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Updated: Aug 4, 2025

Author Spotlight: Unveiling the Role of TMOD3 in Platinum Resistance and Immune Infiltration in Ovarian Cancer
Published on: August 2, 2024
ROS-mediated SRMS activation confers platinum resistance in ovarian cancer
Yunhan Jiang1, Lina Song1, Yizhu Lin2
1Department of Molecular Medicine, Long School of Medicine, University of Texas Health Science Center at San Antonio, San Antonio, TX, 78229, USA.
Abstract:
Ovarian cancer is the leading cause of death among gynecological malignancies. Checkpoint blockade immunotherapy has so far only shown modest efficacy in ovarian cancer and platinum-based chemotherapy remains the front-line treatment. Development of platinum resistance is one of the most important factors contributing to ovarian cancer recurrence and mortality. Through kinome-wide synthetic lethal RNAi screening combined with unbiased datamining of cell line platinum response in CCLE and GDSC databases, here we report that Src-Related Kinase Lacking C-Terminal Regulatory Tyrosine And N-Terminal Myristylation Sites (SRMS), a non-receptor tyrosine kinase, is a novel negative regulator of MKK4-JNK signaling under platinum treatment and plays an important role in dictating platinum efficacy in ovarian cancer. Suppressing SRMS specifically sensitizes p53-deficient ovarian cancer cells to platinum in vitro and in vivo. Mechanistically, SRMS serves as a "sensor" for platinum-induced ROS. Platinum treatment-induced ROS activates SRMS, which inhibits MKK4 kinase activity by directly phosphorylating MKK4 at Y269 and Y307, and consequently attenuates MKK4-JNK activation. Suppressing SRMS leads to enhanced MKK4-JNK-mediated apoptosis by inhibiting MCL1 transcription, thereby boosting platinum efficacy. Importantly, through a "drug repurposing" strategy, we uncovered that PLX4720, a small molecular selective inhibitor of B-RafV600E, is a novel SRMS inhibitor that can potently boost platinum efficacy in ovarian cancer in vitro and in vivo. Therefore, targeting SRMS with PLX4720 holds the promise to improve the efficacy of platinum-based chemotherapy and overcome chemoresistance in ovarian cancer.
Insights
Targeting Src-Related Kinase Lacking C-Terminal Regulatory Tyrosine And N-Terminal Myristylation Sites (SRMS) with PLX4720 overcomes platinum resistance in ovarian cancer. Suppressing SRMS enhances platinum efficacy by reactivating MKK4-JNK signaling and promoting apoptosis.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Ovarian cancer is a leading cause of gynecological cancer mortality.
- Platinum-based chemotherapy is the front-line treatment, but resistance limits efficacy.
- Checkpoint blockade immunotherapy has shown modest results in ovarian cancer.
Purpose of the Study:
- To identify novel regulators of platinum efficacy in ovarian cancer.
- To investigate the role of Src-Related Kinase Lacking C-Terminal Regulatory Tyrosine And N-Terminal Myristylation Sites (SRMS) in platinum resistance.
- To explore therapeutic strategies targeting SRMS to overcome chemoresistance.
Main Methods:
- Kinome-wide synthetic lethal RNAi screening.
- Datamining of ovarian cancer cell line platinum response (CCLE and GDSC).
- In vitro and in vivo validation of SRMS suppression and PLX4720 efficacy.
Main Results:
- SRMS acts as a negative regulator of MKK4-JNK signaling under platinum treatment.
- SRMS inhibition sensitizes p53-deficient ovarian cancer cells to platinum.
- SRMS, activated by platinum-induced ROS, phosphorylates and inhibits MKK4.
- PLX4720, a B-Raf inhibitor, effectively inhibits SRMS and enhances platinum efficacy.
Conclusions:
- SRMS is a novel therapeutic target for overcoming platinum resistance in ovarian cancer.
- Targeting SRMS with PLX4720 offers a promising strategy to improve platinum-based chemotherapy outcomes.
- Reactivating MKK4-JNK signaling via SRMS inhibition enhances apoptosis and boosts platinum efficacy.
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