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1.
J Am Chem Soc ; 146(10): 6493-6505, 2024 03 13.
Article de Anglais | MEDLINE | ID: mdl-38426440

RÉSUMÉ

PylB is a radical S-adenosyl-l-methionine (SAM) enzyme predicted to convert l-lysine into (3R)-3-methyl-d-ornithine, a precursor in the biosynthesis of the 22nd proteogenic amino acid pyrrolysine. This protein highly resembles that of the radical SAM tyrosine and tryptophan lyases, which activate their substrate by abstracting a H atom from the amino-nitrogen position. Here, combining in vitro assays, analytical methods, electron paramagnetic resonance spectroscopy, and theoretical methods, we demonstrated that instead, PylB activates its substrate by abstracting a H atom from the Cγ position of l-lysine to afford the radical-based ß-scission. Strikingly, we also showed that PylB catalyzes the reverse reaction, converting (3R)-3-methyl-d-ornithine into l-lysine and using catalytic amounts of the 5'-deoxyadenosyl radical. Finally, we identified significant in vitro production of 5'-thioadenosine, an unexpected shunt product that we propose to result from the quenching of the 5'-deoxyadenosyl radical species by the nearby [Fe4S4] cluster.


Sujet(s)
Méthionine , Ornithine/analogues et dérivés , Adémétionine , Adémétionine/métabolisme , Lysine , Racéméthionine , Spectroscopie de résonance de spin électronique
2.
Cell Chem Biol ; 30(8): 943-952.e7, 2023 08 17.
Article de Anglais | MEDLINE | ID: mdl-37451267

RÉSUMÉ

Darobactins represent a class of ribosomally synthesized and post-translationally modified peptide (RiPP) antibiotics featuring a rare bicyclic structure. They target the Bam-complex of Gram-negative bacteria and exhibit in vivo activity against drug-resistant pathogens. First isolated from Photorhabdus species, the corresponding biosynthetic gene clusters (BGCs) are widespread among γ-proteobacteria, including the genera Vibrio, Yersinia, and Pseudoalteromonas (P.). While the organization of the BGC core is highly conserved, a small subset of Pseudoalteromonas carries an extended BGC with additional genes. Here, we report the identification of brominated and dehydrated darobactin derivatives from P. luteoviolacea strains. The marine derivatives are active against multidrug-resistant (MDR) Gram-negative bacteria and showed solubility and plasma protein binding ability different from darobactin A, rendering it more active than darobactin A. The halogenation reaction is catalyzed by DarH, a new class of flavin-dependent halogenases with a novel fold.


Sujet(s)
Phénylpropionates , Phénylpropionates/métabolisme , Bactéries à Gram négatif/génétique , Métabolome
3.
Nat Commun ; 13(1): 2284, 2022 04 27.
Article de Anglais | MEDLINE | ID: mdl-35477710

RÉSUMÉ

2-iminoacetate synthase ThiH is a radical S-adenosyl-L-methionine (SAM) L-tyrosine lyase and catalyzes the L-tyrosine Cα-Cß bond break to produce dehydroglycine and p-cresol while the radical SAM L-tryptophan lyase NosL cleaves the L-tryptophan Cα-C bond to produce 3-methylindole-2-carboxylic acid. It has been difficult to understand the features that condition one C-C bond break over the other one because the two enzymes display significant primary structure similarities and presumably similar substrate-binding modes. Here, we report the crystal structure of L-tyrosine bound ThiH from Thermosinus carboxydivorans revealing an unusual protonation state of L-tyrosine upon binding. Structural comparison of ThiH with NosL and computational studies of the respective reactions they catalyze show that substrate activation is eased by tunneling effect and that subtle structural changes between the two enzymes affect, in particular, the hydrogen-atom abstraction by the 5´-deoxyadenosyl radical species, driving the difference in reaction specificity.


Sujet(s)
Lyases , Adémétionine , Catalyse , Adémétionine/métabolisme , Tryptophane/métabolisme , Tyrosine
4.
ACS Bio Med Chem Au ; 2(1): 36-52, 2022 Feb 16.
Article de Anglais | MEDLINE | ID: mdl-37102176

RÉSUMÉ

This Review focuses on the structure-function relationship of radical S-adenosyl-l-methionine (SAM) enzymes involved in the assembly of metallocofactors corresponding to the active sites of [FeFe]-hydrogenase and nitrogenase [MoFe]-protein. It does not claim to correspond to an extensive review on the assembly machineries of these enzyme active sites, for which many good reviews are already available, but instead deals with the contribution of structural data to the understanding of their chemical mechanism (Buren et al. Chem. Rev.2020, 142 ( (25), ) 11006-11012; Britt et al. Chem. Sci.2020, 11 ( (38), ), 10313-10323). Hence, we will present the history and current knowledge about the radical SAM maturases HydE, HydG, and NifB as well as what, in our opinion, should be done in the near future to overcome the existing barriers in our understanding of this fascinating chemistry that intertwine organic radicals and organometallic complexes.

5.
ACS Chem Biol ; 16(11): 2423-2433, 2021 11 19.
Article de Anglais | MEDLINE | ID: mdl-34609124

RÉSUMÉ

Quinolinate synthase, also called NadA, is a [4Fe-4S]-containing enzyme that uses what is probably the oldest pathway to generate quinolinic acid (QA), the universal precursor of the biologically essential cofactor nicotinamide adenine dinucleotide (NAD). Its synthesis comprises the condensation of dihydroxyacetone phosphate (DHAP) and iminoaspartate (IA), which involves dephosphorylation, isomerization, cyclization, and two dehydration steps. The convergence of the three homologous domains of NadA defines a narrow active site that contains a catalytically essential [4Fe-4S] cluster. A tunnel, which can be opened or closed depending on the nature (or absence) of the bound ligand, connects this cofactor to the protein surface. One outstanding riddle has been the observation that the so far characterized active site is too small to bind IA and DHAP simultaneously. Here, we have used site-directed mutagenesis, X-ray crystallography, functional analyses, and molecular dynamics simulations to propose a condensation mechanism that involves the transient formation of a second active site cavity to which one of the substrates can migrate before this reaction takes place.


Sujet(s)
Complexes multienzymatiques/composition chimique , Acide quinolinique/composition chimique , Catalyse , Domaine catalytique , Cristallographie aux rayons X , Dihydroxyacétone phosphate/composition chimique , Modèles moléculaires , Complexes multienzymatiques/métabolisme , Conformation des protéines , Spécificité du substrat
6.
Chem Sci ; 12(14): 5269-5274, 2021 Mar 04.
Article de Anglais | MEDLINE | ID: mdl-34168778

RÉSUMÉ

The nitrogenase MoFe protein contains two different FeS centers, the P-cluster and the iron-molybdenum cofactor (FeMo-co). The former is a [Fe8S7] center responsible for conveying electrons to the latter, a [MoFe7S9C-(R)-homocitrate] species, where N2 reduction takes place. NifB is arguably the key enzyme in FeMo-co assembly as it catalyzes the fusion of two [Fe4S4] clusters and the insertion of carbide and sulfide ions to build NifB-co, a [Fe8S9C] precursor to FeMo-co. Recently, two crystal structures of NifB proteins were reported, one containing two out of three [Fe4S4] clusters coordinated by the protein which is likely to correspond to an early stage of the reaction mechanism. The other one was fully complemented with the three [Fe4S4] clusters (RS, K1 and K2), but was obtained at lower resolution and a satisfactory model was not obtained. Here we report improved processing of this crystallographic data. At odds with what was previously reported, this structure contains a unique [Fe8S8] cluster, likely to be a NifB-co precursor resulting from the fusion of K1- and K2-clusters. Strikingly, this new [Fe8S8] cluster has both a structure and coordination sphere geometry reminiscent of the fully reduced P-cluster (PN-state) with an additional µ2-bridging sulfide ion pointing toward the RS cluster. Comparison of available NifB structures further unveils the plasticity of this protein and suggests how ligand reorganization would accommodate cluster loading and fusion in the time-course of NifB-co synthesis.

7.
J Am Chem Soc ; 142(11): 5104-5116, 2020 03 18.
Article de Anglais | MEDLINE | ID: mdl-32078310

RÉSUMÉ

The [Fe2S2]-RsrR gene transcription regulator senses the redox status in bacteria by modulating DNA binding, while its cluster cycles between +1 and +2 states-only the latter binds DNA. We have previously shown that RsrR can undergo remarkable conformational changes involving a 100° rotation of tryptophan 9 between exposed (Out) and buried (In) states. Here, we have used the chemical modification of Trp9, site-directed mutagenesis, and crystallographic and computational chemical studies to show that (i) the Out and In states correspond to oxidized and reduced RsrR, respectively, (ii) His33 is protonated in the In state due to a change in its pKa caused by cluster reduction, and (iii) Trp9 rotation is conditioned by the response of its dipole moment to environmental electrostatic changes. Our findings illustrate a novel function of protonation resulting from electron transfer.


Sujet(s)
Protéines de liaison à l'ADN/composition chimique , ADN/composition chimique , Électrons , Ferrosulfoprotéines/composition chimique , Protons , Facteurs de transcription/composition chimique , Protéines bactériennes/composition chimique , Protéines bactériennes/génétique , Protéines bactériennes/métabolisme , ADN/métabolisme , Protéines de liaison à l'ADN/génétique , Protéines de liaison à l'ADN/métabolisme , Histidine/composition chimique , Histidine/génétique , Ferrosulfoprotéines/génétique , Ferrosulfoprotéines/métabolisme , Simulation de dynamique moléculaire , Mutation , Oxydoréduction , Liaison aux protéines , Conformation des protéines , Streptomyces/enzymologie , Facteurs de transcription/génétique , Facteurs de transcription/métabolisme
8.
Chem Commun (Camb) ; 55(26): 3725-3728, 2019 Mar 26.
Article de Anglais | MEDLINE | ID: mdl-30855610

RÉSUMÉ

Quinolinate synthase (NadA) is a [4Fe-4S] cluster-containing enzyme involved in the formation of quinolinic acid, the precursor of the essential NAD coenzyme. Here, we report the synthesis and activity of derivatives of the first inhibitor of NadA. Using multidisciplinary approaches we have investigated their action mechanism and discovered additional specific inhibitors of this enzyme.

9.
J Am Chem Soc ; 141(6): 2367-2375, 2019 02 13.
Article de Anglais | MEDLINE | ID: mdl-30657661

RÉSUMÉ

The recently discovered Rrf2 family transcriptional regulator RsrR coordinates a [2Fe-2S] cluster. Remarkably, binding of the protein to RsrR-regulated promoter DNA sequences is switched on and off through the facile cycling of the [2Fe-2S] cluster between +2 and +1 states. Here, we report high resolution crystal structures of the RsrR dimer, revealing that the [2Fe-2S] cluster is asymmetrically coordinated across the RsrR monomer-monomer interface by two Cys residues from one subunit and His and Glu residues from the other. To our knowledge, this is the first example of a protein bound [Fe-S] cluster with three different amino acid side chains as ligands, and of Glu acting as ligand to a [2Fe-2S] cluster. Analyses of RsrR structures revealed a conformational change, centered on Trp9, which results in a significant shift in the DNA-binding helix-turn-helix region.


Sujet(s)
Protéines bactériennes/composition chimique , Facteurs de transcription/composition chimique , Séquence d'acides aminés , Protéines bactériennes/métabolisme , Cristallographie aux rayons X , ADN/métabolisme , Modèles moléculaires , Multimérisation de protéines , Structure quaternaire des protéines , Facteurs de transcription/métabolisme
10.
J Am Chem Soc ; 140(48): 16661-16668, 2018 12 05.
Article de Anglais | MEDLINE | ID: mdl-30418774

RÉSUMÉ

The radical S-adenosyl-l-methionine tryptophan lyase uses radical-based chemistry to convert l-tryptophan into 3-methyl-2-indolic acid, a fragment in the biosynthesis of the thiopeptide antibiotic nosiheptide. This complex reaction involves several successive steps corresponding to (i) the activation by a specific hydrogen-atom abstraction, (ii) an unprecedented •CO2- radical migration, (iii) a cyanide fragment release, and (iv) the termination of the radical-based reaction. In vitro study of this reaction is made more difficult because the enzyme produces a significant amount of a shunt product instead of the natural product. Here, using a combination of X-ray crystallography, electron paramagnetic resonance spectroscopy, and quantum and hybrid quantum mechanical/molecular mechanical calculations, we have deciphered the fine mechanism of the key •CO2- radical migration, highlighting how the preorganized active site of the protein tightly controls this reaction.


Sujet(s)
Protéines bactériennes/métabolisme , Carbon-carbon lyases/métabolisme , Tryptophane/métabolisme , Protéines bactériennes/composition chimique , Carbon-carbon lyases/composition chimique , Domaine catalytique , Cristallographie aux rayons X , Décarboxylation , Spectroscopie de résonance de spin électronique , Radicaux libres/composition chimique , Modèles moléculaires , Liaison aux protéines , Théorie quantique , Streptomyces/enzymologie , Tryptophane/composition chimique
11.
Metallomics ; 10(10): 1452-1459, 2018 10 17.
Article de Anglais | MEDLINE | ID: mdl-30175357

RÉSUMÉ

The X-ray structure of an aerated achiral Ru-papain conjugate has revealed the hydroxylation of two tyrosine residues found near the ruthenium ion. The most likely mechanism involves a ruthenium-bound superoxide as the reactive species responsible for the first hydroxylation and the resulting high valent Ru(iv)[double bond, length as m-dash]O species for the second one.


Sujet(s)
Papaïne/composition chimique , Papaïne/métabolisme , Ruthénium/composition chimique , Ruthénium/métabolisme , Superoxydes/composition chimique , Tyrosine/composition chimique , Cristallographie aux rayons X , Hydroxylation , Modèles moléculaires , Structure moléculaire , Oxydoréduction , Conformation des protéines
12.
ACS Chem Biol ; 13(5): 1209-1217, 2018 05 18.
Article de Anglais | MEDLINE | ID: mdl-29641168

RÉSUMÉ

NadA is a multifunctional enzyme that condenses dihydroxyacetone phosphate (DHAP) with iminoaspartate (IA) to generate quinolinic acid (QA), the universal precursor of the nicotinamide adenine dinucleotide (NAD(P)) cofactor. Using X-ray crystallography, we have (i) characterized two of the reaction intermediates of QA synthesis using a "pH-shift" approach and a slowly reacting Thermotoga maritima NadA variant and (ii) observed the QA product, resulting from the degradation of an intermediate analogue, bound close to the entrance of a long tunnel leading to the solvent medium. We have also used molecular docking to propose a condensation mechanism between DHAP and IA based on two previously published Pyrococcus horikoshi NadA structures. The combination of reported data and our new results provide a structure-based complete catalytic sequence of QA synthesis by NadA.


Sujet(s)
Complexes multienzymatiques/composition chimique , Acide quinolinique/métabolisme , Thermotoga maritima/enzymologie , Cristallographie aux rayons X , Simulation de docking moléculaire , Complexes multienzymatiques/métabolisme , NAD/métabolisme , Conformation des protéines
13.
J Am Chem Soc ; 140(4): 1365-1371, 2018 01 31.
Article de Anglais | MEDLINE | ID: mdl-29300094

RÉSUMÉ

Regiospecific dehydration of vicinal diols by enzymes is a difficult reaction that usually requires activation by dedicated organic cofactors. The enzymatic use of radical-based chemistry is an effective but challenging alternative as radical intermediates are difficult to control. Here we report the X-ray structure of the radical S-adenosyl-l-methionine (SAM) dehydratase AprD4 involved in the biosynthesis of the aminoglycoside (AG) antibiotic apramycin. Using in vitro characterizations and theoretical calculations based on our crystal structure, we have been able to propose a detailed mechanism of AprD4 catalysis, which involves a complex partially substrate-induced proton relay network in the enzyme active site and highlights the key role of the protein matrix in driving high-energy intermediates.


Sujet(s)
Alcools/métabolisme , Hydro-lyases/métabolisme , Protons , Adémétionine/métabolisme , Alcools/composition chimique , Biocatalyse , Cristallographie aux rayons X , Déshydratation , Radicaux libres/composition chimique , Radicaux libres/métabolisme , Hydro-lyases/composition chimique , Modèles moléculaires , Théorie quantique , Adémétionine/composition chimique , Streptomyces/enzymologie , Spécificité du substrat
14.
FEBS Lett ; 592(2): 199-208, 2018 01.
Article de Anglais | MEDLINE | ID: mdl-29251770

RÉSUMÉ

Viperin is a radical SAM enzyme that possesses antiviral properties against a broad range of enveloped viruses. Here, we describe the activity of human viperin with two molecules of the mevalonate pathway, geranyl pyrophosphate, and farnesyl pyrophosphate, involved in cholesterol biosynthesis. We postulate that the radical modification of these two molecules by viperin might lead to defects in cholesterol synthesis, thereby affecting the composition of lipid rafts and subsequent enveloped virus budding.


Sujet(s)
Polyisoprényl-phosphates/métabolisme , Protéines/métabolisme , Sesquiterpènes/métabolisme , Biocatalyse , Cholestérol/biosynthèse , Humains , Modèles moléculaires , Simulation de docking moléculaire , Oxidoreductases acting on CH-CH group donors , Polyisoprényl-phosphates/composition chimique , Protéines/composition chimique , Sesquiterpènes/composition chimique , Spécificité du substrat , Libération de particules virales
15.
J Am Chem Soc ; 138(36): 11802-9, 2016 09 14.
Article de Anglais | MEDLINE | ID: mdl-27545412

RÉSUMÉ

The enzyme NadA catalyzes the synthesis of quinolinic acid (QA), the precursor of the universal nicotinamide adenine dinucleotide (NAD) cofactor. Here, we report the crystal structures of complexes between the Thermotoga maritima (Tm) NadA K219R/Y107F variant and (i) the first intermediate (W) resulting from the condensation of dihydroxyacetone phosphate (DHAP) with iminoaspartate and (ii) the DHAP analogue and triose-phosphate isomerase inhibitor phosphoglycolohydroxamate (PGH). In addition, using the TmNadA K219R/Y21F variant, we have reacted substrates and obtained a crystalline complex between this protein and the QA product. We also show that citrate can bind to both TmNadA K219R and its Y21F variant. The W structure indicates that condensation causes dephosphorylation. We propose that catalysis by the K219R/Y107F variant is arrested at the W intermediate because the mutated protein is unable to catalyze its aldo-keto isomerization and/or cyclization that ultimately lead to QA formation. Intriguingly, PGH binds to NadA with its phosphate group at the site where the carboxylate groups of W also bind. Our results shed significant light on the mechanism of the reaction catalyzed by NadA.


Sujet(s)
Alkyl et aryl transferases/composition chimique , Alkyl et aryl transferases/métabolisme , Acide quinolinique/métabolisme , Alkyl et aryl transferases/génétique , Cristallographie aux rayons X , Dihydroxyacétone phosphate/métabolisme , Simulation de docking moléculaire , Mutation , Conformation des protéines , Thermotoga maritima/enzymologie
16.
Nat Chem ; 8(5): 491-500, 2016 05.
Article de Anglais | MEDLINE | ID: mdl-27102684

RÉSUMÉ

Carbon-sulfur bond formation at aliphatic positions is a challenging reaction that is performed efficiently by radical S-adenosyl-L-methionine (SAM) enzymes. Here we report that 1,3-thiazolidines can act as ligands and substrates for the radical SAM enzyme HydE, which is involved in the assembly of the active site of [FeFe]-hydrogenase. Using X-ray crystallography, in vitro assays and NMR spectroscopy we identified a radical-based reaction mechanism that is best described as the formation of a C-centred radical that concomitantly attacks the sulfur atom of a thioether. To the best of our knowledge, this is the first example of a radical SAM enzyme that reacts directly on a sulfur atom instead of abstracting a hydrogen atom. Using theoretical calculations based on our high-resolution structures we followed the evolution of the electronic structure from SAM through to the formation of S-adenosyl-L-cysteine. Our results suggest that, at least in this case, the widely proposed and highly reactive 5'-deoxyadenosyl radical species that triggers the reaction in radical SAM enzymes is not an isolable intermediate.


Sujet(s)
Oxidoreductases acting on sulfur group donors/composition chimique , Thiazolidines/composition chimique , Carbone/composition chimique , Catalyse , Domaine catalytique , Clostridium acetobutylicum/enzymologie , Cystéine/analogues et dérivés , Cystéine/composition chimique , Radicaux libres/composition chimique , Ligands , Modèles chimiques , Théorie quantique , Adémétionine/composition chimique , Soufre/composition chimique , Thermotoga maritima/enzymologie
17.
Science ; 351(6279): 1320-3, 2016 Mar 18.
Article de Anglais | MEDLINE | ID: mdl-26989252

RÉSUMÉ

The radical S-adenosyl-L-methionine tryptophan lyase NosL converts L-tryptophan into 3-methylindolic acid, which is a precursor in the synthesis of the thiopeptide antibiotic nosiheptide. Using electron paramagnetic resonance spectroscopy and multiple L-tryptophan isotopologues, we trapped and characterized radical intermediates that indicate a carboxyl fragment migration mechanism for NosL. This is in contrast to a proposed fragmentation-recombination mechanism that implied Cα-Cß bond cleavage of L-tryptophan. Although NosL resembles related tyrosine lyases, subtle substrate motions in its active site are responsible for a fine-tuned radical chemistry, which selects the Cα-C bond for disruption. This mechanism highlights evolutionary adaptation to structural constraints in proteins as a route to alternative enzyme function.


Sujet(s)
Carbon-carbon lyases/composition chimique , Indoles/métabolisme , Adémétionine/composition chimique , Streptomyces/enzymologie , Tryptophane/composition chimique , Tryptophanase/composition chimique , Domaine catalytique , Spectroscopie de résonance de spin électronique
18.
Nat Commun ; 6: 8377, 2015 Oct 12.
Article de Anglais | MEDLINE | ID: mdl-26456915

RÉSUMÉ

Ribosomally synthesized and post-translationally modified peptides (RiPPs) are a novel class of natural products including several antibiotics and bacterial toxins. In countless RiPP biosynthetic pathways, cobalamin-dependent radical SAM (B12/rSAM) enzymes play a pivotal role. In the biosynthetic pathway of the antibiotic and anti-cancer agent thiostrepton A, TsrM, a B12/rSAM enzyme, catalyses the transfer of a methyl group to an electrophilic carbon atom of tryptophan. Here we show that methylcob(III)alamin is the probable physiological enzyme cofactor, and cob(II)alamin rather than cob(I)alamin is a key reaction intermediate. Furthermore, we establish that TsrM and a triple-alanine mutant alkylate cob(II)alamin efficiently leading to the synthesis of MeCbl. Exploiting TsrM substrate ambiguity, we demonstrate that TsrM does not catalyse substrate H-atom abstraction like most radical SAM enzymes. Based on these data, we propose an unprecedented radical-based C-methylation mechanism, which further expands the chemical versatility of rSAM enzymes.


Sujet(s)
Methyltransferases/métabolisme , Thiostrepton/biosynthèse , Tryptophane/métabolisme , Vitamine B12/analogues et dérivés , Coenzymes , Escherichia coli , Vitamine B12/métabolisme
19.
Chembiochem ; 16(3): 397-402, 2015 Feb 09.
Article de Anglais | MEDLINE | ID: mdl-25504963

RÉSUMÉ

The structure of the radical S-adenosyl-L-methionine (SAM) [FeFe]-hydrogenase maturase HydG involved in CN(-) /CO synthesis is characterized by two internal tunnels connecting its tyrosine-binding pocket with the external medium and the C-terminal Fe4 S4 cluster-containing region. A comparison with a tryptophan-bound NosL structure suggests that substrate binding causes the closing of the first tunnel and, along with mutagenesis studies, that tyrosine binds to HydG with its amino group well positioned for H-abstraction by SAM. In this orientation the dehydroglycine (DHG) fragment caused by tyrosine Cα-Cß bond scission can readily migrate through the second tunnel towards the C-terminal domain where both CN(-) and CO are synthesized. Our HydG structure appears to be in a relaxed state with its C-terminal cluster CysX2 CysX22 Cys motif exposed to solvent. A rotation of this domain coupled to Fe4 S4 cluster assembly would bury its putatively reactive unique Fe ion thereby allowing it to interact with DHG.


Sujet(s)
Protéines bactériennes/composition chimique , Hydrogenase/composition chimique , Ferrosulfoprotéines/composition chimique , Thermoanaerobacterium/enzymologie , Protéines bactériennes/métabolisme , Sites de fixation , Cristallographie aux rayons X , Hydrogenase/métabolisme , Ferrosulfoprotéines/métabolisme , Modèles moléculaires , Conformation des protéines , Adémétionine/composition chimique , Tyrosine/composition chimique
20.
Angew Chem Int Ed Engl ; 53(44): 11840-4, 2014 Oct 27.
Article de Anglais | MEDLINE | ID: mdl-25196319

RÉSUMÉ

Streptomyces actuosus tryptophan lyase (NosL) is a radical SAM enzyme which catalyzes the synthesis of 3-methyl-2-indolic acid, a precursor in the synthesis of the promising antibiotic nosiheptide. The reaction involves cleavage of the tryptophan Cα-Cß bond and recombination of the amino-acid-derived -COOH fragment at the indole ring. Reported herein is the 1.8 Šresolution crystal structure of NosL complexed with its substrate. Unexpectedly, only one of the tryptophan amino hydrogen atoms is optimally placed for H abstraction by the SAM-derived 5'-deoxyadenosyl radical. This orientation, in turn, rules out the previously proposed delocalized indole radical as the species which undergoes Cα-Cß bond cleavage. Instead, stereochemical considerations indicate that the reactive intermediate is a (·)NH tryptophanyl radical. A structure-based amino acid sequence comparison of NosL with the tyrosine lyases ThiH and HydG strongly suggests that an equivalent (·)NH radical operates in the latter enzymes.


Sujet(s)
Tryptophane/composition chimique , Modèles chimiques
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