Canagliflozin-induced adaptive metabolism in bone

代谢组 骨重建 内分泌学 内科学 分解代谢 碳水化合物代谢 新陈代谢 骨组织 生物 葡萄糖转运蛋白 胰岛素 医学 代谢物 解剖
作者
Sher Bahadur Poudel,Carolyn Chlebek,Ryan Richard Ruff,Zhiming He,Fangxi Xu,Gozde Yildirim,Bin Hu,Christopher Lawrence De Jesus,Ankita Raja Shinde,Vasudev Vivekanand Nayak,Lukasz Witek,Timothy G. Bromage,Thomas A. Neubert,Clifford J. Rosen,Shoshana Yakar
出处
期刊:Diabetes [American Diabetes Association]
卷期号:74 (5): 812-826 被引量:7
标识
DOI:10.2337/db24-0955
摘要

Sodium-glucose transporter-2 inhibitor (SGLT2i) drugs are widely used for lowering blood glucose levels independent of insulin. Beyond this, these drugs induce various metabolic changes, including weight loss and impaired bone integrity. There is a significant gap in understanding SGLT2i-induced skeletal changes, as SGLT2 is not expressed in osteoblasts or osteocytes, which use glucose to remodel the bone matrix. We studied the impact of 1, 3, or 6 months of canagliflozin (CANA), an SGLT2i treatment, on the skeleton of 6-month-old genetically heterogeneous UM-HET3 mice. Significant metabolic adaptations to CANA were evident as early as 1.5 months post-treatment, specifically in male mice. CANA-treated male mice exhibited notable reductions in body weight and decreased proinflammatory and bone remodeling markers associated with reduced cortical bone remodeling indices. Bone tissue metabolome indicated enrichment in metabolites related to amino acid transport and tryptophan catabolism in CANA-treated male mice. In contrast, CANA-treated female mice showed increases in nucleic acid metabolism. An integrOmics approach of source-matched bone tissue metabolome and bone marrow RNAseq indicated a positive correlation between the two omics data sets in male mice. Three clusters of transcripts and metabolites involved in energy metabolism, oxidative stress response, and cellular proliferation and differentiation were reduced in CANA-treated male mice. In conclusion, CANA affects bone metabolism mainly via the 'glucose restriction state' it induces and impacts bone cell proliferation and differentiation. These findings underline the effects of SGLT2i on bone health and highlight the need to consider sex-specific responses when developing clinical treatments that alter substrate availability.
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