Ligorio Cosimo, Hoyland Judith A, Saiani Alberto
Department of Materials, School of Natural Sciences, Faculty of Science and Engineering, The University of Manchester, Manchester M1 3BB, UK.
Manchester Institute of Biotechnology (MIB), The University of Manchester, Manchester M1 7DN, UK.
Gels. 2022 Mar 31;8(4):211. doi: 10.3390/gels8040211.
Low back pain (LBP), caused by intervertebral disc (IVD) degeneration, is a major contributor to global disability. In its healthy state, the IVD is a tough and well-hydrated tissue, able to act as a shock absorber along the spine. During degeneration, the IVD is hit by a cell-driven cascade of events, which progressively lead to extracellular matrix (ECM) degradation, chronic inflammation, and pain. Current treatments are divided into palliative care (early stage degeneration) and surgical interventions (late-stage degeneration), which are invasive and poorly efficient in the long term. To overcome these limitations, alternative tissue engineering and regenerative medicine strategies, in which soft biomaterials are used as injectable carriers of cells and/or biomolecules to be delivered to the injury site and restore tissue function, are currently being explored. Self-assembling peptide hydrogels (SAPHs) represent a promising class of synthetic biomaterials able to merge the strengths of both natural and synthetic hydrogels for biomedical applications. Inherent features, such as shear-thinning behaviour, high biocompatibility, ECM biomimicry, and tuneable physiochemical properties make these hydrogels appropriate and functional tools to tackle IVD degeneration. This review will describe the pathogenesis of IVD degeneration, list biomaterials requirements to attempt IVD repair, and focus on current peptide hydrogel materials exploited for this purpose.
由椎间盘退变引起的腰痛(LBP)是导致全球残疾的主要原因。在健康状态下,椎间盘是一种坚韧且含水量高的组织,能够作为脊柱的减震器。在退变过程中,椎间盘受到细胞驱动的一系列事件的影响,这些事件逐渐导致细胞外基质(ECM)降解、慢性炎症和疼痛。目前的治疗方法分为姑息治疗(早期退变)和手术干预(晚期退变),这些方法具有侵入性且长期效果不佳。为了克服这些局限性,目前正在探索替代的组织工程和再生医学策略,其中将软生物材料用作细胞和/或生物分子的可注射载体,输送到损伤部位并恢复组织功能。自组装肽水凝胶(SAPHs)是一类很有前途的合成生物材料,能够融合天然和合成水凝胶在生物医学应用中的优势。诸如剪切变稀行为、高生物相容性、ECM仿生以及可调节的物理化学性质等固有特性,使这些水凝胶成为解决椎间盘退变的合适且实用的工具。本综述将描述椎间盘退变的发病机制,列出尝试修复椎间盘所需的生物材料要求,并重点关注目前为此目的所开发的肽水凝胶材料。