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工程化电荷自适应纳米平台克服药物渗透障碍以增强化疗疗效。

Engineered charge adaptive nanoplatform overcomes the drug penetration barriers to potentiate the efficacy of chemotherapy.

作者信息

Xie Guangxing, Zhao Weidong, Liu Qian, Wang Bingjie, Feng Rongrong, Sun Hao, Cong Mei

机构信息

School of Pharmacy, Henan Medical University, Xinxiang, Henan, China.

Henan Key Laboratory of Immunology and Targeted Drugs, School of Medical Technology, Henan Medical University, Xinxiang, Henan, China.

出版信息

Mater Today Bio. 2025 Aug 23;34:102228. doi: 10.1016/j.mtbio.2025.102228. eCollection 2025 Oct.

Abstract

Breast cancer continues to present a major clinical hurdle, largely attributable to its aggressive metastatic behavior and the suboptimal efficacy of standard chemotherapeutic regimens. Cisplatin (CDDP) is a representative platinum drug in the treatment of breast cancer, however, its therapeutic application is often constrained by systemic toxicity and the frequent onset of chemoresistance. Here, we introduce a novel charge-adaptive nanoprodrug system, referred to as PP@, engineered to respond to tumor-specific conditions. This platform was constructed by conjugating ibuprofen and polyethylene glycol (PEG) to the hydrophobic and hydrophilic termini of an amphiphilic dendrimer, respectively, enabling the formation of uniform and stable nanostructures through spontaneous self-assembly. Importantly, PP@ undergoes charge reversal in response to acidic pH and elevated glutathione levels (GSH), facilitating deeper tumor penetration. Cisplatin was subsequently encapsulated within the nanoprodrug to yield the PP@-based CDDP nanoformulation (PP@CDDP). The physicochemical properties and therapeutic performance of PP@CDDP were systematically evaluated. The results demonstrated that PP@CDDP significantly improves cellular uptake, suppresses drug efflux, and reduces intracellular GSH levels, collectively contributing to prolonged drug retention at the tumor site. In vivo studies further confirmed that PP@CDDP significantly improved the antitumor efficacy of cisplatin, as evidenced by marked inhibition of tumor growth and metastasis, along with a favorable safety profile. These results underscore the potential of this charge-adaptive nanoprodrug platform to address key limitations of traditional cisplatin chemotherapy. The rational integration of smart material design with pharmacological strategies offers a promising pathway for improving therapeutic outcomes in cancer treatment.

摘要

乳腺癌仍然是一个重大的临床难题,这在很大程度上归因于其侵袭性的转移行为以及标准化疗方案的疗效欠佳。顺铂(CDDP)是治疗乳腺癌的代表性铂类药物,然而,其治疗应用常常受到全身毒性和频繁出现的化疗耐药性的限制。在此,我们引入了一种新型的电荷适应性纳米前药系统,称为PP@,其设计目的是对肿瘤特异性条件做出反应。该平台是通过将布洛芬和聚乙二醇(PEG)分别连接到两亲性树枝状大分子的疏水端和亲水端构建而成的,通过自发自组装能够形成均匀且稳定的纳米结构。重要的是,PP@会响应酸性pH值和升高的谷胱甘肽水平(GSH)而发生电荷反转,从而促进其更深地渗透到肿瘤中。随后将顺铂封装在纳米前药中,得到基于PP@的CDDP纳米制剂(PP@CDDP)。我们系统地评估了PP@CDDP的物理化学性质和治疗性能。结果表明,PP@CDDP显著提高了细胞摄取,抑制了药物外排,并降低了细胞内GSH水平,共同促进了药物在肿瘤部位的长时间保留。体内研究进一步证实,PP@CDDP显著提高了顺铂的抗肿瘤疗效,表现为对肿瘤生长和转移的明显抑制以及良好的安全性。这些结果强调了这种电荷适应性纳米前药平台解决传统顺铂化疗关键局限性的潜力。将智能材料设计与药理学策略合理整合为改善癌症治疗的疗效提供了一条有前景的途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/62fb/12414913/f87c7095615c/ga1.jpg

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