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.

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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