具有相反生化信号的功能梯度水凝胶用于骨软骨组织工程。

Functionally graded hydrogels with opposing biochemical cues for osteochondral tissue engineering.

机构信息

Department of Biological Sciences and Bioengineering, Indian Institute of Technology-Kanpur, Kanpur 208016, Uttar Pradesh, India.

The Mehta Family Centre for Engineering in Medicine, Indian Institute of Technology-Kanpur, Kanpur 208016, Uttar Pradesh, India.

出版信息

Biofabrication. 2024 May 28;16(3). doi: 10.1088/1758-5090/ad467e.

Abstract

Osteochondral tissue (OC) repair remains a significant challenge in the field of musculoskeletal tissue engineering. OC tissue displays a gradient structure characterized by variations in both cell types and extracellular matrix components, from cartilage to the subchondral bone. These functional gradients observed in the native tissue have been replicated to engineer OC tissue. While diverse fabrication methods have been employed to create these microenvironments, emulating the natural gradients and effective regeneration of the tissue continues to present a significant challenge. In this study, we present the design and development of CMC-silk interpenetrating (IPN) hydrogel with opposing dual biochemical gradients similar to native tissue with the aim to regenerate the complete OC unit. The gradients of biochemical cues were generated using an in-house-built extrusion system. Firstly, we fabricated a hydrogel that exhibits a smooth transition of sulfated carboxymethyl cellulose (sCMC) and TGF-1 (SCT gradient hydrogel) from the upper to the lower region of the IPN hydrogel to regenerate the cartilage layer. Secondly, a hydrogel with a hydroxyapatite (HAp) gradient (HAp gradient hydrogel) from the lower to the upper region was fabricated to facilitate the regeneration of the subchondral bone layer. Subsequently, we developed a dual biochemical gradient hydrogel with a smooth transition of sCMC + TGF-1 and HAp gradients in opposing directions, along with a blend of both biochemical cues in the middle. The results showed that the dual biochemical gradient hydrogels with biochemical cues corresponding to the three zones (i.e. cartilage, interface and bone) of the OC tissue led to differentiation of bone-marrow-derived mesenchymal stem cells to zone-specific lineages, thereby demonstrating their efficacy in directing the fate of progenitor cells. In summary, our study provided a simple and innovative method for incorporating gradients of biochemical cues into hydrogels. The gradients of biochemical cues spatially guided the differentiation of stem cells and facilitated tissue growth, which would eventually lead to the regeneration of the entire OC tissue with a smooth transition from cartilage (soft) to bone (hard) tissues. This promising approach is translatable and has the potential to generate numerous biochemical and biophysical gradients for regeneration of other interface tissues, such as tendon-to-muscle and ligament-to-bone.

摘要

软骨-骨组织(OC)修复仍然是肌肉骨骼组织工程领域的重大挑战。OC 组织呈现出从软骨到软骨下骨的细胞类型和细胞外基质成分的梯度结构。这些在天然组织中观察到的功能梯度已经被复制到 OC 组织工程中。虽然已经采用了多种制造方法来创建这些微环境,但有效地模拟天然梯度并实现组织的有效再生仍然是一个重大挑战。在这项研究中,我们设计并开发了具有相反双重生化梯度的 CMC-丝素互穿(IPN)水凝胶,旨在再生完整的 OC 单元。生化信号的梯度是使用内部构建的挤出系统产生的。首先,我们制造了一种水凝胶,它在 IPN 水凝胶的上、下区域展示了磺化羧甲基纤维素(sCMC)和 TGF-1(SCT 梯度水凝胶)的平滑过渡,以再生软骨层。其次,制造了一种下、上区域具有羟基磷灰石(HAp)梯度(HAp 梯度水凝胶)的水凝胶,以促进软骨下骨层的再生。随后,我们开发了一种具有 sCMC+TGF-1 和 HAp 梯度平滑过渡的双重生化梯度水凝胶,以及中间混合两种生化信号。结果表明,具有与 OC 组织的三个区域(即软骨、界面和骨)相对应的生化信号的双重生化梯度水凝胶导致骨髓间充质干细胞向特定区域的谱系分化,从而证明了它们引导祖细胞命运的效力。总之,我们的研究为将生化信号梯度纳入水凝胶提供了一种简单而创新的方法。生化信号的梯度在空间上指导了干细胞的分化,并促进了组织的生长,最终将导致整个 OC 组织的再生,从软骨(软)到骨(硬)组织的过渡是平滑的。这种有前途的方法具有可转化性,并有可能为其他界面组织(如肌腱-肌肉和韧带-骨)的再生产生许多生化和生物物理梯度。

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