Codelivery of adavosertib and olaparib by tumor-targeting nanoparticles for augmented efficacy and reduced toxicity
Wei Wang1, Yuxuan Xiong2, Xingyuan Hu1
1Department of Obstetrics and Gynecology, Tongji Hospital, Tongji Medical College, Huazhong University of Science and Technology, Wuhan 430030, China.
Abstract:
Ovarian cancer (OC) ranks first among gynecologic malignancies in terms of mortality. The benefits of poly (ADP-ribose) polymerase (PARP) inhibitors appear to be limited to OC with BRCA mutations. Concurrent administration of WEE1 inhibitors (eg, adavosertib (Ada)) and PARP inhibitors (eg, olaparib (Ola)) effectively suppress ovarian tumor growth regardless of BRCA mutation status, but is poorly tolerated. Henceforth, we aimed to seek a strategy to reduce the toxic effects of this combination by taking advantage of the mesoporous polydopamine (MPDA) nanoparticles with good biocompatibility and high drug loading capacity. In this work, we designed a tumor-targeting peptide TMTP1 modified MPDA-based nano-drug delivery system (TPNPs) for targeted co-delivery of Ada and Ola to treat OC. Ada and Ola could be effectively loaded into MPDA nanoplatform and showed tumor microenvironment triggered release behavior. The nanoparticles induced more apoptosis in OC cells, and significantly enhanced the synergy of combination therapy with Ada plus Ola in murine OC models. Moreover, the precise drug delivery of TPNPs towards tumor cells significantly diminished the toxic side effects caused by concurrent administration of Ada and Ola. Co-delivery of WEE1 inhibitors and PARP inhibitors via TPNPs represents a promising approach for the treatment of OC. STATEMENT OF SIGNIFICANCE: Combination therapy of WEE1 inhibitors (eg, Ada) with PARP inhibitors (eg, Ola) effectively suppress ovarian tumor growth regardless of BRCA mutation status. However, poor tolerability limits its clinical application. To address this issue, we construct a tumor-targeting nano-drug delivery system (TPNP) for co-delivery of Ada and Ola. The nanoparticles specifically target ovarian cancer and effectively enhance the antitumor effect while minimizing undesired toxic side effects. As the first nanomedicine co-loaded with a WEE1 inhibitor and a PARP inhibitor, TPNP-Ada-Ola may provide a promising and generally applicable therapeutic strategy for ovarian cancer patients.
Insights
New nanoparticles effectively deliver ovarian cancer drugs, enhancing treatment and reducing side effects. This targeted approach combines WEE1 and PARP inhibitors for better ovarian cancer therapy.
Area of Science:
- Oncology
- Nanomedicine
- Drug Delivery
Background:
- Ovarian cancer (OC) is a leading cause of gynecologic cancer mortality.
- Poly (ADP-ribose) polymerase (PARP) inhibitors show limited efficacy in OC without BRCA mutations.
- Concurrent WEE1 and PARP inhibitors improve OC treatment but cause poor tolerability.
Purpose of the Study:
- To develop a novel nano-drug delivery system for co-delivering WEE1 and PARP inhibitors.
- To enhance the efficacy and reduce the toxicity of combination therapy for ovarian cancer.
- To investigate a targeted strategy for ovarian cancer treatment irrespective of BRCA mutation status.
Main Methods:
- Designed mesoporous polydopamine (MPDA) nanoparticles modified with TMTP1 peptide (TPNPs).
- Co-loaded adavosertib (Ada, WEE1 inhibitor) and olaparib (Ola, PARP inhibitor) into TPNPs.
- Evaluated drug release, cellular apoptosis, in vivo efficacy, and toxicity in murine OC models.
Main Results:
- TPNPs demonstrated efficient drug loading and tumor microenvironment-triggered release.
- The co-delivery system significantly enhanced OC cell apoptosis and combination therapy synergy.
- TPNPs significantly improved antitumor effects and reduced systemic toxicity in vivo.
Conclusions:
- TPNPs offer a promising strategy for targeted co-delivery of WEE1 and PARP inhibitors in OC.
- This approach enhances therapeutic efficacy while mitigating the toxic side effects of combination therapy.
- TPNP-Ada-Ola represents a novel nanomedicine with potential for broad application in ovarian cancer treatment.
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