基于壳聚糖的再生医学生物材料:优化间充质干细胞活力和功能。

IF 4.5 3区 医学 Q2 CELL & TISSUE ENGINEERING
Hossein Mokhtari, Mahshid Bahari, Farshid Yeganeh
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引用次数: 0

摘要

间充质干细胞(Mesenchymal stem cells, MSCs)由于其多能分化能力和显著的旁分泌作用,在再生医学中起着至关重要的作用。尽管MSCs具有潜力,但仍面临着临床挑战,包括增殖率低、移植后存活率低和组织归巢有限。壳聚糖是一种从几丁质中提取的生物聚合物,由于其生物相容性、生物可降解性和增强间充质干细胞附着、增殖和存活的能力,有效地解决了这些挑战。壳聚糖基生物材料可以通过各种化学和物理方法进行修饰,在再生医学中显示出巨大的前景。它们可以被设计成膜、水凝胶、微凝胶、支架、纳米纤维、纳米和微颗粒等形式,并用于多种应用,从三维体外培养到组织工程支架和体内细胞递送系统。壳聚糖通过调节对MSC功能至关重要的Wnt/β-catenin、Notch和HIF-1α等关键信号通路改善MSC行为。此外,调节壳聚糖的化学性质可以促进特异性谱系分化,增强间充质干细胞的免疫调节功能,对炎症的治疗效果至关重要。目前,壳聚糖的应用领域包括伤口愈合,并将扩展到皮肤再生、骨和软骨修复、血管和神经组织工程等领域。尽管取得了进展,但临床翻译的挑战仍然存在,特别是在安全性和标准化方面。未来的研究应着眼于优化壳聚糖生物材料,完善临床方案,并整合先进技术来提高再生效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Chitosan-based Biomaterials in Regenerative Medicine: Optimizing Mesenchymal Stem Cell Viability and Function.

Mesenchymal stem cells (MSCs) playing a crucial role in regenerative medicine due to their multipotent differentiation capabilities and significant paracrine effects. Despite their potential, MSCs face clinical challenges, including low proliferation rates, poor survival post-transplantation, and limited tissue homing. Chitosan, a biopolymer derived from chitin, addresses these challenges effectively due to its biocompatibility, biodegradability, and ability to enhance MSC attachment, proliferation, and survival. Chitosan-based biomaterials, which can be modified through various chemical and physical methods, show substantial promise in regenerative medicine. They can be engineered into forms such as membranes, hydrogels, microgels, scaffolds, nanofibers, and nano- and microparticles and serve multiple applications from three-dimensional in vitro cultures to scaffolds for tissue engineering and in vivo cell delivery systems. Chitosan improves MSC behavior by modulating critical signaling pathways, including Wnt/β-catenin, Notch, and HIF-1α, which are essential for MSC function. Furthermore, adjusting chitosan's chemical properties can promote specific lineage differentiation and enhance MSC immunomodulatory functions, vital for therapeutic efficacy in inflammatory conditions. Currently, applications of chitosan include wound healing, which will be extended to skin regeneration, bone and cartilage repair, and vascular and neural tissue engineering. Despite progress, challenges in clinical translation persist, particularly concerning safety and standardization. Future research should aim to optimize chitosan biomaterials, refine clinical protocols, and integrate advanced technologies to enhance regenerative outcomes.

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来源期刊
Stem Cell Reviews and Reports
Stem Cell Reviews and Reports 医学-细胞生物学
CiteScore
9.30
自引率
4.20%
发文量
0
审稿时长
3 months
期刊介绍: The purpose of Stem Cell Reviews and Reports is to cover contemporary and emerging areas in stem cell research and regenerative medicine. The journal will consider for publication: i) solicited or unsolicited reviews of topical areas of stem cell biology that highlight, critique and synthesize recent important findings in the field. ii) full length and short reports presenting original experimental work. iii) translational stem cell studies describing results of clinical trials using stem cells as therapeutics. iv) papers focused on diseases of stem cells. v) hypothesis and commentary articles as opinion-based pieces in which authors can propose a new theory, interpretation of a controversial area in stem cell biology, or a stem cell biology question or paradigm. These articles contain more speculation than reviews, but they should be based on solid rationale. vi) protocols as peer-reviewed procedures that provide step-by-step descriptions, outlined in sufficient detail, so that both experts and novices can apply them to their own research. vii) letters to the editor and correspondence. In order to facilitate this exchange of scientific information and exciting novel ideas, the journal has created five thematic sections, focusing on: i) the role of adult stem cells in tissue regeneration; ii) progress in research on induced pluripotent stem cells, embryonic stem cells and mechanism governing embryogenesis and tissue development; iii) the role of microenvironment and extracellular microvesicles in directing the fate of stem cells; iv) mechanisms of stem cell trafficking, stem cell mobilization and homing with special emphasis on hematopoiesis; v) the role of stem cells in aging processes and cancerogenesis.
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