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Generation and analysis of bacteriorhodopsin mutants with the potential for biotechnological applications

机译:具有生物技术应用潜力的细菌视紫红质突变体的产生和分析

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The properties of bacteriorhodopsin (BR) can be manipulated by genetic engineering. Therefore, by the methods of gene engineering, Asp85 was replaced individually by two other amino acids (D85V, D85S). The resulting recombinant proteins were assembled into soybean vesicles retinylated to form functional BR-like nano-particles. Proton translocation was almost completely abrogated by the mutant D85S, while the D85V mutant was partially active in pumping protons. Compared with wild type, maximum absorption of the mutants, D85V and D85S, were 563 and 609 nm, which illustrated 5 nm reductions (blue shift) and 41 nm increases (red shift), respectively. Since proton transport activity and spectroscopic activities of the mutants are different, a wide variety of membrane bioreactors (MBr) have been developed. Modified proteins can be utilized to produce unique photo/Electro-chromic materials and tools.
机译:细菌视紫红质(BR)的属性可以通过基因工程来控制。因此,通过基因工程方法,Asp85被另外两个氨基酸(D85V,D85S)单独取代。将所得的重组蛋白组装到大豆囊泡中,所述大豆囊泡经视黄醛化以形成功能性的BR样纳米颗粒。质子移位几乎被突变体D85S完全消除,而D85V突变体在泵浦质子中部分活跃。与野生型相比,突变体D85V和D85S的最大吸收为563和609 nm,分别说明减少了5 nm(蓝移)和41 nm增加(红移)。由于突变体的质子转运活性和光谱活性不同,因此已经开发了多种膜生物反应器(MBr)。修饰的蛋白质可用于生产独特的光/电致变色材料和工具。

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