Glycoxidation of the Bone Matrix Modulates Mineralization.

IF 5.9 1区 医学 Q1 ENDOCRINOLOGY & METABOLISM
Samuel J Stephen, Grażyna E Sroga, Deepak Vashishth
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Abstract

Type 2 diabetes (T2D) is a prevalent condition that is associated with heightened fracture risk despite T2D patients exhibiting normal or elevated bone mineral density. T2D exacerbates oxidative stress and hyperglycemia, which increases the accumulation of advanced glycation end products (AGEs) and advanced glycoxidation end products (AGOEs) in bone. Carboxymethyl-lysine (CML) is one such AGOE linked to fracture risk and could impact bone mineralization due to its carboxyl terminus. Still, the mechanism linking CML to altered mineralization and impaired bone quality in T2D is unknown. To investigate how glycoxidation modulates bone mineralization, sectioned human tibiae (23-yr-old - 89-yr-old donors, Caucasian male (CM) and Caucasian female (CF)) were treated in vitro with glyoxal or ribose to enhance CML content or AGE content. Sections were then suspended between calcium and phosphate solutions to promote mineral growth. Raman spectroscopy revealed that AGE and CML enhancement increased the degree of mineralization and accelerated mineral maturation, with CML-enhanced samples exhibiting the greatest increase in mineral growth. Solid-state NMR illustrated that CML enhancement increased the degree of electronegativity in the collagen structure and at the mineral surface, which was associated with increased compressive strain on the mineral platelet as unveiled by X-ray diffraction. Nanoindentation demonstrated lowered hardness and increased work energy in CML-enhanced samples. Collectively, these findings demonstrate a mechanism that links glycoxidation to matrix mineralization. The ability for CML to influence bone mineralization underlines the need to develop strategies to target CML accrual and mitigate fracture risk in patients with T2D.

骨基质的糖氧化调节矿化。
2型糖尿病(T2D)是一种与骨折风险增加相关的普遍疾病,尽管T2D患者表现出正常或升高的骨密度。T2D加剧氧化应激和高血糖,从而增加骨中晚期糖基化终产物(AGEs)和晚期糖基化终产物(AGOEs)的积累。羧基甲基赖氨酸(CML)是一种与骨折风险相关的AGOE,由于其羧基末端可能影响骨矿化。然而,将CML与T2D中矿化改变和骨质量受损联系起来的机制尚不清楚。为了研究糖氧化如何调节骨矿化,我们在体外用乙二醛或核糖处理人类胫骨切片(23- 89岁供体,高加索男性(CM)和高加索女性(CF)),以提高CML含量或AGE含量。然后将切片悬浮在钙和磷酸盐溶液之间以促进矿物质生长。拉曼光谱显示,AGE和CML增强提高了矿化程度,加速了矿物的成熟,其中CML增强样品的矿物生长增加最大。固态核磁共振表明,CML增强增加了胶原结构和矿物表面的电负性程度,这与x射线衍射揭示的矿物血小板上的压缩应变增加有关。在cml增强的样品中,纳米压痕表现为硬度降低和功能增加。总的来说,这些发现证明了一种将糖氧化与基质矿化联系起来的机制。CML影响骨矿化的能力强调了制定针对CML累积和减轻T2D患者骨折风险的策略的必要性。
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来源期刊
Journal of Bone and Mineral Research
Journal of Bone and Mineral Research 医学-内分泌学与代谢
CiteScore
11.30
自引率
6.50%
发文量
257
审稿时长
2 months
期刊介绍: The Journal of Bone and Mineral Research (JBMR) publishes highly impactful original manuscripts, reviews, and special articles on basic, translational and clinical investigations relevant to the musculoskeletal system and mineral metabolism. Specifically, the journal is interested in original research on the biology and physiology of skeletal tissues, interdisciplinary research spanning the musculoskeletal and other systems, including but not limited to immunology, hematology, energy metabolism, cancer biology, and neurology, and systems biology topics using large scale “-omics” approaches. The journal welcomes clinical research on the pathophysiology, treatment and prevention of osteoporosis and fractures, as well as sarcopenia, disorders of bone and mineral metabolism, and rare or genetically determined bone diseases.
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