17.2
소포라 불리는 막으로 둘러싸인 구조는 단백질과 지질을 세포 전체로 운반합니다. 소포는 원형질막, 골지체, 소포체 또는 엔도솜에서 화물을 얻습니다. 코팅된 소포는 소포체과 골지체 사이의 양방향 수송을 중재하는 직경 50-100nm의 구형 단백질 코팅 운반체입니다. 소포체…
코팅된 소포(coated vesicles)는 세포막의 특화된 영역에서 싹을 틔우는 수송 소포(transport vesicle)입니다. 특정 외투 단백질은 세포질 표면을 덮고 있습니다.
단백질 코팅의 유형에 따라 이러한 소포는 코팅 단백질 또는 COP 코팅 소포, COPI 및 COPII, 클라트린 코팅 소포의 세 가지 유형이 될 수 있습니다.
COPI 소포는 골지체의 다른 부분 사이와 골지체에서 다시 거친 ER로 분자를 운반합니다.
COPII 소포는 ER 막에 형성되어 ER에서 Golgi로의 수송을 매개합니다.
COPI 및 COPII 소포는 코텀머(coatomer)라고 하는 유사한 외피 단백질 복합체로 구성되어 있습니다. 이들은 막을 구부려 기증자 막에서 소포로 방출되는 새싹을 형성합니다.
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Q1: What are COP-coated vesicles and how do they differ from other coated vesicles?
COP-coated vesicles are transport carriers with protein coats that bud from cell membranes. Two types exist: COPI and COPII, composed of similar coatomer protein complexes. Unlike clathrin-coated vesicles, COP vesicles mediate bidirectional transport between the ER and Golgi, with COPI handling intra-Golgi and retrograde transport, while COPII mediates anterograde ER-to-Golgi transport.
Q2: How do COPI and COPII vesicles differ in their transport functions?
COPII vesicles form at ER membranes and transport cargo from the ER to the Golgi, carrying enzymes and membrane proteins involved in biosynthetic pathways. COPI vesicles transport molecules between Golgi cisternae and mediate retrograde transport from the Golgi back to the rough ER, maintaining dynamic protein distribution between these compartments.
Q3: What role do coat proteins play in vesicle formation?
Coat proteins assemble on donor membranes to initiate vesicle formation and help sort cargo. COPI and COPII coats contain seven core coatomer units including α-COP, β-COP, and γ-COP. These proteins bend the membrane to form a bud that is released as a vesicle, with coat assembly and gtpases driving the process.
Q4: What cargo do COPII-coated vesicles transport from the ER?
COPII-coated vesicles select and transport enzymes involved in biosynthetic pathways, membrane proteins required for docking and fusion with target compartments, and membrane proteins that bind soluble cargo. These vesicles concentrate and package proteins with specific exit signals for export from the ER.
Q5: What are the two proposed models for COPII vesicle transport?
The bulk flow transport model proposes that ER-resident proteins use C-terminal signal sequences for retention and recycling. The selective transport model suggests proteins with specific exit signals are concentrated and packaged for export. Evidence indicates COPII transport likely involves a combination of both mechanisms rather than one exclusively.
Q6: How do coated vesicles maintain protein distribution between the ER and Golgi?
Different classes of coat proteins, including COPI and COPII, mediate bidirectional transport that maintains dynamic protein distribution. COPII vesicles transport proteins forward from ER to Golgi, while COPI vesicles recycle proteins backward from Golgi to ER, creating a balanced system of anterograde and retrograde transport.
Q7: What structural features do COP coat proteins share with clathrin?
COPI and COPII coat proteins share similar structural features with clathrin, though they differ in cargo sorting and vesicle formation mechanisms. All three coat protein classes form spherical, protein-coated carriers with 50-100 nm diameter that mediate transport across the cell, but employ distinct molecular strategies for cargo selection.