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钙调素结合 MYB 转录因子 78(CaMYB78)过表达增强鹰嘴豆对尖孢镰刀菌的抗性反应,并负调控花色苷生物合成途径。

Overexpression of CaMYB78 transcription factor enhances resistance response in chickpea against Fusarium oxysporum and negatively regulates anthocyanin biosynthetic pathway.

机构信息

Division of Plant Biology, Bose Institute, Centenary Campus, P-1/12, CIT Scheme-VIIM, Kankurgachi, Kolkata, 700054, West Bengal, India.

出版信息

Protoplasma. 2023 Mar;260(2):589-605. doi: 10.1007/s00709-022-01797-4. Epub 2022 Aug 10.

DOI:10.1007/s00709-022-01797-4
PMID:35947211
Abstract

Chickpea, an important grain legume, suffers from considerable loss of yield due to Fusarium wilt disease. Inaccessibility of resistant gene pool among cultivars and lack of report of resistance, genes from alien sources have been the major constraints for resistance development in this valuable crop. However, along with some other transcription factors, MYB78 was significantly upregulated during chickpea-Fusarium interplay in resistant chickpea genotype. Being a highly recalcitrant species, the transformation of this important crop remained non-reproducible until recently. Following a tissue culture independent plumular meristem transformation protocol, introgression of CaMYB78 TF finally became feasible in chickpea. The overexpressed plants developed resistance against the pathogen but the anthocyanin production in transformed flowers was perturbed. In silico analyses of the anthocyanin biosynthetic key gene promoters reported the occurrence of multiple MYB-binding cis elements. Detailed molecular analyses establish the differential regulatory roles of CaMYB78, resistance response against Foc1 on one hand and suppression of pigmentation during flower development on the other, which is an innovative finding of its kind.

摘要

鹰嘴豆是一种重要的粮食豆类作物,但由于枯萎病而导致大量减产。由于品种间抗性基因库难以接近,以及缺乏抗性基因的报道,因此从外源获得抗性基因一直是该作物抗性发展的主要限制因素。然而,与其他一些转录因子一样,在抗性鹰嘴豆基因型中,MYB78 在鹰嘴豆与镰刀菌相互作用过程中显著上调。作为一个高度难治的物种,直到最近,这种重要作物的转化仍然无法重现。在组织培养独立的幼茎转化方案之后,CaMYB78 TF 的导入最终在鹰嘴豆中成为可能。过表达植株对病原体表现出抗性,但转化花朵中的花青素产生受到干扰。花青素生物合成关键基因启动子的计算机分析报告了多个 MYB 结合顺式元件的发生。详细的分子分析确定了 CaMYB78 在抵抗 Foc1 反应和在花发育过程中抑制色素沉着方面的差异调节作用,这是同类研究中的一个创新性发现。

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