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盐敏感途径基因在甘蔗盐胁迫下的特征分析。

Characterization of the Salt Overly Sensitive pathway genes in sugarcane under salinity stress.

机构信息

Indian Council of Agricultural Research, Sugarcane Breeding Institute, Coimbatore, India.

出版信息

Physiol Plant. 2021 Apr;171(4):677-687. doi: 10.1111/ppl.13245. Epub 2020 Nov 2.

DOI:10.1111/ppl.13245
PMID:33063359
Abstract

The Salt Overly Sensitive (SOS) pathway is a crucial ion homeostasis process in crop plants trafficking excess Na ions for elimination/sequestration. The SOS pathway genes SOS1 (Na /H antiporter), SOS2 (CIPK), and SOS3 (CBL) associated with ion homeostasis were isolated and characterized in the sugarcane clone Co 85019. The isolated genes had a coding region of 1086, 904, and 636 bp, respectively. A nucleotide blast analysis of the isolated SOS gene sequences showed strong similarity with previous genes found to be involved in the active functioning of the SOS pathway for ion homeostasis conferring salinity tolerance in sugarcane. The analysis of tissue specific gene expression of the identified SOS genes revealed a significant linear increase in the leaves under the first 96 h of salt stress (2.5- to 21.6-fold) in the tolerant genotype Co 85019, while the expression in the roots showed a linear increase up to 48 h and thereafter a gradual decline. The expression of SOS genes in the susceptible genotype (Co 97010) was significantly lower than in the tolerant genotype. Tissue ion content analysis also revealed a differential accumulation of Na and K ions in the contrasting sugarcane genotypes (Co 85019 and Co 97010) and this corroborates the varied expressions of SOS genes between the tolerant and susceptible varieties under salinity. Genome-wide analysis of identified SOS family genes showed the homologs in Saccharum complex members, Sorghum bicolor and Zea mays, and this verifies a close genetic similarity among these genera.

摘要

盐过度敏感(SOS)途径是作物中一种重要的离子稳态过程,它将过量的钠离子运输到细胞外进行排除/隔离。在甘蔗克隆 Co 85019 中,分离并鉴定了与离子稳态相关的 SOS 途径基因 SOS1(Na+/H 反向转运蛋白)、SOS2(CIPK)和 SOS3(CBL)。分离得到的基因编码区分别为 1086、904 和 636bp。对分离得到的 SOS 基因序列的核苷酸序列分析表明,与先前发现的参与 SOS 途径活性功能的基因具有很强的相似性,这些基因在甘蔗中对离子稳态和耐盐性具有重要作用。鉴定的 SOS 基因在组织中的特异性表达分析表明,在耐盐基因型 Co 85019 中,叶片在盐胁迫的前 96 小时内的表达显著线性增加(2.5-21.6 倍),而根系的表达在 48 小时内线性增加,之后逐渐下降。在易感基因型(Co 97010)中,SOS 基因的表达明显低于耐盐基因型。组织离子含量分析也表明,在不同的甘蔗基因型(Co 85019 和 Co 97010)中,Na+和 K+离子的积累存在差异,这与 SOS 基因在耐盐和易感品种之间的表达存在差异相吻合。对鉴定的 SOS 家族基因的全基因组分析表明,在甘蔗复合体成员 Saccharum complex、高粱和玉米中存在同源基因,这证实了这些属之间具有密切的遗传相似性。

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