The Key Laboratory of Aerospace Medicine, Ministry of Education, Air Force Medical University, Xi'an, Shaanxi, 710032, China.
Department of Otolaryngology Head and Neck Surgery, Bethune International Peace Hospital, Shijiazhuang, Hebei, 050081, China.
J Transl Med. 2024 Sep 2;22(1):811. doi: 10.1186/s12967-024-05608-7.
Mechanical unloading-induced bone loss threatens prolonged spaceflight and human health. Recent studies have confirmed that osteoporosis is associated with a significant reduction in bone microvessels, but the relationship between them and the underlying mechanism under mechanical unloading are still unclear.
We established a 2D clinostat and hindlimb-unloaded (HLU) mouse model to simulate unloading in vitro and in vivo. Micro-CT scanning was performed to assess changes in the bone microstructure and mass of the tibia. The levels of CD31, Endomucin (EMCN) and histone deacetylase 6 (HDAC6) in tibial microvessels were detected by immunofluorescence (IF) staining. In addition, we established a coculture system of microvascular endothelial cells (MVECs) and osteoblasts, and qRT‒PCR or western blotting was used to detect RNA and protein expression; cell proliferation was detected by CCK‒8 and EdU assays. ChIP was used to detect whether HDAC6 binds to the miRNA promoter region.
Bone mass and bone microvessels were simultaneously significantly reduced in HLU mice. Furthermore, MVECs effectively promoted the proliferation and differentiation of osteoblasts under coculture conditions in vitro. Mechanistically, we found that the HDAC6 content was significantly reduced in the bone microvessels of HLU mice and that HDAC6 inhibited the expression of miR-375-3p by reducing histone acetylation in the miR-375 promoter region in MVECs. miR-375-3p was upregulated under unloading and it could inhibit MVEC proliferation by directly targeting low-density lipoprotein-related receptor 5 (LRP5) expression. In addition, silencing HDAC6 promoted the miR-375-3p/LRP5 pathway to suppress MVEC proliferation under mechanical unloading, and regulation of HDAC6/miR-375-3p axis in MVECs could affect osteoblast proliferation under coculture conditions.
Our study revealed that disuse-induced bone loss may be closely related to a reduction in the number of bone microvessels and that the modulation of MVEC function could improve bone loss induced by unloading. Mechanistically, the HDAC6/miR-375-3p/LRP5 pathway in MVECs might be a promising strategy for the clinical treatment of unloading-induced bone loss.
机械性去负荷引起的骨丢失威胁着长期的太空飞行和人类健康。最近的研究证实,骨质疏松症与骨微血管的显著减少有关,但它们之间的关系及其在机械去负荷下的潜在机制仍不清楚。
我们建立了 2D 回转器和后肢去负荷(HLU)小鼠模型,以模拟体外和体内的去负荷。通过 micro-CT 扫描评估胫骨骨微结构和骨量的变化。通过免疫荧光(IF)染色检测胫骨微血管中 CD31、内粘蛋白(EMCN)和组蛋白去乙酰化酶 6(HDAC6)的水平。此外,我们建立了微血管内皮细胞(MVECs)和成骨细胞的共培养体系,并用 qRT-PCR 或 Western blot 检测 RNA 和蛋白表达;用 CCK-8 和 EdU 检测细胞增殖。用 ChIP 检测 HDAC6 是否与 miRNA 启动子区域结合。
HLU 小鼠的骨量和骨微血管同时明显减少。此外,MVECs 在体外共培养条件下能有效促进成骨细胞的增殖和分化。在机制上,我们发现 HLU 小鼠骨微血管中的 HDAC6 含量明显降低,HDAC6 通过降低 MVECs 中 miR-375 启动子区域的组蛋白乙酰化来抑制 miR-375-3p 的表达。在去负荷下,miR-375-3p 上调,可通过直接靶向低密度脂蛋白相关受体 5(LRP5)表达抑制 MVEC 增殖。此外,沉默 HDAC6 可促进机械去负荷下 miR-375-3p/LRP5 通路的抑制 MVEC 增殖,MVECs 中 HDAC6/miR-375-3p 轴的调节可影响共培养条件下成骨细胞的增殖。
本研究表明,废用性骨丢失可能与骨微血管数量减少密切相关,调节 MVEC 功能可能改善去负荷引起的骨丢失。机制上,MVECs 中的 HDAC6/miR-375-3p/LRP5 通路可能是治疗去负荷引起的骨丢失的一种有前途的策略。