Mammalian Ssu72 phosphatase preferentially considers tissue-specific actively transcribed gene expression by
Hyun-Soo Kim1, Yoon Jeon2, Yoon Ok Jang3
1Department of Molecular Cell Biology, Sungkyunkwan University School of Medicine, Suwon 16419, South Korea.
Abstract:
Reversible phosphorylation of the C-terminal domain (CTD) of RNA polymerase II (Pol II) is essential for gene expression control. How altering the phosphorylation of the CTD contributes to gene expression in mammalian systems remains poorly understood. Methods: Primary mouse embryonic fibroblasts, hepatocytes, and embryonic stem cells were isolated from conditional Ssu72f/f mice. To knockout the mouse Ssu72 gene, we infected the cells with adenoviruses of incorporated luciferase and Cre recombinase, respectively. RNA sequencing, ChIP sequencing, ChIP assay, immunoblot analyses, qRT-PCR assay, and immunostaining were performed to gain insights into the functional mechanisms of Ssu72 loss in Pol II dynamics. Results: Using primary cells isolated from Ssu72 conditional knockout and transgenic mice, we found that mammalian Ssu72-mediated transcriptional elongation rather than polyadenylation or RNA processing contributed to the transcriptional regulation of various genes. Depletion of Ssu72 resulted in aberrant Pol II pausing and elongation defects. Reduced transcriptional elongation efficiency tended to preferentially affect expression levels of actively transcribed genes in a tissue-specific manner. Furthermore, Ssu72 CTD phosphatase seemed to regulate the phosphorylation levels of CTD Ser2 and Thr4 through accurate modulation of P-TEFb activity and recruitment. Conclusions: Our findings demonstrate that mammalian Ssu72 contributes to the transcription of tissue-specific actively transcribed gene expression by regulating reciprocal phosphorylation of Pol II CTD.
Insights
Mammalian Ssu72 phosphatase regulates gene expression by controlling RNA polymerase II CTD phosphorylation. Loss of Ssu72 impairs transcriptional elongation, affecting tissue-specific gene activity.
Area of Science:
- Molecular Biology
- Gene Regulation
- Biochemistry
Background:
- Reversible phosphorylation of RNA polymerase II's C-terminal domain (CTD) is crucial for gene expression.
- The precise role of CTD phosphorylation alterations in mammalian gene expression is not fully understood.
Purpose of the Study:
- To investigate the function of Ssu72 in mammalian gene expression.
- To elucidate the mechanisms by which Ssu72 influences RNA polymerase II dynamics and transcriptional regulation.
Main Methods:
- Utilized conditional Ssu72 knockout mouse models (fibroblasts, hepatocytes, embryonic stem cells).
- Employed RNA sequencing, ChIP sequencing, ChIP assays, immunoblotting, qRT-PCR, and immunostaining.
- Assessed Pol II dynamics and gene expression changes upon Ssu72 depletion.
Main Results:
- Mammalian Ssu72 primarily regulates transcriptional elongation, not polyadenylation or RNA processing.
- Ssu72 depletion caused RNA polymerase II pausing and elongation defects.
- Reduced elongation efficiency disproportionately impacted actively transcribed, tissue-specific genes.
- Ssu72 appears to modulate P-TEFb activity to regulate CTD Ser2 and Thr4 phosphorylation.
Conclusions:
- Mammalian Ssu72 is essential for regulating tissue-specific gene expression.
- Ssu72 controls transcription by modulating RNA polymerase II CTD phosphorylation.
- The phosphatase activity of Ssu72 is key to maintaining proper transcriptional elongation.
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