Enhanced activity of a pluronic F127 formulated Pin1 inhibitor for ovarian cancer therapy
Повышенная активность ингибитора Pin1 на основе Pluronic F127 для терапии рака яичников
2023-07-16
SCID: 54.1/62wutx9s
Discuss with AI
C17 inhibitorPin1 inhibitorPluronic F127 nanoformulationovarian cancerpatient-derived tumor organoids
Figures from the paper
Abstract (AI)
Ovarian cancer remains the most lethal gynecological malignancy, characterized by late-stage diagnosis and high recurrence rates. Recent research highlights the Peptidyl-prolyl cis-trans isomerase NIMA-interacting 1 (Pin1) enzyme as a critical therapeutic target, as it is significantly upregulated in cancer stem cells and drives tumor progression. While the non-covalent inhibitor C17 exhibits potent nanomolar enzymatic activity against Pin1, its therapeutic utility is severely hampered by poor solubility and low cell permeability. To address these pharmacokinetic limitations, this study developed a novel nanoformulation of C17 using the FDA-approved, biocompatible polymer Pluronic F127®. The anticancer efficacy of this delivery system was evaluated across multiple ovarian cancer cell lines and patient-derived tumor organoids (PDTOs), which serve as highly relevant human models for high-grade serous carcinoma. Our results demonstrate that the Pluronic F127® matrix effectively encapsulates C17, enhancing its bioavailability and inhibitory impact on tumor growth. By overcoming the physical barriers to C17 delivery, this nano-based strategy provides a promising approach to improve the treatment of chemoresistant ovarian cancer through targeted Pin1 inhibition.
Key Findings
1
An FDA-approved, biocompatible Pluronic F127® nanoformulation was developed to encapsulate C17 and overcome its pharmacokinetic limitations.
2
Pin1 is identified as a critical therapeutic target in ovarian cancer because it is upregulated in cancer stem cells and promotes tumor progression.
3
Pluronic F127® encapsulation enhanced C17 bioavailability and inhibitory effects on tumor growth across ovarian cancer cell lines and patient-derived tumor organoids.
4
The nanoformulation offers a promising strategy for targeted Pin1 inhibition in chemoresistant ovarian cancer.
5
The non-covalent Pin1 inhibitor C17 has potent nanomolar enzymatic activity, but poor solubility and low cell permeability limit its therapeutic utility.
Research Object
Pluronic F127-formulated C17 Pin1 inhibitor evaluated in ovarian cancer cell lines and patient-derived tumor organoids
Research Subject
The nanoformulation’s bioavailability, cellular permeability, Pin1-inhibitory activity, and anticancer efficacy against chemoresistant ovarian cancer
Publication Details
Publication Date
2023-07-16
Journal
Publisher
ISSN
Cited by
11
Open access PDF
Access Type
Author Information
Download PDF
Subscribe to digest