Nanofibrous-Composite Hydrogels for Modulating Stem Cell Behavior.

IF 1.9 4区 生物学 Q1 ANATOMY & MORPHOLOGY
Andres F Roca-Arroyo, Jhonatan A Gutierrez-Rivera, Laura M Mejia-Rosales, Logan D Morton, David A Castilla-Casadiego
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引用次数: 0

Abstract

Background: Hydrogels are widely used as ECM-mimetic biomaterials, but most lack the nanofibrous hierarchy of the native extracellular matrix, which is essential for regulating human stem cells (hSCs) behavior. Nanofibrous composite hydrogels address this limitation by incorporating fibrillar cues, either intrinsically formed, dispersed within the matrix, or applied at the surface, to better replicate the structural and mechanotopographical features of the stem cell niche.

Summary: This review systematically compares three nanofiber hydrogel architectures: self-assembling nanofiber matrices, hydrogels with encapsulated electrospun fibers, and hydrogels surface-decorated with fibrous coatings. We examine how differences in fiber chemistry, stiffness, degradability, and spatial organization regulate key hSCs' behaviors, including adhesion, viability, morphology, proliferation, migration, differentiation, and secretion. Polymeric, natural, hybrid, magnetic, and bioactive nanoparticle reinforced fibers are each discussed to highlight how each configuration generates distinct biophysical and biochemical cues. By linking fabrication strategies to resulting cellular outcomes, this review outlines architecture-specific advantages and limitations that inform the rational design of next-generation ECM-mimetic scaffolds.

Key messages: Nanofibrous hydrogels bridge the gap between conventional hydrogel mechanics and the nanoscale organization of the native ECM, enabling more physiologically relevant control of hSCs' behavior. Each architecture provides distinct structural and mechanobiological cues suited to different therapeutic or manufacturing goals. Hybrid and multifunctional fiber systems, such as magnetic systems, ion-releasing platforms, and nanoparticle-enhanced fibers, deliver synergistic biochemical and mechanical signals that enhance differentiation and paracrine activity. Understanding how fiber properties and organization influence cell responses provides a roadmap for designing ECM-mimetic biomaterials optimized for scalable hSCs expansion and regenerative applications.

纳米纤维复合水凝胶用于调节干细胞行为。
背景:水凝胶被广泛用作模拟ecm的生物材料,但大多数水凝胶缺乏天然细胞外基质的纳米纤维结构,而这对于调节人类干细胞(hsc)的行为至关重要。纳米纤维复合水凝胶通过结合纤维线索来解决这一限制,这些纤维线索要么是内在形成的,要么是分散在基质中,要么是应用在表面,以更好地复制干细胞生态位的结构和机械地形特征。摘要:本文系统地比较了三种纳米纤维水凝胶结构:自组装纳米纤维基质、封装电纺丝纤维的水凝胶和表面涂有纤维涂层的水凝胶。我们研究了纤维化学、硬度、可降解性和空间组织的差异如何调节造血干细胞的关键行为,包括粘附、活力、形态、增殖、迁移、分化和分泌。聚合物、天然、杂化、磁性和生物活性纳米颗粒增强纤维都进行了讨论,以突出每种配置如何产生不同的生物物理和生化线索。通过将制造策略与所产生的细胞结果联系起来,本文概述了结构特定的优势和局限性,为下一代ecm模拟支架的合理设计提供了信息。关键信息:纳米纤维水凝胶弥合了传统水凝胶力学和天然ECM纳米级组织之间的差距,使hsc行为的生理控制更加相关。每种结构提供不同的结构和机械生物学线索,适合不同的治疗或制造目标。混合和多功能纤维系统,如磁性系统、离子释放平台和纳米颗粒增强纤维,提供协同的生化和机械信号,增强分化和旁分泌活性。了解纤维特性和组织如何影响细胞反应,为设计可扩展hsc扩展和再生应用的模拟ecm生物材料提供了路线图。
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
Cells Tissues Organs
Cells Tissues Organs 生物-发育生物学
CiteScore
4.90
自引率
3.70%
发文量
45
审稿时长
6-12 weeks
期刊介绍: ''Cells Tissues Organs'' aims at bridging the gap between cell biology and developmental biology and the emerging fields of regenerative medicine (stem cell biology, tissue engineering, artificial organs, in vitro systems and transplantation biology). CTO offers a rapid and fair peer-review and exquisite reproduction quality. Special topic issues, entire issues of the journal devoted to a single research topic within the range of interests of the journal, are published at irregular intervals.
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