肾蛋白酶抑制通过 CNP/NPR-B 途径促进骨骼生长。

IF 3.8 3区 医学 Q2 ENDOCRINOLOGY & METABOLISM Endocrinology Pub Date : 2024-05-27 DOI:10.1210/endocr/bqae058
Takuro Hakata, Yohei Ueda, Takafumi Yamashita, Ichiro Yamauchi, Daisuke Kosugi, Taku Sugawa, Haruka Fujita, Kentaro Okamoto, Toshihito Fujii, Daisuke Taura, Akihiro Yasoda, Haruhiko Akiyama, Nobuya Inagaki
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引用次数: 0

摘要

C 型钠尿肽(CNP)在促进软骨内骨生长方面起着至关重要的作用,有望成为治疗骨骼生长受损的药物。为了克服 CNP 较短的半衰期,我们探索了抑制其清除系统的可能性。肾蛋白酶(NEP)是一种内肽酶,负责催化 CNP 的降解。因此,我们通过给 C57BL/6 小鼠注射 NEP 抑制剂 sacubitril,研究了抑制 NEP 对骨骼生长的影响。值得注意的是,我们观察到使用萨库比特利治疗的小鼠出现了剂量依赖性骨骼过度生长表型。对生长板进行的组织学分析表明,肥厚区和增殖区增厚,这与服用氯化萘引起的变化如出一辙。通过敲除软骨特异性 NPR-B,在野生型小鼠体内观察到的萨库比特利对骨骼生长的促进作用消失了。值得注意的是,萨库比特利仅在小鼠3-4周龄时促进其骨骼生长,而这一时期腰椎中内源性CNP和NEP的表达量较高。此外,在使用胎儿小鼠胫骨外植体进行的器官培养实验中,sacubitril 还能促进软骨内骨的生长。这些发现表明,NEP抑制能通过CNP/NPR-B途径显著促进骨骼生长,值得进一步研究其在身材矮小患者中的潜在应用。
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Neprilysin Inhibition Promotes Skeletal Growth via the CNP/NPR-B Pathway.

C-type natriuretic peptide (CNP) plays a crucial role in enhancing endochondral bone growth and holds promise as a therapeutic agent for impaired skeletal growth. To overcome CNP's short half-life, we explored the potential of dampening its clearance system. Neprilysin (NEP) is an endopeptidase responsible for catalyzing the degradation of CNP. Thus, we investigated the effects of NEP inhibition on skeletal growth by administering sacubitril, a NEP inhibitor, to C57BL/6 mice. Remarkably, we observed a dose-dependent skeletal overgrowth phenotype in mice treated with sacubitril. Histological analysis of the growth plate revealed a thickening of the hypertrophic and proliferative zones, mirroring the changes induced by CNP administration. The promotion of skeletal growth observed in wild-type mice treated with sacubitril was nullified by the knockout of cartilage-specific natriuretic peptide receptor B (NPR-B). Notably, sacubitril promoted skeletal growth in mice only at 3 to 4 weeks of age, a period when endogenous CNP and NEP expression was higher in the lumbar vertebrae. Additionally, sacubitril facilitated endochondral bone growth in organ culture experiments using tibial explants from fetal mice. These findings suggest that NEP inhibition significantly promotes skeletal growth via the CNP/NPR-B pathway, warranting further investigations for potential applications in people with short stature.

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来源期刊
Endocrinology
Endocrinology 医学-内分泌学与代谢
CiteScore
8.10
自引率
4.20%
发文量
195
审稿时长
2-3 weeks
期刊介绍: The mission of Endocrinology is to be the authoritative source of emerging hormone science and to disseminate that new knowledge to scientists, clinicians, and the public in a way that will enable "hormone science to health." Endocrinology welcomes the submission of original research investigating endocrine systems and diseases at all levels of biological organization, incorporating molecular mechanistic studies, such as hormone-receptor interactions, in all areas of endocrinology, as well as cross-disciplinary and integrative studies. The editors of Endocrinology encourage the submission of research in emerging areas not traditionally recognized as endocrinology or metabolism in addition to the following traditionally recognized fields: Adrenal; Bone Health and Osteoporosis; Cardiovascular Endocrinology; Diabetes; Endocrine-Disrupting Chemicals; Endocrine Neoplasia and Cancer; Growth; Neuroendocrinology; Nuclear Receptors and Their Ligands; Obesity; Reproductive Endocrinology; Signaling Pathways; and Thyroid.
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