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自旋标记的酰基辅酶A与线粒体二磷酸腺苷载体之间的相互作用。

Interaction between spin-labeled acyl-coenzyme A and the mitochondrial adenosine diphosphate carrier.

作者信息

Devaux P F, Bienvenüe A, Lauquin G, Brisson A D, Vignais P M, Vignais P V

出版信息

Biochemistry. 1975 Mar 25;14(6):1272-80. doi: 10.1021/bi00677a028.

Abstract

Spin-labeled long-chain (m,n)acyl-CoA's (general formula: CH3(CH2)mCR(CH2)nCOSCoA, where R is an oxazolidine ring containing a nitroxide) inhibit anion transports through the inner mitochondrial membrane at low concentrations as ordinary long-chain acyl-CoA's do. The inhibition constant relative to the inhibition of the ADP transport in heart mitochondria by spin-labeled palmityl-CoA and stearyl-CoA is of the order of 10-7 M, a value which is similar to that found for natural long-chain acyl-CoA's. A short-chain spin-labeled acyl-CoA (C5) showed no inhibitory effect in the range of concentrations tested (up to 30 muM). (2) (10,3)Acyl-CoA added to heart mitochondria at low concentrations exhibits spectra corresponding to an immobilized probe. The corresponding free fatty acid shows a higher freedom of motion between 0 and 30 degrees. The same differences in spectra of spin-labeled acyl-CoA and spin-labeled free fatty acid were found in inner membrane vesicles from rat liver mitochondria, but not in outer membrane preparations. (3) The selective interaction of spin-labeled acyl-CoA with the ADP carrier is indicated by the release of this interaction by specific ligands of the ADP carrier, such as ADP or ATP, carboxyatractyloside, adn bongkrekic acid. ADP (or ATP) and carboxyatractyloside rendered the spin-labeled (10,3)acyl-CoA nearly as mobile as the (10,3) free fatty acid. No effect was obtained with AMP, GDP, or UDP which are not transported by the ADP carrier. Bongkrekic acid, another specific inhibitor of the ADP carrier, was inactive when added alone; however, it was effective when added together with amounts of ADP which are ineffective per se. (4) The electron spin resonance (esr) spectrum observed at low concentrations of (10,3)acyl-CoA arises from (10,3)acyl-CoA bound to the ADP carrier. At higher concentrations the (10,3)-acy-CoA is more suggesting that the bulk of the label is also present in the lipid phase of the membrane. Spin-labeled acylCoA's incorporated into a sonicated dispersion of lipids extracted from heart mitochondria exhibited similar mobile spectra. (5) When the oxazolidine ring is moved down the hydrocarbon chain of the acyl-CoA, the binding features tended to disappear. Whereas nitroxide-protein interactions could be easily measured with the (10,3)acyl-CoA and the (7,6)acyl-CoA, much less or even no significant interactions could be detected with the (5,10)acyl-CoA or the (1,14)acyl-CoA. (6) The above results suggest that spin-labeled long-chain acylCoA added to mitochondria binds by its polar moiety to the ADP carrier. The acyl chain interacts with the ADP carrier protein over a length of 10-15 A. The remaining portion of the acyl chain experiences a fluid lipid environment.

摘要

自旋标记的长链(m,n)酰基辅酶A(通式:CH3(CH2)mCR(CH2)nCOSCoA,其中R是含有氮氧化物的恶唑烷环)在低浓度时像普通长链酰基辅酶A一样抑制阴离子通过线粒体内膜的转运。相对于自旋标记的棕榈酰辅酶A和硬脂酰辅酶A对心脏线粒体中ADP转运的抑制作用,其抑制常数约为10^-7 M,该值与天然长链酰基辅酶A的抑制常数相似。短链自旋标记的酰基辅酶A(C5)在测试浓度范围内(高达30 μM)未显示出抑制作用。(2)低浓度添加到心脏线粒体中的(10,3)酰基辅酶A呈现出与固定化探针相对应的光谱。相应的游离脂肪酸在0至30度之间显示出更高的运动自由度。在大鼠肝线粒体的内膜囊泡中发现了自旋标记的酰基辅酶A和自旋标记的游离脂肪酸光谱的相同差异,但在外膜制剂中未发现。(3)ADP载体的特异性配体,如ADP或ATP、羧基苍术苷和邦克里酸,可解除这种相互作用,这表明自旋标记的酰基辅酶A与ADP载体存在选择性相互作用。ADP(或ATP)和羧基苍术苷使自旋标记的(10,3)酰基辅酶A的流动性几乎与(10,3)游离脂肪酸相同。AMP、GDP或UDP不被ADP载体转运,对其没有影响。ADP载体的另一种特异性抑制剂邦克里酸单独添加时无活性;然而,当与本身无效的一定量ADP一起添加时,它是有效的。(4)在低浓度(10,3)酰基辅酶A下观察到的电子自旋共振(esr)光谱来自与ADP载体结合的(10,3)酰基辅酶A。在较高浓度下,(10,3)-酰基辅酶A的情况更表明大部分标记也存在于膜的脂质相中。掺入从心脏线粒体提取的脂质的超声分散体中的自旋标记酰基辅酶A表现出相似的流动光谱。(5)当恶唑烷环沿着酰基辅酶A的烃链向下移动时,结合特征趋于消失。虽然用(10,3)酰基辅酶A和(7,6)酰基辅酶A可以很容易地测量氮氧化物与蛋白质的相互作用,但用(5,10)酰基辅酶A或(1,14)酰基辅酶A检测到的相互作用要少得多,甚至没有显著相互作用。(6)上述结果表明,添加到线粒体中的自旋标记长链酰基辅酶A通过其极性部分与ADP载体结合。酰基链与ADP载体蛋白在10 - 15 Å的长度上相互作用。酰基链的其余部分处于流动性脂质环境中。

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