NFATc1 Is Required for Vitamin D- and Phosphate-Mediated Regulation of Osteocyte Lacuno-Canalicular Remodeling.

IF 3.8 3区 医学 Q2 ENDOCRINOLOGY & METABOLISM Endocrinology Pub Date : 2024-07-01 DOI:10.1210/endocr/bqae087
Supriya Jagga, Ashleigh Hughes, Niusha Manoochehri Arash, Melissa Sorsby, Daniel J Brooks, Paola Divieti Pajevic, Eva S Liu
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Abstract

Osteocytes are embedded in lacunae and connected by canaliculi (lacuno-canalicular network, LCN). Bones from mice with X-linked hypophosphatemia (Hyp), which have impaired production of 1,25 dihydroxyvitamin D (1,25D) and hypophosphatemia, have abnormal LCN structure that is improved by treatment with 1,25D or an anti-FGF23 targeting antibody, supporting roles for 1,25D and phosphate in regulating LCN remodeling. Bones from mice lacking the vitamin D receptor (VDR) in osteocytes (Vdrf/f;Dmp1Cre+) and mice lacking the sodium phosphate transporter 2a (Npt2aKO), which have low serum phosphate with high serum 1,25D, have impaired LCN organization, demonstrating that osteocyte-specific actions of 1,25D and hypophosphatemia regulate LCN remodeling. In osteoclasts, nuclear factor of activated T cells cytoplasmic 1 (NFATc1) is critical for stimulating bone resorption. Since osteocytes also resorb matrix, we hypothesize that NFATc1 plays a role in 1,25D and phosphate-mediated LCN remodeling. Consistent with this, 1,25D and phosphate suppress Nfatc1 mRNA expression in IDG-SW3 osteocytes, and knockdown of Nfatc1 expression in IDG-SW3 cells blocks 1,25D- and phosphate-mediated suppression of matrix resorption gene expression and 1,25D- and phosphate-mediated suppression of RANKL-induced acidification of the osteocyte microenvironment. To determine the role of NFATc1 in 1,25D- and phosphate-mediated LCN remodeling in vivo, histomorphometric analyses of tibiae from mice lacking osteocyte-specific Nfatc1 in Vdrf/f;Dmp1Cre+ and Npt2aKO mice were performed, demonstrating that bones from these mice have decreased lacunar size and expression of matrix resorption genes, and improved canalicular structure compared to Vdrf/f;Dmp1Cre+ and Npt2aKO control. This study demonstrates that NFATc1 is necessary for 1,25D- and phosphate-mediated regulation of LCN remodeling.

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NFATc1是维生素D和磷酸盐介导的骨细胞裂隙-髓质重塑调节所必需的。
骨细胞嵌在裂隙中,并由管腔连接(裂隙-管腔网络,LCN)。X-连锁低磷血症(Hyp)小鼠的1,25二羟维生素D(1,25D)生成障碍和低磷血症,其骨骼具有异常的LCN结构,用1,25D或抗FGF23靶向抗体治疗后可改善这种结构,这支持了1,25D和磷酸盐在调节LCN重塑中的作用。骨细胞中缺乏维生素 D 受体(VDR)的小鼠(Vdrf/f;Dmp1Cre+)和缺乏磷酸钠转运体 2a 的小鼠(Npt2aKO)血清磷酸盐含量低而血清 1,25D 含量高,其骨骼的 LCN 组织受损,这表明 1,25D 的骨细胞特异性作用和低磷酸盐血症可调节 LCN 重塑。在破骨细胞中,活化 T 细胞胞浆核因子 1(NFATc1)对刺激骨吸收至关重要。由于成骨细胞也会吸收基质,我们假设 NFATc1 在 1,25D 和磷酸盐介导的 LCN 重塑中发挥作用。与此相一致的是,1,25D 和磷酸盐抑制了 IDG-SW3 骨细胞中 Nfatc1 mRNA 的表达,而敲除 IDG-SW3 细胞中 Nfatc1 的表达则阻止了 1,25D 和磷酸盐介导的基质吸收基因表达抑制以及 1,25D 和磷酸盐介导的 RANKL 诱导的骨细胞微环境酸化抑制。为了确定 NFATc1 在 1,25D 和磷酸盐介导的 LCN 重塑中的作用,对 Vdrf/f.Dmp1Cre+ 和 NFATc1 缺乏骨细胞特异性 Nfatc1 的小鼠胫骨进行了组织形态学分析;Dmp1Cre+ 和 Npt2aKO 小鼠的胫骨进行了组织形态学分析,结果表明,与 Vdrf/f;Dmp1Cre+ 和 Npt2aKO 对照组相比,这些小鼠骨骼的裂隙大小和基质重吸收基因的表达减少,管状结构改善。这项研究表明,NFATc1是1,25D和磷酸盐介导的LCN重塑调控所必需的。
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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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