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A longevity assurance gene homolog of tomato mediates resistance to Alternaria alternata f. sp. lycopersici toxins and fumonisin B1

机译:番茄的寿命保证基因同源物介导了对交替链格孢的抗性。 sp。 lycopersici毒素和伏马毒素B1

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摘要

The phytopathogenic fungus Alternaria alternata f. sp. lycopersici (AAL) produces toxins that are essential for pathogenicity of the fungus on tomato (Lycopersicon esculentum). AAL toxins and fumonisins of the unrelated fungus Fusarium moniliforme are sphinganine-analog mycotoxins (SAMs), which cause inhibition of sphingolipid biosynthesis in vitro and are toxic for some plant species and mammalian cell lines. Sphingolipids can be determinants in the proliferation or death of cells. We investigated the tomato Alternaria stem canker (Asc) locus, which mediates resistance to SAM-induced apoptosis. Until now, mycotoxin resistance of plants has been associated with detoxification and altered affinity or absence of the toxin targets. Here we show that SAM resistance of tomato is determined by Asc-1, a gene homologous to the yeast longevity assurance gene LAG1 and that susceptibility is associated with a mutant Asc-1. Because both sphingolipid synthesis and LAG1 facilitate endocytosis of glycosylphosphatidylinositol-anchored proteins in yeast, we propose a role for Asc-1 in a salvage mechanism of sphingolipid-depleted plant cells.
机译:植物病原真菌Alternaria alternata f。 sp。 lycopersici(AAL)产生的毒素对番茄(Lycopersicon esculentum)真菌的致病性至关重要。不相关真菌镰刀菌镰刀菌的AAL毒素和伏马毒素为Sphinganine-analog霉菌毒素(SAMs),在体外会抑制鞘脂的生物合成,并对某些植物物种和哺乳动物细胞系有毒。鞘脂可以是细胞增殖或死亡的决定因素。我们调查了番茄链格孢菌茎溃疡病(Asc)基因座,其介导对SAM诱导的细胞凋亡的抵抗。到目前为止,植物的真菌毒素抗性与排毒,亲和力改变或毒素靶点缺失有关。在这里,我们显示番茄的SAM抗性是由Asc-1(与酵母寿命保证基因LAG1同源的基因)决定的,并且易感性与突变型Asc-1相关。因为鞘脂合成和LAG1都促进酵母中糖基磷脂酰肌醇固定蛋白的内吞作用,所以我们提出了Asc-1在鞘脂消耗性植物细胞的挽救机制中的作用。

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