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April 6, 2026ACS Nano4 citations

Coassembled Prodrug Nanoparticles Mitigating the Acquired Resistance to Protein Degradation Therapy

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JGJing GaoSLShumin LeiYWYiying Wang

Key Points

  • The aim is to overcome acquired resistance to PROTACs in cancer therapy through a novel nanoplatform.
  • Developed coassembled PROTAC nanoparticles with human serum albumin and encapsulated rapamycin.
  • Evaluated the effect of the nanoparticles on drug efflux and tumor growth in a mouse model.
  • Measured the suppression of MDR1 expression and protein degradation efficacy in tumor cells.
  • The coassembled nanoparticles significantly reduced tumor growth in PROTAC-resistant breast cancer models.
  • Rapamycin effectively inhibited MDR1 expression and enhanced PROTAC efficacy.
  • Demonstrated that the approach is applicable across various types of PROTACs.

Abstract

PROTACs (Proteolysis TArgeting Chimeras) represent an emerging class of anticancer therapeutics that induce the selective degradation of pathogenic proteins. However, the therapeutic efficacy of PROTACs is often compromised by their insufficient tumor distribution, poor bioavailability, and emergence of acquired resistance. In this study, we demonstrated that the PROTAC resistance of tumor cells is attributed to the elevated level of expression of the drug efflux pump ATP-binding cassette subfamily B member 1 (ABCB1/MDR1). We therefore innovatively developed a coassembled PROTAC nanoplatform for combating the acquired PROTAC resistance of cancer. This PROTAC nanoplatform is engineered by self-assembly of alkylated PROTAC prodrugs with human serum albumin (HSA) while simultaneously encapsulating the mTOR inhibitor rapamycin (RAPA) to inhibit extracellular PROTAC efflux. Upon cellular uptake, the PROTAC prodrug nanoparticles are hydrolyzed by intracellular esterases to restore PROTAC and ablate the protein of interest. Simultaneously, the expression of drug efflux pump MDR1 is inhibited by RAPA, thereby mitigating the MRD1-associated PROTAC resistance. The efficacy of RAPA in overcoming PROTAC resistance was validated with multiple types of PROTACs, underscoring the generality of this approach. The coassembled nanoplatform integrating the alkylated PROTAC prodrug and RAPA highly efficiently suppressed tumor growth in a mouse model of PROTAC-resistant breast cancer.

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Cite This Study

Gao et al. (2026) studied this question.

synapsesocial.com/papers/69d34d5c9c07852e0af9758chttps://doi.org/10.1021/acsnano.5c20138
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