Troka Ildi, Griffanti Gabriele, Canaff Lucie, Hendy Geoffrey N, Goltzman David, Nazhat Showan N
Faculty of Dental Medicine and Oral Health Sciences, McGill University, Montreal, QC H3A 1G1, Canada.
Department of Mining and Materials Engineering, McGill University, Montreal, QC H3A 0C5, Canada.
Biomimetics (Basel). 2022 Jul 22;7(3):101. doi: 10.3390/biomimetics7030101.
Bone has a complex microenvironment formed by an extracellular matrix (ECM) composed mainly of mineralized type I collagen fibres. Bone ECM regulates signaling pathways important in the differentiation of osteoblast-lineage cells, necessary for bone mineralization and in preserving tissue architecture. Compared to conventional 2D cell cultures, 3D in vitro models may better mimic bone ECM and provide an environment to support osteoblastic differentiation. In this study, a biomimetic 3D osteoid-like dense collagen gel model was used to investigate the role of the nuclear protein menin plays in osteoblastic differentiation and matrix mineralization. Previous in vitro and in vivo studies have shown that when expressed at later stages of osteoblastic differentiation, menin modulates osteoblastogenesis and regulates bone mass in adult mice. To investigate the role of menin when expressed at earlier stages of the osteoblastic lineage, conditional knockout mice in which the gene is specifically deleted early (i.e., at the level of the pluripotent mesenchymal stem cell lineage), where generated and primary calvarial osteoblasts were cultured in plastically compressed dense collagen gels for 21 days. The proliferation, morphology and differentiation of isolated seeded primary calvarial osteoblasts from knockout () mice were compared to those isolated from wild-type () mice. Primary calvarial osteoblasts from knockout and wild-type mice did not show differences in terms of proliferation. However, in comparison to wild-type cells, primary osteoblast cells derived from knockout mice demonstrated deficient mineralization capabilities and an altered gene expression profile when cultured in 3D dense collagen gels. In summary, these findings indicate that when expressed at earlier stages of osteoblast differentiation, menin is important in maintaining matrix mineralization in 3D dense collagen gel matrices, in vitro.
骨具有由主要由矿化的I型胶原纤维组成的细胞外基质(ECM)形成的复杂微环境。骨ECM调节在成骨细胞谱系细胞分化中重要的信号通路,这对于骨矿化和维持组织结构是必需的。与传统的二维细胞培养相比,三维体外模型可能更好地模拟骨ECM并提供支持成骨细胞分化的环境。在本研究中,使用一种仿生的三维类骨质致密胶原凝胶模型来研究核蛋白Menin在成骨细胞分化和基质矿化中的作用。先前的体外和体内研究表明,当在成骨细胞分化的后期表达时,Menin调节成年小鼠的成骨细胞生成并调节骨量。为了研究Menin在成骨细胞谱系早期表达时的作用,构建了条件性敲除小鼠,其中该基因在早期(即多能间充质干细胞谱系水平)被特异性敲除,并将原代颅骨成骨细胞在塑性压缩的致密胶原凝胶中培养21天。将来自敲除()小鼠的分离接种的原代颅骨成骨细胞的增殖、形态和分化与来自野生型()小鼠的进行比较。敲除小鼠和野生型小鼠的原代颅骨成骨细胞在增殖方面没有差异。然而,与野生型细胞相比,来自敲除小鼠的原代成骨细胞在三维致密胶原凝胶中培养时表现出矿化能力不足和基因表达谱改变。总之,这些发现表明,当在成骨细胞分化的早期表达时,Menin在体外维持三维致密胶原凝胶基质中的基质矿化方面很重要。