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聚集蛋白聚糖通过提供细胞外基质的关键力学信号来调控椎间盘的发育。

Aggrecan governs intervertebral discs development by providing critical mechanical cues of the extracellular matrix.

作者信息

Empere Marta, Wang Xujia, Prein Carina, Aspberg Anders, Moser Markus, Oohashi Toshitaka, Clausen-Schaumann Hauke, Aszodi Attila, Alberton Paolo

机构信息

Musculoskeletal University Center Munich (MUM), Department of Orthopaedics and Trauma Surgery, Ludwig-Maximilians-University (LMU), Munich, Germany.

Center for Applied Tissue Engineering and Regenerative Medicine, Munich University of Applied Sciences, Munich, Germany.

出版信息

Front Bioeng Biotechnol. 2023 Mar 2;11:1128587. doi: 10.3389/fbioe.2023.1128587. eCollection 2023.

Abstract

Aggrecan (ACAN) is localized in the intervertebral disc (IVD) in unique compartment-specific patterns where it contributes to the tissue structure and mechanical function together with collagens. The extracellular matrix (ECM) of the IVD undergoes degenerative changes during aging, misuse or trauma, which inevitably alter the biochemical and biomechanical properties of the tissue. A deeper understanding of these processes can be achieved in genetically engineered mouse models, taking into account the multifaceted aspects of IVD development. In this study, we generated aggrecan insertion mutant mice ( ) by interrupting exon 5 coding for the G1 domain of ACAN, and analyzed the morphological and mechanical properties of the different IVD compartments during embryonic development. Western blotting using an antibody against the total core protein failed to detect ACAN in cartilage extracts, whereas immunohistochemistry by a G1-specific antibody showed weak signals in vertebral tissues of mice. Homozygous mutant mice are perinatally lethal and characterized by short snout, cleft palate and disproportionate dwarfism. Whole-mount skeletal staining and µ-CT analysis of mice at embryonic day 18.5 revealed compressed vertebral bodies with accelerated mineralization compared to wild type controls. In mice, histochemical staining revealed collapsed extracellular matrix with negligible sulfated glycosaminoglycan content accompanied by a high cellular density. Collagen type II deposition was not impaired in the IVD of mice, as shown by immunohistochemistry. Mutant mice developed a severe IVD phenotype with deformed nucleus pulposus and thinned cartilaginous endplates accompanied by a disrupted growth plate structure in the vertebral body. Atomic force microscopy (AFM) imaging demonstrated a denser collagen network with thinner fibrils in the mutant IVD zones compared to wild type. Nanoscale AFM indentation revealed bimodal stiffness distribution attributable to the softer proteoglycan moiety and harder collagenous fibrils of the wild type IVD ECM. In mice, loss of aggrecan resulted in a marked shift of the Young's modulus to higher values in all IVD zones. In conclusion, we demonstrated that aggrecan is pivotal for the determination and maintenance of the proper stiffness of IVD and vertebral tissues, which in turn could play an essential role in providing developmental biomechanical cues.

摘要

聚集蛋白聚糖(ACAN)以独特的特定区域模式定位于椎间盘(IVD)中,在那里它与胶原蛋白一起对组织结构和机械功能起作用。IVD的细胞外基质(ECM)在衰老、不当使用或创伤过程中会发生退行性变化,这不可避免地会改变组织的生化和生物力学特性。考虑到IVD发育的多方面因素,在基因工程小鼠模型中可以更深入地了解这些过程。在本研究中,我们通过中断编码ACAN G1结构域的外显子5生成了聚集蛋白聚糖插入突变小鼠( ),并分析了胚胎发育过程中不同IVD区域的形态和机械特性。使用针对总核心蛋白的抗体进行的蛋白质印迹未能在软骨提取物中检测到ACAN,而使用G1特异性抗体进行的免疫组织化学在 小鼠的椎骨组织中显示出微弱信号。纯合突变小鼠在围产期致死,其特征为短口鼻、腭裂和不成比例的侏儒症。对胚胎第18.5天的 小鼠进行的整体骨骼染色和微计算机断层扫描(µ-CT)分析显示,与野生型对照相比,椎体压缩且矿化加速。在 小鼠中,组织化学染色显示细胞外基质塌陷,硫酸化糖胺聚糖含量可忽略不计,同时细胞密度较高。免疫组织化学显示, 小鼠IVD中II型胶原蛋白沉积未受损。突变小鼠出现严重的IVD表型,髓核变形,软骨终板变薄,同时椎体生长板结构破坏。原子力显微镜(AFM)成像显示,与野生型相比,突变IVD区域的胶原网络更密集,纤维更细。纳米级AFM压痕显示,野生型IVD ECM的双峰刚度分布归因于较软的蛋白聚糖部分和较硬的胶原纤维。在 小鼠中,聚集蛋白聚糖的缺失导致所有IVD区域的杨氏模量明显向更高值偏移。总之,我们证明聚集蛋白聚糖对于确定和维持IVD和椎骨组织的适当刚度至关重要,而这反过来可能在提供发育生物力学线索方面发挥重要作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e882/10017878/fcd6f68dcd40/fbioe-11-1128587-g001.jpg

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