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超重和微重力对MC3T3-E1成骨细胞胶原蛋白翻译后调控的影响。

Effect of hyper- and microgravity on collagen post-translational controls of MC3T3-E1 osteoblasts.

作者信息

Saito Mitsuru, Soshi Shigeru, Fujii Katsuyuki

机构信息

Department of Orthopaedic Surgery, Jikei University School of Medicine, Tokyo, Japan.

出版信息

J Bone Miner Res. 2003 Sep;18(9):1695-705. doi: 10.1359/jbmr.2003.18.9.1695.

Abstract

UNLABELLED

We attempted to study the effects of microgravity (by clinostat) and hypergravity (using centrifugation) on collagen metabolism using murine MC3T3-E1 osteoblasts, especially focusing on collagen cross-link formation. We found that altered gravitational load affected the post-translational modification of collagen, particularly the collagen maturation pathway, through altered expression of enzymes involved in cross-link formation.

INTRODUCTION

Gravitational loading plays important roles in the stimulation of differentiated osteoblast function and in the maintenance of skeletal tissues, whereas microgravity seems to result in osteopenia caused by impaired osteoblast differentiation. The aim of our study was to clarify the effects of altered gravitational environments on collagen metabolism, particularly the relationship between post-translational collagen quality and enzymes involved in cross-link formation, using murine osteoblastic MC3T3-E1 cells.

MATERIALS AND METHODS

Cells were cultured under vector-averaged microgravity (1 x 10(-3) g) using a clinostat or under conventional centrifugation techniques to generate hypergravity (20 g and 40 g) for 72 h. We then examined the expression patterns of lysyl oxidase and the two lysyl hydroxylase isoforms telopeptidyl lysyl hydroxylase (TLH; procollagen-lysine, 2-oxyglutarate, 5-dioxigenase 2 [PLOD2]) and helical lysyl hydroxylase (HLH; [PLOD1]) by quantitative real time polymerase chain reaction (PCR) analysis. Quantitative analysis of reducible immature (dihydroxylysinonorleucine, hydroxylysinonorleucine, and lysinonorleucine) and nonreducible mature (pyridinoline and deoxypyridinoline) cross-links, and maturation rate analysis of immature to mature cross-links by conventional metabolic labeling using tritium lysine were also performed.

RESULTS

Hypergravity upregulated both TLH mRNA expression and enzyme activity compared with stationary cultures, whereas microgravity stimulated both HLH mRNA expression and enzyme activity. These results were consistent with increased relative occupancy rates of telopeptidyl hydroxylysine-derived cross-links and helical hydroxylysine-derived forms observed under hypergravity and microgravity, respectively. Hypergravity stimulated not only lysyl oxidase mRNA expression but also increased enzyme activity and the sum of immature and mature cross-links. Furthermore, the conversion rate of immature cross-links to mature compounds was markedly increased under hypergravity but decreased under microgravity.

CONCLUSION

Altered gravitational loading may affect the post-translational modification of collagen through altered expression of enzymes involved in cross-link formation. These observations may be important in elucidating the mechanisms of osteopenia during space flight.

摘要

未标注

我们试图利用小鼠MC3T3-E1成骨细胞研究微重力(通过回转器)和超重力(利用离心法)对胶原蛋白代谢的影响,尤其关注胶原蛋白交联形成。我们发现,改变的重力负荷通过影响参与交联形成的酶的表达,进而影响胶原蛋白的翻译后修饰,特别是胶原蛋白成熟途径。

引言

重力负荷在刺激分化的成骨细胞功能以及维持骨骼组织方面发挥着重要作用,而微重力似乎会导致成骨细胞分化受损引起的骨质减少。我们研究的目的是利用小鼠成骨细胞MC3T3-E1细胞,阐明重力环境改变对胶原蛋白代谢的影响,特别是翻译后胶原蛋白质量与参与交联形成的酶之间的关系。

材料与方法

使用回转器在载体平均微重力(1×10⁻³g)条件下培养细胞,或使用常规离心技术产生超重力(20g和40g)培养72小时。然后通过定量实时聚合酶链反应(PCR)分析,检测赖氨酰氧化酶以及两种赖氨酰羟化酶同工型端肽赖氨酰羟化酶(TLH;原胶原蛋白-赖氨酸,2-氧代戊二酸,5-双加氧酶2 [PLOD2])和螺旋赖氨酰羟化酶(HLH;[PLOD1])的表达模式。还进行了可还原的未成熟(二羟基赖氨酰正亮氨酸、羟赖氨酰正亮氨酸和赖氨酰正亮氨酸)和不可还原的成熟(吡啶啉和脱氧吡啶啉)交联的定量分析,以及使用氚标记赖氨酸的常规代谢标记法对未成熟交联到成熟交联的成熟率分析。

结果

与静态培养相比,超重力上调了TLH mRNA表达和酶活性,而微重力刺激了HLH mRNA表达和酶活性。这些结果分别与在超重力和微重力条件下观察到的端肽羟赖氨酸衍生交联和螺旋羟赖氨酸衍生形式的相对占有率增加一致。超重力不仅刺激了赖氨酰氧化酶mRNA表达,还增加了酶活性以及未成熟和成熟交联的总和。此外,在超重力条件下未成熟交联向成熟化合物的转化率显著增加,而在微重力条件下则降低。

结论

改变的重力负荷可能通过影响参与交联形成的酶的表达,进而影响胶原蛋白的翻译后修饰。这些观察结果对于阐明太空飞行期间骨质减少的机制可能很重要。

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