Matthew N Gaynes, Kristin R Osika, David W Christianson
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The catalytic metal ion requirement is unexpectedly broad for a class I terpene cyclase: optimal catalytic activity was measured using Mn<sup>2+</sup> or Co<sup>2+</sup>, with more modest activity observed using Mg<sup>2+</sup> or Ni<sup>2+</sup>. Kinetic parameters were determined for both full-length TpSS and a deletion variant lacking the putative N-terminal plastidial targeting sequence, designated ΔTpSS. Monoterpene product profiles for both indicated similar product arrays independent of the catalytic metal ion used, with sabinene comprising nearly 90% of the total products generated. Site-directed mutagenesis was utilized to probe the function of active site residues, and several mutants yielded altered product arrays. 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引用次数: 0
摘要
桧烯是一种植物天然产物,具有独特的链状[3.1.0]双环系统,在商业上被用作一种带有柑橘香味的辛辣松香。这种不寻常的单萜烯还被研究用作抗真菌剂、消炎剂和下一代生物燃料。为了了解在沙比烯生物合成过程中形成 [3.1.0] 双环的分子决定因素,我们现在以 2.21-2.72 Å 的分辨率报告了来自西部红雪松(Thuja plicata,TpSS)的沙比烯合成酶的三个 X 射线晶体结构,其中包括开放和部分封闭的活性位点构象。我们还报告了桧烯合成酶的完整生化特征,包括稳态动力学、活性位点突变和产物阵列分析。对于 I 类萜烯环化酶来说,催化金属离子的要求出乎意料地宽泛:使用 Mn2+ 或 Co2+ 测得了最佳催化活性,而使用 Mg2+ 或 Ni2+ 则观察到较低的活性。测定了全长 TpSS 和缺少 N 端质体靶向序列的缺失变体(命名为 ΔTpSS)的动力学参数。二者的单萜烯产物图谱均显示出相似的产物阵列,与所使用的催化金属离子无关,其中桧烯占所产生总产物的近 90%。利用定点突变来探究活性位点残基的功能,有几个突变体产生了改变的产物阵列。最值得注意的是,G458A 取代将 ΔTpSS 转化为高活性的 α-蒎烯合成酶。α-蒎烯含有一个双环[3.1.1]环系统;结构和机理分析表明了重编程转annulation 反应的分子原理,从而产生了替代的双环产物。
Structure and Function of Sabinene Synthase, a Monoterpene Cyclase That Generates a Highly Strained [3.1.0] Bicyclic Product.
Sabinene is a plant natural product with a distinctive strained [3.1.0] bicyclic ring system that is used commercially as a spicy and pine-like fragrance with citrus undertones. This unusual monoterpene has also been studied as an antifungal and anti-inflammatory agent as well as a next-generation biofuel. In order to understand the molecular determinants of [3.1.0] bicyclic ring formation in sabinene biosynthesis, we now report three X-ray crystal structures of sabinene synthase from Western red cedar, Thuja plicata (TpSS), with open and partially closed active site conformations at 2.21-2.72 Å resolution. We additionally report the complete biochemical characterization of sabinene synthase, including steady-state kinetics, active site mutagenesis, and product array profiling. The catalytic metal ion requirement is unexpectedly broad for a class I terpene cyclase: optimal catalytic activity was measured using Mn2+ or Co2+, with more modest activity observed using Mg2+ or Ni2+. Kinetic parameters were determined for both full-length TpSS and a deletion variant lacking the putative N-terminal plastidial targeting sequence, designated ΔTpSS. Monoterpene product profiles for both indicated similar product arrays independent of the catalytic metal ion used, with sabinene comprising nearly 90% of the total products generated. Site-directed mutagenesis was utilized to probe the function of active site residues, and several mutants yielded altered product arrays. Most notably, the G458A substitution converted ΔTpSS into a high-activity α-pinene synthase. α-Pinene contains a bicyclic [3.1.1] ring system; structural and mechanistic analyses suggest a molecular rationale for the reprogrammed transannulation reaction, leading to the alternative bicyclic product.
期刊介绍:
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