17.1
内质网、高尔基体、内体和溶酶体进行协同作用,修饰、分类和包装蛋白质和脂质。整合的膜运输网络能够促进分子在同一细胞中的不同细胞器内或细胞膜之间来回穿梭。
可溶性蛋白和膜蛋白的运输是由运输囊泡所介导的,运输囊泡可以从一个细胞器室中收集货物,并通过与目标细胞器膜融合来将其运送到另一个细胞器中。Rab 蛋白…
总体而言,膜运输可分为三种类型。细胞内物质可以在细胞器之间通过分泌途径进行转运,也可以通过内吞作用进入细胞,或通过外排作用运出细胞。
在分泌途径中,细胞内产生的物质会被包裹进由蛋白质包被的、具有膜结构的载体——即囊泡中,这些囊泡可将物质从一个细胞器运输到另一个细胞器。
SNARE 蛋白家族将囊泡锚定到靶膜上,并催化囊泡膜与靶膜的融合,以递送其内含物。
如果囊泡与质膜融合,其内含物将被释放到细胞外空间,这一过程称为胞吐作用。通常需要外排的物质包括代谢废物、膜蛋白或细胞间通讯所需的信号分子。
相反,在胞吞作用中,细胞将自身不产生的物质(如维生素、胆固醇和微量营养素)摄入细胞内。
在胞饮作用(一种内吞作用)中,细胞膜会包裹细胞外液,包括水和溶解的营养物质。
另一种类型的内吞作用称为吞噬作用,当细胞表面受体遇到外来颗粒(通常为入侵的微生物或受损组织的细胞碎片)时发生。
细胞延伸以吞噬颗粒,随后膜发生融合,将颗粒包裹在内。
View the full transcript and gain access to JoVE Core videos
Q1: What are the three main categories of membrane trafficking in cells?
Membrane trafficking occurs through three categories: the secretory pathway transports cargo between organelles, exocytosis releases substances out of the cell, and endocytosis brings materials into the cell. Cargo moves in protein-coated, membrane-bound carriers called vesicles. These pathways enable cells to transport waste products, membrane proteins, signaling molecules, vitamins, cholesterol, and micronutrients across cellular compartments and membranes.
Q2: How do vesicles deliver cargo to their target destinations?
Transport vesicles collect cargo from one cellular compartment and fuse with the target organelle membrane to deliver it. The Rab family of proteins acts as molecular markers on the target organelle to guide the vesicle. SNAREs and membrane fusion proteins dock the vesicle and catalyze membrane fusion, releasing the cargo. The membrane-bound vesicle protects cargo from external cytosol changes during transit.
Q3: What is exocytosis and what types of substances are typically exported?
Exocytosis occurs when vesicles fuse with the plasma membrane, releasing cargo into extracellular space. Substances typically exported include waste products, membrane proteins, and signaling molecules required for cellular communication. This process allows cells to eliminate unwanted materials and deliver proteins and signals essential for cell-to-cell interactions and tissue function.
Q4: What are the main differences between pinocytosis and phagocytosis?
Pinocytosis and phagocytosis are both endocytic processes but differ in cargo type. In pinocytosis, the cell membrane surrounds extracellular fluid containing water and dissolved nutrients like vitamins and cholesterol. Phagocytosis occurs when cell surface receptors encounter foreign particles, usually invading microorganisms or cell debris. The cell extends to engulf the particle, and membranes fuse, trapping it inside for processing.
Q5: How do organelles work together in the membrane trafficking network?
The ER, Golgi apparatus, endosomes, and lysosomes work in tandem to modify, sort, and package proteins and lipids. An integrated membrane trafficking network facilitates back-and-forth shuttling of molecules within different organelles and across the cell membrane. This coordinated system ensures proper protein processing, cargo sorting, and delivery to appropriate cellular destinations or extracellular locations.
Q6: What is receptor-mediated endocytosis and how does it differ from other endocytic processes?
Receptor-mediated endocytosis is an endocytic process where the cell selectively uptakes molecules from extracellular space based on receptor-specific recognition. Unlike pinocytosis, which is non-selective fluid uptake, or phagocytosis, which targets large particles, receptor-mediated endocytosis targets specific molecules. This specificity allows cells to import particular nutrients, hormones, and signaling molecules required for cellular function.
Q7: Why is the membrane-bound vesicle structure important for cargo transport?
The membrane-bound vesicle protects cargo from external changes in the cytosol during transit between organelles or across the cell membrane. This protective barrier maintains cargo integrity and prevents unwanted interactions with the cytoplasmic environment. The vesicle structure also enables specific recognition and docking at target membranes through protein interactions, ensuring accurate delivery pathways to the lysosome and other destinations.