted Oxidative Metabolism, Nutrient Uptake, Growth and Grain Yield in Mung Bean
title_full Synergistic Practicing of Rhizobacteria and Silicon Improve Salt Tolerance: Implications from Boosted Oxidative Metabolism, Nutrient Uptake, Growth and Grain Yield in Mung Bean
title_fullStr Synergistic Practicing of Rhizobacteria and Silicon Improve Salt Tolerance: Implications from Boosted Oxidative Metabolism, Nutrient Uptake, Growth and Grain Yield in Mung Bean
title_full_unstemmed Synergistic Practicing of Rhizobacteria and Silicon Improve Salt Tolerance: Implications from Boosted Oxidative Metabolism, Nutrient Uptake, Growth and Grain Yield in Mung Bean
title_short Synergistic Practicing of Rhizobacteria and Silicon Improve Salt Tolerance: Implications from Boosted Oxidative Metabolism, Nutrient Uptake, Growth and Grain Yield in Mung Bean
title_sort synergistic practicing of rhizobacteria and silicon improve salt tolerance: implications from boosted oxidative metabolism, nutrient uptake, growth and grain yield in mung bean
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9370704/
https://www.ncbi.nlm.nih.gov/pubmed/35956457
http://dx.doi.org/10.3390/plants11151980
work_keys_str_mv AT mahmoodsajid synergisticpracticingofrhizobacteriaandsiliconimprovesalttoleranceimplicationsfromboostedoxidativemetabolismnutrientuptakegrowthandgrainyieldinmungbean
AT daurihsanullah synergisticpracticingofrhizobacteriaandsiliconimprovesalttoleranceimplicationsfromboostedoxidativemetabolismnutrientuptakegrowthandgrainyieldinmungbean
AT yasirmuhammad synergisticpracticingofrhizobacteriaandsiliconimprovesalttoleranceimplicationsfromboostedoxidativemetabolismnutrientuptakegrowthandgrainyieldinmungbean
AT waqasmuhammad synergisticpracticingofrhizobacteriaandsiliconimprovesalttoleranceimplicationsfromboostedoxidativemetabolismnutrientuptakegrowthandgrainyieldinmungbean
AT hirtheribert synergisticpracticingofrhizobacteriaandsiliconimprovesalttoleranceimplicationsfromboostedoxidativemetabolismnutrientuptakegrowthandgrainyieldinmungbean