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游离脂肪酸棕榈酸盐激活未折叠蛋白反应途径并促进半月板细胞凋亡。

Free fatty acid palmitate activates unfolded protein response pathway and promotes apoptosis in meniscus cells.

作者信息

Haywood J, Yammani R R

机构信息

Section of Molecular Medicine, Department of Internal Medicine, Wake Forest School of Medicine, Medical Center Blvd, Winston-Salem, NC 27157, USA.

出版信息

Osteoarthritis Cartilage. 2016 May;24(5):942-5. doi: 10.1016/j.joca.2015.11.020. Epub 2015 Dec 12.

Abstract

INTRODUCTION

Obesity is the major risk factor for the development of osteoarthritis (OA); however, the mechanisms involved are not clearly understood. Obesity is associated with increased production of adipokine and elevated levels of circulating free fatty acids (FFA). A recent study has shown that saturated fatty acid palmitate induced pro-inflammatory and pro-apoptotic pathways in chondrocytes. Meniscus has been shown to be more susceptible than articular cartilage to catabolic stimuli. Thus, the aim of this study was to determine the effect of FFA (specifically, palmitate) on meniscus cells.

METHODS

Cultured primary porcine meniscus cells were stimulated with 500 μM FFA (palmitate and oleate) for 24 h to induce endoplasmic reticulum (ER) stress. After treatment, cell lysates were prepared and immunoblotted for C/EBP homologous protein (CHOP). To determine the activation of unfolded protein response (UPR) signaling, cell lysates were probed for cJun n-terminal kinase (JNK), cleaved caspase -3 and Xbp-1s, an alternative mRNA splicing product generated due to Ire1α activation.

RESULTS

Treatment of isolated primary meniscus cells with palmitate but not oleate induced expression of CHOP and Xbp-1s. Palmitate treatment of meniscus cells also activated JNK and increased expression of caspase-3, thus promoting apoptosis in meniscus cells.

CONCLUSIONS

Palmitate induces ER stress and promotes apoptotic pathways in meniscus cells. This is the first study to establish ER stress as a key metabolic mechanistic link between obesity and OA, in addition to (or operating with) biomechanical factors.

摘要

引言

肥胖是骨关节炎(OA)发生发展的主要危险因素;然而,其中涉及的机制尚不清楚。肥胖与脂肪因子产生增加以及循环游离脂肪酸(FFA)水平升高有关。最近的一项研究表明,饱和脂肪酸棕榈酸酯可诱导软骨细胞中的促炎和促凋亡途径。半月板已被证明比关节软骨更容易受到分解代谢刺激的影响。因此,本研究的目的是确定FFA(具体为棕榈酸酯)对半月板细胞的影响。

方法

用500μM FFA(棕榈酸酯和油酸酯)刺激培养的原代猪半月板细胞24小时,以诱导内质网(ER)应激。处理后,制备细胞裂解物并进行免疫印迹检测C/EBP同源蛋白(CHOP)。为了确定未折叠蛋白反应(UPR)信号的激活情况,检测细胞裂解物中的cJun氨基末端激酶(JNK)、裂解的半胱天冬酶-3和Xbp-1s,Xbp-1s是由于Ire1α激活而产生的一种替代性mRNA剪接产物。

结果

用棕榈酸酯而非油酸酯处理分离的原代半月板细胞可诱导CHOP和Xbp-1s的表达。棕榈酸酯处理半月板细胞还激活了JNK并增加了半胱天冬酶-3的表达,从而促进半月板细胞凋亡。

结论

棕榈酸酯可诱导半月板细胞内质网应激并促进凋亡途径。这是第一项将内质网应激确立为肥胖与骨关节炎之间关键代谢机制联系的研究,该联系与生物力学因素并存(或协同作用)。

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