用于软骨组织工程的硫酸化多糖和蚕丝纤维素基可注射 IPN 水凝胶,具有增硬和表达生长因子的能力

IF 5.7 3区 医学 Q1 MATERIALS SCIENCE, BIOMATERIALS
Akansha Dixit, Aman Mahajan, Rakshita Saxena, Saptomee Chakraborty and Dhirendra S. Katti
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引用次数: 0

摘要

细胞外基质(ECM)为各种生物线索提供了一个框架,并在组织的发育和成熟阶段调节平衡。在软骨的发育过程中,ECM 在为祖细胞提供生物物理和生物化学线索方面起着至关重要的作用。因此,设计能再现 ECM 在发育过程中提供的这些生物线索的微环境,可促进软骨组织工程学的发展。在本研究中,我们制作了一种可注射的互穿性水凝胶(IPN)系统,它可作为人工 ECM,并为干细胞分化为软骨细胞提供软骨诱导龛。水凝胶的设计目的是复制天然组织 ECM 所提供的逐渐变硬(作为生物物理线索)和生长因子的呈现(作为生物化学线索),从而体现生物仿生方法。这种动态硬化是通过加入蚕丝纤维素实现的,而生长因子的呈现则是通过硫酸化羧甲基纤维素实现的。将蚕丝纤维素和硫酸化羧甲基纤维素(s-CMC)与酪胺化羧甲基纤维素(t-CMC)结合,并使用 HRP/H2O2 交联,制成 s-CMC/t-CMC/Silk IPN 水凝胶。最初,制成的水凝胶具有柔软的微环境,可促进软骨分化,随着时间的推移,水凝胶逐渐变硬,为关节提供机械支撑。此外,s-CMC 的存在还赋予了水凝胶封存阳离子生长因子(如 TGF-β)的特性,使其能长时间呈现给细胞。更重要的是,在所开发的水凝胶系统中负载的 TGF-β 保持活性并诱导干细胞软骨分化,从而沉积软骨 ECM 成分,其效果与通过培养基提供的 TGF-β 处理的水凝胶相当。总之,所开发的水凝胶系统可作为软骨再生所需的生物线索储存库,同时为软骨等承重组织提供机械支撑。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Engineering sulfated polysaccharides and silk fibroin based injectable IPN hydrogels with stiffening and growth factor presentation abilities for cartilage tissue engineering†

Engineering sulfated polysaccharides and silk fibroin based injectable IPN hydrogels with stiffening and growth factor presentation abilities for cartilage tissue engineering†

The extracellular matrix (ECM) presents a framework for various biological cues and regulates homeostasis during both developing and mature stages of tissues. During development of cartilage, the ECM plays a critical role in endowing both biophysical and biochemical cues to the progenitor cells. Hence, designing microenvironments that recapitulate these biological cues as provided by the ECM during development may facilitate the engineering of cartilage tissue. In the present study, we fabricated an injectable interpenetrating hydrogel (IPN) system which serves as an artificial ECM and provides chondro-inductive niches for the differentiation of stem cells to chondrocytes. The hydrogel was designed to replicate the gradual stiffening (as a biophysical cue) and the presentation of growth factors (as a biochemical cue) as provided by the natural ECM of the tissue, thus exemplifying a biomimetic approach. This dynamic stiffening was achieved by incorporating silk fibroin, while the growth factor presentation was accomplished using sulfated-carboxymethyl cellulose. Silk fibroin and sulfated-carboxymethyl cellulose (s-CMC) were combined with tyraminated-carboxymethyl cellulose (t-CMC) and crosslinked using HRP/H2O2 to fabricate s-CMC/t-CMC/silk IPN hydrogels. Initially, the fabricated hydrogel imparted a soft microenvironment to promote chondrogenic differentiation, and with time it gradually stiffened to offer mechanical support to the joint. Additionally, the presence of s-CMC conferred the hydrogel with the property of sequestering cationic growth factors such as TGF-β and allowing their prolonged presentation to the cells. More importantly, TGF-β loaded in the developed hydrogel system remained active and induced chondrogenic differentiation of stem cells, resulting in the deposition of cartilage ECM components which was comparable to the hydrogels that were treated with TGF-β provided through media. Overall, the developed hydrogel system acts as a reservoir of the necessary biological cues for cartilage regeneration and simultaneously provides mechanical support for load-bearing tissues such as cartilage.

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来源期刊
Biomaterials Science
Biomaterials Science MATERIALS SCIENCE, BIOMATERIALS-
CiteScore
11.50
自引率
4.50%
发文量
556
期刊介绍: Biomaterials Science is an international high impact journal exploring the science of biomaterials and their translation towards clinical use. Its scope encompasses new concepts in biomaterials design, studies into the interaction of biomaterials with the body, and the use of materials to answer fundamental biological questions.
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