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力学性能强、具有粘附性、自修复水凝胶通过募集自体细胞和调节微环境促进纤维环修复。

Mechanically tough, adhesive, self-healing hydrogel promotes annulus fibrosus repair via autologous cell recruitment and microenvironment regulation.

机构信息

Laboratory of Key Technology and Materials in Minimally Invasive Spine Surgery, Tongren Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai 200336, China; Center for Spinal Minimally Invasive Research, Shanghai Jiao Tong University, Shanghai 200336, China; Department of Orthopaedics, Tongren Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai 200336, China.

Department of Ophthalmology and Vision Science, Shanghai Eye, Ear, Nose and Throat Hospital, Fudan University, Shanghai 200031, China.

出版信息

Acta Biomater. 2024 Apr 1;178:50-67. doi: 10.1016/j.actbio.2024.02.020. Epub 2024 Feb 19.

Abstract

Annulus fibrosus (AF) defect is an important cause of disc re-herniation after discectomy. The self-regeneration ability of the AF is limited, and AF repair is always hindered by the inflammatory microenvironment after injury. Hydrogels represent one of the most promising materials for AF tissue engineering strategies. However, currently available commercial hydrogels cannot withstand the harsh mechanical load within intervertebral disc. In the present study, an innovative triple cross-linked oxidized hyaluronic acid (OHA)-dopamine (DA)- polyacrylamide (PAM) composite hydrogel, modified with collagen mimetic peptide (CMP) and supplied with transforming growth factor beta 1 (TGF-β1) (OHA-DA-PAM/CMP/TGF-β1 hydrogel) was developed for AF regeneration. The hydrogel exhibited robust mechanical strength, strong bioadhesion, and significant self-healing capabilities. Modified with collagen mimetic peptide, the hydrogel exhibited extracellular-matrix-mimicking properties and sustained the AF cell phenotype. The sustained release of TGF-β1 from the hydrogel was pivotal in recruiting AF cells and promoting extracellular matrix production. Furthermore, the composite hydrogel attenuated LPS-induced inflammatory response and promote ECM synthesis in AF cells via suppressing NFκB/NLRP3 pathway. In vivo, the composite hydrogel successfully sealed AF defects and alleviated intervertebral disk degeneration in a rat tail AF defect model. Histological evaluation showed that the hydrogel integrated well with host tissue and facilitated AF repair. The strategy of recruiting endogenous cells and providing an extracellular-matrix-mimicking and anti-inflammatory microenvironment using the mechanically tough composite OHA-DA-PAM/CMP/TGF-β1 hydrogel may be applicable for AF defect repair in the clinic. STATEMENT OF SIGNIFICANCE: Annulus fibrosus (AF) repair is challenging due to its limited self-regenerative capacity and post-injury inflammation. In this study, a mechanically tough and highly bioadhesive triple cross-linked composite hydrogel, modified with collagen mimetic peptide (CMP) and supplemented with transforming growth factor beta 1 (TGF-β1), was developed to facilitate AF regeneration. The sustained release of TGF-β1 enhanced AF cell recruitment, while both TGF-β1 and CMP could modulate the microenvironment to promote AF cell proliferation and ECM synthesis. In vivo, this composite hydrogel effectively promoted the AF repair and mitigated the intervertebral disc degeneration. This research indicates the clinical potential of the OHA-DA-PAM/CMP/TGF-β1 composite hydrogel for repairing AF defects.

摘要

纤维环(AF)缺陷是椎间盘切除术后椎间盘再突出的一个重要原因。AF 的自我再生能力有限,而且 AF 修复总是受到损伤后炎症微环境的阻碍。水凝胶是 AF 组织工程策略中最有前途的材料之一。然而,目前可用的商业水凝胶无法承受椎间盘内的苛刻机械负荷。在本研究中,开发了一种创新的三重交联氧化透明质酸(OHA)-多巴胺(DA)-聚丙烯酰胺(PAM)复合水凝胶,用胶原模拟肽(CMP)修饰,并提供转化生长因子β 1(TGF-β1)(OHA-DA-PAM/CMP/TGF-β1 水凝胶),用于 AF 再生。水凝胶表现出强大的机械强度、强生物粘附性和显著的自修复能力。用胶原模拟肽修饰后,水凝胶表现出细胞外基质模拟特性,并维持 AF 细胞表型。水凝胶中 TGF-β1 的持续释放对于招募 AF 细胞和促进细胞外基质的产生至关重要。此外,该复合水凝胶通过抑制 NFκB/NLRP3 通路,减轻 LPS 诱导的 AF 细胞炎症反应并促进细胞外基质合成。在体内,该复合水凝胶在大鼠尾 AF 缺损模型中成功封闭了 AF 缺损并缓解了椎间盘退变。组织学评估表明,水凝胶与宿主组织结合良好,促进了 AF 修复。使用机械强度高的复合 OHA-DA-PAM/CMP/TGF-β1 水凝胶招募内源性细胞并提供细胞外基质模拟和抗炎微环境的策略,可能适用于 AF 缺损的临床修复。

意义声明

由于纤维环(AF)自我再生能力有限和损伤后炎症,AF 修复具有挑战性。在这项研究中,开发了一种机械强度高且具有强生物粘附性的三重交联复合水凝胶,用胶原模拟肽(CMP)修饰,并补充转化生长因子β 1(TGF-β1),以促进 AF 再生。TGF-β1 的持续释放增强了 AF 细胞的募集,而 TGF-β1 和 CMP 都可以调节微环境,促进 AF 细胞的增殖和细胞外基质的合成。在体内,这种复合水凝胶有效地促进了 AF 的修复,并减轻了椎间盘的退变。这项研究表明,OHA-DA-PAM/CMP/TGF-β1 复合水凝胶在修复 AF 缺损方面具有临床潜力。

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