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过氧化物酶体酶的分子组织:膜内和基质中的蛋白质-蛋白质相互作用。

Molecular organization of peroxisomal enzymes: protein-protein interactions in the membrane and in the matrix.

作者信息

Makkar Randhir S, Contreras Miguel A, Paintlia Ajaib S, Smith Brian T, Haq Ehtishamul, Singh Inderjit

机构信息

The Charles Darby Children's Research Institute, Department of Pediatrics, Medical University of South Carolina, Charleston, SC 29425, USA.

出版信息

Arch Biochem Biophys. 2006 Jul 15;451(2):128-40. doi: 10.1016/j.abb.2006.05.003. Epub 2006 May 24.

Abstract

The beta-oxidation of fatty acids in peroxisomes produces hydrogen peroxide (H2O2), a toxic metabolite, as a bi-product. Fatty acids beta-oxidation activity is deficient in X-linked adrenoleukodystrophy (X-ALD) because of mutation in ALD-gene resulting in loss of very long chain acyl-CoA synthetase (VLCS) activity. It is also affected in disease with catalase negative peroxisomes as a result of inactivation by H2O2. Therefore, the following studies were undertaken to delineate the molecular interactions between both the ALD-gene product (adrenoleukodystrophy protein, ALDP) and VLCS as well as H2O2 degrading enzyme catalase and proteins of peroxisomal beta-oxidation. Studies using a yeast two hybrid system and surface plasmon resonance techniques indicate that ALDP, a peroxisomal membrane protein, physically interacts with VLCS. Loss of these interactions in X-ALD cells may result in a deficiency in VLCS activity. The yeast two-hybrid system studies also indicated that catalase physically interacts with L-bifunctional enzyme (L-BFE). Interactions between catalase and L-BFE were further supported by affinity purification, using a catalase-linked resin. The affinity bound 74-kDa protein, was identified as L-BFE by Western blot with specific antibodies and by proteomic analysis. Additional support for their interaction comes from immunoprecipitation of L-BFE with antibodies against catalase as a catalase- L-BFE complex. siRNA for L-BFE decreased the specific activity and protein levels of catalase without changing its subcellular distribution. These observations indicate that L-BFE might help in oligomerization and possibly in the localization of catalase at the site of H2O2 production in the peroxisomal beta-oxidation pathway.

摘要

过氧化物酶体中脂肪酸的β-氧化会产生有毒代谢产物过氧化氢(H2O2)作为副产物。由于ALD基因突变导致极长链酰基辅酶A合成酶(VLCS)活性丧失,X连锁肾上腺脑白质营养不良(X-ALD)患者的脂肪酸β-氧化活性存在缺陷。在过氧化氢酶阴性的过氧化物酶体疾病中,由于H2O2使其失活,脂肪酸β-氧化活性也会受到影响。因此,开展了以下研究来阐明ALD基因产物(肾上腺脑白质营养不良蛋白,ALDP)与VLCS以及过氧化氢降解酶过氧化氢酶和过氧化物酶体β-氧化蛋白之间的分子相互作用。使用酵母双杂交系统和表面等离子体共振技术的研究表明,过氧化物酶体膜蛋白ALDP与VLCS存在物理相互作用。X-ALD细胞中这些相互作用的丧失可能导致VLCS活性缺乏。酵母双杂交系统研究还表明,过氧化氢酶与L-双功能酶(L-BFE)存在物理相互作用。使用与过氧化氢酶连接的树脂进行亲和纯化进一步支持了过氧化氢酶与L-BFE之间的相互作用。通过用特异性抗体进行蛋白质印迹和蛋白质组分析,将亲和结合的74 kDa蛋白鉴定为L-BFE。它们相互作用的额外证据来自用抗过氧化氢酶抗体对L-BFE进行免疫沉淀,形成过氧化氢酶-L-BFE复合物。针对L-BFE设计的小干扰RNA降低了过氧化氢酶的比活性和蛋白水平,但未改变其亚细胞分布。这些观察结果表明,L-BFE可能有助于过氧化氢酶的寡聚化,并可能有助于其在过氧化物酶体β-氧化途径中H2O2产生位点的定位。

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