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SETD2 Deficiency Drives Mitochondrial DNA Leakage and Creates a Druggable Dependency on BCL-xL in Clear Cell Renal
Anusha Uprety1, Chandler Judd1, Emily D Villella1
1Department of Pharmacology and Immunology, Medical University of South Carolina, Charleston, South Carolina.
Abstract:
SETD2 is frequently mutated or deleted in clear cell renal cell carcinoma (ccRCC). Loss of SETD2 could create synthetic lethal dependencies that confer therapeutic vulnerabilities. In this study, we demonstrated that SETD2 deficiency promotes cytoplasmic mitochondrial DNA (mtDNA) leakage, leading to basal activation of cGAS-STING inflammatory signaling and increased apoptotic priming. This inflammatory state upregulated the BH3-only protein NOXA, constrained myeloid cell leukemia 1 (MCL-1) function, and enforced a synthetic lethal dependency on the antiapoptotic protein BCL-xL. Pharmacologic inhibition of BCL-xL further amplified cGAS-STING signaling in SETD2-deficient cells through sublethal mitochondrial outer membrane permeabilization, resulting in increased mtDNA release and robust NOXA induction. Elevated NOXA neutralized the compensatory MCL-1-mediated survival signaling, triggering apoptosis. In contrast, SETD2-proficient ccRCC cells exhibited minimal cGAS-STING activation and failed to induce NOXA following BCL-xL inhibition, rendering them resistant. Genetic ablation of cGAS, STING, IRF3, or NOXA rescued sensitivity to BCL-xL inhibition, confirming that mtDNA-driven innate immune signaling is required for this dependency. In vivo, BCL-xL inhibition suppressed tumor growth and prolonged survival in SETD2-deficient xenograft models. Collectively, these findings establish a mechanistic link between SETD2 loss, mtDNA-driven innate immune activation, and enforced BCL-xL dependence in ccRCC, revealing a therapeutically targetable vulnerability in SETD2-deficient tumors.
Significance:
SETD2 deficiency, which is associated with worse prognosis in kidney cancer, promotes mitochondrial DNA-driven cGAS-STING signaling and NOXA-mediated apoptotic priming, creating a therapeutically targetable dependency on BCL-xL in kidney cancer.
Insights
Loss of SETD2 in clear cell renal cell carcinoma (ccRCC) causes mitochondrial DNA leakage, activating inflammatory pathways. This creates a vulnerability to BCL-xL inhibition, offering a new therapeutic strategy for ccRCC.
Area of Science:
- Oncology
- Molecular Biology
- Immunology
Background:
- SETD2 is frequently altered in clear cell renal cell carcinoma (ccRCC).
- SETD2 loss may lead to synthetic lethal dependencies and therapeutic vulnerabilities.
- Understanding these dependencies is crucial for developing targeted ccRCC therapies.
Purpose of the Study:
- To investigate the functional consequences of SETD2 deficiency in ccRCC.
- To identify therapeutic vulnerabilities arising from SETD2 loss.
- To explore the role of innate immune signaling in SETD2-deficient ccRCC.
Main Methods:
- Assessed mitochondrial DNA (mtDNA) leakage and cGAS-STING signaling in SETD2-deficient cells.
- Investigated the impact of BCL-xL inhibition on SETD2-deficient and proficient ccRCC cells.
- Utilized genetic ablation of key signaling molecules (cGAS, STING, IRF3, NOXA) to confirm mechanisms.
- Evaluated BCL-xL inhibition efficacy in SETD2-deficient ccRCC xenograft models.
Main Results:
- SETD2 deficiency promotes cytoplasmic mtDNA leakage, activating cGAS-STING innate immune signaling.
- This leads to NOXA upregulation and enforced BCL-xL dependency in SETD2-deficient ccRCC.
- BCL-xL inhibition triggers apoptosis in SETD2-deficient cells via amplified cGAS-STING signaling and NOXA induction.
- SETD2-proficient cells are resistant to BCL-xL inhibition.
- Genetic inactivation of cGAS, STING, IRF3, or NOXA abrogates sensitivity to BCL-xL inhibition.
- BCL-xL inhibition suppressed tumor growth and improved survival in vivo.
Conclusions:
- SETD2 loss in ccRCC induces mtDNA leakage and innate immune activation.
- This establishes a synthetic lethal dependency on BCL-xL.
- Targeting BCL-xL represents a promising therapeutic strategy for SETD2-deficient ccRCC.
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