Role of the Global Fitness Regulator Genes on the Osmotic Tolerance Ability and Salinity Hazard Alleviation of Trichoderma asperellum GDFS 1009 for Sustainable Agriculture.

Valliappan Karuppiah, Xifen Zhang, Zhixiang Lu, Dazhi Hao, Jie Chen
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Abstract

Velvet family proteins are global regulators of fungal growth and development. Here, we reported the role of Vel1 and Lae1 from T. asperellum in osmotic tolerance. Deletion of the Vel1 and Lae1 genes led to the retardation of vegetative mycelial growth under saline conditions. The strain carrying the overexpression locus of the Vel1 and Lae1 genes was highly resistant to oxidative stress by upregulating the enzymes and genes involved in antioxidant activity. Major physiological changes in the cell wall and vacuoles occurred under high saline conditions. The Vel1 and Lae1 overexpression strains increased cell wall thickness and the number of vacuoles, which seems to lead to an increase of the osmolyte content of glycerol and proline. The absorption of Na+ content in the vacuole of the Vel1 and Lae1 overexpression strains was increased, while the absorption of Na+ was impaired in the Vel1 and Lae1 knock out strains, in which the Na+ was localized in the cell wall membrane. This result supported the significant correlation of the expression of genes with the ionic transportation in T. asperellum. Maize root colonization by the Vel1 and Lae1 gene overexpression strain was increased, which would mitigate the stress caused by the absorption of Na+ in the maize roots and increased the plant growth. Our results highlighted the importance of Vel1 and Lae1 proteins to the salinity stress tolerance of T. asperellum and the mitigation of Na+ stress to plants for sustainable agriculture.

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全球适应度调节基因在曲霉GDFS 1009渗透耐受能力和减轻盐碱危害中的作用
丝绒家族蛋白是真菌生长发育的全球性调节因子。本文报道了曲霉Vel1和Lae1在渗透耐受性中的作用。Vel1和Lae1基因的缺失导致营养菌丝在盐水条件下生长迟缓。携带Vel1和Lae1基因过表达位点的菌株通过上调参与抗氧化活性的酶和基因,对氧化应激具有较高的抗性。在高盐条件下,细胞壁和液泡发生了主要的生理变化。Vel1和Lae1过表达菌株增加了细胞壁厚度和液泡数量,这可能导致甘油和脯氨酸的渗透物含量增加。Vel1和Lae1过表达菌株液泡对Na+含量的吸收增加,而Vel1和Lae1敲除菌株对Na+的吸收受损,其中Na+定位在细胞壁膜上。这一结果支持了曲霉中基因表达与离子运输的显著相关性。Vel1和Lae1基因过表达菌株增加了玉米根系定殖,减轻了玉米根系吸收Na+带来的胁迫,促进了植株生长。我们的研究结果强调了Vel1和Lae1蛋白在曲霉耐盐胁迫和减轻Na+胁迫对植物可持续农业的重要性。
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