18.3
세포는 큰 입자나 다수의 작은 입자를 세포 안팎으로 전달하기 위해 에너지가 필요한 대량 수송 메커니즘을 사용합니다. 세포는 소포 또는 액포라고 불리는 구형 막으로 입자를 둘러쌉니다. 물질을 세포 안으로 운반하는 소포는 세포막에서 만들어집니다. 이 소포는 외부 분자를 캡…
Pinocytosis는 세포가 물과 용해된 영양소를 포함하여 존재하는 모든 세포 외액을 삼키는 세포내이입의 한 유형입니다.
구부러진 구덩이는 clathrin triskelions와 같은 구조 단백질이 원형질막의 세포질 쪽을 조립하고 코팅할 때 빠르게 형성됩니다.
이 과정은 외부의 특정 물질을 결합하는 수용체가 없기 때문에 비특이적입니다. 오히려, 주머니에 넣은 내용물은 코팅된 소포 안으로 끼워져 세포 전체로 운반될 준비가 됩니다.
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Q1: What is pinocytosis and how does it differ from other types of endocytosis?
Pinocytosis, or cellular drinking, is a non-selective endocytic process where cells take in extracellular fluid and dissolved nutrients through tiny vesicles. Unlike phagocytosis, which engulfs large particles, pinocytosis transports smaller fluid and molecules. Unlike receptor mediated endocytosis, pinocytosis requires no specific receptors and indiscriminately imports both particles and surrounding fluid.
Q2: How do structural proteins form vesicles during pinocytosis?
Structural proteins such as clathrin triskelions rapidly assemble and coat the cytosolic side of the plasma membrane, forming curved pits. These pits deepen into tear-shaped pockets that surround the fluid and molecules being imported. The membrane then reconnects, pinching off the coated vesicle and separating it from the cell membrane for transport throughout the cell.
Q3: Why is pinocytosis considered non-specific transport?
Pinocytosis is non-specific because cells lack receptors to bind particular substances on the outside. Instead, the cell indiscriminately takes in any extracellular fluid present, along with whatever dissolved nutrients and molecules it contains. This equal-opportunity import mechanism allows pinocytosis to absorb diverse materials simultaneously without selectivity.
Q4: What are some examples of pinocytosis in different cell types?
In the small intestine, microvilli use pinocytosis to absorb nutrients from food. Egg cells use pinocytosis to obtain nutrients before fertilization. These examples demonstrate how pinocytosis occurs across many cell types to transport essential fluids and nutrients into cells for growth, development, and metabolic function.
Q5: How does the cell membrane change during pinocytosis?
During pinocytosis, sections of the cell membrane sink inward, creating tear-shaped pockets that surround the material being taken in. As the membrane reconnects around these pockets, vesicles pinch off and separate from the membrane. This process results in enlargement of the plasma membrane as new membrane is internalized into the cell.
Q6: What happens to vesicles after they pinch off from the plasma membrane?
After vesicles pinch off from the plasma membrane during pinocytosis, they enter the cell carrying the enclosed fluid and dissolved substances. These coated vesicles are then transported throughout the cell, where their contents can be processed, sorted, and distributed to various cellular compartments for use in metabolism and cellular function.
Q7: How do vesicle sizes compare between pinocytosis and phagocytosis?
The vesicles produced during pinocytosis are substantially smaller compared to those formed in phagocytosis. This size difference reflects the distinct cargo: pinocytosis transports fluid and smaller dissolved molecules in tiny vesicles, while phagocytosis engulfs large particles in much larger vesicles, requiring different mechanisms for membrane invagination and transport.