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Bone's responses to mechanical loading are impaired in type 1 diabetes.

作者信息

Parajuli Ashutosh, Liu Chao, Li Wen, Gu Xiaoyu, Lai Xiaohan, Pei Shaopeng, Price Christopher, You Lidan, Lu X Lucas, Wang Liyun

机构信息

Department of Biomedical Engineering, University of Delaware, Newark, DE 19716, USA.

Department of Mechanical and Industrial Engineering, Institute of Biomaterials and Biomedical Engineering, University of Toronto, Ontario, Canada.

出版信息

Bone. 2015 Dec;81:152-160. doi: 10.1016/j.bone.2015.07.012. Epub 2015 Jul 13.


DOI:10.1016/j.bone.2015.07.012
PMID:26183251
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4640966/
Abstract

Diabetes adversely impacts many organ systems including the skeleton. Clinical trials have revealed a startling elevation in fracture risk in diabetic patients. Bone fractures can be life threatening: nearly 1 in 6 hip fracture patients die within one year. Because physical exercise is proven to improve bone properties and reduce fracture risk in non-diabetic subjects, we tested its efficacy in type 1 diabetes. We hypothesized that diabetic bone's response to anabolic mechanical loading would be attenuated, partially due to impaired mechanosensing of osteocytes under hyperglycemia. Heterozygous C57BL/6-Ins2(Akita)/J (Akita) male and female diabetic mice and their age- and gender-matched wild-type (WT) C57BL/6J controls (7-month-old, N=5-7 mice/group) were subjected to unilateral axial ulnar loading with a peak strain of 3500 με at 2 Hz and 3 min/day for 5 days. The Akita female mice, which exhibited a relatively normal body weight and a mild 40% elevation of blood glucose level, responded with increased bone formation (+6.5% in Ct.B.Ar, and 4 to 36-fold increase in Ec.BFR/BS and Ps.BFR/BS), and the loading effects, in terms of changes of static and dynamic indices, did not differ between Akita and WT females (p ≥ 0.1). However, loading-induced anabolic effects were greatly diminished in Akita males, which exhibited reduced body weight, severe hyperglycemia (+230%), diminished bone formation (ΔCt.B.Ar: 0.003 vs. 0.030 mm(2), p=0.005), and suppressed periosteal bone appositions (ΔPs.BFR/BS, p=0.02). Hyperglycemia (25 mM glucose) was further found to impair the flow-induced intracellular calcium signaling in MLO-Y4 osteocytes, and significantly inhibited the flow-induced downstream responses including reduction in apoptosis and sRANKL secretion and PGE2 release. These results, along with previous findings showing adverse effects of hyperglycemia on osteoblasts and mesenchymal stem cells, suggest that failure to maintain normal glucose levels may impair bone's responses to mechanical loading in diabetics.

摘要

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本文引用的文献

[1]
Insulin augments mechanical strain-induced ERK activation and cyclooxygenase-2 expression in MG63 cells through integrins.

Exp Ther Med. 2014-1

[2]
Loss of scotopic contrast sensitivity in the optomotor response of diabetic mice.

Invest Ophthalmol Vis Sci. 2013-2-28

[3]
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Bone. 2012-10-18

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Physiological challenges of bone repair.

J Orthop Trauma. 2012-12

[5]
Increased cortical porosity in type 2 diabetic postmenopausal women with fragility fractures.

J Bone Miner Res. 2013-2

[6]
Both spontaneous Ins2(+/-) and streptozotocin-induced type I diabetes cause bone loss in young mice.

J Cell Physiol. 2013-4

[7]
Calcium response in osteocytic networks under steady and oscillatory fluid flow.

Bone. 2012-6-28

[8]
The effect of insulin therapy on biomechanical deterioration of bone in streptozotocin (STZ)-induced type 1 diabetes mellitus in rats.

Diabetes Res Clin Pract. 2012-4-6

[9]
Osteocytic network is more responsive in calcium signaling than osteoblastic network under fluid flow.

J Bone Miner Res. 2012-3

[10]
Understanding the skeletal pathology of type 1 and 2 diabetes mellitus.

Crit Rev Eukaryot Gene Expr. 2011

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