粘弹性水凝胶调节脂肪间充质干细胞用于髓核再生。

IF 9.4 1区 医学 Q1 ENGINEERING, BIOMEDICAL Acta Biomaterialia Pub Date : 2024-05-01 DOI:10.1016/j.actbio.2024.04.017
Yin Liu , Li Li , Xuan Li , Hosni Cherif , Shuaibing Jiang , Farshid Ghezelbash , Michael H. Weber , David Juncker , Nicole Y.K. Li-Jessen , Lisbet Haglund , Jianyu Li
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引用次数: 0

摘要

腰痛是全球致残的主要原因之一,通常归因于椎间盘(IVD)退化和功能性髓核(NP)的丧失。利用生物材料和干细胞进行髓核修复的再生策略前景广阔。人体髓核组织具有很高的粘弹性,在变形时能迅速松弛应力。然而,组织特异性粘弹性对脂肪源性干细胞(ASC)活性的影响在很大程度上仍未被探索。在这里,我们研究了基质粘弹性在调节ASC分化以促进IVD再生中的作用。我们开发了应力松弛时间尺度从100秒到1000秒不等的粘弹性藻酸盐水凝胶,并将其用于培养人类ASCs 21天。我们的研究结果表明,快速松弛水凝胶能显著提高 ASCs 的长期细胞存活率和 NP 样细胞外基质(如 aggrecan 和 II 型胶原)的分泌。此外,基因表达分析表明,与慢速松弛水凝胶相比,在快速松弛水凝胶中培养的 ASCs 中,机械敏感性离子通道标记 TRPV4 和 NP 特异性标记如 SOX9、HIF-1α、KRT18、CDH2 和 CD24 有大幅上调。这些发现强调了基质粘弹性在调节ASC行为中的关键作用,并表明粘弹性是新型生物材料设计的关键参数,可提高干细胞治疗IVD再生的疗效。具有可调粘弹性和组织匹配刚度的NP模拟水凝胶。在快速松弛水凝胶中,间充质干细胞的长期存活率和代谢活性都得到了大幅提高。快速松弛水凝胶允许更高的细胞突起形成率和基质重塑率。快速松弛水凝胶促进了 ASC 向 NP 样细胞表型的分化,更多的 CD24 阳性表达表明了 NP 细胞的命运。基质粘弹性分子传感器 TRPV4 在快速松弛水凝胶中的表达明显增强,表明 ASC 在细胞发育过程中能感知基质的粘弹性。ASC 的 NP 特异性 ECM 分泌在很大程度上受基质粘弹性的影响,在快速松弛水凝胶中,凝集素和 II 型胶原的沉积明显增强。
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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Viscoelastic hydrogels regulate adipose-derived mesenchymal stem cells for nucleus pulposus regeneration

Low back pain is a leading cause of disability worldwide, often attributed to intervertebral disc (IVD) degeneration with loss of the functional nucleus pulposus (NP). Regenerative strategies utilizing biomaterials and stem cells are promising for NP repair. Human NP tissue is highly viscoelastic, relaxing stress rapidly under deformation. However, the impact of tissue-specific viscoelasticity on the activities of adipose-derived stem cells (ASC) remains largely unexplored. Here, we investigated the role of matrix viscoelasticity in regulating ASC differentiation for IVD regeneration. Viscoelastic alginate hydrogels with stress relaxation time scales ranging from 100 s to 1000s were developed and used to culture human ASCs for 21 days. Our results demonstrated that the fast-relaxing hydrogel significantly enhanced ASCs long-term cell survival and NP-like extracellular matrix secretion of aggrecan and type-II collagen. Moreover, gene expression analysis revealed a substantial upregulation of the mechanosensitive ion channel marker TRPV4 and NP-specific markers such as SOX9, HIF-1α, KRT18, CDH2 and CD24 in ASCs cultured within the fast-relaxing hydrogel, compared to slower-relaxing hydrogels. These findings highlight the critical role of matrix viscoelasticity in regulating ASC behavior and suggest that viscoelasticity is a key parameter for novel biomaterials design to improve the efficacy of stem cell therapy for IVD regeneration.

Statement of significance

Systematically characterized the influence of tissue-mimetic viscoelasticity on ASC. NP-mimetic hydrogels with tunable viscoelasticity and tissue-matched stiffness. Long-term survival and metabolic activity of ASCs are substantially improved in the fast-relaxing hydrogel. The fast-relaxing hydrogel allows higher rate of cell protrusions formation and matrix remodeling. ASC differentiation towards an NP-like cell phenotype is promoted in the fast-relaxing hydrogel, with more CD24 positive expression indicating NP committed cell fate. The expression of TRPV4, a molecular sensor of matrix viscoelasticity, is significantly enhanced in the fast-relaxing hydrogel, indicating ASC sensing matrix viscoelasticity during cell development. The NP-specific ECM secretion of ASC is considerably influenced by matrix viscoelasticity, where the deposition of aggrecan and type-II collagen are significantly enhanced in the fast-relaxing hydrogel.

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来源期刊
Acta Biomaterialia
Acta Biomaterialia 工程技术-材料科学:生物材料
CiteScore
16.80
自引率
3.10%
发文量
776
审稿时长
30 days
期刊介绍: Acta Biomaterialia is a monthly peer-reviewed scientific journal published by Elsevier. The journal was established in January 2005. The editor-in-chief is W.R. Wagner (University of Pittsburgh). The journal covers research in biomaterials science, including the interrelationship of biomaterial structure and function from macroscale to nanoscale. Topical coverage includes biomedical and biocompatible materials.
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