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Functional identification of sorting receptors involved in trafficking of soluble lytic vacuolar proteins in vegetative cells of Arabidopsis

机译:拟南芥营养细胞中可溶性溶质液泡蛋白运输相关分选受体的功能鉴定

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In eukaryotic cells, protein trafficking plays an essential role in biogenesis of proteins that belong to the endomembrane compartments. In this process, an important step is the sorting of organellar proteins depending on their final destinations. For vacuolar proteins, vacuolar sorting receptors (VSRs) and receptor homology-transmembrane-RING H2 domain proteins (RMRs) are thought to be responsible. Arabidopsis (Arabidopsis thaliana) contains seven VSRs. Among them, VSR1, VSR3, and VSR4 are involved in sorting storage proteins targeted to the protein storage vacuole (PSV) in seeds. However, the identity of VSRs for soluble proteins of the lytic vacuole in vegetative cells remains controversial. Here, we provide evidence that VSR1, VSR3, and VSR4 are involved in sorting soluble lytic vacuolar and PSV proteins in vegetative cells. In protoplasts from leaf tissues of vsr1vsr3 and vsr1vsr4 but not vsr5vsr6, and rmr1rmr2 and rmr3rmr4 double mutants, soluble lytic vacuolar (Arabidopsis aleurainlike protein:green fluorescent protein [GFP] and carboxypeptidase Y:GFP and PSV (phaseolin) proteins, but not the vacuolar membrane protein Arabidopsis βFructosidase4:GFP, exhibited defects in their trafficking; they accumulated to the endoplasmic reticulum with an increased secretion into medium. The trafficking defects in vsr1vsr4 protoplasts were rescued by VSR1 or VSR4 but not VSR5 or AtRMR1. Furthermore, of the luminal domain swapping mutants between VSR1 and VSR5, the mutant with the luminal domain of VSR1, but not that of VSR5, rescued the trafficking defects of Arabidopsis aleurain-like protein:GFP and phaseolin in vsr1vsr4 protoplasts. Based on these results, we propose that VSR1, VSR3, and VSR4, but not other VSRs, are involved in sorting soluble lytic vacuolar and PSV proteins for their trafficking to the vacuoles in vegetative cells.
机译:在真核细胞中,蛋白质运输在属于内膜区室的蛋白质的生物合成中起重要作用。在此过程中,重要的一步是根据最终目标对细胞器蛋白进行分类。对于液泡蛋白,液泡分选受体(VSR)和受体同源性跨膜-RING H2域蛋白(RMR)被认为是负责任的。拟南芥(Arabidopsis thaliana)包含七个VSR。其中,VSR1,VSR3和VSR4参与对靶向种子中蛋白质储藏液泡(PSV)的储藏蛋白质进行分选。然而,营养细胞中溶性液泡的可溶性蛋白的VSRs的身份仍然存在争议。在这里,我们提供了证据,表明VSR1,VSR3和VSR4参与了营养细胞中可溶性溶性液泡和PSV蛋白的分类。在来自vsr1vsr3和vsr1vsr4而不是vsr5vsr6以及rmr1rmr2和rmr3rmr4双重叶突变的叶片组织的原生质体中,可溶性溶性液泡(拟南芥aleurainlike蛋白:绿色荧光蛋白[GFP]和羧肽酶Y:GFP和PSV(Phaseolin)蛋白,膜蛋白拟南芥βFructosidase4:GFP在运输过程中表现出缺陷;它们积累到内质网中,分泌增加到培养基中; vsr1vsr4原生质体中的运输缺陷被VSR1或VSR4挽救,但VSR5或AtRMR1不能挽救。在VSR1和VSR5之间交换突变体,该突变体具有VSR1的腔结构域,而不是VSR5的腔结构域,挽救了拟南芥aleurain样蛋白:GFP和菜豆蛋白在vsr1vsr4原生质体中的运输缺陷。 VSR3和VSR4,但不包括其他VSR,参与了对可溶性裂解液泡和PSV蛋白的分选,以将其运输到液泡中。 n营养细胞。

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