首页> 外文期刊>Blood: The Journal of the American Society of Hematology >Mechanism of platelet dense granule biogenesis: Study of cargo transport and function of Rab32 and Rab38 in a model system
【24h】

Mechanism of platelet dense granule biogenesis: Study of cargo transport and function of Rab32 and Rab38 in a model system

机译:血小板致密颗粒的生物发生机理:模型系统中Rab32和Rab38的货物运输和功能研究

获取原文
获取原文并翻译 | 示例
           

摘要

Dense granules are important in platelet aggregation to form a hemostatic plug as evidenced by the increased bleeding time in mice and humans with dense granule deficiency. Dense granules also are targeted by antiplatelet agents because of their role in thrombus formation. Therefore, the molecular understanding of the dense granule and its biogenesis is of vital importance. In this work, we establish a human megakaryocytic cell line (MEG-01) as a model system for the study of dense granule biogenesis using a variety of cell biology and biochemical approaches. Using this model system, we determine the late endocytic origin of these organelles by colocalization of the internalized fluid phase marker dextran with both mepacrine and transmembrane dense granule proteins. By mistargeting of mutant dense granule proteins, we demonstrate that sorting signals recognized by adaptor protein-3 are necessary for normal transport to dense granules. Furthermore, we show that tissue-specific Rab32 and Rab38 are crucial for the fusion of vesicles containing dense granule cargo with the maturing organelle. This work sheds light on the biogenesis of dense granules at the molecular level and opens the possibility of using this powerful model system for the investigation of new components of the biogenesis machinery.
机译:致密颗粒在血小板聚集以形成止血栓方面很重要,这一点可通过在致密颗粒缺乏的小鼠和人类中增加的出血时间来证明。由于致密颗粒在血栓形成中的作用,它们也被抗血小板药靶向。因此,对致密颗粒及其生物发生的分子理解至关重要。在这项工作中,我们建立了人类巨核细胞系(MEG-01)作为使用多种细胞生物学和生化方法研究致密颗粒生物发生的模型系统。使用该模型系统,我们通过将内在化的液相标记物葡聚糖与美普林和跨膜致密颗粒蛋白共定位来确定这些细胞器的晚期内吞起源。通过突变的致密颗粒蛋白质的错误定位,我们证明了由衔接蛋白3识别的分选信号对于正常运输到致密颗粒是必需的。此外,我们显示组织特异性的Rab32和Rab38对于包含密集颗粒货物的囊泡与成熟细胞器的融合至关重要。这项工作在分子水平上揭示了致密颗粒的生物发生,并为使用这种强大的模型系统研究生物发生机制的新组成部分提供了可能性。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号