红红螺旋菌的捕光多肽。2红红spirillum rubrum G-9+光合膜胞质侧的捕光多肽B 870- α和B 870- β氨基末端区域和反应中心亚基L的定位

R A Brunisholz, V Wiemken, F Suter, R Bachofen, H Zuber
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引用次数: 57

摘要

用非特异性蛋白酶K和特异性蛋白酶α -凝乳胰蛋白酶、胰蛋白酶和金黄色葡萄球菌v8蛋白酶测定了红斑rs G-9+主要天线复合物B 870的多肽B 870- α和B 870- β在染色质膜(内外囊泡)内的取向。虽然b870 - α表现出可切割的肽键,但用特定蛋白酶处理只在n端区域的b870 - β中产生分裂。以最有效的蛋白酶K为例,通过裂解产物的Edman降解,证明其n端主要去除了6个(b870 - α)和16个(b870 - β)氨基酸残基。裂解的主要肽键分别为b870 - α的Gln6-Leu7和b870 - β的Lys16-Glu17。两种捕光多肽的中心疏水拉伸区和相对亲水的c端部分不受蛋白酶k的影响。根据这些降解实验,假设B 870- α和B 870- β的跨膜取向,它们的n端朝向细胞质,c端朝向光合膜的外周质。Brunisholz等人(Hoppe-Seyler's Z., Physiol.)提出的跨膜模型支持这一假设。化学。,(1984) 365, 675-688),其中B 870- α和B 870- β形成α -螺旋的疏水拉伸会跨越一次膜。用蛋白酶K处理的色谱仪有机溶剂萃取得到相当纯的多肽片段,表观分子质量为14000 Da。其n端氨基酸序列与Rs. rubrum G-9+的反应中心亚基L n端区域内的序列相同。因此,与b870 - β的情况一样,蛋白酶K很可能从亚基l的n端部分去除了16个氨基酸残基。因此,该亚基似乎也暴露在染色质膜的细胞质侧表面。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The light-harvesting polypeptides of Rhodospirillum rubrum. II. Localisation of the amino-terminal regions of the light-harvesting polypeptides B 870-alpha and B 870-beta and the reaction-centre subunit L at the cytoplasmic side of the photosynthetic membrane of Rhodospirillum rubrum G-9+.

The unspecific proteinase K and the specific proteases alpha-chymotrypsin, trypsin and S. aureus V 8 protease were used in order to determine the orientation of the polypeptides B 870-alpha and B 870-beta from the major antenna complex B 870 of Rs. rubrum G-9+ within the chromatophore membrane (inside-out vesicle). Although B 870-alpha exhibits cleavable peptide bonds, treatment with specific proteases yielded splitting only in B 870-beta within the N-terminal region. In the case of proteinase K, which was most effective, mainly 6 (B 870-alpha) and 16 (B 870-beta) amino acid residues were removed from their N-terminal parts as proved by means of Edman degradation of cleavage products. The major peptide bonds cleaved were identified as Gln6-Leu7 in B 870-alpha and as Lys16-Glu17 in B 870-beta. The central hydrophobic stretch regions and the relatively hydrophilic C-terminal parts of both light-harvesting polypeptides were not affected by proteinase K. On the basis of these degradation experiments a transmembrane orientation of B 870-alpha and B 870-beta is postulated, with their N-terminal towards the cytoplasm and their C-termini towards periplasm with regard to the photosynthetic membrane. This hypothesis is supported by the transmembrane model proposed by Brunisholz et al. (Hoppe-Seyler's Z., Physiol. Chem., (1984) 365, 675-688) in which the hydrophobic stretch of B 870-alpha and of B 870-beta forming an alpha-helix would span the membrane once. Organic solvent extraction of chromatophores treated with proteinase K yielded a fairly pure polypeptide fragment with an apparent molecular mass of 14000 Da. Its N-terminal amino-acid sequence is identical with the sequence within the N-terminal region of the reaction centre subunit L of Rs. rubrum G-9+. Thus it is most likely that as in the case of B 870-beta, proteinase K removed 16 amino acid residues from the N-terminal part of subunit L. This subunit therefore also seems to be exposed at the surface of the cytoplasmic side of the chromatophore membrane.

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