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1
Mechanistic insights from reaction of α-oxiranyl-aldehydes with cyanobacterial aldehyde deformylating oxygenase.α-氧杂环丁烷醛与蓝藻醛脱甲酰化氧合酶反应的机理研究。
ACS Chem Biol. 2014 Feb 21;9(2):570-7. doi: 10.1021/cb400772q. Epub 2013 Dec 13.
2
Conversion of Aldehyde to Alkane by a Peroxoiron(III) Complex: A Functional Model for the Cyanobacterial Aldehyde-Deformylating Oxygenase.过氧铁(III)配合物将醛转化为烷烃:蓝藻醛脱甲酰基加氧酶的功能模型。
J Am Chem Soc. 2015 Jun 24;137(24):7686-91. doi: 10.1021/jacs.5b01053. Epub 2015 Jun 10.
3
Efficient delivery of long-chain fatty aldehydes from the Nostoc punctiforme acyl-acyl carrier protein reductase to its cognate aldehyde-deformylating oxygenase.从点形念珠藻酰基-酰基载体蛋白还原酶向其同源醛脱甲酰基加氧酶高效传递长链脂肪醛。
Biochemistry. 2015 Feb 3;54(4):1006-15. doi: 10.1021/bi500847u. Epub 2015 Jan 22.
4
Solvent isotope effects on alkane formation by cyanobacterial aldehyde deformylating oxygenase and their mechanistic implications.溶剂同位素对蓝藻醛脱甲酰基加氧酶形成烷烃的影响及其机理意义。
Biochemistry. 2014 Sep 2;53(34):5537-43. doi: 10.1021/bi5005766. Epub 2014 Aug 21.
5
Utilizing Alcohol for Alkane Biosynthesis by Introducing a Fatty Alcohol Dehydrogenase.利用引入的脂肪醇脱氢酶生产烷烃的酒精。
Appl Environ Microbiol. 2022 Dec 13;88(23):e0126422. doi: 10.1128/aem.01264-22. Epub 2022 Nov 23.
6
Functional screening of aldehyde decarbonylases for long-chain alkane production by Saccharomyces cerevisiae.用于酿酒酵母生产长链烷烃的醛脱羰酶的功能筛选。
Microb Cell Fact. 2017 May 2;16(1):74. doi: 10.1186/s12934-017-0683-z.
7
A consensus-guided approach yields a heat-stable alkane-producing enzyme and identifies residues promoting thermostability.共识指导方法产生一种热稳定的烷烃产生酶,并鉴定出促进热稳定性的残基。
J Biol Chem. 2018 Jun 15;293(24):9148-9161. doi: 10.1074/jbc.RA117.000639. Epub 2018 Apr 9.
8
Rapid Reduction of the Diferric-Peroxyhemiacetal Intermediate in Aldehyde-Deformylating Oxygenase by a Cyanobacterial Ferredoxin: Evidence for a Free-Radical Mechanism.醛去甲酰基氧化酶中二价铁过氧半缩醛中间物的快速还原:来自蓝细菌铁氧还蛋白的证据支持自由基机制。
J Am Chem Soc. 2015 Sep 16;137(36):11695-709. doi: 10.1021/jacs.5b06345. Epub 2015 Sep 2.
9
Insights into substrate and metal binding from the crystal structure of cyanobacterial aldehyde deformylating oxygenase with substrate bound.结合底物的蓝藻醛脱甲酰基加氧酶晶体结构对底物和金属结合的见解。
ACS Chem Biol. 2014 Nov 21;9(11):2584-93. doi: 10.1021/cb500343j. Epub 2014 Sep 15.
10
Enabling the synthesis of medium chain alkanes and 1-alkenes in yeast.在酵母中实现中链烷烃和 1-烯烃的合成。
Metab Eng. 2017 Nov;44:81-88. doi: 10.1016/j.ymben.2017.09.007. Epub 2017 Sep 20.

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1
Product release and substrate entry of aldehyde deformylating oxygenase revealed by molecular dynamics simulations.通过分子动力学模拟揭示醛脱甲酰基加氧酶的产物释放和底物进入
Biophys Physicobiol. 2025 Jan 9;22(1):e220003. doi: 10.2142/biophysico.bppb-v22.0003. eCollection 2025.
2
Recent advances in the improvement of cyanobacterial enzymes for bioalkane production.近年来,在提高产生物烷用蓝藻酶方面的进展。
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Ferritin-Like Proteins: A Conserved Core for a Myriad of Enzyme Complexes.铁蛋白样蛋白:多种酶复合物的保守核心。
Subcell Biochem. 2022;99:109-153. doi: 10.1007/978-3-031-00793-4_4.
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Identification of non-conserved residues essential for improving the hydrocarbon-producing activity of cyanobacterial aldehyde-deformylating oxygenase.鉴定对提高蓝藻醛脱甲酰基加氧酶产烃活性至关重要的非保守残基。
Biotechnol Biofuels. 2019 Apr 17;12:89. doi: 10.1186/s13068-019-1409-8. eCollection 2019.
5
A consensus-guided approach yields a heat-stable alkane-producing enzyme and identifies residues promoting thermostability.共识指导方法产生一种热稳定的烷烃产生酶,并鉴定出促进热稳定性的残基。
J Biol Chem. 2018 Jun 15;293(24):9148-9161. doi: 10.1074/jbc.RA117.000639. Epub 2018 Apr 9.
6
Identification of residues important for the activity of aldehyde-deformylating oxygenase through investigation into the structure-activity relationship.通过研究醛脱甲酰基加氧酶的构效关系来鉴定对其活性重要的残基。
BMC Biotechnol. 2017 Mar 16;17(1):31. doi: 10.1186/s12896-017-0351-8.
7
Divergent mechanisms of iron-containing enzymes for hydrocarbon biosynthesis.含铁酶参与烃生物合成的不同机制。
J Biol Inorg Chem. 2017 Apr;22(2-3):221-235. doi: 10.1007/s00775-016-1425-0. Epub 2016 Dec 21.
8
Structure-oriented substrate specificity engineering of aldehyde-deformylating oxygenase towards aldehydes carbon chain length.醛脱甲酰基加氧酶针对醛碳链长度的面向结构的底物特异性工程。
Biotechnol Biofuels. 2016 Aug 31;9(1):185. doi: 10.1186/s13068-016-0596-9. eCollection 2016.
9
Structural insights into the catalytic mechanism of aldehyde-deformylating oxygenases.醛脱甲酰基加氧酶催化机制的结构见解
Protein Cell. 2015 Jan;6(1):55-67. doi: 10.1007/s13238-014-0108-2. Epub 2014 Dec 9.
10
Insights into substrate and metal binding from the crystal structure of cyanobacterial aldehyde deformylating oxygenase with substrate bound.结合底物的蓝藻醛脱甲酰基加氧酶晶体结构对底物和金属结合的见解。
ACS Chem Biol. 2014 Nov 21;9(11):2584-93. doi: 10.1021/cb500343j. Epub 2014 Sep 15.

本文引用的文献

1
Cyanobacterial aldehyde deformylase oxygenation of aldehydes yields n-1 aldehydes and alcohols in addition to alkanes.蓝藻醛脱甲酰基酶对醛的氧化作用除了生成烷烃外,还会产生n-1醛和醇。
ACS Catal. 2013 Oct 4;3(10):2228-2238. doi: 10.1021/cs400484m.
2
Aldehyde Decarbonylases: Enigmatic Enzymes of Hydrocarbon Biosynthesis.醛脱羰基酶:碳氢化合物生物合成中的神秘酶类。
ACS Catal. 2013 Nov 1;3(11). doi: 10.1021/cs400637t.
3
Substrate-triggered addition of dioxygen to the diferrous cofactor of aldehyde-deformylating oxygenase to form a diferric-peroxide intermediate.底物触发二氧分子与醛脱甲醛氧化酶的二价铁辅因子加成,形成二价铁过氧物中间产物。
J Am Chem Soc. 2013 Oct 23;135(42):15801-12. doi: 10.1021/ja405047b. Epub 2013 Oct 9.
4
Aldehyde-forming fatty acyl-CoA reductase from cyanobacteria: expression, purification and characterization of the recombinant enzyme.蓝藻来源的醛形成脂肪酸酰基辅酶 A 还原酶:重组酶的表达、纯化和表征。
FEBS J. 2013 Oct;280(19):4773-81. doi: 10.1111/febs.12443. Epub 2013 Aug 23.
5
Production of propane and other short-chain alkanes by structure-based engineering of ligand specificity in aldehyde-deformylating oxygenase.基于醛脱甲酰基氧化酶配体特异性的结构工程生产丙烷和其他短链烷烃。
Chembiochem. 2013 Jul 8;14(10):1204-8. doi: 10.1002/cbic.201300307. Epub 2013 Jun 11.
6
Probing the mechanism of cyanobacterial aldehyde decarbonylase using a cyclopropyl aldehyde.用环丙基醛探究蓝藻醛脱羧酶的作用机制。
J Am Chem Soc. 2013 Apr 10;135(14):5234-7. doi: 10.1021/ja3115949. Epub 2013 Apr 2.
7
Fusing catalase to an alkane-producing enzyme maintains enzymatic activity by converting the inhibitory byproduct H2O2 to the cosubstrate O2.将过氧化氢酶融合到烷烃产生酶中,通过将抑制性副产物 H2O2 转化为共底物 O2 来保持酶的活性。
Proc Natl Acad Sci U S A. 2013 Feb 19;110(8):3191-6. doi: 10.1073/pnas.1218769110. Epub 2013 Feb 7.
8
Arabidopsis cuticular waxes: advances in synthesis, export and regulation.拟南芥表皮蜡质:在合成、输出和调控方面的进展。
Prog Lipid Res. 2013 Jan;52(1):110-29. doi: 10.1016/j.plipres.2012.10.002. Epub 2012 Oct 26.
9
Evidence for only oxygenative cleavage of aldehydes to alk(a/e)nes and formate by cyanobacterial aldehyde decarbonylases.只有蓝细菌醛脱羰基酶才能将醛氧化裂解为链烯和甲酸盐。
Biochemistry. 2012 Oct 9;51(40):7908-16. doi: 10.1021/bi300912n. Epub 2012 Sep 24.
10
An insect-specific P450 oxidative decarbonylase for cuticular hydrocarbon biosynthesis.昆虫特异性 P450 氧化脱羧酶用于表皮碳氢化合物生物合成。
Proc Natl Acad Sci U S A. 2012 Sep 11;109(37):14858-63. doi: 10.1073/pnas.1208650109. Epub 2012 Aug 27.

α-氧杂环丁烷醛与蓝藻醛脱甲酰化氧合酶反应的机理研究。

Mechanistic insights from reaction of α-oxiranyl-aldehydes with cyanobacterial aldehyde deformylating oxygenase.

机构信息

Department of Chemistry, University of Michigan , Ann Arbor, Michigan 48109, United States.

出版信息

ACS Chem Biol. 2014 Feb 21;9(2):570-7. doi: 10.1021/cb400772q. Epub 2013 Dec 13.

DOI:10.1021/cb400772q
PMID:24313866
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3944378/
Abstract

The biosynthesis of long-chain aliphatic hydrocarbons, which are derived from fatty acids, is widespread in Nature. The last step in this pathway involves the decarbonylation of fatty aldehydes to the corresponding alkanes or alkenes. In cyanobacteria, this is catalyzed by an aldehyde deformylating oxygenase. We have investigated the mechanism of this enzyme using substrates bearing an oxirane ring adjacent to the aldehyde carbon. The enzyme catalyzed the deformylation of these substrates to produce the corresponding oxiranes. Performing the reaction in D2O allowed the facial selectivity of proton addition to be examined by (1)H NMR spectroscopy. The proton is delivered with equal probability to either face of the oxirane ring, indicating the formation of an oxiranyl radical intermediate that is free to rotate during the reaction. Unexpectedly, the enzyme also catalyzes a side reaction in which oxiranyl-aldehydes undergo tandem deformylation to furnish alkanes two carbons shorter. We present evidence that this involves the rearrangement of the intermediate oxiranyl radical formed in the first step, resulting in aldehyde that is further deformylated in a second step. These observations provide support for a radical mechanism for deformylation and, furthermore, allow the lifetime of the radical intermediate to be estimated based on prior measurements of rate constants for the rearrangement of oxiranyl radicals.

摘要

长链脂肪族烃类是由脂肪酸衍生而来的,其生物合成在自然界中广泛存在。该途径的最后一步涉及脂肪酸醛向相应的烷烃或烯烃的脱羰。在蓝细菌中,这是由醛脱甲醛氧化酶催化的。我们使用带有环氧烷环紧邻醛碳原子的底物来研究这种酶的机制。该酶催化这些底物的脱甲醛作用,生成相应的环氧烷。在 D2O 中进行反应,通过 (1)H NMR 光谱可以检查质子加成的立体选择性。质子以相等的概率被添加到环氧环的任一面,表明形成了一个可以在反应过程中自由旋转的环氧基自由基中间体。出乎意料的是,该酶还催化了一个副反应,其中环氧基-醛经历串联脱甲醛作用,生成两个碳原子短的烷烃。我们提供的证据表明,这涉及在第一步中形成的中间环氧基自由基的重排,导致在第二步中进一步脱甲醛的醛。这些观察结果为脱甲醛的自由基机制提供了支持,此外,还可以根据先前测量的环氧基自由基重排的速率常数来估计自由基中间体的寿命。