Cytoskeleton-modulating nanomaterials and their therapeutic potentials

IF 15.2 1区 医学 Q1 PHARMACOLOGY & PHARMACY Advanced drug delivery reviews Pub Date : 2024-06-19 DOI:10.1016/j.addr.2024.115362
Jinwon Park , Yina Wu , Jung Suk Kim , Junho Byun, Jaiwoo Lee, Yu-Kyoung Oh
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Abstract

The cytoskeleton, an intricate network of protein fibers within cells, plays a pivotal role in maintaining cell shape, enabling movement, and facilitating intracellular transport. Its involvement in various pathological states, ranging from cancer proliferation and metastasis to the progression of neurodegenerative disorders, underscores its potential as a target for therapeutic intervention. The exploration of nanotechnology in this realm, particularly the use of nanomaterials for cytoskeletal modulation, represents a cutting-edge approach with the promise of novel treatments. Inorganic nanomaterials, including those derived from gold, metal oxides, carbon, and black phosphorus, alongside organic variants such as peptides and proteins, are at the forefront of this research. These materials offer diverse mechanisms of action, either by directly interacting with cytoskeletal components or by influencing cellular signaling pathways that, in turn, modulate the cytoskeleton. Recent advancements have introduced magnetic field-responsive and light-responsive nanomaterials, which allow for targeted and controlled manipulation of the cytoskeleton. Such precision is crucial in minimizing off-target effects and enhancing therapeutic efficacy. This review explores the importance of research into cytoskeleton-targeting nanomaterials for developing therapeutic interventions for a range of diseases. It also addresses the progress made in this field, the challenges encountered, and future directions for using nanomaterials to modulate the cytoskeleton. The continued exploration of nanomaterials for cytoskeleton modulation holds great promise for advancing therapeutic strategies against a broad spectrum of diseases, marking a significant step forward in the intersection of nanotechnology and medicine.

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细胞骨架调节纳米材料及其治疗潜力。
细胞骨架是细胞内错综复杂的蛋白质纤维网络,在维持细胞形状、实现运动和促进细胞内运输方面发挥着关键作用。细胞骨架参与了从癌症增殖和转移到神经退行性疾病进展等各种病理状态,这凸显了其作为治疗干预目标的潜力。纳米技术在这一领域的探索,特别是利用纳米材料调节细胞骨架,代表了一种有望实现新型治疗的前沿方法。无机纳米材料,包括从金、金属氧化物、碳和黑磷中提取的纳米材料,以及肽和蛋白质等有机变体,都处于这一研究的前沿。这些材料的作用机制多种多样,或直接与细胞骨架成分相互作用,或影响细胞信号通路,进而调节细胞骨架。最近的研究进展引入了磁场响应和光响应纳米材料,可对细胞骨架进行有针对性的可控操作。这种精确性对于减少脱靶效应和提高疗效至关重要。本综述探讨了细胞骨架靶向纳米材料研究对于开发一系列疾病治疗干预措施的重要性。它还探讨了该领域取得的进展、遇到的挑战以及使用纳米材料调节细胞骨架的未来方向。纳米材料在细胞骨架调节方面的不断探索为推进针对各种疾病的治疗策略带来了巨大希望,标志着纳米技术与医学的交汇向前迈出了重要一步。
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来源期刊
CiteScore
28.10
自引率
5.00%
发文量
294
审稿时长
15.1 weeks
期刊介绍: The aim of the Journal is to provide a forum for the critical analysis of advanced drug and gene delivery systems and their applications in human and veterinary medicine. The Journal has a broad scope, covering the key issues for effective drug and gene delivery, from administration to site-specific delivery. In general, the Journal publishes review articles in a Theme Issue format. Each Theme Issue provides a comprehensive and critical examination of current and emerging research on the design and development of advanced drug and gene delivery systems and their application to experimental and clinical therapeutics. The goal is to illustrate the pivotal role of a multidisciplinary approach to modern drug delivery, encompassing the application of sound biological and physicochemical principles to the engineering of drug delivery systems to meet the therapeutic need at hand. Importantly the Editorial Team of ADDR asks that the authors effectively window the extensive volume of literature, pick the important contributions and explain their importance, produce a forward looking identification of the challenges facing the field and produce a Conclusions section with expert recommendations to address the issues.
期刊最新文献
Editorial Board Application of MIDD to accelerate the development of anti-infectives: Current status and future perspectives Effects of nanoparticle deformability on multiscale biotransport Editorial Board Model-informed precision dosing: State of the art and future perspectives.
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