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Enpp1基因敲除小鼠中富含胶原蛋白的软组织和骨细胞陷窝的矿化

Mineralisation of collagen rich soft tissues and osteocyte lacunae in Enpp1(-/-) mice.

作者信息

Hajjawi Mark O R, MacRae Vicky E, Huesa Carmen, Boyde Alan, Millán José Luis, Arnett Timothy R, Orriss Isabel R

机构信息

Department of Cell and Developmental Biology, University College London, London, UK.

The Roslin Institute and Royal (Dick) School of Veterinary Studies, University of Edinburgh, Edinburgh, UK.

出版信息

Bone. 2014 Dec;69:139-47. doi: 10.1016/j.bone.2014.09.016. Epub 2014 Sep 28.

Abstract

Ecto-nucleotide pyrophosphatase/phosphodiesterases (NPPs) hydrolyse nucleotide triphosphates to the corresponding nucleotide monophosphates and the mineralisation inhibitor, pyrophosphate (PPi). This study examined the role of NPP1 in osteocytes, osteoclasts and cortical bone, using a mouse model lacking NPP1 (Enpp1(-/-)). We used microcomputed tomography (μCT) to investigate how NPP1 deletion affects cortical bone structure; excised humerus bones from 8, 15 and 22-week old mice were scanned at 0.9 μm. Although no changes were evident in the cortical bone of 8-week old Enpp1(-/-) mice, significant differences were observed in older animals. Cortical bone volume was decreased 28% in 22-week Enpp1(-/-) mice, whilst cortical porosity was reduced 30% and 60% at 15 and 22-weeks, respectively. This was accompanied by up to a 15% decrease in closed pore diameter and a 55% reduction in the number of pores. Cortical thickness was reduced up to 35% in 15 and 22-week Enpp1(-/-) animals and the endosteal diameter was increased up to 23%. Thus, the cortical bone from Enpp1(-/-) mice was thinner and less porous, with a larger marrow space. Scanning electron microscopy (SEM) revealed a decrease in the size and number of blood vessel channels in the cortical bone as well as a 40% reduction in the mean plan area of osteocyte lacunae. We noted that the number of viable osteocytes isolated from the long bones of Enpp1(-/-) mice was decreased ≤50%. In contrast, osteoclast formation and resorptive activity were unaffected by NPP1 deletion. μCT and histological analysis of Enpp1(-/-) mice also revealed calcification of the joints and vertebrae as well as soft tissues including the whisker follicles, ear pinna and trachea. This calcification worsened as the animals aged. Together, these data highlight the key role of NPP1 in regulating calcification of both soft and skeletal tissues.

摘要

胞外核苷酸焦磷酸酶/磷酸二酯酶(NPPs)可将三磷酸核苷酸水解为相应的单磷酸核苷酸以及矿化抑制剂焦磷酸(PPi)。本研究利用缺乏NPP1的小鼠模型(Enpp1(-/-)),探究了NPP1在骨细胞、破骨细胞和皮质骨中的作用。我们使用微型计算机断层扫描(μCT)来研究NPP1缺失如何影响皮质骨结构;对8周、15周和22周龄小鼠的肱骨进行切除并以0.9μm的分辨率进行扫描。尽管8周龄的Enpp1(-/-)小鼠的皮质骨没有明显变化,但在年龄较大的动物中观察到了显著差异。22周龄的Enpp1(-/-)小鼠的皮质骨体积减少了28%,而在15周和22周时,皮质孔隙率分别降低了30%和60%。这伴随着封闭孔径减少了15%,孔隙数量减少了55%。在15周和22周龄的Enpp1(-/-)动物中,皮质厚度减少了35%,骨内膜直径增加了23%。因此,Enpp1(-/-)小鼠的皮质骨更薄且孔隙更少,骨髓腔更大。扫描电子显微镜(SEM)显示皮质骨中血管通道的大小和数量减少,骨细胞陷窝的平均平面面积减少了40%。我们注意到从Enpp1(-/-)小鼠长骨中分离出的存活骨细胞数量减少了≤ 50%。相比之下,破骨细胞的形成和吸收活性不受NPP1缺失的影响。对Enpp1(-/-)小鼠的μCT和组织学分析还显示关节、椎骨以及包括毛囊、耳廓和气管在内的软组织出现钙化。随着动物年龄的增长,这种钙化情况会恶化。总之,这些数据突出了NPP1在调节软组织和骨骼组织钙化中的关键作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c358/4228085/5f84e1b2cb2e/gr1.jpg

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