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肝脏脂肪酸辅酶A连接酶在异源生物羧酸代谢中的作用

Role of hepatic fatty acid:coenzyme A ligases in the metabolism of xenobiotic carboxylic acids.

作者信息

Knights K M

机构信息

Department of Clinical Pharmacology, School of Medicine, Faculty of Health Sciences, Flinders University of South Australia, Australia.

出版信息

Clin Exp Pharmacol Physiol. 1998 Oct;25(10):776-82. doi: 10.1111/j.1440-1681.1998.tb02152.x.

DOI:10.1111/j.1440-1681.1998.tb02152.x
PMID:9784915
Abstract
  1. Formation of acyl-coenzymes (Co)A occurs as an obligatory step in the metabolism of a variety of endogenous substrates, including fatty acids. The reaction is catalysed by ATP-dependent acid:CoA ligases (EC 6.2.1.1-2.1.3; AMP forming), classified on the basis of their ability to conjugate saturated fatty acids of differing chain lengths, short (C2-C4), medium (C4-C12) and long (C10-C22). The enzymes are located in various cell compartments (cytosol, smooth endoplasmic reticulum, mitochondria and peroxisomes) and exhibit wide tissue distribution, with highest activity associated with liver and adipose tissue. 2. Formation of acyl-CoA is not unique to endogenous substrates, but also occurs as an obligatory step in the metabolism of some xenobiotic carboxylic acids. The mitochondrial medium-chain CoA ligase is principally associated with metabolism via amino acid conjugation and activates substrates such as benzoic and salicylic acids. Although amino acid conjugation was previously considered an a priori route of metabolism for xenobiotic-CoA, it is now recognized that these highly reactive and potentially toxic intermediates function as alternative substrates in pathways of intermediary metabolism, particularly those associated with lipid biosyntheses. 3. In addition to a role in fatty acid metabolism, the hepatic microsomal and peroxisomal long-chain-CoA-ligases have been implicated in the formation of the acyl-CoA thioesters of a variety of hypolipidaemic and peroxisome proliferating agents (e.g. clofibric acid) and of the R(-)-enantiomers of the commonly used 2-arylpropionic acid non-steroidal anti-inflammatory drugs (e.g. ibuprofen). In vitro kinetic studies using rat hepatic microsomes and peroxisomes have alluded to the possibility of xenobiotic-CoA ligase multiplicity. Although cDNA encoding a long-chain ligase have been isolated from rat and human liver, there is currently no molecular evidence of multiple isoforms. The gene has been localized to chromosome 4 and homology searches have revealed a significant similarity with enzymes of the luciferase family. 4. Increasing recognition that formation of a CoA conjugate increases chemical reactivity of xenobiotic carboxylic acids has led to an awareness that the relative activity, substrate specificity and intracellular location of the xenobiotic-CoA ligases may explain differences in toxicity. 5. Continued characterization of the human xenobiotic-CoA ligases in terms of substrate/inhibitor profiles and regulation, will allow a greater understanding of the role of these enzymes in the metabolism of carboxylic acids.
摘要
  1. 酰基辅酶A的形成是多种内源性底物(包括脂肪酸)代谢过程中的一个必要步骤。该反应由依赖ATP的酸:辅酶A连接酶(EC 6.2.1.1 - 2.1.3;形成AMP)催化,这些酶根据其结合不同链长饱和脂肪酸的能力进行分类,包括短链(C2 - C4)、中链(C4 - C12)和长链(C10 - C22)。这些酶位于各种细胞区室(细胞质、滑面内质网、线粒体和过氧化物酶体),并表现出广泛的组织分布,其中肝脏和脂肪组织的活性最高。2. 酰基辅酶A的形成并非内源性底物所特有,在一些外源性羧酸的代谢过程中它也是一个必要步骤。线粒体中链辅酶A连接酶主要与通过氨基酸结合的代谢相关,并激活苯甲酸和水杨酸等底物。尽管氨基酸结合以前被认为是外源性辅酶A代谢的先验途径,但现在人们认识到这些高反应性和潜在毒性的中间体在中间代谢途径中作为替代底物发挥作用,特别是那些与脂质生物合成相关的途径。3. 除了在脂肪酸代谢中的作用外,肝脏微粒体和过氧化物酶体的长链辅酶A连接酶还与多种降血脂药和过氧化物酶体增殖剂(如氯贝酸)以及常用的2 - 芳基丙酸非甾体抗炎药(如布洛芬)的R(-)-对映体的酰基辅酶A硫酯的形成有关。使用大鼠肝脏微粒体和过氧化物酶体进行的体外动力学研究暗示了外源性辅酶A连接酶存在多种形式的可能性。尽管已从大鼠和人肝脏中分离出编码长链连接酶的cDNA,但目前尚无多种同工型的分子证据。该基因已定位到4号染色体,同源性搜索显示与荧光素酶家族的酶有显著相似性。4. 越来越多的认识表明,辅酶A共轭物的形成会增加外源性羧酸的化学反应性,这使人们意识到外源性辅酶A连接酶的相对活性、底物特异性和细胞内定位可能解释毒性差异。5. 继续根据底物/抑制剂谱和调节来表征人外源性辅酶A连接酶,将有助于更深入了解这些酶在羧酸代谢中的作用。

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