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Updated: Jun 20, 2026

In situ Subcellular Fractionation of Adherent and Non-adherent Mammalian Cells
Published on: July 23, 2010
Human papillomavirus 16 E7 oncoprotein attenuates DNA damage checkpoint control by increasing the proteolytic
Nicole Spardy1, Kathryn Covella, Elliot Cha
1Biochemistry and Molecular Genetics Graduate Program, University of Pittsburgh School of Medicine, PA, USA.
Abstract:
The human papillomavirus (HPV) 16 E7 oncoprotein has been reported previously to stimulate DNA damage and to activate host cell DNA damage checkpoints. How HPV-16 E7 maintains proliferation despite activated DNA damage checkpoints is incompletely understood. Here, we provide evidence that cells expressing the HPV-16 E7 oncoprotein can enter mitosis in the presence of DNA damage. We show that this activity of HPV-16 E7 involves attenuation of DNA damage checkpoint control by accelerating the proteolytic turnover of claspin. Claspin mediates the activation of CHK1 by ATR in response to replication stress, and its degradation plays a critical role in DNA damage checkpoint recovery. Expression of a nondegradable mutant of claspin was shown to inhibit mitotic entry in HPV-16 E7-expressing cells. Multiple components of the SCF(beta-TrCP)-based claspin degradation machinery were found deregulated in the presence of HPV-16 E7, including cullin 1, beta-TrCP, Aurora A, and Polo-like kinase-1 (PLK1). In contrast, no difference in the expression level of the claspin deubiquitinating enzyme USP7 was detected. Levels of Aurora A and PLK1 as well as phosphorylated PLK1 at threonine 210, a prerequisite for DNA damage checkpoint recovery, remained detectable following replication stress in HPV-16 E7-expressing cells but not in control cells. In summary, our results suggest that the HPV-16 E7 oncoprotein alleviates DNA damage checkpoint responses and promotes mitotic entry by accelerating claspin degradation through a mechanism that involves deregulation of components of the SCF(beta-TrCP)-based claspin degradation machinery.
Insights
Human papillomavirus (HPV) 16 E7 oncoprotein promotes cell division during DNA damage by accelerating claspin degradation. This bypasses DNA damage checkpoints, allowing cells to enter mitosis despite genomic instability.
Area of Science:
- Molecular Biology
- Cell Biology
- Oncology
Background:
- Human papillomavirus (HPV) 16 E7 oncoprotein is known to induce DNA damage and activate cell cycle checkpoints.
- The mechanism by which HPV-16 E7 facilitates proliferation despite activated DNA damage checkpoints remains unclear.
Purpose of the Study:
- To investigate how HPV-16 E7 enables cells to enter mitosis in the presence of DNA damage.
- To elucidate the role of claspin degradation in HPV-16 E7-mediated checkpoint control.
Main Methods:
- Studied cells expressing HPV-16 E7 and their entry into mitosis with DNA damage.
- Investigated the degradation of claspin and its impact on DNA damage checkpoint recovery.
- Analyzed components of the SCF(beta-TrCP)-based claspin degradation machinery and key kinases like Aurora A and PLK1.
Main Results:
- HPV-16 E7 expression allows cells to enter mitosis despite DNA damage by accelerating claspin degradation.
- A nondegradable claspin mutant inhibited mitotic entry in HPV-16 E7-expressing cells.
- Key components of the claspin degradation pathway, including SCF(beta-TrCP), Aurora A, and PLK1, were deregulated by HPV-16 E7.
Conclusions:
- HPV-16 E7 alleviates DNA damage checkpoint responses and promotes mitotic entry.
- Accelerated claspin degradation, mediated by deregulation of the SCF(beta-TrCP) machinery, is a key mechanism for HPV-16 E7's function.
- This process contributes to genomic instability in HPV-infected cells.
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