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生物电流分子发生器的重构。细菌叶绿素与植物叶绿素复合体。

Reconstitution of biological molecular generators of electric current. Bacteriochlorophyll and plant chlorophyll complexes.

作者信息

Barsky E L, Dancshazy Z, Drachey L A, Il'ina M D, Jasaitis A A, Kondrashin A A, Samuilov V D, Skulachev V P

出版信息

J Biol Chem. 1976 Nov 25;251(22):7066-71.

PMID:825514
Abstract
  1. Electric generation by bacteriochlorophyll reaction center complexes from Rhodospirillum rubrum and by photosystem I complexes from pea chloroplasts has been studied. 2. The methods for the proteoliposome reconstitution from azolectin and bacteriochlorophyll- or plant chlorophyll-containing protein complexes have been elaborated. Light-dependent electric responses of the proteoliposomes were detected using (a) phenyldicarbaundecarborane anion (PCB-) probe and (b) direct measurement by a voltmeter in the proteoliposome-planar phospholipid membrane system. 3. Both PCB- and direct measurements demonstrated that bacteriochlorophyll proteoliposomes are competent in light-dependent electric generation (plus outside proteoliposomes). The photoelectric effect was shown to increase on addition of tetramethyl-p-phenylenediamine (TMPD), CoQ6, and vitamin K3, and to decrease on addition of ferricyanide, o-phenanthroline and a protonophorous uncoupler. Estimation of the photoelectromotive force of the bacteriochlorophyll proteoliposome-planar membrane system gave a value of about 0.2 V. The action spectrum of the photoelectric effect was similar to the absorption spectrum of the bacteriochlorophyll complex. 4. Reconstitution of proteoliposomes containing bacteriochlorophyll centers and bacteriorhodopsin resulted in the system generating an electric field whose direction can be changed by varying the spectral composition of the light: the red light, exciting bacteriochlorophyll, induces negative, and the green light, exciting bacteriorhodopsin, induces positive charging of the proteoliposome interior. 5. Association of isolated R. rubrum chromatophores with planar phospholipid membrane was found to give a system demonstrating light-induced electric generation as high as 215 mV in the presence of napthoquinone, TMPD (or phenazine methosulfate, PMS), and ascorbate. Under the same conditions, addition of inorganic pyrophosphate or ATP results in formation of an electric field of the same direction as that induced by light. 6. Proteoliposomes with plant chlorophyll complexes of photosystem I demonstrated light-induced PCB- responses indicating formation of the electric field with plus inside vesicles. The effect required PMS addition. A protonophorous uncoupler and o-phenanthroline were inhibitory. Electric responses in the chlorophyll proteoliposome-planar membrane system were very small (not higher than 10 mV).
摘要
  1. 对来自红螺菌的细菌叶绿素反应中心复合物以及豌豆叶绿体的光系统I复合物的发电情况进行了研究。2. 已详细阐述了用卵磷脂和含细菌叶绿素或植物叶绿素的蛋白质复合物重建蛋白脂质体的方法。使用(a)苯基二碳硼烷阴离子(PCB-)探针和(b)在蛋白脂质体-平面磷脂膜系统中用电压表直接测量来检测蛋白脂质体的光依赖性电响应。3. PCB-测量和直接测量均表明细菌叶绿素蛋白脂质体能够进行光依赖性发电(蛋白脂质体外部为正)。结果表明,添加四甲基对苯二胺(TMPD)、辅酶Q6和维生素K3时光电效应增强,而添加铁氰化物、邻菲罗啉和质子载体解偶联剂时光电效应减弱。对细菌叶绿素蛋白脂质体-平面膜系统的光电动势进行估算,得到的值约为0.2 V。光电效应的作用光谱与细菌叶绿素复合物的吸收光谱相似。4. 含有细菌叶绿素中心和细菌视紫红质的蛋白脂质体重建后,该系统会产生一个电场,其方向可通过改变光的光谱组成来改变:激发细菌叶绿素的红光会使蛋白脂质体内部带负电,而激发细菌视紫红质的绿光会使蛋白脂质体内部带正电。5. 发现分离的红螺菌载色体与平面磷脂膜结合后,在萘醌、TMPD(或吩嗪硫酸甲酯,PMS)和抗坏血酸存在的情况下,该系统表现出高达215 mV的光诱导发电。在相同条件下,添加无机焦磷酸或ATP会导致形成与光诱导方向相同的电场。6. 含有光系统I植物叶绿素复合物的蛋白脂质体表现出光诱导的PCB-响应,表明囊泡内部带正电形成了电场。该效应需要添加PMS。质子载体解偶联剂和邻菲罗啉具有抑制作用。叶绿素蛋白脂质体-平面膜系统中的电响应非常小(不高于10 mV)。

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