Deciphering the physiological function(s) of Panx3, a gene displaying specific expression in bone-forming osteoblasts
Deciphering the physiological function(s) of Panx3, a gene displaying specific expression in bone-forming osteoblasts
批准号:
492686146
负责人:
Professor Dr. Johannes Keller, Ph.D.
金额:
$0.0万
依托单位国家:
德国
项目类别:
Research Grants
财政年份:
--
资助国家:
德国
项目状态:
未结题
起止时间:
中文摘要
成骨细胞介导的骨形成对骨骼的发育、生长、重塑和再生至关重要。这个过程依赖于提供大量的能量,而最近发现成骨细胞主要依赖于葡萄糖的可用性。此外,近二十年来获得的遗传证据清楚地表明,骨也是一个内分泌器官,成骨细胞谱系释放调节血清磷酸盐和葡萄糖稳态的激素。然而,成骨细胞衍生分子的能量代谢调节的相关性仍存在争议,其潜在的复杂性仍未完全理解。我们之前已经确定了Pannexin-3 (Panx3)的潜在作用,Panx3是一种主要由成骨细胞表达的跨膜蛋白,在骨形成和能量代谢之间起着联系作用。特别是,我们可以证明新生小鼠的Panx3缺乏不仅会导致骨骼发育受损,还会导致低血糖。另外的实验显示,缺乏panx3的成骨细胞显示出更高的细胞内ATP水平,潜在地模拟能量过剩和减少代谢相关基因的表达。另一个关键的发现是Panx3缺陷的新生儿表现出更高的肝糖原含量,尽管肝脏中缺乏Panx3的表达。最后,我们可以确定Panx3与骨再生有关,这一过程与肝脏和脂肪组织中血糖水平和代谢标志物表达的改变有关。总的来说,我们的研究结果强烈表明,Panx3缺乏会损害骨形成过度状态下的成骨细胞活性,即骨骼发育/生长和骨折愈合期间,Panx3缺乏还会通过改变肝脏的代谢功能影响葡萄糖稳态。由于我们之前的数据也提出了几个问题,我们现在打算进行额外的分析,以确定Panx3在骨骼发育和能量代谢中的分子功能。首先,我们将对骨骼发育和生长过程中普遍或仅在特定细胞类型中缺乏Panx3的小鼠进行深度表型分析。其次,由于我们没有在成年panx3缺陷小鼠中检测到重大异常,我们将通过不同的方式挑战它们,包括骨形成的遗传激活,以及骨再生的诱导。第三,为了了解观察到的表型的分子基础,我们将分析原始野生型和panx3缺陷细胞,其中包括无偏倚转录组方法。
英文摘要
Bone formation mediated by osteoblasts is essential for development, growth, remodeling and regeneration of the skeleton. This process depends on the provision of large amounts of energy, and osteoblasts were recently found to rely mostly on glucose availability. Moreover, genetic evidence obtained in the last two decades has clearly demonstrated that bone is also an endocrine organ, and that osteoblast lineage cells release hormonal regulators of serum phosphate and glucose homeostasis. The relevance of energy metabolism regulation by osteoblast-derived molecules is however still debated, and the underlying complexities are still not fully understood.We have previously identified a potential role of Pannexin-3 (Panx3), a transmembrane protein predominantly expressed by osteoblasts, in linking bone formation to energy metabolism. In particular, we could demonstrate that Panx3 deficiency in neonatal mice not only results in impaired skeletal development, but also in hypoglycemia. Additional experiments revealed that Panx3-deficient osteoblasts display higher intracellular ATP levels, potentially mimicking energy excess and reducing expression of metabolically relevant genes. Another key finding was that Panx3-deficient neonates displayed a higher hepatic glycogen content despite absence of Panx3 expression in the liver. Finally, we could identify Panx3 to be relevant for bone regeneration, a process found associated with alterations in blood glucose levels and metabolic marker expression in liver and adipose tissue.Collectively, our findings strongly suggest that Panx3 deficiency impairs osteoblast activity in states of excessive bone formation, i.e. during skeletal development/growth and fracture healing and that Panx3 deficiency additionally impacts glucose homeostasis by altering metabolic functions of the liver. Since our previous data also raise several questions, we now intend to perform additional analyses to define the molecular functions of Panx3 in skeletal development and energy metabolism. First, we will perform in depth-phenotyping of mice lacking Panx3, ubiquitously or only in specific cell types, during skeletal development and growth. Second, since we did not detect major abnormalities in adult Panx3-deficient mice, we will challenge them by different means, which includes genetic activation of bone formation, but also induction of bone regeneration. Third, in order to understand the molecular bases of the observed phenotypes we will analyze primary wildtype and Panx3-deficient cells, which includes unbiased transcriptomic approaches.
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