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植物促生芽孢杆菌通过触发抗氧化防御系统来协同缓解水稻基因型的水分胁迫。

Plant Growth-Promoting Bacillus sp. Cahoots Moisture Stress Alleviation in Rice Genotypes by Triggering Antioxidant Defense System.

机构信息

Biocatalysts lab., Department of Agricultural Microbiology, Tamil Nadu Agricultural University, Coimbatore, Tamil Nadu, India.

Biocatalysts lab., Department of Agricultural Microbiology, Tamil Nadu Agricultural University, Coimbatore, Tamil Nadu, India.

出版信息

Microbiol Res. 2020 Oct;239:126518. doi: 10.1016/j.micres.2020.126518. Epub 2020 Jun 2.

Abstract

Drought is considered one of the major obstacles for agricultural productivity worldwide such that greater efforts are required to boost crop production under this stress. One of the methods to overcome this obstacle is to harness the potential of microbe-induced systemic tolerance against moisture stress. The present work evaluated the potential role of two bacterial strains, namely Bacillus altitudinis FD48 and Bacillus methylotrophicus RABA6 and their combination as a co-inoculant for promoting plant growth and moisture stress resilience in two contrast cultivars of Oryza sativa L: CO51 (moderately drought tolerant) and IR64 (drought susceptible) under conditions of terminal moisture stress. B. altitudinis FD48- and B. methylotrophicus-primed rice seeds (CO51 and IR64) significantly influenced the source-sink relationship and reduced the relative water content (RWC). While photosynthetic pigments and proline showed a steady increase owing to the co-inoculant priming, the activity of reactive oxygen species (ROS)-quenching enzymes, such as catalase, superoxide dismutase, ascorbate peroxidase, and peroxidase constitutively increased in plants treated with co-inoculant besides,reducing the trend during the recovery phase. The productive tillers and grain weight were further augmented by the co-inoculant under induced moisture stress. Moreover, the results revealed a 14% and 19% increase in the harvest index (HI) in CO51 and IR64, respectively, attenuated with Bacillus sp. as a co-inoculant. The key mechanism in augmenting energy metabolism by B. altitudinis FD48 and B. methylotrophicus RABA6 could be attributed to the regulation of ROS-quenching enzymes that aid in moisture stress resilience. The results of the present study conclude that these strains may be used as a novel bioinoculant for enhancing the drought tolerance in rice grown under moisture stress regimes.

摘要

干旱被认为是全球农业生产力的主要障碍之一,因此需要加大努力,提高作物在这种胁迫下的产量。克服这一障碍的方法之一是利用微生物诱导的系统耐湿性潜力。本研究评估了两种细菌菌株(Bacillus altitudinis FD48 和 Bacillus methylotrophicus RABA6)及其组合作为共接种体在终端水分胁迫条件下促进两种对照水稻品种(中度耐旱 CO51 和耐旱 IR64)生长和水分胁迫抗性的潜在作用。B. altitudinis FD48 和 B. methylotrophicus 引发的水稻种子(CO51 和 IR64)显著影响源库关系并降低相对水含量(RWC)。虽然由于共接种体引发,光合色素和脯氨酸含量稳定增加,但活性氧(ROS)清除酶的活性,如过氧化氢酶、超氧化物歧化酶、抗坏血酸过氧化物酶和过氧化物酶,在处理过共接种体的植物中持续增加,此外,在恢复阶段减少了这种趋势。在诱导水分胁迫下,共接种体进一步增加了生产性分蘖和粒重。此外,结果表明,在 CO51 和 IR64 中,收获指数(HI)分别增加了 14%和 19%,这一数值随着 Bacillus sp. 作为共接种体而减弱。B. altitudinis FD48 和 B. methylotrophicus RABA6 通过增加能量代谢的关键机制可以归因于调节 ROS 清除酶,这有助于提高耐湿性。本研究的结果表明,这些菌株可作为一种新型生物接种体,用于提高在水分胁迫条件下生长的水稻的耐旱性。

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