首页> 外文期刊>Journal of the American Chemical Society >Cation-π Interaction in the Polyolefin Cyclization Cascade Uncovered by Incorporating Unnatural Amino Acids into the Catalytic Sites of Squalene Cyclase
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Cation-π Interaction in the Polyolefin Cyclization Cascade Uncovered by Incorporating Unnatural Amino Acids into the Catalytic Sites of Squalene Cyclase

机译:通过将非天然氨基酸引入角鲨烯环化酶的催化位点发现的聚烯烃环化级联中的阳离子-π相互作用

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It has been assumed that the π-electrons of aromatic residues in the catalytic sites of triterpene cyclases stabilize the cationic intermediates formed during the polycyclization cascade of squalene or oxidosqualene, but no definitive experimental evidence has been given. To validate this cation—π interaction, natural and unnatural aromatic amino acids were site-specifically incorporated into squalene-hopene cyclase (SHC) from Alicyclobacillus acidocaldarius and the kinetic data of the mutants were compared with that of the wild-type SHC. The catalytic sites of Phe365 and Phe605 were substituted with O-methyltyrosine, tyrosine, and tryptophan, which have higher cation-π binding energies than phenylalanine. These replacements actually increased the SHC activity at low temperature, but decreased the activity at high temperature, as compared with the wild-type SHC. This decreased activity is due to the disorganization of the protein architecture caused by the introduction of the amino acids more bulky than phenylalanine. Then, mono-, di-, and trifluorophenylalanines were incorporated at positions 365 and 605; these amino acids reduce cation-π binding energies but have van der Waals radii similar to that of phenylalanine. The activities of the SHC variants with fluorophenylalanines were found to be inversely proportional to the number of the fluorine atoms on the aromatic ring and clearly correlated with the cation—π binding energies of the ring moiety. No serious structural alteration was observed for these variants even at high temperature. These results unambiguously show that the π-electron density of residues 365 and 605 has a crucial role for the efficient polycyclization reaction by SHC. This is the first report to demonstrate experimentally the involvement of cation-π interaction in triterpene biosynthesis.
机译:已经假定三萜环化酶的催化位点中的芳族残基的π电子稳定了角鲨烯或氧化角鲨烯的多环化级联过程中形成的阳离子中间体,但是没有给出确定的实验证据。为了验证这种阳离子-π相互作用,将天然和非天然芳香族氨基酸位点特异性地掺入了酸热脂环酸杆菌的角鲨烯-戊环化酶(SHC)中,并将突变体的动力学数据与野生型SHC进行了比较。 Phe365和Phe605的催化位点被O-甲基酪氨酸,酪氨酸和色氨酸取代,它们的阳离子-π结合能比苯丙氨酸高。与野生型SHC相比,这些替代实际上增加了低温下的SHC活性,但降低了高温下的SHC活性。活性降低是由于引入比苯丙氨酸更大体积的氨基酸引起的蛋白质结构紊乱。然后,在365和605位掺入单,二和三氟苯丙氨酸。这些氨基酸降低了阳离子-π的结合能,但范德华半径类似于苯丙氨酸。发现具有氟苯基丙氨酸的SHC变体的活性与芳环上的氟原子数成反比,并且与环部分的阳离子-π结合能明显相关。对于这些变体,即使在高温下也没有观察到严重的结构改变。这些结果清楚地表明,残基365和605的π电子密度对于SHC有效的多环化反应具有关键作用。这是第一份通过实验证明阳离子-π相互作用参与三萜生物合成的报告。

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