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SUMO-Binding Entities SUBEs as Tools for the Enrichment, Isolation, Identification, and Characterization of the SUMO Proteome in Liver Cancer
Published on: November 1, 2019
Characterization of the loss of SUMO pathway function on cancer cells and tumor proliferation
Xingyue He1, Jessica Riceberg1, Sai M Pulukuri1
1Oncology Drug Discovery Unit, Takeda Pharmaceuticals International Co., Cambridge, United States of America.
Abstract:
SUMOylation is a post-translational ubiquitin-like protein modification pathway that regulates important cellular processes including chromosome structure, kinetochore function, chromosome segregation, nuclear and sub-nuclear organization, transcription and DNA damage repair. There is increasing evidence that the SUMO pathway is dysregulated in cancer, raising the possibility that modulation of this pathway may have therapeutic potential. To investigate the importance of the SUMO pathway in the context of cancer cell proliferation and tumor growth, we applied lentivirus-based short hairpin RNAs (shRNA) to knockdown SUMO pathway genes in human cancer cells. shRNAs for SAE2 and UBC9 reduced SUMO conjugation activity and inhibited proliferation of human cancer cells. To expand upon these observations, we generated doxycycline inducible conditional shRNA cell lines for SAE2 to achieve acute and reversible SAE2 knockdown. Conditional SAE2 knockdown in U2OS and HCT116 cells slowed cell growth in vitro, and SAE2 knockdown induced multiple terminal outcomes including apoptosis, endoreduplication and senescence. Multinucleated cells became senescent and stained positive for the senescence marker, SA-β Gal, and displayed elevated levels of p53 and p21. In an attempt to explain these phenotypes, we confirmed that loss of SUMO pathway activity leads to a loss of SUMOylated Topoisomerase IIα and the appearance of chromatin bridges which can impair proper cytokinesis and lead to multinucleation. Furthermore, knockdown of SAE2 induces disruption of PML nuclear bodies which may further promote apoptosis or senescence. In an in vivo HCT116 xenograft tumor model, conditional SAE2 knockdown strongly impaired tumor growth. These data demonstrate that the SUMO pathway is required for cancer cell proliferation in vitro and tumor growth in vivo, implicating the SUMO pathway as a potential cancer therapeutic target.
Insights
Targeting the SUMOylation pathway, essential for cell division and DNA repair, inhibits cancer growth. Knocking down SAE2 halts cancer cell proliferation and tumor development, suggesting it as a potential cancer therapeutic target.
Area of Science:
- Cell Biology
- Molecular Biology
- Oncology
Background:
- SUMOylation is a critical post-translational modification regulating diverse cellular processes.
- Dysregulation of the SUMOylation pathway is implicated in cancer development.
- Targeting SUMOylation presents a potential therapeutic strategy for cancer treatment.
Purpose of the Study:
- To investigate the role of the SUMOylation pathway in cancer cell proliferation and tumor growth.
- To assess the therapeutic potential of modulating the SUMOylation pathway in cancer.
Main Methods:
- Lentivirus-based short hairpin RNAs (shRNA) were used to knockdown SUMOylation genes (SAE2, UBC9) in human cancer cells.
- Doxycycline-inducible conditional shRNA cell lines for SAE2 were generated for acute and reversible knockdown.
- In vitro cell growth assays and in vivo xenograft tumor models were employed.
Main Results:
- Knockdown of SAE2 and UBC9 reduced SUMO conjugation and inhibited cancer cell proliferation.
- Conditional SAE2 knockdown in cancer cells led to slowed growth, apoptosis, endoreduplication, and senescence.
- SAE2 knockdown resulted in loss of SUMOylated Topoisomerase IIα, chromatin bridges, and disrupted PML nuclear bodies.
- In vivo, conditional SAE2 knockdown significantly impaired tumor growth in an HCT116 xenograft model.
Conclusions:
- The SUMOylation pathway is essential for cancer cell proliferation in vitro and tumor growth in vivo.
- SAE2 is a critical component of the SUMOylation pathway required for cancer progression.
- Modulating the SUMOylation pathway, specifically targeting SAE2, holds promise as a cancer therapeutic strategy.
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