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Updated: Sep 28, 2025

Generation and Isolation of Cell Cycle-arrested Cells with Complex Karyotypes
Published on: April 13, 2018
Aberrant SKP1 Expression: Diverse Mechanisms Impacting Genome and Chromosome Stability
Laura L Thompson1,2, Kailee A Rutherford1,2, Chloe C Lepage1,2
1CancerCare Manitoba Research Institute, CancerCare Manitoba, Winnipeg, MB, Canada.
Abstract:
The S-phase Kinase-Associated Protein 1 (SKP1) is a core component of the SKP1, Cullin 1, F-box protein (SCF) complex, an E3 ubiquitin ligase that serves to poly-ubiquitinate a vast array of protein targets as a signal for their proteasomal degradation, thereby playing a critical role in the regulation of downstream biological processes. Many of the proteins regulated by SKP1 and the SCF complex normally function within pathways that are essential for maintaining genome stability, including DNA damage repair, apoptotic signaling, and centrosome dynamics. Accordingly, aberrant SKP1 and SCF complex expression and function is expected to disrupt these essential pathways, which may have pathological implications in diseases like cancer. In this review, we summarize the central role SKP1 plays in regulating essential cellular processes; we describe functional models in which SKP1 expression is altered and the corresponding impacts on genome stability; and we discuss the prevalence of SKP1 somatic copy number alterations, mutations, and altered protein expression across different cancer types, to identify a potential link between SKP1 and SCF complex dysfunction to chromosome/genome instability and cancer pathogenesis. Ultimately, understanding the role of SKP1 in driving chromosome instability will expand upon our rudimentary understanding of the key events required for genome/chromosome stability that may aid in our understanding of cancer pathogenesis, which will be critical for future studies to establish whether SKP1 may be useful as prognostic indicator or as a therapeutic target.
Insights
S-phase Kinase-Associated Protein 1 (SKP1) is crucial for cell cycle regulation and genome stability. Altered SKP1 function and expression are linked to cancer, suggesting its potential as a prognostic indicator or therapeutic target.
Area of Science:
- Molecular Biology
- Cell Biology
- Cancer Biology
Background:
- S-phase Kinase-Associated Protein 1 (SKP1) is a key component of the SCF E3 ubiquitin ligase complex.
- The SCF complex regulates protein degradation, impacting critical cellular processes like DNA repair and apoptosis.
- Dysregulation of SKP1 and SCF complex function is implicated in maintaining genome stability.
Purpose of the Study:
- To review the role of SKP1 in regulating cellular processes and genome stability.
- To examine functional models of altered SKP1 expression and their impact on genome integrity.
- To investigate the prevalence of SKP1 alterations in various cancers and their link to genomic instability.
Main Methods:
- Literature review of SKP1 function and SCF complex biology.
- Analysis of functional models demonstrating the impact of altered SKP1 expression.
- Examination of cancer genomic data for SKP1 somatic copy number alterations, mutations, and expression changes.
Main Results:
- SKP1 is essential for regulating cell cycle, DNA repair, and apoptosis.
- Altered SKP1 expression disrupts pathways crucial for genome stability.
- SKP1 alterations are prevalent across diverse cancer types, correlating with genomic instability.
Conclusions:
- SKP1 plays a vital role in maintaining genome stability.
- SKP1 and SCF complex dysfunction contribute to cancer pathogenesis through genomic instability.
- Further research may establish SKP1 as a prognostic biomarker or therapeutic target in cancer.
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