Physical stimuli-responsive DNA hydrogels: design, fabrication strategies, and biomedical applications.

IF 10.6 1区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Rumi Acharya, Sayan Deb Dutta, Hemadri Mallik, Tejal V Patil, Keya Ganguly, Aayushi Randhawa, Hojin Kim, Jieun Lee, Hyeonseo Park, Changyeun Mo, Ki-Taek Lim
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Abstract

Physical stimuli-responsive DNA hydrogels hold immense potential for tissue engineering due to their inherent biocompatibility, tunable properties, and capacity to replicate the mechanical environment of natural tissue, making physical stimuli-responsive DNA hydrogels a promising candidate for tissue engineering. These hydrogels can be tailored to respond to specific physical triggers such as temperature, light, magnetic fields, ultrasound, mechanical force, and electrical stimuli, allowing precise control over their behavior. By mimicking the extracellular matrix (ECM), DNA hydrogels provide structural support, biomechanical cues, and cell signaling essential for tissue regeneration. This article explores various physical stimuli and their incorporation into DNA hydrogels, including DNA self-assembly and hybrid DNA hydrogel methods. The aim is to demonstrate how DNA hydrogels, in conjunction with other biomolecules and the ECM environment, generate dynamic scaffolds that respond to physical stimuli to facilitate tissue regeneration. We investigate the most recent developments in cancer therapies, including injectable DNA hydrogel for bone regeneration, personalized scaffolds, and dynamic culture models for drug discovery. The study concludes by delineating the remaining obstacles and potential future orientations in the optimization of DNA hydrogel design for the regeneration and reconstruction of tissue. It also addresses strategies for surmounting current challenges and incorporating more sophisticated technologies, thereby facilitating the clinical translation of these innovative hydrogels.

物理刺激响应 DNA 水凝胶:设计、制造策略和生物医学应用。
物理刺激响应 DNA 水凝胶因其固有的生物相容性、可调特性和复制天然组织机械环境的能力,在组织工程方面具有巨大的潜力,使物理刺激响应 DNA 水凝胶成为组织工程的理想候选材料。这些水凝胶可根据特定的物理触发因素(如温度、光、磁场、超声波、机械力和电刺激)进行定制,从而实现对其行为的精确控制。通过模拟细胞外基质(ECM),DNA 水凝胶可提供组织再生所必需的结构支撑、生物力学提示和细胞信号传导。本文探讨了各种物理刺激及其与 DNA 水凝胶的结合,包括 DNA 自组装和混合 DNA 水凝胶方法。目的是展示 DNA 水凝胶如何与其他生物大分子和 ECM 环境相结合,生成动态支架,对物理刺激做出反应,从而促进组织再生。我们研究了癌症疗法的最新进展,包括用于骨骼再生的可注射 DNA 水凝胶、个性化支架和用于药物发现的动态培养模型。本研究最后指出了在优化 DNA 水凝胶设计以促进组织再生和重建方面仍然存在的障碍和潜在的未来发展方向。研究还探讨了克服当前挑战和采用更先进技术的策略,从而促进这些创新水凝胶的临床转化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Nanobiotechnology
Journal of Nanobiotechnology BIOTECHNOLOGY & APPLIED MICROBIOLOGY-NANOSCIENCE & NANOTECHNOLOGY
CiteScore
13.90
自引率
4.90%
发文量
493
审稿时长
16 weeks
期刊介绍: Journal of Nanobiotechnology is an open access peer-reviewed journal communicating scientific and technological advances in the fields of medicine and biology, with an emphasis in their interface with nanoscale sciences. The journal provides biomedical scientists and the international biotechnology business community with the latest developments in the growing field of Nanobiotechnology.
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