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Vesicle budding is orchestrated by distinct cytosolic proteins such as adaptor proteins, coat proteins, and GTPases. To initiate vesicle budding, membrane-bending proteins containing crescent-shaped BAR domains bind to the lipid heads in the bilayer and distort the membrane to form a protein-coated vesicle bud. Adaptors proteins such as AP2 for clathrin-coated vesicles can nucleate on the deformed membrane. Finally, coat proteins such as clathrin or COPI and COPII assemble into a coat forming...
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Proteins and neurotransmitters in secretory vesicles can be released from a cell upon vesicle docking, priming, and fusion with the plasma membrane. Vesicles are docked and primed in preparation for the quick exocytosis of their contents in response to a stimulus. The fusion process is mainly carried out by a SNAP Receptor or SNARE complex, consisting of synaptobrevin, syntaxin-1, and SNAP-25.
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Secretory vesicles, also known as dense core vesicles (DCVs), are membrane-bound vesicles that transport secretory proteins, such as hormones or neurotransmitters. Regulated secretory vesicles transport proteins from the trans-Golgi network to the exterior of the cell. Proteins present in regulated secretory vesicles are required to be rapidly exocytosed in large amounts upon a specific stimulus.
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Membrane-enclosed structures called vesicles transport proteins and lipids across the cell. The vesicles derive their cargo from the plasma membrane, Golgi, ER, or endosome. Coated vesicles are spherical, protein-coated carriers with a 50–100 nm diameter that mediate bidirectional transport between the ER and the Golgi. The distribution of proteins between the ER and Golgi complex is dynamic and is maintained by different coated vesicles. Their formation is driven by the assembly of...
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Proteins can form homomeric complexes with another unit of the same protein or heteromeric complexes with different types.  Most protein complexes self-assemble spontaneously via ordered pathways, while some proteins need assembly factors that guide their proper assembly. Despite the crowded intracellular environment, proteins usually interact with their correct partners and form functional complexes.
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阿尔法-同核素 (αSyn) 蛋白与阴离子脂质囊泡结合,形成阿尔法螺旋结构. 纤维形成触发了囊泡融合,使囊泡大小翻倍.

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科学领域:

  • 生物化学 生物化学
  • 生物物理学的生物物理.
  • 神经科学是一个神经科学.

背景情况:

  • 阿尔法-同核素 (αSyn) 是一种粉样蛋白形成的蛋白质,与神经退行性疾病有关.
  • 小单状囊泡 (SUV) 是细胞膜的模型系统.

研究的目的:

  • 为了研究αSyn单体在由zwitterionic (POPC) 和 anionic (POPS) 脂质组成的SUV上吸附的作用.
  • 了解αSyn纤维细胞形成过程中的结构变化和囊泡动力学.

主要方法:

  • 研究了αSyn对混合脂质囊泡 (POPC/POPS) 的吸附.
  • 分析了被吸附的αSyn.的二次结构变化.
  • 在播种纤维细胞形成过程中研究了囊泡大小的变化.

主要成果:

  • αSyn单体吸附于含有离子POPS的囊泡,采用α螺旋结构.
  • 吸附取决于POPS分数,考虑到静电转移.
  • 种子纤维的形成诱导了囊泡融合,大约是平均囊泡大小的两倍.

结论:

  • αSyn对离子脂质膜的吸附取决于度和脂质组成.
  • 囊泡融合是膜上αSyn纤维的形成过程中的一个关键事件.