首页> 美国卫生研究院文献>Journal of Bacteriology >Homodimeric Hexaprenyl Pyrophosphate Synthase from the Thermoacidophilic Crenarchaeon Sulfolobus solfataricus Displays Asymmetric Subunit Structures
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Homodimeric Hexaprenyl Pyrophosphate Synthase from the Thermoacidophilic Crenarchaeon Sulfolobus solfataricus Displays Asymmetric Subunit Structures

机译:嗜热嗜酸鱼腥草Sulfolobus solfataricus的同二聚十六烷基焦磷酸合酶显示不对称的亚基结构。

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摘要

Hexaprenyl pyrophosphate synthase (HexPPs) from Sulfolobus solfataricus catalyzes the synthesis of trans-C30-hexaprenyl pyrophosphate (HexPP) by reacting two isopentenyl pyrophosphate molecules with one geranylgeranyl pyrophosphate. The crystal structure of the homodimeric C30-HexPPs resembles those of other trans-prenyltransferases, including farnesyl pyrophosphate synthase (FPPs) and octaprenyl pyrophosphate synthase (OPPs). In both subunits, 10 core helices are arranged about a central active site cavity. Leu164 in the middle of the cavity controls the product chain length. Two protein conformers are observed in the S. solfataricus HexPPs structure, and the major difference between them occurs in the flexible region of residues 84 to 100. Several helices (αI, αJ, αK, and part of αH) and the associated loops have high-temperature factors in one monomer, which may be related to the domain motion that controls the entrance to the active site. Different side chain conformations of Trp136 in two HexPPs subunits result in weaker hydrophobic interactions at the dimer interface, in contrast to the symmetric π-π stacking interactions of aromatic side chains found in FPPs and OPPs. Finally, the three-conformer switched model may explain the catalytic process for HexPPs.
机译:来自Sulfolobus solfataricus的六戊烯基焦磷酸合酶(HexPPs)通过使两个异戊烯基焦磷酸分子与一个geranylgeranyl焦磷酸酯反应,催化反式C30-六异戊烯基焦磷酸酯(HexPP)的合成。同型二聚体C30-HexPPs的晶体结构与其他反式异戊二烯基转移酶的晶体结构相似,包括法呢基焦磷酸合酶(FPP)和辛二烯基焦磷酸合酶(OPP)。在两个亚基中,围绕一个中心活动位点腔排列了10个核心螺旋。空腔中间的Leu164控制产品链的长度。在S. solfataricus HexPPs结构中观察到两个蛋白质构象异构体,它们之间的主要区别出现在残基84到100的柔性区域中。几个螺旋(αI,αJ,αK和部分αH)和相关的环具有高-一种单体中的-温度因子,其可能与控制活性位点入口的畴运动有关。与在FPP和OPP中发现的芳香族侧链的对称π-π堆积相互作用相反,两个HexPPs亚基中Trp136的不同侧链构象导致二聚体界面处的疏水相互作用较弱。最后,三聚体转换模型可以解释HexPPs的催化过程。

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