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Subcellular localization of plant vacuolar sorting receptor proteins and their roles in mediating protein degradation during seed germination.

机译:植物液泡分选受体蛋白的亚细胞定位及其在种子萌发过程中的介导蛋白降解中的作用。

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摘要

Prevacuolar compartments (PVCs) are membrane-bound organelles that mediate protein traffic between the Golgi and vacuoles in the plant secretory pathway. Here I identify and define organelles as the lytic prevacuolar compartments in pea and tobacco cells using confocal immunofluorescence. I use five different antibodies specific for a vacuolar sorting receptor (VSR) BP-80 and its homologs to detect the location of VSR proteins. In addition, I use well-established Golgi-markers to identify Golgi organelles. I further compare VSR-labeled organelles to Golgi organelles so that the relative proportion of VSR proteins in Golgi vs. PVCs can be quantitated. More than 90% of the BP-80-marked organelles are separate from Golgi organelles; thus, BP-80 and its homologs are predominantly concentrated on the lytic PVCs. Additionally, organelles marked by anti-AtPep12p (AtSYP21p) and anti-AtELP antibodies are also largely separate from Golgi apparatus, whereas VSR and AtPep12p (AtSYP21p) are largely colocalized. I have thus demonstrated for the first time in plant cells that VSR proteins are predominantly present in the lytic PVCs and have provided additional markers for defining plant PVCs using confocal immunofluorescence. Additionally, my approach will provide a rapid comparison between markers to quantitate protein distribution among various organelles.; Upon seed germination, storage proteins are degraded by hydrolytic enzymes to provide nutrients for embryo/seedling growth. However, the molecular mechanism by which storage proteins are degraded within PSV upon seed germination remains unclear. Here I test the hypothesis that vacuolar sorting receptor (VSR) proteins play roles in mediating protein degradation via transporting proteases to sites where protein degradation occurs. Towards this goal, I have produced new anti-VSRat-1 antibodies that cross-react specifically with VSR proteins of various plant seeds. I demonstrate that the amounts of both VSR proteins and tested proteases gradually increase upon seed germination. In contrast, the amounts of marker proteins of storage function decrease coincidently. Confocal double-labeling studies demonstrate that VSR and aleurain colocalize in the same cytosolic organelles of germinating seeds. These putative PVC organelles were further identified through immuno-EM. To identify ligands interacting with VSR in germinating seeds, microsome fractions were prepared and chemically cross-linked, the VSR-ligand complex is then purified using affinity column conjugated with anti-VSRat-1 antibody. Purified proteins were further analyzed via Western blot and MALDI-TOF. In addition to aleurain, a putative novel protein was identified to interact with VSR proteins specifically. Thus, I have identified novel VSR ligands and PVCs that may involve in protein degradation in germinating seeds. Further isolation of PVCs from germinating seeds and their subsequent analysis will allow me to study their involvement in protein degradation of germinating seeds.
机译:前真空室(PVC)是膜结合的细胞器,介导植物分泌途径中高尔基体与液泡之间的蛋白质运输。在这里,我使用共聚焦免疫荧光法鉴定和定义细胞器为豌豆和烟草细胞中的溶菌前室。我使用五种针对液泡分选受体(VSR)BP-80及其同源物的抗体来检测VSR蛋白的位置。此外,我使用公认的高尔基标记来识别高尔基细胞器。我进一步将VSR标记的细胞器与高尔基细胞器进行比较,以便可以定量高尔基体与PVC中VSR蛋白的相对比例。超过90%的BP-80标记细胞器与高尔基细胞器分开;因此,BP-80及其同系物主要集中在裂解PVC上。此外,以抗AtPep12p(AtSYP21p)和抗AtELP抗体标记的细胞器也与高尔基体大不相同,而VSR和AtPep12p(AtSYP21p)在很大程度上共定位。因此,我首次在植物细胞中证明了VSR蛋白主要存在于裂解PVC中,并提供了使用共聚焦免疫荧光法定义植物PVC的其他标记。另外,我的方法将提供标记之间的快速比较,以定量蛋白质在各种细胞器之间的分布。种子发芽后,贮藏蛋白会被水解酶降解,从而为胚胎/幼苗生长提供营养。然而,种子发芽时贮藏蛋白在PSV中降解的分子机制仍不清楚。在这里,我测试了一种假设,即液泡分选受体(VSR)蛋白通过将蛋白酶转运到发生蛋白质降解的位点来介导蛋白质降解。为了实现这一目标,我生产了新的抗VSRat-1抗体,可与多种植物种子的VSR蛋白发生特异性交叉反应。我证明了VSR蛋白和经过测试的蛋白酶的数量在种子发芽后逐渐增加。相反,存储功能的标记蛋白的量同时减少。共聚焦双标记研究表明,VSR和糊精共定位在发芽种子的相同胞质细胞器中。这些推定的PVC细胞器通过免疫EM进一步鉴定。为了鉴定与发芽种子中的VSR相互作用的配体,制备了微粒体馏分并进行了化学交联,然后使用与抗VSRat-1抗体偶联的亲和柱纯化VSR-配体复合物。纯化的蛋白质通过蛋白质印迹和MALDI-TOF进行进一步分析。除了糊精以外,还鉴定出一种推定的新蛋白与VSR蛋白特异性相互作用。因此,我确定了可能与发芽种子中蛋白质降解有关的新型VSR配体和PVC。从发芽的种子中进一步分离PVC及其后续分析,将使我能够研究它们在发芽种子的蛋白质降解中的作用。

著录项

  • 作者

    Li, Yubing.;

  • 作者单位

    Chinese University of Hong Kong (People's Republic of China).;

  • 授予单位 Chinese University of Hong Kong (People's Republic of China).;
  • 学科 Biology Cell.; Biology Botany.; Biology Molecular.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 190 p.
  • 总页数 190
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 细胞生物学;植物学;分子遗传学;
  • 关键词

  • 入库时间 2022-08-17 11:44:31

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