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Updated: Jan 22, 2026

Engineering Artificial Factors to Specifically Manipulate Alternative Splicing in Human Cells
Published on: April 26, 2017
Dual Targeting of Mutant p53 and SNRPD2 via Engineered Exosomes Modulates Alternative Splicing to Suppress Ovarian
Wei Zhao1,2,3, Qian Hao4,5, Yu Gan4,5
1Department of Gynecology, Xiangya Hospital, Central South University, Changsha, China.
Abstract:
Mutation of the tumor suppressor gene TP53 promotes ovarian cancer progression and therapeutic resistance. Whether mutant p53 (mtp53) regulates alternative splicing and how this regulation can be exploited for cancer therapy remain unclear. Here, small nuclear ribonucleoprotein D2 polypeptide (SNRPD2) as a binding partner of mtp53 is identified. SNRPD2 is highly expressed in ovarian cancer and associated with an unfavorable prognosis. The overexpression of SNRPD2 promotes, whereas its depletion inhibits, the growth and migration of ovarian cancer cells. Mechanistically, mtp53 cooperates with SNRPD2 to facilitate the assembly of the Sm/SMN protein complex, an essential component of the spliceosome, modulating alternative splicing of pre-mRNAs. Specifically, the co-depletion of mtp53 and SNRPD2 reduces the level of OTUD3 oncogenic transcripts while increasing its tumor suppressor counterparts through an exon-skipping event. Moreover, therapeutic engineered exosomes are developed with their surfaces decorated with iRGD and their interiors loaded with siRNAs targeting mtp53 and SNRPD2. These exosomes effectively suppress the growth of ovarian cancer cells and enhance their sensitivity to chemotherapy in vivo. Collectively, this study uncovers that mtp53 and SNRPD2 cooperatively regulate alternative splicing to drive ovarian cancer progression, and co-targeting these two molecules via engineered exosomes represents a potential therapeutic strategy for ovarian cancer.
Insights
Mutant p53 (mtp53) and SNRPD2 drive ovarian cancer by altering RNA splicing. Targeting both with engineered exosomes offers a novel therapeutic strategy for ovarian cancer treatment.
Area of Science:
- Oncology
- Molecular Biology
- RNA Splicing
Background:
- TP53 gene mutations are linked to ovarian cancer progression and treatment resistance.
- The role of mutant p53 (mtp53) in regulating alternative splicing and its therapeutic implications are not fully understood.
Purpose of the Study:
- To investigate the interaction between mtp53 and alternative splicing in ovarian cancer.
- To identify potential therapeutic targets and strategies for ovarian cancer.
Main Methods:
- Identified SNRPD2 as a binding partner of mtp53 using biochemical assays.
- Assessed the role of SNRPD2 in ovarian cancer cell growth and migration.
- Investigated the mechanism of mtp53-SNRPD2 cooperation in spliceosome assembly and alternative splicing.
- Developed engineered exosomes loaded with siRNAs targeting mtp53 and SNRPD2 for therapeutic delivery.
Main Results:
- SNRPD2 is overexpressed in ovarian cancer, correlating with poor prognosis and promoting tumor growth and migration.
- mtp53 and SNRPD2 cooperate to regulate alternative splicing by facilitating Sm/SMN complex assembly.
- Co-depletion of mtp53 and SNRPD2 altered alternative splicing of pre-mRNAs, reducing oncogenic OTUD3 transcripts.
- Engineered exosomes effectively suppressed tumor growth and enhanced chemotherapy sensitivity in vivo.
Conclusions:
- mtp53 and SNRPD2 cooperatively regulate alternative splicing, driving ovarian cancer progression.
- Co-targeting mtp53 and SNRPD2 using engineered exosomes is a promising therapeutic strategy for ovarian cancer.
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