首页> 美国卫生研究院文献>Proceedings of the National Academy of Sciences of the United States of America >High-sensitivity neutron diffraction of membranes: Location of the Schiff base end of the chromophore of bacteriorhodopsin
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High-sensitivity neutron diffraction of membranes: Location of the Schiff base end of the chromophore of bacteriorhodopsin

机译:膜的高灵敏度中子衍射:细菌视紫红质发色团的席夫碱末端的位置

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摘要

Three important events in the functional cycle of bacteriorhodopsin occur at the chromophore: the primary absorption of light, the isomerization from the alltrans to the 13-cis form, and the deprotonation and reprotonation of its Schiff base. The protonated Schiff base linkage of the chromophore with lysine-216 plays an essential role in the color regulation of the pigment and is most likely directly involved in the charge translocation of this light-driven proton pump. Although much is known about the structure of the protein, the position of this key functional group has not yet been determined. We have synthesized a retinal in which the five protons closest to the Schiff base are replaced by deuterons. The labeled retinal was spontaneously incorporated into bacteriorhodopsin by using a mutant of Halobacterium halobium that is deficient in the synthesis of retinal. The position of the labeled Schiff base end of the chromophore was determined in the two-dimensional projected density of dark-adapted bacteriorhodopsin by neutron diffraction. The result fits very well with our previous work using retinals that were selectively deuterated in the middle of the polyene chain or in the cyclohexene ring. A coherent structure emerges with the three labeled positions on one line, separated by distances that are in good agreement with the tilt angle of the polyene chain (about 20°). The chromophore is located in the interior of the protein with the nitrogen of the Schiff base between helices 2 and 6 and with its ring in the vicinity of helix 4. Our results show that it is possible to locate a small group containing as few as five deuterons in a membrane protein of molecular weight 27,000.
机译:细菌视紫红质功能周期中的三个重要事件发生在发色团上:光的主要吸收,从全反式到13-顺式的异构化以及其席夫碱的去质子化和再质子化。生色团与赖氨酸216的质子化席夫碱键在颜料的颜色调节中起着至关重要的作用,最有可能直接参与这种光驱动质子泵的电荷转移。尽管对蛋白质的结构了解很多,但该关键官能团的位置尚未确定。我们合成了一个视网膜,其中最接近席夫碱的五个质子被氘核取代。通过使用缺乏视网膜合成的卤化嗜盐杆菌突变体,将标记的视网膜自发掺入细菌视紫红质中。通过中子衍射,在暗适应细菌视紫红质的二维投影密度中确定了发色团标记的席夫碱末端的位置。该结果与我们以前使用视网膜进行的研究非常吻合,该视网膜在多烯链的中间或在环己烯环中被选择性氘化。出现了一条连贯的结构,其中一条标记的三个位置位于一条直线上,其距离与多烯链的倾斜角(大约20°)非常吻合。发色团位于蛋白质内部,席夫碱的氮在螺旋2和6之间,其环在螺旋4附近。我们的结果表明,可以定位一个包含最少5个的小分子氘核中分子量为27,000的膜蛋白。

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