Cartilage structure-inspired nanofiber-hydrogel composite with robust proliferation and stable chondral lineage-specific differentiation function to orchestrate cartilage regeneration for artificial tracheal construction

IF 18 1区 医学 Q1 ENGINEERING, BIOMEDICAL Bioactive Materials Pub Date : 2025-05-01 Epub Date: 2025-01-20 DOI:10.1016/j.bioactmat.2025.01.007
Yaqiang Li , Xiaowei Xun , Liang Duan , Erji Gao , Jiaxin Li , Lei Lin , Xinping Li , Aijuan He , Haiyong Ao , Yong Xu , Huitang Xia
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Abstract

Tissue engineering strategies hold promise for constructing biomimetic tracheal substitutes to repair circumferential tracheal defects. However, current strategies for constructing off-the-shelf cartilage analogs for artificial trachea grafts face challenges of chondrocyte scarcity and inadequate culture strategies, which require extensive cell expansion and prolonged in vitro culture to generate robust neo-cartilage. To address these issues, we developed a nanofiber-hydrogel composite with superior mechanical performance by incorporating fragment oxidized bacterial cellulose (BC) nanofibers into a gelatin methacryloyl (GelMA) hydrogel network. Additionally, a biomaterial system was developed based on this composite, featuring dual-release functionality of fibroblast growth factor (FGF) and transforming growth factor beta (TGF-β) to facilitate step-wise maturation of neo-cartilage tissue. This process includes early-stage proliferation followed by second-stage extracellular matrix (ECM) deposition, driving the transition from proliferation to chondrogenesis. By encapsulating chondrocytes within the biomaterial system, mature neo-cartilage tissues with typical cartilage lacunae structures and abundant homogeneous cartilage-specific ECM deposition were successfully regenerated in vitro and in vivo. Furthermore, with a tailor-made growth factor-releasing strategy, the biomaterial system with low cell seeding density achieved biochemically and biomechanically functional neo-cartilage tissue regeneration, comparable to that achieved with high cell seeding density in the nanofiber-hydrogel composite. Based on the current biomaterial system, mature and functional cartilage-ring analogs were successfully constructed and applied to repair tracheal defects. Overall, the biomaterial system developed in this study provides a promising strategy for engineering transplantable, high-quality cartilage substitutes, with translational potential for artificial trachea construction.

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软骨结构激发的纳米纤维-水凝胶复合材料具有强大的增殖和稳定的软骨谱系特异性分化功能,可协调人工气管构建中的软骨再生。
组织工程技术为构建仿生气管替代物修复环周气管缺损提供了前景。然而,目前构建用于人工气管移植的现成软骨类似物的策略面临着软骨细胞稀缺和培养策略不足的挑战,这需要大量的细胞扩增和长时间的体外培养来产生健壮的新软骨。为了解决这些问题,我们开发了一种具有优越机械性能的纳米纤维-水凝胶复合材料,将氧化细菌纤维素(BC)纳米纤维片段加入明胶甲基丙烯酰(GelMA)水凝胶网络中。此外,基于该复合材料开发了一种生物材料系统,具有成纤维细胞生长因子(FGF)和转化生长因子β (TGF-β)的双重释放功能,以促进新软骨组织的逐步成熟。这个过程包括早期增殖,随后是第二阶段细胞外基质(ECM)沉积,推动从增殖到软骨形成的转变。通过将软骨细胞包埋在生物材料体系内,成功地在体外和体内再生出具有典型软骨腔隙结构和丰富的均匀软骨特异性ECM沉积的成熟新生软骨组织。此外,通过量身定制的生长因子释放策略,低细胞播种密度的生物材料系统实现了生化和生物力学功能的新软骨组织再生,与纳米纤维-水凝胶复合材料中高细胞播种密度的再生效果相当。在现有生物材料体系的基础上,成功构建成熟、功能完善的软骨环类似物,并将其应用于气管缺损修复。总的来说,本研究中开发的生物材料系统为工程移植提供了一种有前途的策略,高质量的软骨替代品,具有人工气管构建的转化潜力。
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来源期刊
Bioactive Materials
Bioactive Materials Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
28.00
自引率
6.30%
发文量
436
审稿时长
20 days
期刊介绍: Bioactive Materials is a peer-reviewed research publication that focuses on advancements in bioactive materials. The journal accepts research papers, reviews, and rapid communications in the field of next-generation biomaterials that interact with cells, tissues, and organs in various living organisms. The primary goal of Bioactive Materials is to promote the science and engineering of biomaterials that exhibit adaptiveness to the biological environment. These materials are specifically designed to stimulate or direct appropriate cell and tissue responses or regulate interactions with microorganisms. The journal covers a wide range of bioactive materials, including those that are engineered or designed in terms of their physical form (e.g. particulate, fiber), topology (e.g. porosity, surface roughness), or dimensions (ranging from macro to nano-scales). Contributions are sought from the following categories of bioactive materials: Bioactive metals and alloys Bioactive inorganics: ceramics, glasses, and carbon-based materials Bioactive polymers and gels Bioactive materials derived from natural sources Bioactive composites These materials find applications in human and veterinary medicine, such as implants, tissue engineering scaffolds, cell/drug/gene carriers, as well as imaging and sensing devices.
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