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综合生理学和转录组测序揭示了盐胁迫下陆地棉和海岛棉之间的差异,以及关键耐盐基因的鉴定。

Integrative physiology and transcriptome sequencing reveal differences between G. hirsutum and G. barbadense in response to salt stress and the identification of key salt tolerance genes.

机构信息

Engineering Research Center of Crop Genetic Improvement and Germplasm Innovation in Henan Province, College of Life Sciences, Henan Normal University, Xinxiang, 453007, China.

Jiangsu Key Laboratory for the Research and Utilization of Plant Resources, Institute of Botany, Jiangsu Province and Chinese Academy of Sciences (Nanjing Botanical Garden Mem. Sun Yat- Sen), Nanjing, 210014, China.

出版信息

BMC Plant Biol. 2024 Aug 21;24(1):787. doi: 10.1186/s12870-024-05515-5.

Abstract

BACKGROUND

Soil salinity is one of the major abiotic stresses that threatens crop growth. Cotton has some degree of salt tolerance, known as the "pioneer crop" of saline-alkali land. Cultivation of cotton is of great significance to the utilization of saline-alkali land and the development of cotton industry. Gossypium hirsutum and G. barbadense, as two major cotton species, are widely cultivated worldwide. However, until recently, the regulatory mechanisms and specific differences of their responses to salt stress have rarely been reported.

RESULTS

In this study, we comprehensively compared the differences in the responses of G. hirsutum acc. TM-1 and G. barbadense cv. Hai7124 to salt stress. The results showed that Hai7124 exhibited better growth than did TM-1 under salt stress, with greater PRO content and antioxidant capability, whereas TM-1 only presented greater K content. Transcriptome analysis revealed significant molecular differences between the two cotton species in response to salt stress. The key pathways of TM-1 induced by salt are mainly related to growth and development, such as porphyrin metabolism, DNA replication, ribosome and photosynthesis. Conversely, the key pathways of Hai7124, such as plant hormone signal transduction, MAPK signaling pathway-plant, and phenylpropanoid biosynthesis, are mainly related to plant defense. Further comparative analyses of differentially expressed genes (DEGs) revealed that antioxidant metabolism, abscisic acid (ABA) and jasmonic acid (JA) signalling pathways were more strongly activated in Hai7124, whereas TM-1 was more active in K transporter-related genes and ethylene (ETH) signalling pathway. These differences underscore the various molecular strategies adopted by the two cotton species to navigate through salt stress, and Hai7124 responded more strongly to salt stress, which explains the potential reasons for the greater salt tolerance of Hai7124. Finally, we identified 217 potential salt tolerance-related genes, 167 of which overlapped with the confidence intervals of significant SNPs identified in previous genome-wide association studies (GWASs), indicating the high reliability of these genes.

CONCLUSIONS

These findings provide new insights into the differences in the regulatory mechanisms of salt tolerance between G. hirsutum and G. barbadense, and identify key candidate genes for salt tolerance molecular breeding in cotton.

摘要

背景

土壤盐度是威胁作物生长的主要非生物胁迫因素之一。棉花具有一定的耐盐性,被称为盐碱地的“先锋作物”。棉花的种植对盐碱地的利用和棉花产业的发展具有重要意义。陆地棉和海岛棉是两种主要的棉花物种,在全球范围内广泛种植。然而,直到最近,它们对盐胁迫响应的调控机制和具体差异很少有报道。

结果

本研究综合比较了陆地棉 acc. TM-1 和海岛棉 cv. Hai7124 对盐胁迫响应的差异。结果表明,在盐胁迫下,Hai7124 的生长优于 TM-1,具有更高的脯氨酸(PRO)含量和抗氧化能力,而 TM-1 仅表现出更高的钾(K)含量。转录组分析揭示了两种棉花物种在响应盐胁迫时的显著分子差异。盐诱导 TM-1 的关键途径主要与生长和发育有关,如卟啉代谢、DNA 复制、核糖体和光合作用。相反,盐诱导 Hai7124 的关键途径主要与植物防御有关,如植物激素信号转导、MAPK 信号通路-植物和苯丙烷生物合成。对差异表达基因(DEGs)的进一步比较分析表明,抗氧化代谢、脱落酸(ABA)和茉莉酸(JA)信号通路在 Hai7124 中被更强地激活,而 TM-1 中 K 转运相关基因和乙烯(ETH)信号通路更为活跃。这些差异突出了两种棉花物种在应对盐胁迫时采用的各种分子策略,并且 Hai7124 对盐胁迫的响应更为强烈,这解释了 Hai7124 具有较强耐盐性的潜在原因。最后,我们鉴定了 217 个潜在的耐盐相关基因,其中 167 个与之前全基因组关联研究(GWAS)中显著 SNP 的置信区间重叠,表明这些基因具有较高的可靠性。

结论

这些发现为陆地棉和海岛棉耐盐性调控机制的差异提供了新的见解,并鉴定了棉花耐盐分子育种的关键候选基因。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2efb/11337788/f1818ff9277c/12870_2024_5515_Fig1_HTML.jpg

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