Nanoparticle Co-delivery of Microtubule Inhibitors and Cisplatin Overcomes DNA Repair-Mediated Resistance in Head and
Xin Li1, Liubov Palchak2, Ling Wang2
1University of North Carolina at Chapel Hill Chapel Hill, NC United States.
Abstract:
Cisplatin remains a crucial chemotherapeutic for head and neck squamous cell carcinoma (HNSCC), but its effectiveness is limited by intrinsic or acquired resistance driven largely by enhanced DNA crosslink repair. Through a combined screen of DNA crosslink repair and cisplatin sensitivity modulators, our current study identifies a strong synergy between cisplatin and microtubule-targeting agents (MTAs), including taxanes and colchicine. MTAs suppress DNA crosslink repair and overcome cisplatin resistance in HNSCC cells. Mechanistically, MTAs impair the resolution of cisplatin-induced lesions, consistent with reduced recruitment of the XPF-ERCC1 endonuclease required for DNA crosslink unhooking. MTAs also diminish homologous recombination, accompanied by reduced recruitment of RPA32 and RAD51 to DNA damage sites. Moreover, MTAs disrupt DNA damage checkpoint activation in response to cisplatin, permitting cell cycle transit through S-phase despite persistent DNA damage. Together, these effects drive enhanced DNA damage accumulation and apoptosis in HNSCC cells treated with the cisplatin-MTA combination. To further harness this synergy for therapeutic benefit, we employ poly(2-oxazoline)-based (POx) micelles to co-encapsulate paclitaxel and a hydrophobic cisplatin prodrug with two aliphatic hexane chains (C6CP). This nanoformulation was developed to improve drug solubility and release profiles, resulting in optimized pharmacokinetics and enhanced tumor delivery and retention. Indeed, in syngeneic HNSCC models, nanoparticle co-delivery of paclitaxel and cisplatin prodrug produced markedly superior antitumor efficacy compared to the free drug combination. Collectively, our findings define a mechanism-guided, nanoparticle-enabled therapeutic approach for sensitizing HNSCC to platinum-based chemotherapy through selective disruption of DNA damage responses.
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