Chiral fiber supramolecular hydrogels for tissue engineering.

IF 6.9 2区 医学 Q1 MEDICINE, RESEARCH & EXPERIMENTAL
Xueqian Wang, Chuanliang Feng
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引用次数: 20

Abstract

Tissue engineering (TE), as a new interdisciplinary discipline, aims to develop biological substitutes for repairing damaged tissues and organs. For the success of tissue regeneration, such biomaterials need to support the physiological activities of cells and allow the growth and maturation of tissues. Naturally, this regulation is achieved through the dynamic remodeling of the extracellular matrix (ECM) of cells. In recent years, chiral supramolecular hydrogels have shown higher application potential in the TE field than traditional polymer hydrogels due to their dynamic noncovalent interactions, adjustable self-assembly structure, and good biocompatibility. These advantages make it possible to construct hydrogels under physiological conditions with structure and function similar to those of the natural ECM. Meanwhile, the chiral characteristics of hydrogels play an important role in regulating cellular activities such as differentiation, adhesion, and proliferation, which is beneficial for tissue formation. In this review, a brief introduction is presented to highlight the importance of chiral fiber supramolecular hydrogels for TE at first. Afterward, the considerations for chiral supramolecular hydrogel design, as well as the influence of external stimuli on chiral hydrogel construction, are discussed. Finally, the potential application prospects of these materials in TE and the significant contribution made by our group in this field are summarized. This review not only helps to reveal the importance of chiral properties in TE but also provides new strategies for TE research based on chiral bionic microenvironments. This article is categorized under: Implantable Materials and Surgical Technologies > Nanotechnology in Tissue Repair and Replacement Biology-Inspired Nanomaterials > Peptide-Based Structures Nanotechnology Approaches to Biology > Cells at the Nanoscale Therapeutic Approaches and Drug Discovery > Emerging Technologies.

组织工程用手性纤维超分子水凝胶。
组织工程(Tissue engineering, TE)是一门新兴的交叉学科,旨在开发生物替代品来修复受损组织和器官。为了组织再生的成功,这些生物材料需要支持细胞的生理活动,并允许组织的生长和成熟。自然,这种调节是通过细胞外基质(ECM)的动态重塑来实现的。近年来,手性超分子水凝胶由于其动态的非共价相互作用、可调节的自组装结构和良好的生物相容性,在TE领域显示出比传统聚合物水凝胶更大的应用潜力。这些优点使得在生理条件下构建具有与天然ECM相似结构和功能的水凝胶成为可能。同时,水凝胶的手性特性在调节细胞的分化、粘附、增殖等活动中发挥重要作用,有利于组织的形成。本文首先简要介绍了手性纤维超分子水凝胶在TE中的重要性。然后,讨论了手性超分子水凝胶设计的考虑因素,以及外界刺激对手性水凝胶构建的影响。最后总结了这些材料在TE领域的潜在应用前景以及本课题组在该领域的重大贡献。这一综述不仅有助于揭示手性特性在TE中的重要性,也为基于手性仿生微环境的TE研究提供了新的策略。本文分类如下:植入式材料和外科技术>组织修复和替代中的纳米技术-受生物学启发的纳米材料>肽基结构纳米技术生物学方法>纳米级细胞治疗方法和药物发现>新兴技术。
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
Wiley interdisciplinary reviews. Nanomedicine and nanobiotechnology
Wiley interdisciplinary reviews. Nanomedicine and nanobiotechnology NANOSCIENCE & NANOTECHNOLOGY-MEDICINE, RESEARCH & EXPERIMENTAL
CiteScore
16.60
自引率
2.30%
发文量
93
期刊介绍: Nanotechnology stands as one of the pivotal scientific domains of the twenty-first century, recognized universally for its transformative potential. Within the biomedical realm, nanotechnology finds crucial applications in nanobiotechnology and nanomedicine, highlighted as one of seven emerging research areas under the NIH Roadmap for Medical Research. The advancement of this field hinges upon collaborative efforts across diverse disciplines, including clinicians, biomedical engineers, materials scientists, applied physicists, and toxicologists. Recognizing the imperative for a high-caliber interdisciplinary review platform, WIREs Nanomedicine and Nanobiotechnology emerges to fulfill this critical need. Our topical coverage spans a wide spectrum, encompassing areas such as toxicology and regulatory issues, implantable materials and surgical technologies, diagnostic tools, nanotechnology approaches to biology, therapeutic approaches and drug discovery, and biology-inspired nanomaterials. Join us in exploring the frontiers of nanotechnology and its profound impact on biomedical research and healthcare.
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