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灰葡萄孢中的Bcvic1和Bcvic2营养体不亲和基因编码的蛋白质具有与其他丝状真菌中异体识别相关的结构域结构。

The Bcvic1 and Bcvic2 vegetative incompatibility genes in Botrytis cinerea encode proteins with domain architectures involved in allorecognition in other filamentous fungi.

作者信息

Arshed Saadiah, Cox Murray P, Beever Ross E, Parkes Stephanie L, Pearson Michael N, Bowen Joanna K, Templeton Matthew D

机构信息

Bioprotection, New Zealand Institute of Plant and Food Research, Auckland, New Zealand; School of Biological Sciences, University of Auckland, Auckland, New Zealand; Bioprotection Aotearoa Centre of Research Excellence, New Zealand.

Bioprotection Aotearoa Centre of Research Excellence, New Zealand; School of Natural Sciences, Massey University, Palmerston North, New Zealand.

出版信息

Fungal Genet Biol. 2023 Dec;169:103827. doi: 10.1016/j.fgb.2023.103827. Epub 2023 Aug 26.

Abstract

Vegetative incompatibility is a fungal allorecognition system characterised by the inability of genetically distinct conspecific fungal strains to form a viable heterokaryon and is controlled by multiple polymorphic loci termed vic (vegetative incompatibility) or het (heterokaryon incompatibility). We have genetically identified and characterised the first vic locus in the economically important, plant-pathogenic, necrotrophic fungus Botrytis cinerea. A bulked segregant approach coupled with whole genome Illumina sequencing of near-isogenic lines of B. cinerea was used to map a vic locus to a 60-kb region of the genome. Within that locus, we identified two adjacent, highly polymorphic open reading frames, Bcvic1 and Bcvic2, which encode predicted proteins that contain domain architectures implicated in vegetative incompatibility in other filamentous fungi. Bcvic1 encodes a predicted protein containing a putative serine esterase domain, a NACHT family of NTPases domain, and several Ankyrin repeats. Bcvic2 encodes a putative syntaxin protein containing a SNARE domain; such proteins typically function in vesicular transport. Deletion of Bcvic1 and Bcvic2 individually had no effect on vegetative incompatibility. However, deletion of the region containing both Bcvic1 and Bcvic2 resulted in mutant lines that were severely restricted in growth and showed loss of vegetative incompatibility. Complementation of these mutants by ectopic expression restored the growth and vegetative incompatibility phenotype, indicating that Bcvic1 and Bcvic2 are controlling vegetative incompatibility at this vic locus.

摘要

营养体不亲和性是一种真菌异体识别系统,其特征是遗传上不同的同种真菌菌株无法形成有活力的异核体,并由多个多态性位点控制,这些位点被称为vic(营养体不亲和性)或het(异核体不亲和性)。我们已经从经济上重要的植物病原性坏死营养真菌灰葡萄孢中,在遗传学上鉴定并表征了首个vic位点。利用一种混合分离群体分析法,结合灰葡萄孢近等基因系的全基因组Illumina测序,将一个vic位点定位到基因组的一个60 kb区域。在该位点内,我们鉴定出两个相邻的、高度多态的开放阅读框,Bcvic1和Bcvic2,它们编码的预测蛋白含有与其他丝状真菌营养体不亲和性相关的结构域。Bcvic1编码一个预测蛋白,该蛋白含有一个假定的丝氨酸酯酶结构域、一个NACHT家族的NTP酶结构域和几个锚蛋白重复序列。Bcvic2编码一个含有SNARE结构域的假定Syntaxin蛋白;这类蛋白通常在囊泡运输中起作用。单独缺失Bcvic1和Bcvic2对营养体不亲和性没有影响。然而,缺失包含Bcvic1和Bcvic2的区域会导致突变株系生长严重受限,并表现出营养体不亲和性丧失。通过异位表达对这些突变体进行互补恢复了生长和营养体不亲和性表型,表明Bcvic1和Bcvic2在这个vic位点控制营养体不亲和性。

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