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单细胞真核生物的视紫红质-磷酸二酯酶融合蛋白跨膜结构域的光谱研究。

Spectroscopic study of the transmembrane domain of a rhodopsin-phosphodiesterase fusion protein from a unicellular eukaryote.

机构信息

From the Department of Life Science and Applied Chemistry and.

the Department of Biological Sciences, Graduate School of Science, University of Tokyo, Bunkyo-ku, Tokyo 113-0033, Japan, and.

出版信息

J Biol Chem. 2019 Mar 8;294(10):3432-3443. doi: 10.1074/jbc.RA118.006277. Epub 2019 Jan 8.

Abstract

The choanoflagellate contains a chimeric rhodopsin protein composed of an N-terminal rhodopsin (Rh) domain and a C-terminal cyclic nucleotide phosphodiesterase (PDE) domain. The Rh-PDE enzyme light-dependently decreases the concentrations of cyclic nucleotides such as cGMP and cAMP. Photoexcitation of purified full-length Rh-PDE yields an "M" intermediate with a deprotonated Schiff base, and its recovery is much faster than that of the enzyme domain. To gain structural and mechanistic insights into the Rh domain, here we expressed and purified the transmembrane domain of Rh-PDE, Rh-PDE(TMD), and analyzed it with transient absorption, light-induced difference UV-visible, and FTIR spectroscopy methods. These analyses revealed that the "K" intermediate forms within 0.005 ms and converts into the M intermediate with a time constant of 4 ms, with the latter returning to the original state within 4 s. FTIR spectroscopy revealed that all- to 13- photoisomerization occurs as the primary event during which chromophore distortion is located at the middle of the polyene chain, allowing the Schiff base to form a stronger hydrogen bond. We also noted that the peptide backbone of the α-helix becomes deformed upon M intermediate formation. Results from site-directed mutagenesis suggested that Glu-164 is protonated and that Asp-292 acts as the only Schiff base counterion in Rh-PDE. A strong reduction of enzymatic activity in a D292N variant, but not in an E164Q variant, indicated an important catalytic role of the negative charge at Asp-292. Our findings provide further mechanistic insights into rhodopsin-mediated, light-dependent regulation of second-messenger levels in eukaryotic microbes.

摘要

领鞭虫含有一种嵌合视紫红质蛋白,由一个 N 端视紫红质(Rh)结构域和一个 C 端环核苷酸磷酸二酯酶(PDE)结构域组成。Rh-PDE 酶在光依赖性条件下降低环核苷酸(如 cGMP 和 cAMP)的浓度。纯化的全长 Rh-PDE 的光激发产生一个具有去质子化 Schiff 碱的“M”中间体,其恢复速度比酶结构域快得多。为了深入了解 Rh 结构域的结构和机制,我们在这里表达和纯化了 Rh-PDE 的跨膜结构域 Rh-PDE(TMD),并通过瞬态吸收、光诱导差 UV-可见光谱和傅里叶变换红外(FTIR)光谱分析方法对其进行了分析。这些分析表明,“K”中间体在 0.005 毫秒内形成,并在 4 毫秒的时间常数内转化为 M 中间体,后者在 4 秒内恢复到原始状态。FTIR 光谱表明,全-13-光异构化是主要事件,在此过程中,发色团的扭曲位于多烯链的中间,允许 Schiff 碱形成更强的氢键。我们还注意到,α-螺旋的肽骨架在 M 中间体形成时会变形。定点突变实验的结果表明,Glu-164 质子化,Asp-292 作为 Rh-PDE 中唯一的 Schiff 碱反离子。D292N 变体的酶活性显著降低,但 E164Q 变体没有,这表明 Asp-292 上的负电荷在催化中起着重要作用。我们的研究结果为真核微生物中视紫红质介导的第二信使水平的光依赖性调节提供了进一步的机制见解。

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