Max Shotbolt, John Bryant, Ping Liang, Sakhrat Khizroev
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The literature search included recent advances in MENP synthesis, optimization of material composition and morphology, and preclinical studies demonstrating their ability to enhance drug delivery, disrupt tumor cell membranes, and induce tumor regression without systemic toxicity. Relevant studies were identified by searching electronic databases, including PubMed, Web of Science, Scopus, and Google Scholar. The search employed a combination of keywords and phrases such as \"magnetoelectric nanoparticles,\" \"MENPs,\" \"cancer therapy,\" \"nanomedicine,\" \"core-shell nanoparticles,\" \"magnetostrictive,\" \"piezoelectric,\" \"drug delivery,\" \"magnetic field,\" \"nano-electroporation,\" and \"reactive oxygen species..\" MENPs represent a promising option for precision oncology, offering remote control over therapeutic effects and the potential to overcome limitations of conventional treatments. 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引用次数: 0
摘要
癌症仍然是一个重大的临床挑战,目前的治疗方法往往受到脱靶效应、耐药性和肿瘤根除不完全的阻碍。迫切需要更精确和有效的治疗策略。本文综述了磁电纳米颗粒(MENPs)在癌症治疗中的作用机制及其应用。menp通常由核壳结构的磁致伸缩和压电材料组成,可以根据磁场产生电场,从而实现靶向性和非侵入性的治疗作用。文献检索包括MENP合成的最新进展,材料组成和形态的优化,以及临床前研究表明其能够增强药物传递,破坏肿瘤细胞膜,诱导肿瘤消退而无全身毒性。通过检索PubMed、Web of Science、Scopus、谷歌Scholar等电子数据库确定相关研究。搜索使用了一系列关键词和短语,如“磁电纳米粒子”、“MENPs”、“癌症治疗”、“纳米医学”、“核壳纳米粒子”、“磁致伸缩”、“压电”、“药物输送”、“磁场”、“纳米电穿孔”和“活性氧”。menp代表了精确肿瘤学的一个有前途的选择,提供对治疗效果的远程控制,并有可能克服传统治疗的局限性。目前的研究应侧重于优化MENP设计的选择性和有效性,以及推进其在癌症治疗中的临床转化。
Mechanism and applications of magnetoelectric nanoparticles in cancer therapy.
Cancer remains a major clinical challenge, with current therapies often hampered by off-target effects, drug resistance, and incomplete tumor eradication. There is a pressing need for more precise and effective treatment strategies. This review explores the mechanisms and applications of magnetoelectric nanoparticles (MENPs) in cancer therapy. MENPs, typically composed of magnetostrictive and piezoelectric materials in a core-shell structure, generate electric fields in response to magnetic fields, enabling targeted and noninvasive therapeutic actions. The literature search included recent advances in MENP synthesis, optimization of material composition and morphology, and preclinical studies demonstrating their ability to enhance drug delivery, disrupt tumor cell membranes, and induce tumor regression without systemic toxicity. Relevant studies were identified by searching electronic databases, including PubMed, Web of Science, Scopus, and Google Scholar. The search employed a combination of keywords and phrases such as "magnetoelectric nanoparticles," "MENPs," "cancer therapy," "nanomedicine," "core-shell nanoparticles," "magnetostrictive," "piezoelectric," "drug delivery," "magnetic field," "nano-electroporation," and "reactive oxygen species.." MENPs represent a promising option for precision oncology, offering remote control over therapeutic effects and the potential to overcome limitations of conventional treatments. Ongoing research should focus on optimizing MENP design for selectivity and efficacy, as well as advancing their clinical translation for cancer therapy.