Jingruo Zhang, Francisca M. Acosta, Xuewei Wang, Dezhi Zhao, Lidan Zhang, Rui Hua, Qianjin Guo, Leilei Zhong, Ling Qin, Manuel A. Riquelme, Jean X. Jiang
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BM-MSPCs from Δ130 to 136 mice showed enhanced adipogenic differentiation and reduced osteogenic potential, leading to increased BM adipocytes. Flow cytometry and single-cell RNA sequencing revealed shifts in BM-MSPC subsets, less osteogenic-biased MSPCs, and more adipogenic-biased MSPCs in Δ130 to 136 mice. Conversely, R76W, with more functional hemichannels, exhibited effects similar to WT mice or even greater opposite effects than Δ130 to 136 mice. Prostaglandin E <jats:sub>2</jats:sub> (PGE <jats:sub>2</jats:sub> ), released from active Cx43 hemichannels, inhibited adipogenesis and promoted osteogenesis via the PGE <jats:sub>2</jats:sub> receptor EP4 and ERK1/2 signaling. Inhibition of Cx43 hemichannels or EP4 led to increased adipogenic-biased MSPCs. Moreover, administration of a Cx43(M1) antibody, which inhibits hemichannels, substantially increased BM adipocytes, accompanied by increased adipogenic-biased MSPCs, and decreased osteogenic-biased MSPCs. 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引用次数: 0
摘要
骨是一个动态器官,不断经历骨形成和骨吸收的重塑过程。骨形成是由源自骨髓间充质干细胞和祖细胞(BM- mspcs)分化的成骨细胞介导的。然而,骨细胞如何与BM-MSPCs沟通以协调骨形成仍然是一个谜。在这里,我们揭示了骨细胞连接蛋白43 (Cx43)半通道在调节BM-MSPCs的谱系承诺中的关键作用。使用两种在骨细胞中表达显性阴性Cx43突变体的转基因小鼠模型:R76W(抑制间隙连接)和Δ130至136(抑制半通道和间隙连接)。Δ130至136只小鼠的BM- mspcs显示出增强的成脂分化和降低的成骨潜能,导致BM脂肪细胞增加。流式细胞术和单细胞RNA测序显示,在Δ130至136只小鼠中,BM-MSPC亚群发生了变化,成骨倾向的mspc减少,脂肪倾向的mspc增加。相反,具有更多功能半通道的R76W表现出与WT小鼠相似的效果,甚至比Δ130 to 136小鼠更大的相反效果。前列腺素e2 (pge2)从活跃的Cx43半通道释放,通过pge2受体EP4和ERK1/2信号传导抑制脂肪形成,促进骨形成。抑制Cx43半通道或EP4导致脂肪生成偏倚的MSPCs增加。此外,使用抑制半通道的Cx43(M1)抗体可显著增加BM脂肪细胞,并伴有增脂性偏向MSPCs的增加和成骨性偏向MSPCs的减少。我们的研究强调了骨细胞Cx43半通道通过pge2释放在BM-MSPC命运决定中的关键作用,提供了对基质结合骨细胞和BM-MSPC之间精确和高度调控的通信的见解,这决定了骨的形成和重塑。
Osteocyte connexin hemichannels and prostaglandin E 2 release dictate bone marrow mesenchymal stromal cell commitment
Bone is a dynamic organ constantly undergoing remodeling with both bone formation and resorption. Bone formation is mediated by osteoblasts originating from the differentiation of bone marrow (BM) mesenchymal stem and progenitor cells (BM-MSPCs). However, how bone cells communicate with BM-MSPCs to coordinate bone formation remains largely elusive. Here, we unveil a key role of osteocyte connexin 43 (Cx43) hemichannels in regulating the lineage commitment of BM-MSPCs. Two transgenic mouse models expressing dominant negative Cx43 mutants in osteocytes were used: R76W (inhibiting gap junctions) and Δ130 to 136 (inhibiting both hemichannels and gap junctions). BM-MSPCs from Δ130 to 136 mice showed enhanced adipogenic differentiation and reduced osteogenic potential, leading to increased BM adipocytes. Flow cytometry and single-cell RNA sequencing revealed shifts in BM-MSPC subsets, less osteogenic-biased MSPCs, and more adipogenic-biased MSPCs in Δ130 to 136 mice. Conversely, R76W, with more functional hemichannels, exhibited effects similar to WT mice or even greater opposite effects than Δ130 to 136 mice. Prostaglandin E 2 (PGE 2 ), released from active Cx43 hemichannels, inhibited adipogenesis and promoted osteogenesis via the PGE 2 receptor EP4 and ERK1/2 signaling. Inhibition of Cx43 hemichannels or EP4 led to increased adipogenic-biased MSPCs. Moreover, administration of a Cx43(M1) antibody, which inhibits hemichannels, substantially increased BM adipocytes, accompanied by increased adipogenic-biased MSPCs, and decreased osteogenic-biased MSPCs. Our study highlights the pivotal role of osteocyte Cx43 hemichannels in BM-MSPC fate decision through PGE 2 release, providing insights into the precise and highly regulated communication between matrix-bound bone cells and BM-MSPCs, which dictates bone formation and remodeling.
期刊介绍:
The Proceedings of the National Academy of Sciences (PNAS), a peer-reviewed journal of the National Academy of Sciences (NAS), serves as an authoritative source for high-impact, original research across the biological, physical, and social sciences. With a global scope, the journal welcomes submissions from researchers worldwide, making it an inclusive platform for advancing scientific knowledge.