The fungal endophyte Metarhizium anisopliae (MetA1) coordinates salt tolerance mechanisms of rice to enhance growth and yield

生物 开枪 盐度 过氧化氢酶 脯氨酸 渗透调节剂 内生菌 园艺 绿僵菌 农学 植物 抗氧化剂 生物化学 生态学 氨基酸 分生孢子
作者
Md. Zahid Hasan Chowdhury,Mohammad Golam Mostofa,Mahjabin Ferdaous Mim,Md. Ashraful Haque,Mohammad A. Karim,Razia Sultana,Md. Motiar Rohman,A S Bhuiyan,Md. Rahat Bari Rupok,Shah Mohammad Naimul Islam
出处
期刊:Plant Physiology and Biochemistry [Elsevier BV]
卷期号:207: 108328-108328 被引量:15
标识
DOI:10.1016/j.plaphy.2023.108328
摘要

The implementation of salt stress mitigation strategies aided by microorganisms has the potential to improve crop growth and yield. The endophytic fungus Metarhizium anisopliae shows the ability to enhance plant growth and mitigate diverse forms of abiotic stress. We examined the functions of M. anisopliae isolate MetA1 (MA) in promoting salinity resistance by investigating several morphological, physiological, biochemical, and yield features in rice plants. In vitro evaluation demonstrated that rice seeds primed with MA enhanced the growth features of rice plants exposed to 4, 8, and 12 dS/m of salinity for 15 days in an agar medium. A pot experiment was carried out to evaluate the growth and development of MA-primed rice seeds after exposing them to similar levels of salinity. Results indicated MA priming in rice improved shoot and root biomass, photosynthetic pigment contents, leaf succulence, and leaf relative water content. It also significantly decreased Na+/K+ ratios in both shoots and roots and the levels of electrolyte leakage, malondialdehyde, and hydrogen peroxide, while significantly increasing proline content in the leaves. The antioxidant enzymes catalase, glutathione S-transferase, ascorbate peroxidase, and peroxidase, as well as the non-enzymatic antioxidants phenol and flavonoids, were significantly enhanced in MA-colonized plants when compared with MA-unprimed plants under salt stress. The MA-mediated restriction of salt accumulation and improvement in physiological and biochemical mechanisms ultimately contributed to the yield improvement in salt-exposed rice plants. Our findings suggest the potential use of the MA seed priming strategy to improve salt tolerance in rice and perhaps in other crop plants.
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