5.14
细胞利用依赖能量的大宗运输机制将大颗粒或大量小颗粒运入或运出细胞。在这些过程中,细胞用称为囊泡或液泡的膜性结构包围物质。将物质运入细胞的囊泡起源于质膜。这些囊泡包裹细胞外物质,并通过一种称为内吞作用的过程将其递送至细胞内。
在内吞作用的三种主要形式中,胞饮作用(“细胞饮水”)是其中之一。除摄取细胞外…
Pinocytosis is a type of endocytosis in which a cell engulfs any extracellular fluid that is present, including water and dissolved nutrients. Essentially a means of cell drinking. Curved pits are rapidly formed when structural proteins, such as clathrin triskelions, assemble and coat the cytosolic side of the plasma membrane.
This process is non-specific because there are no receptors to bind particular substances on the outside. Rather, the pocketed contents are pinched off into a coated vesicle and then are ready to be transported throughout the cell.
Q1: What is pinocytosis and how does it work in cells?
Pinocytosis is a type of endocytosis where cells engulf extracellular fluid containing water and dissolved nutrients, often called cellular drinking. Structural proteins like clathrin triskelions assemble on the cytosolic side of the plasma membrane, forming curved pits that pinch off into coated vesicles. These vesicles transport the fluid and its contents throughout the cell for processing.
Q2: How does pinocytosis differ from phagocytosis?
Pinocytosis and phagocytosis are distinct endocytic processes. Phagocytosis, or cell-eating, engulfs large particles and produces large vesicles. Pinocytosis transports fluid along with smaller particles in substantially smaller vesicles. While phagocytosis targets specific large materials, pinocytosis is non-selective, taking in surrounding extracellular fluid and any particles it contains.
Q3: Why is pinocytosis considered non-specific transport?
Pinocytosis is non-specific because it lacks receptors to bind particular substances on the cell surface. Instead of selectively targeting specific molecules, the cell indiscriminately takes in surrounding extracellular fluid along with whatever particles it contains. This makes pinocytosis an equal-opportunity importer that engulfs material without molecular discrimination.
Q4: What role do structural proteins play in pinocytosis?
Structural proteins such as clathrin triskelions are essential for pinocytosis. These proteins assemble and coat the cytosolic side of the plasma membrane, creating the curved pits necessary for vesicle formation. As the membrane pockets deepen, the proteins help stabilize the structure until the vesicle pinches off and separates from the membrane.
Q5: Where in the body does pinocytosis occur and why?
Pinocytosis occurs in many cell types throughout the body. In the small intestine, microvilli use pinocytosis to absorb nutrients from food. Egg cells use pinocytosis to obtain nutrients before fertilization. This process allows cells to efficiently uptake fluid and dissolved nutrients from their surrounding environment.
Q6: How do vesicles form during pinocytosis?
During pinocytosis, sections of the cell membrane sink inward, creating tear-shaped pockets that surround the fluid and molecules being taken into the cell. As the membrane continues to deepen and curve, it eventually reconnects, causing the vesicles to pinch off and separate from the membrane. The enclosed substances then enter the cell within these newly formed vesicles.
Q7: How does pinocytosis compare to receptor-mediated endocytosis?
Unlike receptor-mediated endocytosis, pinocytosis is non-selective and does not require specific receptors to recognize target molecules. Receptor-mediated endocytosis uses receptors to bind particular substances before internalization, whereas pinocytosis takes in surrounding extracellular fluid indiscriminately. Both processes use vesicles to transport material into the cell, but differ in their selectivity mechanisms.