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Published on: January 20, 2019
PIBF1 regulates multiple gene expression via impeding long-range chromatin interaction to drive the malignant
Xiaomin Li1, Ci Ren2, Anni Huang2
1National Clinical Research Center for Gynecology and Obstetrics, Tongji Hospital, Tongji Medical College, Huazhong University of Science and Technology, Wuhan 430030, China; Department of Anesthesiology, Hubei Key Laboratory of Geriatric Anesthesia and Perioperative Brain Health, and Wuhan Clinical Research Center for Geriatric Anesthesia, Tongji Hospital, Tongji Medical College, Huazhong University of Science and Technology, China.
Introduction:
Human papillomavirus (HPV) integration can induce gene expression dysregulation by destroying higher-order chromatin structure in cervical cancer.
Objectives:
We established a 13q22 site-specific HPV16 gene knock-in cell model to interrogate the changes in chromatin structure at the initial stages of host cell malignant transformation.
Methods:
We designed a CRISPR-Cas9 system with sgRNA targeting 13q22 site and constructed the HPV16 gene donor. Cells were cotransfected, screened, and fluorescence sorted. The whole genome sequencing (WGS) was used to confirm the precise HPV16 gene integration site. Western blot and qRT-PCR were used to measure gene expression. In vitro and in vivo analysis were performed to estimate the tumorigenic potential of the HPV16 knock-in cell model. Combined Hi-C, chromatin immunoprecipitation and RNA sequencing analyses revealed correlations between chromatin structure and gene expression. We performed a coimmunoprecipitation assay with anti-PIBF1 antibody to identify endogenous interacting proteins. In vivo analysis was used to determine the role of PIBF1 in the tumor growth of cervical cancer cells.
Results:
We successfully established a 13q22 site-specific HPV16 gene knock-in cell model. We found that HPV integration promoted cell proliferation, invasion and stratified growth in vitro, and monoclonal proliferation in vivo. HPV integration divided the affected topologically associated domain (TAD) into two smaller domains, and the progesterone-induced blocking factor 1 (PIBF1) gene near the integration site was upregulated, although PIBF1 was not enriched at the domain boundary by CUT-Tag signal analysis. Moreover, PIBF1 was found to interact with the cohesin complex off chromatin to reduce contact domain formation by disrupting the cohesin ring-shaped structure, causing dysregulation of tumorigenesis-related genes. Xenograft experiments determined the role of PIBF1 in the proliferation in cervical cancer cells.
Conclusion:
We highlight that PIBF1, a potential chromatin structure regulatory protein, is activated by HPV integration, which provides new insights into HPV integration-driven cervical carcinogenesis.
Insights
Human papillomavirus (HPV) integration disrupts chromatin structure, activating PIBF1. This protein interacts with cohesin, dysregulating genes and driving cervical cancer progression.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Human papillomavirus (HPV) integration is a key event in cervical cancer development.
- HPV integration can disrupt higher-order chromatin structure, leading to gene expression dysregulation.
Purpose of the Study:
- To establish a site-specific HPV16 gene knock-in cell model to study early chromatin changes during malignant transformation.
- To investigate the role of PIBF1 in HPV integration-driven cervical carcinogenesis.
Main Methods:
- CRISPR-Cas9 for site-specific HPV16 integration at 13q22.
- Whole genome sequencing (WGS) to confirm integration site.
- Hi-C, ChIP, and RNA sequencing to analyze chromatin structure and gene expression.
- Co-immunoprecipitation and xenograft experiments to assess PIBF1 function.
Main Results:
- Established a 13q22 site-specific HPV16 knock-in cell model.
- HPV integration promoted cell proliferation and invasion, dividing topologically associated domains (TADs).
- Progesterone-induced blocking factor 1 (PIBF1) was upregulated and interacted with cohesin, disrupting chromatin structure and dysregulating tumorigenesis genes.
Conclusions:
- PIBF1 is activated by HPV integration and acts as a chromatin structure regulator.
- PIBF1 dysregulation contributes to HPV integration-driven cervical carcinogenesis.
- Findings offer new insights into the mechanisms of cervical cancer development.
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