CaCO3-encircled hollow CuS nanovehicles to suppress cervical cancer through enhanced calcium overload-triggered mitochondria damage

IF 10.7 1区 医学 Q1 PHARMACOLOGY & PHARMACY Asian Journal of Pharmaceutical Sciences Pub Date : 2024-11-02 DOI:10.1016/j.ajps.2024.100989
Pengfei Wang , Xichen Sun , Liuyan Tang , Ningning Li , Qing Wang , Bicheng Gan , Yuezhou Zhang
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Abstract

Cervical cancer stands is a formidable malignancy that poses a significant threat to women's health. Calcium overload, a minimally invasive tumor treatment, aims to accumulate an excessive concentration of Ca2+ within mitochondria, triggering apoptosis. Copper sulfide (CuS) represents a photothermal mediator for tumor hyperthermia. However, relying solely on thermotherapy often proves insufficient in controlling tumor growth. Curcumin (CUR), an herbal compound with anti-cancer properties, inhibits the efflux of exogenous Ca2+ while promoting its excretion from the endoplasmic reticulum into the cytoplasm. To harness these therapeutic modalities, we have developed a nanoplatform that incorporates hollow CuS nanoparticles (NPs) adorned with multiple CaCO3 particles and internally loaded with CUR. This nanocomposite exhibits high uptake and easy escape from lysosomes, along with the degradation of surrounding CaCO3, provoking the generation of abundant exogenous Ca2+ in situ, ultimately damaging the mitochondria of diseased cells. Impressively, under laser excitation, the CuS NPs demonstrate a photothermal effect that accelerates the degradation of CaCO3, synergistically enhancing the antitumor effect through photothermal therapy. Additionally, fluorescence imaging reveals the distribution of these nanovehicles in vivo, indicating their effective accumulation at the tumor site. This nanoplatform shows promising outcomes for tumor-targeting and the effective treatment in a murine model of cervical cancer, achieved through cascade enhancement of calcium overload-based dual therapy.
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宫颈癌是一种严重威胁妇女健康的恶性肿瘤。钙超载是一种微创肿瘤治疗方法,旨在使线粒体内积聚过量的 Ca2+,从而引发细胞凋亡。硫化铜(CuS)是肿瘤热疗的光热介质。然而,仅靠热疗往往不足以控制肿瘤生长。姜黄素(CUR)是一种具有抗癌特性的草药化合物,它能抑制外源性 Ca2+ 的外流,同时促进其从内质网排泄到细胞质中。为了利用这些治疗模式,我们开发了一种纳米平台,其中包含中空的 CuS 纳米颗粒(NPs),上面缀有多个 CaCO3 颗粒,内部装有 CUR。这种纳米复合材料具有高吸收率,易于从溶酶体中逸出,同时周围的 CaCO3 也会降解,从而在原位产生大量外源 Ca2+,最终破坏病变细胞的线粒体。令人印象深刻的是,在激光激发下,CuS NPs 表现出光热效应,加速了 CaCO3 的降解,通过光热疗法协同增强了抗肿瘤效果。此外,荧光成像显示了这些纳米颗粒在体内的分布,表明它们在肿瘤部位的有效聚集。这种纳米平台通过级联增强基于钙超载的双重疗法,在小鼠宫颈癌模型中显示出肿瘤靶向和有效治疗的良好效果。
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来源期刊
Asian Journal of Pharmaceutical Sciences
Asian Journal of Pharmaceutical Sciences Pharmacology, Toxicology and Pharmaceutics-Pharmaceutical Science
CiteScore
18.30
自引率
2.90%
发文量
11
审稿时长
14 days
期刊介绍: The Asian Journal of Pharmaceutical Sciences (AJPS) serves as the official journal of the Asian Federation for Pharmaceutical Sciences (AFPS). Recognized by the Science Citation Index Expanded (SCIE), AJPS offers a platform for the reporting of advancements, production methodologies, technologies, initiatives, and the practical application of scientific knowledge in the field of pharmaceutics. The journal covers a wide range of topics including but not limited to controlled drug release systems, drug targeting, physical pharmacy, pharmacodynamics, pharmacokinetics, pharmacogenomics, biopharmaceutics, drug and prodrug design, pharmaceutical analysis, drug stability, quality control, pharmaceutical engineering, and material sciences.
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