Structural Basis for β-Carboline Alkaloid Production by the Microbial Homodimeric Enzyme McbB.

Chemistry & biology Pub Date : 2015-07-23 Epub Date: 2015-06-25 DOI:10.1016/j.chembiol.2015.06.006
Takahiro Mori, Shotaro Hoshino, Shusaku Sahashi, Toshiyuki Wakimoto, Takashi Matsui, Hiroyuki Morita, Ikuro Abe
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引用次数: 33

Abstract

The β-carboline (βC) alkaloids occur throughout nature and exhibit diverse biological activities. In contrast to βC alkaloid synthesis in plants, the biosynthesis in microorganisms remains poorly understood. The recently reported McbB from Marinactinospora thermotolerans is a novel enzyme proposed to catalyze the Pictet-Spengler (PS) reaction of L-tryptophan and oxaloacetaldehyde to produce the βC scaffold of marinacarbolines. In this study, we solved the crystal structure of McbB complexed with L-tryptophan at 2.48 Å resolution, which revealed the novel protein folding of McbB and the totally different structure from those of other PS condensation catalyzing enzymes, such as strictosidine synthase and norcoclaurine synthase from plants. Structural analysis and site-directed mutagenesis confirmed that the previously proposed catalytic Glu97 at the active-site center functions as an acid and base catalyst. Remarkably, the structure-based mutants R72A and H87A, with expanded active-site cavities, newly accepted bulky phenylglyoxal as the aldehyde substrate, to produce 1-benzoyl-3-carboxy-β-carboline.

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微生物同型二聚体酶McbB生产β-碳碱生物碱的结构基础
β-碳碱(βC)生物碱广泛存在于自然界中,具有多种生物活性。与植物中βC生物碱的合成相比,微生物中的生物合成仍然知之甚少。最近报道的Marinactinospora thermotolerans的McbB是一种新的酶,用于催化l -色氨酸和草酰乙醛的picet - spengler (PS)反应,产生marinacinocarboines的βC支架。在本研究中,我们以2.48 Å的分辨率对McbB与l -色氨酸络合的晶体结构进行了解析,揭示了McbB的新型蛋白质折叠结构,并且与植物中其他PS缩合催化酶(如strictosidine synthase和norcoclurine synthase)的结构完全不同。结构分析和位点定向诱变证实了先前提出的活性位点中心的催化Glu97具有酸碱催化剂的功能。值得注意的是,基于结构的突变体R72A和H87A具有扩大的活性位点空腔,新接受体积较大的苯乙二醛作为醛底物,产生1-苯甲酰-3-羧基-β-羰基。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Chemistry & biology
Chemistry & biology 生物-生化与分子生物学
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