7.11
여러 외부 및 내부 요인이 세포 분열의 시작과 억제에 영향을 미칩니다. 예를 들어, 주변 세포가 죽거나 인간 성장 호르몬(hGH)이 방출되면 세포 분열이 촉진됩니다. 대조적으로, hGH가 부족하거나 세포가 밀집해 있으면 세포 분열이 억제될 수 있습니다.
여러 단백질은…
세포 분열 또는 세포주기의 유사분열 단계는 성장 인자 및 호르몬과 같은 외부 화학적 자극과 세포주기 조절자와 같은 내부 요인에 의해 제어됩니다.
세포주기는 cyclins와 cyclin-dependent kinase 또는 Cdks라고 하는 단백질의 조합에 의해 조절됩니다. 서로 다른 cyclins의 농도는 다른 세포주기 단계에 따라 변동합니다.
세포가 G2 단계의 끝에 가까워짐으로, cyclin B 수준은 상승합니다. 높은 농도에서, cyclin B는 M 상 승진 인자 또는 MPF에게 불린 Cdk1를 가진 복합물을 형성합니다.
MPF 활성은 세포가 분열하는지 여부를 결정하는 인산화 및 탈인산화 이벤트에 의해 조절됩니다.
G2가 끝날 때까지 Wee1 kinase는 MPF의 티로신 잔기를 인산화하고 비활성 상태로 유지합니다. 이는 세포주기 진입을 방지하고 G2/M기에서 세포를 정지시킵니다.
Cdc25가 MPF를 탈인산화하면 Cdk 활성화 키나아제는 MPF에서 보존된 트레오닌을 인산화하여 활성화합니다.
이제 세포는 유사분열을 거쳐 두 개의 딸 세포를 생산합니다.
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Q1: What are cyclins and cyclin-dependent kinases and how do they control cell division?
Cyclins and cyclin-dependent kinases (Cdks) are regulatory proteins that control cell division. While Cdk levels remain constant, cyclin concentrations fluctuate during different cell cycle phases. When cyclins bind to Cdks, they become phosphorylated and activated, driving the cell through specific phases. This dynamic regulation ensures orderly progression through the cell cycle.
Q2: How does the M-phase promoting factor activate to trigger mitosis?
The M-phase promoting factor (MPF) forms when cyclin B binds to Cdk1 as the cell approaches the M phase. Wee1 kinase initially keeps MPF inactive by phosphorylating tyrosine residues. Cdc25 phosphatase then dephosphorylates MPF, and a Cdk-activating kinase phosphorylates a threonine residue, fully activating MPF and triggering mitosis.
Q3: What external factors promote or inhibit cell division?
External factors significantly influence cell division initiation. Growth factors and human growth hormone (hGH) promote cell division, while their absence inhibits it. Cell crowding also suppresses division, and the death of nearby cells can stimulate division. These external chemical stimuli work alongside internal regulators to control when cells divide.
Q4: How do negative regulatory proteins like p53 and p21 halt the cell cycle?
Negative regulators including p53 and p21 halt cell cycle progression. When p53 detects DNA damage, it recruits repair enzymes and triggers apoptosis if damage persists. Elevated p53 levels stimulate p21 synthesis, which binds to Cdk/cyclin complexes and blocks progression to the S phase, preventing damaged cells from dividing.
Q5: When do different cyclin levels peak during the cell cycle?
Cyclin concentrations vary predictably across cell cycle phases. Cyclin D rises in G1 and remains high through most phases. Cyclin E peaks at the G1-S junction, while cyclin A is elevated during S and G2 phases. Cyclin B levels rise as the cell approaches M phase, promoting the transition to mitosis.
Q6: What is the role of the retinoblastoma protein in cell cycle regulation?
The retinoblastoma protein (Rb) functions as a negative regulator that halts the cell cycle. It prevents cells from progressing through critical checkpoints until appropriate conditions are met. By blocking cycle progression, Rb ensures that cells complete each phase properly before advancing, maintaining genomic stability.
Q7: How do phosphorylation and dephosphorylation events control MPF activity?
Phosphorylation and dephosphorylation events precisely regulate MPF activity. Wee1 kinase phosphorylates tyrosine residues on MPF to keep it inactive and prevent G2/M transition. Cdc25 phosphatase reverses this by dephosphorylating MPF, allowing a Cdk-activating kinase to phosphorylate threonine and fully activate MPF for mitosis.