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#tumor suppressor

6 public questions tagged with this topic.

What is the role of p53 in the G1 checkpoint?

G1 progression toward S phase is driven by cyclin-dependent kinases CDK4/6-cyclin D and CDK2-cyclin E that phosphorylate retinoblastoma protein Rb, releasing transcription factor E2F to induce genes for DNA replication enzymes, nucleotide biosynthesis, and replication licensing factors such as Cdc6. DNA damage in G1 would risk copying lesions, necessitating arrest. Tumor suppressor p53 serves as guardian by acting as transcription factor stabilized upon ATM-CHK2 signaling after double-strand breaks. One of its principal targets is CDKN1A encoding p21CIP1/WAF1, a potent inhibitor of CDK2-cyclin E and CDK2-cyclin A complexes. p21 binds and inhibits kinase active site, preventing phosphorylation of Rb and downstream substrates like Cdc6 and keeping E2F repressed, thereby imposing G1 arrest and allowing time for repair. p53 also induces GADD45 and 14-3-3 sigma contributing to pause. p53 does not degrade Rb, directly phosphorylate Cdc25, or ubiquitinate securin; those actions belong to other regulators. Through p21 induction, p53 enforces G1 checkpoint, and loss of this axis contributes to unchecked proliferation and genomic instability in majority of human cancers.

Ref: El-Deiry et al., Cell 1993, p21 as p53 Target; Bertoli et al., Nature Rev Mol Cell Biol 2013, G1-S Regulation.

ARF activates p53 pathway by

The tumor-suppressor protein p53 is kept at low levels in unstressed cells by continuous MDM2-mediated ubiquitination and degradation. DNA damage or oncogenic stress leads to phosphorylation of p53 or induction of ARF, both of which block the p53–MDM2 interaction. Stabilized p53 then transcriptionally activates genes that induce cell-cycle arrest, DNA repair or apoptosis, thereby preventing propagation of damaged genomes.

Ref: NCERT Biology Class 11–12 Alberts et al Molecular Biology of the Cell Lodish et al, Molecular Cell Biology Cooper & Hausman, The Cell Abbas et al., Cellular and Molecular Immunology (for immunology sections)

Tumor suppressor genes usually require

Two inactivating events, is consistent with established principles of cell signaling, receptor pharmacology and cellular regulation. Experimental measurements of binding parameters, genetic loss-of-function studies and pharmacological interventions all converge on the same interpretation. Related options address neighboring concepts but do not satisfy the precise criterion stated in the question.

Ref: NCERT Biology Class 11–12 Alberts et al Molecular Biology of the Cell Lodish et al, Molecular Cell Biology Cooper & Hausman, The Cell Abbas et al., Cellular and Molecular Immunology (for immunology sections)

Loss of APC function primarily affects which signaling pathway?

Wnt/β-catenin, is consistent with established principles of cell signaling, receptor pharmacology and cellular regulation. Experimental measurements of binding parameters, genetic loss-of-function studies and pharmacological interventions all converge on the same interpretation. Related options address neighboring concepts but do not satisfy the precise criterion stated in the question.

Ref: NCERT Biology Class 11–12 Alberts et al Molecular Biology of the Cell Lodish et al, Molecular Cell Biology Cooper & Hausman, The Cell Abbas et al., Cellular and Molecular Immunology (for immunology sections)

Loss of p53 function leads to

The tumor-suppressor protein p53 is kept at low levels in unstressed cells by continuous MDM2-mediated ubiquitination and degradation. DNA damage or oncogenic stress leads to phosphorylation of p53 or induction of ARF, both of which block the p53–MDM2 interaction. Stabilized p53 then transcriptionally activates genes that induce cell-cycle arrest, DNA repair or apoptosis, thereby preventing propagation of damaged genomes.

Ref: NCERT Biology Class 11–12 Alberts et al Molecular Biology of the Cell Lodish et al, Molecular Cell Biology Cooper & Hausman, The Cell Abbas et al., Cellular and Molecular Immunology (for immunology sections)

RB gene is a classical example of

Tumor suppressor gene, is consistent with established principles of cell signaling, receptor pharmacology and cellular regulation. Experimental measurements of binding parameters, genetic loss-of-function studies and pharmacological interventions all converge on the same interpretation. Related options address neighboring concepts but do not satisfy the precise criterion stated in the question.

Ref: NCERT Biology Class 11–12 Alberts et al Molecular Biology of the Cell Lodish et al, Molecular Cell Biology Cooper & Hausman, The Cell Abbas et al., Cellular and Molecular Immunology (for immunology sections)