5.13
受容体依存性エンドサイトーシスとは、細胞表面の受容体に結合した特定の分子が大量に細胞内に取り込まれるプロセスです。受容体に結合した分子は、細胞表面の膜が内側に折り畳まれることで、細胞内に取り込まれ、最終的に細胞内の小胞につつまれます。クラスリンなどの構造タンパク質は、この新しい小胞をコーティング…
受容体媒介エンドサイトーシスは 特異な形の飲作用で 細胞表面受容体が 低密度リポタンパク質(LDL)や 悪玉コレステロールなどの 特定の分子の能動的な取り込みを介在します 過程を開始するため アダプタータンパク質が 特定の脂質の ホスファチジルイノシトール(PIP)と 作用して 膜内で細胞表面の積み荷受容体の 結合部位を見えるようにする サブユニットの立体構造変化を誘発します ここでLDLなどのシグナル分子が Apo-Bタンパク質などの 受容体に結合すると 膜が内側に湾曲し 増大する穴の付近で さらに結合します タンパク質構造体の クラスリントリスケリオンが より多く付着し クラスリンコード化ピットを形成し 積み荷が内側を向きます 他の膜屈曲および分裂タンパク質が 頸部に補充され クラスリン被覆小胞を摘み取ります コーディングがすばやく放出され しばしばむき出しの小胞が エンドソームと融合し さらに細胞に処理されます 積み荷受容体はエンドソーム内の pHがより低い環境でLDLから解離し 無傷の受容体は他のシグナル伝達分子と 結合する準備が整った状態で膜に戻ります LDLはさらに処理されて コレステロールとアミノ酸に分解されます
Q1: What role do adapter proteins play in receptor-mediated endocytosis?
Adapter proteins interact with phosphatidylinositol phosphates (PIPs) in the cell membrane to induce conformational changes that expose binding sites for cargo receptors. These proteins facilitate the attachment of clathrin triskelions to the membrane's inner surface, initiating the formation of the clathrin-coated pit and enabling the membrane to curve inward for vesicle formation.
Q2: How does the pH environment inside an endosome affect LDL and its receptor?
The lower pH inside the endosome causes LDL to dissociate from its receptor protein, the Apo-B receptor. This pH-dependent separation allows intact receptors to be recycled back to the cell membrane for reuse, while LDL remains in the endosome for further processing and breakdown into cholesterol and amino acids.
Q3: What is the function of clathrin triskelions in forming endocytic vesicles?
Clathrin triskelions are protein structures that attach to the inner membrane surface and polymerize to form the clathrin-coated pit. These proteins create a lattice-like coating that gives the budding vesicle its characteristic round shape and helps stabilize the inward membrane curvature necessary for vesicle formation and cargo internalization.
Q4: How do pathogens exploit receptor-mediated endocytosis to invade host cells?
Pathogens like influenza virus and Bacillus anthracis hijack host cell receptors by binding to them on the cell surface. The virus or toxin is then internalized through the cell's native endocytic pathways. Once inside, some pathogens escape the endosome to cause infection, while others release toxins that trigger cellular damage.
Q5: What is the difference between clathrin-mediated and caveolin-mediated endocytosis?
Clathrin-mediated endocytosis involves clathrin proteins binding to the outer membrane surface, while caveolin-mediated endocytosis involves caveolin proteins inserting directly into the lipid bilayer. Despite this structural difference, both pathways result in membrane curvature and vesicle formation, though they may internalize different cargo molecules.
Q6: How is iron transported into cells through receptor-mediated endocytosis?
Iron enters cells via endocytosis of transferrin, an iron-binding protein that binds to the transferrin receptor (TfR) on the cell surface. A clathrin-coated vesicle forms and transports transferrin into the cell. In the early endosome, decreased pH releases iron from transferrin, while the receptor and empty transferrin are recycled back to the cell surface.
Q7: How does receptor-mediated endocytosis regulate cell signaling?
Receptor-mediated endocytosis regulates signaling through sequestration, where signal receptors are internalized and stored in vesicles until needed or degraded by proteolytic enzymes. Additionally, some signaling pathways require endocytosis itself to allow signal transduction to occur, making the process essential for controlling cellular communication and response.