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1.
Appl Microbiol Biotechnol ; 106(19-20): 6505-6517, 2022 Oct.
Article En | MEDLINE | ID: mdl-36109385

The shikimate pathway delivers aromatic amino acids (AAAs) in prokaryotes, fungi, and plants and is highly utilized in the industrial synthesis of bioactive compounds. Carbon flow into this pathway is controlled by the initial enzyme 3-deoxy-D-arabino-heptulosonate 7-phosphate synthase (DAHPS). AAAs produced further downstream, phenylalanine (Phe), tyrosine (Tyr), and tryptophan (Trp), regulate DAHPS by feedback inhibition. Corynebacterium glutamicum, the industrial workhorse for amino acid production, has two isoenzymes of DAHPS, AroF (Tyr sensitive) and AroG (Phe and Tyr sensitive). Here, we introduce feedback resistance against Tyr in the class I DAHPS AroF (AroFcg). We pursued a consensus approach by drawing on structural modeling, sequence and structural comparisons, knowledge of feedback-resistant variants in E. coli homologs, and computed folding free energy changes. Two types of variants were predicted: Those where substitutions putatively either destabilize the inhibitor binding site or directly interfere with inhibitor binding. The recombinant variants were purified and assessed in enzyme activity assays in the presence or absence of Tyr. Of eight AroFcg variants, two yielded > 80% (E154N) and > 50% (P155L) residual activity at 5 mM Tyr and showed > 50% specific activity of the wt AroFcg in the absence of Tyr. Evaluation of two and four further variants at positions 154 and 155 yielded E154S, completely resistant to 5 mM Tyr, and P155I, which behaves similarly to P155L. Hence, feedback-resistant variants were found that are unlikely to evolve by point mutations from the parental gene and, thus, would be missed by classical strain engineering. KEY POINTS: • We introduce feedback resistance against Tyr in the class I DAHPS AroF • Variants at position 154 (155) yield > 80% (> 50%) residual activity at 5 mM Tyr • The variants found are unlikely to evolve by point mutations from the parental gene.


3-Deoxy-7-Phosphoheptulonate Synthase , Escherichia coli , 3-Deoxy-7-Phosphoheptulonate Synthase/chemistry , 3-Deoxy-7-Phosphoheptulonate Synthase/genetics , 3-Deoxy-7-Phosphoheptulonate Synthase/metabolism , Amino Acids, Aromatic , Carbon , Escherichia coli/metabolism , Feedback , Isoenzymes/genetics , Phenylalanine/metabolism , Phosphates , Protein Engineering , Tryptophan/genetics , Tyrosine/metabolism
2.
Yeast ; 39(10): 535-547, 2022 10.
Article En | MEDLINE | ID: mdl-36127846

The yeasts, Saccharomyces pastorianus, are hybrids of Saccharomyces cerevisiae and Saccharomyces eubayanus and have acquired traits from the combined parental genomes such as ability to ferment a range of sugars at low temperatures and to produce aromatic flavour compounds, allowing for the production of lager beers with crisp, clean flavours. The polyploid strains are sterile and have reached an evolutionary bottleneck for genetic variation. Here we describe an accelerated evolution approach to obtain lager yeasts with enhanced flavour profiles. As the relative expression of orthologous alleles is a significant contributor to the transcriptome during fermentation, we aimed to induce genetic variation by altering the S. cerevisiae to S. eubayanus chromosome ratio. Aneuploidy was induced through the temporary inhibition of the cell's stress response and strains with increased production of aromatic amino acids via the Shikimate pathway were selected by resistance to amino acid analogues. Genomic changes such as gross chromosomal rearrangements, chromosome loss and chromosome gain were detected in the characterised mutants, as were single-nucleotide polymorphisms in ARO4, encoding for DAHP synthase, the catalytic enzyme in the first step of the Shikimate pathway. Transcriptome analysis confirmed the upregulation of genes encoding enzymes in the Ehrlich pathway and the concomitant increase in the production of higher alcohols and esters such as 2-phenylethanol, 2-phenylethyl acetate, tryptophol, and tyrosol. We propose that the polyploid nature of S. pastorianus genomes is an advantageous trait supporting opportunities for genetic alteration in otherwise sterile strains.


Phenylethyl Alcohol , Saccharomyces cerevisiae , 3-Deoxy-7-Phosphoheptulonate Synthase/genetics , 3-Deoxy-7-Phosphoheptulonate Synthase/metabolism , Amino Acids/metabolism , Amino Acids, Aromatic/genetics , Amino Acids, Aromatic/metabolism , Beer , Fermentation , Genome, Fungal , Genomics , Macrolides , Phenylethyl Alcohol/metabolism , Polyploidy , Saccharomyces , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/metabolism , Sugars/metabolism
3.
Microbiol Spectr ; 10(4): e0072822, 2022 08 31.
Article En | MEDLINE | ID: mdl-35862980

Tuberculosis (TB) remains one of the leading causes of death due to a single pathogen. The emergence and proliferation of multidrug-resistant (MDR-TB) and extensively drug-resistant strains (XDR-TB) represent compelling reasons to invest in the pursuit of new anti-TB agents. The shikimate pathway, responsible for chorismate biosynthesis, which is a precursor of important aromatic compounds, is required for Mycobacterium tuberculosis growth. The enzyme 3-deoxy-d-arabino-heptulosonate 7-phosphate synthase (MtbDAHPS) catalyzes the first step in the shikimate pathway and it is an attractive target for anti-tubercular agents. Here, we used a CRISPRi system to evaluate the DAHPS as a vulnerable target in M. tuberculosis. The silencing of aroG significantly reduces the M. tuberculosis growth in both rich medium and, especially, in infected murine macrophages. The supplementation with amino acids was only able to partially rescue the growth of bacilli, whereas the Aro supplement (aromix) was enough to sustain the bacterial growth at lower rates. This study shows that MtbDAHPS protein is vulnerable and, therefore, an attractive target to develop new anti-TB agents. In addition, the study contributes to a better understanding of the biosynthesis of aromatic compounds and the bacillus physiology. IMPORTANCE Determining the vulnerability of a potential target allows us to assess whether its partial inhibition will impact bacterial growth. Here, we evaluated the vulnerability of the enzyme 3-deoxy-d-arabino-heptulosonate 7-phosphate synthase (DAHPS) from M. tuberculosis by silencing the DAHPS-coding aroG gene in different contexts. These results could lead to the development of novel and potent anti-tubercular agents in the near future.


3-Deoxy-7-Phosphoheptulonate Synthase , Mycobacterium tuberculosis , 3-Deoxy-7-Phosphoheptulonate Synthase/chemistry , 3-Deoxy-7-Phosphoheptulonate Synthase/genetics , 3-Deoxy-7-Phosphoheptulonate Synthase/metabolism , Animals , Antitubercular Agents/pharmacology , Mice , Mycobacterium tuberculosis/metabolism , Phosphates
4.
Curr Opin Plant Biol ; 67: 102219, 2022 06.
Article En | MEDLINE | ID: mdl-35550985

The shikimate pathway connects the central carbon metabolism with the biosynthesis of aromatic amino acids-l-tyrosine, l-phenylalanine, and l-tryptophan-which play indispensable roles as precursors of numerous aromatic phytochemicals. Despite the importance of the shikimate pathway-derived products for both plant physiology and human society, the regulatory mechanism of the shikimate pathway remains elusive. This review summarizes the recent progress and current understanding on the plant 3-deoxy-D-arabino-heptulosonate 7-phosphate synthase (DAHP synthase or DHS) enzymes that catalyze the committed reaction of the shikimate pathway. We particularly focus on how the DHS activity is regulated in plants in comparison to those of microbes and discuss potential roles of DHS as the critical gatekeeper for the production of plant aromatic compounds.


Biological Products , Phosphates , 3-Deoxy-7-Phosphoheptulonate Synthase/chemistry , 3-Deoxy-7-Phosphoheptulonate Synthase/genetics , 3-Deoxy-7-Phosphoheptulonate Synthase/metabolism , Phenylalanine/chemistry , Phenylalanine/metabolism , Tyrosine/chemistry , Tyrosine/metabolism
5.
Plant J ; 109(4): 789-803, 2022 02.
Article En | MEDLINE | ID: mdl-34797933

The shikimate pathway plays a central role in the biosynthesis of aromatic amino acids and specialized metabolites in plants. The first enzyme, 3-deoxy-d-arabino-heptulosonate 7-phosphate synthase (DAHPS) serves as a key regulatory point for the pathway in various organisms. These enzymes are important in regulating the shikimate pathway in multiple microbial systems. The mechanism of regulation of DAHPS is poorly understood in plants, and the role of tyrosine (Tyr) with respect to the three DAHPS isozymes from Arabidopsis thaliana was investigated. In vitro enzymatic analyses established that Tyr does not function as an allosteric regulator for the A. thaliana DAHPS isozymes. In contrast, Arabidopsis T-DNA insertional mutants for the DAHPS1 locus, dahps1, are hypersensitive to elevated Tyr. Tyr hypersensitivity can be reversed with tryptophan and phenylalanine supplementation, indicating that Tyr is affecting the shikimate pathway flux in the dahps1 mutant. Tyr treatment of Arabidopsis seedlings showed reduced accumulation of overexpressed DAHPS2 in the chloroplast. Further, bimolecular fluorescence complementation studies revealed that DAHPS2 interacts with a 14-3-3 protein in the cytosol, and this interaction is enhanced with Tyr treatment. This interaction with 14-3-3 may retain DAHPS2 in the cytosol, which prevents its ability to function in the chloroplast with elevated Tyr.


Arabidopsis/metabolism , Cytosol/metabolism , Tyrosine/metabolism , 3-Deoxy-7-Phosphoheptulonate Synthase/chemistry , 3-Deoxy-7-Phosphoheptulonate Synthase/genetics , 3-Deoxy-7-Phosphoheptulonate Synthase/metabolism , Allosteric Regulation , Arabidopsis/genetics , Crystallography, X-Ray , Phosphates , Tryptophan
6.
Protein Expr Purif ; 188: 105972, 2021 12.
Article En | MEDLINE | ID: mdl-34517109

3-Deoxy-d-arabino-heptulosonate 7-phosphate (DAHP) synthase catalyzes the condensation of phosphoenolpyruvate (PEP) with d-erythrose 4-phosphate (E4P) and plays an important role in regulating carbon flux toward aromatic amino acid biosynthesis in bacteria and plants. Sequence analysis of the DAHP synthases AroG1 and AroG2 from Bacillus methanolicus MGA3 suggested this thermophilic, methylotrophic bacterium possesses two type Iß DAHP synthases. This study describes production of AroG1 and AroG2 in Escherichia coli as hexa-histidine fused proteins, which were purified by affinity chromatography. Treatment with TEV protease afforded native proteins for characterization and kinetic analysis. AroG1 and AroG2 are, respectively, 30.1 kDa and 40.0 kDa proteins. Both enzymes have maximal activity over a pH range of 6.3-7.2. The apparent kinetic parameters at 50 °C and pH 7.2 for AroG1 are KmPEP 1100 ± 100 µM, KmE4P 530 ± 100 µM, and kcat 10.3 ± 1.2 s-1. The kinetic parameters for AroG2 are KmPEP 90 ± 20 µM, KmE4P 130 ± 40 µM, and kcat 2.0 ± 0.2 s-1. At 50 °C AroG2 retains 50% of its activity after 96 min whereas AroG1 retains less than 5% of its activity after 10 min. AroG2, which contains an N-terminal regulatory domain, is inhibited by chorismate and prephenate but not l-phenylalanine, l-tyrosine, or l-tryptophan. AroG1 is not inhibited by any of the molecules examined. Understanding DAHP synthase regulation in B. methanolicus is a first step toward generating biocatalysts that exploit the target-rich aromatic amino acid biosynthetic pathway for synthesis of chemicals from methanol.


3-Deoxy-7-Phosphoheptulonate Synthase/metabolism , Bacillus/enzymology , Bacterial Proteins/metabolism , Methanol/metabolism , Sugar Phosphates/biosynthesis , 3-Deoxy-7-Phosphoheptulonate Synthase/genetics , Amino Acid Sequence , Bacillus/chemistry , Bacterial Proteins/genetics , Biocatalysis , Chorismic Acid/pharmacology , Cloning, Molecular , Cyclohexanecarboxylic Acids/pharmacology , Cyclohexenes/pharmacology , Escherichia coli/genetics , Escherichia coli/metabolism , Gene Expression , Genetic Vectors/chemistry , Genetic Vectors/metabolism , Hydrogen-Ion Concentration , Isoenzymes/genetics , Isoenzymes/metabolism , Kinetics , Molecular Weight , Recombinant Fusion Proteins/genetics , Recombinant Fusion Proteins/metabolism , Sequence Alignment , Sequence Homology, Amino Acid , Sugar Phosphates/antagonists & inhibitors
7.
J Biol Chem ; 297(3): 101038, 2021 09.
Article En | MEDLINE | ID: mdl-34343567

Modular protein assembly has been widely reported as a mechanism for constructing allosteric machinery. Recently, a distinctive allosteric system has been identified in a bienzyme assembly comprising a 3-deoxy-d-arabino heptulosonate-7-phosphate synthase (DAH7PS) and chorismate mutase (CM). These enzymes catalyze the first and branch point reactions of aromatic amino acid biosynthesis in the bacterium Prevotella nigrescens (PniDAH7PS), respectively. The interactions between these two distinct catalytic domains support functional interreliance within this bifunctional enzyme. The binding of prephenate, the product of CM-catalyzed reaction, to the CM domain is associated with a striking rearrangement of overall protein conformation that alters the interdomain interactions and allosterically inhibits the DAH7PS activity. Here, we have further investigated the complex allosteric communication demonstrated by this bifunctional enzyme. We observed allosteric activation of CM activity in the presence of all DAH7PS substrates. Using small-angle X-ray scattering (SAXS) experiments, we show that changes in overall protein conformations and dynamics are associated with the presence of different DAH7PS substrates and the allosteric inhibitor prephenate. Furthermore, we have identified an extended interhelix loop located in CM domain, loopC320-F333, as a crucial segment for the interdomain structural and catalytic communications. Our results suggest that the dual-function enzyme PniDAH7PS contains a reciprocal allosteric system between the two enzymatic moieties as a result of this bidirectional interdomain communication. This arrangement allows for a complex feedback and feedforward system for control of pathway flux by connecting the initiation and branch point of aromatic amino acid biosynthesis.


3-Deoxy-7-Phosphoheptulonate Synthase/chemistry , 3-Deoxy-7-Phosphoheptulonate Synthase/metabolism , Amino Acids, Aromatic/biosynthesis , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Prevotella nigrescens/metabolism , 3-Deoxy-7-Phosphoheptulonate Synthase/genetics , Allosteric Regulation , Amino Acid Sequence , Bacterial Proteins/genetics , Biosynthetic Pathways , Enzyme Inhibitors/chemistry , Enzyme Inhibitors/metabolism , Prevotella nigrescens/chemistry , Prevotella nigrescens/enzymology , Prevotella nigrescens/genetics , Protein Domains , Scattering, Small Angle , Sequence Alignment
8.
J Appl Microbiol ; 130(3): 878-890, 2021 Mar.
Article En | MEDLINE | ID: mdl-32706912

AIMS: Yeasts produce 2-phenylethanol (2-PE) from sugars via de novo synthesis; however, its synthesis is limited due to feedback inhibition on the isofunctional 3-deoxy-d-arabino-heptulosonate-7-phosphate (DAHP) synthases (Aro3p and Aro4p). This work aimed to select Kluyveromyces marxianus mutant strains with improved capacity to produce 2-PE from sugars. METHODS AND RESULTS: Kluyveromyces marxianus CCT 7735 mutant strains were selected from UV irradiation coupled with screening of p-fluoro-dl-phenylalanine (PFP) tolerant strains on culture medium without l-Phe addition. Most of them produced 2-PE titres higher than the parental strain and the Km_PFP41 mutant strain stood out for displaying the highest 2-PE specific production rate. Moreover it showed higher activity of DAHP synthase than the parental strain. We sequenced both ARO3 and ARO4 genes of Km_PFP41 mutant and identified mutations in ARO4 which caused changes in both size and conformation of the Aro4p. These changes seem to be associated with the enhanced activity of DAHP synthase and improved production of 2-PE exhibited by that mutant strain. CONCLUSIONS: The Km_PFP41 mutant strain presented improved 2-PE production via de novo synthesis and enhanced DAHP synthase activity. SIGNIFICANCE AND IMPACT OF THE STUDY: The mutant strain obtained in this work may be exploited as a yeast cell factory for high-level synthesis of 2-PE.


3-Deoxy-7-Phosphoheptulonate Synthase/metabolism , Fungal Proteins/metabolism , Kluyveromyces/metabolism , Phenylethyl Alcohol/metabolism , 3-Deoxy-7-Phosphoheptulonate Synthase/chemistry , 3-Deoxy-7-Phosphoheptulonate Synthase/genetics , Base Sequence , Fungal Proteins/chemistry , Fungal Proteins/genetics , Kluyveromyces/genetics , Mutagenesis , Mutation , Protein Conformation , p-Fluorophenylalanine/metabolism
9.
Microb Cell Fact ; 19(1): 218, 2020 Nov 26.
Article En | MEDLINE | ID: mdl-33243241

BACKGROUND: The natural phenolic glycoside gastrodin is the major bioactive ingredient in the well-known Chinese herb Tianma and is widely used as a neuroprotective medicine in the clinic. Microbial production from sustainable resources is a promising method to replace plant extraction and chemical synthesis which were currently used in industrial gastrodin production. Saccharomyces cerevisiae is considered as an attractive host to produce natural plant products used in the food and pharmaceutical fields. In this work, we intended to explore the potential of S. cerevisiae as the host for high-level production of gastrodin from glucose. RESULTS: Here, we first identified the plant-derived glucosyltransferase AsUGT to convert 4-hydroxybenzyl alcohol to gastrodin with high catalytic efficiency in yeast. Then, we engineered de novo production of gastrodin by overexpressing codon-optimized AsUGTsyn, the carboxylic acid reductase gene CARsyn from Nocardia species, the phosphopantetheinyl transferase gene PPTcg-1syn from Corynebacterium glutamicum, the chorismate pyruvate-lyase gene UbiCsyn from Escherichia coli, and the mutant ARO4K229L. Finally, we achieved an improved product titer by a chromosomal multiple-copy integration strategy and enhancement of metabolic flux toward the aglycon 4-hydroxybenzyl alcohol. The best optimized strain produced 2.1 g/L gastrodin in mineral medium with glucose as the sole carbon source by flask fermentation, which was 175 times higher than that of the original gastrodin-producing strain. CONCLUSIONS: The de novo high-level production of gastrodin was first achieved. Instead of chemical synthesis or plants extraction, our work provides an alternative strategy for the industrial production of gastrodin by microbial fermentation from a sustainable resource.


Glucose/metabolism , Glucosides/biosynthesis , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/metabolism , 3-Deoxy-7-Phosphoheptulonate Synthase/genetics , Bacterial Proteins/genetics , Benzyl Alcohols , Biosynthetic Pathways , Genetic Engineering , Glucosyltransferases/genetics , Industrial Microbiology , Metabolic Engineering , Oxidoreductases/genetics , Oxo-Acid-Lyases/genetics , Plant Proteins/genetics , Transferases (Other Substituted Phosphate Groups)/genetics
10.
J Biol Chem ; 295(19): 6252-6262, 2020 05 08.
Article En | MEDLINE | ID: mdl-32217694

Allostery exploits the conformational dynamics of enzymes by triggering a shift in population ensembles toward functionally distinct conformational or dynamic states. Allostery extensively regulates the activities of key enzymes within biosynthetic pathways to meet metabolic demand for their end products. Here, we have examined a critical enzyme, 3-deoxy-d-arabino-heptulosonate 7-phosphate synthase (DAH7PS), at the gateway to aromatic amino acid biosynthesis in Mycobacterium tuberculosis, which shows extremely complex dynamic allostery: three distinct aromatic amino acids jointly communicate occupancy to the active site via subtle changes in dynamics, enabling exquisite fine-tuning of delivery of these essential metabolites. Furthermore, this allosteric mechanism is co-opted by pathway branchpoint enzyme chorismate mutase upon complex formation. In this study, using statistical coupling analysis, site-directed mutagenesis, isothermal calorimetry, small-angle X-ray scattering, and X-ray crystallography analyses, we have pinpointed a critical node within the complex dynamic communication network responsible for this sophisticated allosteric machinery. Through a facile Gly to Pro substitution, we have altered backbone dynamics, completely severing the allosteric signal yet remarkably, generating a nonallosteric enzyme that retains full catalytic activity. We also identified a second residue of prime importance to the inter-enzyme communication with chorismate mutase. Our results reveal that highly complex dynamic allostery is surprisingly vulnerable and provide further insights into the intimate link between catalysis and allostery.


3-Deoxy-7-Phosphoheptulonate Synthase/chemistry , Bacterial Proteins/chemistry , Mutation, Missense , Mycobacterium tuberculosis/enzymology , 3-Deoxy-7-Phosphoheptulonate Synthase/genetics , 3-Deoxy-7-Phosphoheptulonate Synthase/metabolism , Allosteric Regulation , Amino Acid Substitution , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Catalysis , Crystallography, X-Ray , Mycobacterium tuberculosis/genetics
11.
J Ind Microbiol Biotechnol ; 46(8): 1047-1059, 2019 Aug.
Article En | MEDLINE | ID: mdl-31297713

L-Tyrosine serves as a common precursor for multiple valuable secondary metabolites. Synthesis of this aromatic amino acid in Bacillus licheniformis occurs via the shikimate pathway, but the underlying mechanisms involving metabolic regulation remain unclear. In this work, improved L-tyrosine accumulation was achieved in B. licheniformis via co-overexpression of aroGfbr and tyrAfbr from Escherichia coli to yield strain 45A12, and the L-tyrosine titer increased to 1005 mg/L with controlled glucose feeding. Quantitative RT-PCR results indicated that aroA, encoding DAHP synthase, and aroK, encoding shikimate kinase, were feedback-repressed by the end product L-tyrosine in the modified strain. Therefore, the native aroK was first expressed with multiple copies to yield strain 45A13, which could accumulate 1201 mg/L L-tyrosine. Compared with strain 45A12, the expression of aroB and aroF in strain 45A13 was upregulated by 21% and 27%, respectively, which may also have resulted in the improvement of L-tyrosine production. Furthermore, supplementation with 5 g/L shikimate enhanced the L-tyrosine titers of 45A12 and 45A13 by 29.1% and 24.0%, respectively. However, the yield of L-tyrosine per unit of shikimate decreased from 0.365 to 0.198 mol/mol after aroK overexpression in strain 45A12, which suggested that the gene product was also involved in uncharacterized pathways. This study provides a good starting point for further modification to achieve industrial-scale production of L-tyrosine using B. licheniformis, a generally recognized as safe workhorse.


Bacillus licheniformis/metabolism , 3-Deoxy-7-Phosphoheptulonate Synthase/genetics , Escherichia coli/genetics , Escherichia coli/metabolism , Glucose/metabolism , Phosphotransferases (Alcohol Group Acceptor)/metabolism , Shikimic Acid/metabolism , Tyrosine/biosynthesis
12.
J Struct Biol ; 206(3): 322-334, 2019 06 01.
Article En | MEDLINE | ID: mdl-30946901

3-Deoxy-d-arabino-heptulosonate-7-phosphate synthase (DAHPS) is responsible for the biosynthesis of essential aromatic compounds in microorganisms and plants. It plays a crucial role in the regulation of the carbon flow into the shikimate pathway. Until now, the crystal structures and regulatory mechanisms of dimeric DAHPS enzymes from type Iα subclass have not been reported. Here, we reported dimeric structures of the tyrosine-regulated DAHPS from Escherichia coli, both in its apo form and complex with the inhibitor tyrosine at 2.5 and 2.0 Šresolutions, respectively. DAHPS(Tyr) has a typical (ß/α)8 TIM barrel, which is decorated with an N-terminal extension and an antiparallel ß sheet, ß6a/ß6b. Inhibitor tyrosine binds at a cavity formed by residues of helices α3, α4, strands ß6a, ß6b and the adjacent loops, and directly interacts with residues P148, Q152, S181, I213 and N8*. Although the small angle X-ray scattering profiles from DAHPS(Tyr) with and without tyrosine shows that tyrosine binding leaves most of DAHPS(Tyr) structures unaffected. The comparison of the liganded and unliganded crystal structures reveals that conformational changes of residues P148, Q152 and I213 initiate a transmission pathway to propagate the allosteric signal from the tyrosine-binding site to the active site, which is different from DAHPS(Phe), a phenylalanine-regulated isozyme from E. coli. In addition, mutations of five tyrosine-binding residues P148, Q152, S181, I213 and N8* leads to tyrosine-resistant DAHPS(Tyr) enzymes. These findings provide a new insight into the regulatory mechanism of DAHPS enzymes and a basis for further engineering studies.


3-Deoxy-7-Phosphoheptulonate Synthase/chemistry , 3-Deoxy-7-Phosphoheptulonate Synthase/ultrastructure , Escherichia coli/ultrastructure , Protein Conformation , 3-Deoxy-7-Phosphoheptulonate Synthase/genetics , Allosteric Regulation/genetics , Binding Sites/genetics , Carbon/metabolism , Catalytic Domain/genetics , Crystallography, X-Ray , Escherichia coli/chemistry , Escherichia coli/genetics , Metabolic Networks and Pathways/genetics , Protein Binding , Protein Structure, Secondary/genetics , Shikimic Acid/metabolism
13.
Biochemistry ; 57(48): 6679-6687, 2018 12 04.
Article En | MEDLINE | ID: mdl-30398055

3-Deoxy-d- arabinoheptulosonate 7-phosphate (DAHP) oxime is a transition state mimic inhibitor of bacterial DAHP synthase, with K i = 1.5 µM and a residence time of tR = 83 min. Unexpectedly, DAHP oxime inhibition is competitive with respect to the essential metal ion, Mn2+, even though the inhibitor and metal ion do not occupy the same physical space in the active site. This is problematic because DAHP synthase is activated by multiple divalent metal cations, some of which have significant intracellular concentrations and some of which dissociate slowly. The nature of DAHP oxime's competition with the metal ion was investigated. Inhibition shifted from metal-competitive at physiological pH to metal-noncompetitive at pH > 8.7 in response to deprotonation of the Cys61 side chain. The modes of inhibition of DAHP synthase mutants and inhibitor fragments demonstrated that metal-competitive inhibition arose from interactions between Mn2+, DAHP oxime's O4 hydroxyl group, and the Cys61 and Asp326 side chains. The majority of potent DAHP synthase inhibitors in the literature possess a 4-hydroxyl group. Removing it could avoid metal-competitive inhibition and avoid them being outcompeted by metal ions in vivo.


3-Deoxy-7-Phosphoheptulonate Synthase/antagonists & inhibitors , 3-Deoxy-7-Phosphoheptulonate Synthase/chemistry , Escherichia coli Proteins/antagonists & inhibitors , Escherichia coli Proteins/chemistry , 3-Deoxy-7-Phosphoheptulonate Synthase/genetics , Amino Acid Substitution , Binding Sites/genetics , Binding, Competitive , Catalytic Domain/genetics , Enzyme Inhibitors/chemistry , Enzyme Inhibitors/pharmacology , Escherichia coli/enzymology , Escherichia coli/genetics , Escherichia coli Proteins/genetics , Hydrogen-Ion Concentration , Kinetics , Metals/metabolism , Models, Molecular , Mutagenesis, Site-Directed , Oximes/chemistry , Oximes/pharmacology , Sugar Acids/chemistry , Sugar Acids/pharmacology
14.
Biosci Rep ; 38(5)2018 10 31.
Article En | MEDLINE | ID: mdl-30242059

In Pseudomonas aeruginosa (Pae), the shikimate pathway end product, chorismate, serves as the last common precursor for the biosynthesis of both primary aromatic metabolites, including phenylalanine, tyrosine and tryptophan, and secondary aromatic metabolites, including phenazine-1-carboxylic acid (PCA) and pyocyanin (PYO). The enzyme 3-deoxy-d-arabino-heptulosonate 7-phosphate synthase (DAH7PS) catalyses the first committed step of the shikimate pathway, en route to chorismate. P. aeruginosa expresses multiple, distinct DAH7PSs that are associated with either primary or secondary aromatic compound biosynthesis. Here we report the structure of a type II DAH7PS, encoded by phzC as part of the duplicated phenazine biosynthetic cluster, from P. aeruginosa (PAO1) revealing for the first time the structure of a type II DAH7PS involved in secondary metabolism. The omission of the structural elements α2a and α2b, relative to other characterised type II DAH7PSs, leads to the formation of an alternative, dimeric, solution-state structure for this type II DAH7PS with an oligomeric interface that has not previously been characterised and that does not facilitate the formation of aromatic amino acid allosteric binding sites. The sequence similarity and, in particular, the common N-terminal extension suggest a common origin for the type II DAH7PSs from P. aeruginosa. The results described in the present study support an expanded classification of the type II DAH7PSs as type IIA and type IIB based on sequence characteristics, structure and function of the resultant proteins, and on defined physiological roles within primary or secondary metabolism.


3-Deoxy-7-Phosphoheptulonate Synthase/chemistry , Allosteric Regulation/genetics , Pseudomonas aeruginosa/enzymology , Pyocyanine/biosynthesis , 3-Deoxy-7-Phosphoheptulonate Synthase/genetics , 3-Deoxy-7-Phosphoheptulonate Synthase/metabolism , Amino Acid Sequence/genetics , Binding Sites , Crystallography, X-Ray , Phosphates/metabolism , Protein Binding , Pseudomonas aeruginosa/chemistry , Pseudomonas aeruginosa/genetics , Pyocyanine/chemistry , Pyocyanine/genetics , Shikimic Acid/chemistry , Shikimic Acid/metabolism
15.
Biochemistry ; 57(18): 2667-2678, 2018 05 08.
Article En | MEDLINE | ID: mdl-29608284

The shikimate pathway is responsible for the biosynthesis of key aromatic metabolites in microorganisms and plants. The enzyme 3-deoxy-d- arabino-heptulosonate 7-phosphate synthase (DAH7PS) catalyzes the first step of the pathway and DAH7PSs are classified as either type I or type II. The DAH7PSs from Pseudomonas aeruginosa are of particular interest as open reading frames encoding four putative DAH7PS isoenzymes, two classified as type Iα and two classified as type II, have been identified. Here, the structure of a type II DAH7PS enzyme from P. aeruginosa (PAO1) has been determined at 1.54 Å resolution, in complex with its allosteric inhibitor tryptophan. Structural differences in the extra-barrel elements, when compared to other type II DAH7PS enzymes, directly relate to the formation of a distinct quaternary conformation with consequences for allosteric function and the control of flux to branching pathways. In contrast to the well-characterized Mycobacterium tuberculosis type II DAH7PS, which binds multiple allosteric inhibitors, this PaeDAH7PSPA2843 is observed to be modestly allosterically inhibited by a single aromatic amino acid, tryptophan. In addition, structures in complex with tyrosine or with no allosteric ligand bound were determined. These structures provide new insights into the linkages between the active and allosteric sites. With four putative DAH7PS enzymes, P. aeruginosa appears to have evolved control of shikimate pathway flux at the genetic level, rather than control by multiple allosteric effectors to a single type II DAH7PS, as in M. tuberculosis. Type II DAH7PSs, thus, appear to have a more varied evolutionary trajectory than previously indicated.


3-Deoxy-7-Phosphoheptulonate Synthase/chemistry , Evolution, Molecular , Pseudomonas aeruginosa/enzymology , Shikimic Acid/metabolism , 3-Deoxy-7-Phosphoheptulonate Synthase/genetics , 3-Deoxy-7-Phosphoheptulonate Synthase/metabolism , Allosteric Regulation/genetics , Allosteric Site/genetics , Binding Sites , Crystallography, X-Ray , Metabolic Networks and Pathways/genetics , Models, Molecular , Mycobacterium tuberculosis/enzymology , Protein Binding , Pseudomonas aeruginosa/genetics , Shikimic Acid/chemistry , Tryptophan/chemistry
16.
Proc Natl Acad Sci U S A ; 115(12): 3006-3011, 2018 03 20.
Article En | MEDLINE | ID: mdl-29507215

Most proteins comprise two or more domains from a limited suite of protein families. These domains are often rearranged in various combinations through gene fusion events to evolve new protein functions, including the acquisition of protein allostery through the incorporation of regulatory domains. The enzyme 3-deoxy-d-arabino-heptulosonate 7-phosphate synthase (DAH7PS) is the first enzyme of aromatic amino acid biosynthesis and displays a diverse range of allosteric mechanisms. DAH7PSs adopt a common architecture with a shared (ß/α)8 catalytic domain which can be attached to an ACT-like or a chorismate mutase regulatory domain that operates via distinct mechanisms. These respective domains confer allosteric regulation by controlling DAH7PS function in response to ligand Tyr or prephenate. Starting with contemporary DAH7PS proteins, two protein chimeras were created, with interchanged regulatory domains. Both engineered proteins were catalytically active and delivered new functional allostery with switched ligand specificity and allosteric mechanisms delivered by their nonhomologous regulatory domains. This interchangeability of protein domains represents an efficient method not only to engineer allostery in multidomain proteins but to create a new bifunctional enzyme.


3-Deoxy-7-Phosphoheptulonate Synthase/metabolism , Bacterial Proteins/chemistry , Bacterial Proteins/metabolism , Thermotoga maritima/metabolism , 3-Deoxy-7-Phosphoheptulonate Synthase/chemistry , 3-Deoxy-7-Phosphoheptulonate Synthase/genetics , Allosteric Regulation , Bacterial Proteins/genetics , Gene Expression Regulation, Bacterial , Gene Expression Regulation, Enzymologic , Protein Domains , Thermotoga maritima/genetics
17.
PLoS One ; 12(6): e0180052, 2017.
Article En | MEDLINE | ID: mdl-28665948

The first enzyme of the shikimate pathway, 3-deoxy-D-arabino-heptulosonate 7-phosphate synthase (DAH7PS), adopts a range of distinct allosteric regulation mechanisms in different organisms, related to different quaternary assemblies. DAH7PS from Mycobacterium tuberculosis (MtuDAH7PS) is a homotetramer, with the allosteric sites in close proximity to the interfaces. Here we examine the importance of the quaternary structure on catalysis and regulation, by amino acid substitution targeting the tetramer interface of MtuDAH7PS. Using only single amino acid substitutions either in, or remote from the interface, two dimeric variants of MtuDAH7PS (MtuDAH7PSF227D and MtuDAH7PSG232P) were successfully generated. Both dimeric variants maintained activity due to the distance between the sites of amino acid substitution and the active sites, but attenuated catalytic efficiency was observed. Both dimeric variants showed significantly disrupted allosteric regulation with greatly impaired binding affinity for one of the allosteric ligands. Molecular dynamics simulations revealed changes in protein dynamics and average conformations in the dimeric variant caused by amino acid substitution remote to the tetramer interface (MtuDAH7PSG232P), which are consistent with the observed reduction in catalytic efficiency and loss of allosteric response.


3-Deoxy-7-Phosphoheptulonate Synthase/chemistry , Mycobacterium tuberculosis/enzymology , 3-Deoxy-7-Phosphoheptulonate Synthase/genetics , 3-Deoxy-7-Phosphoheptulonate Synthase/metabolism , Allosteric Regulation , Amino Acid Substitution , Crystallography, X-Ray , Dimerization , Molecular Dynamics Simulation , Mutagenesis , Phenylalanine/metabolism , Protein Structure, Quaternary , Tryptophan/metabolism
18.
Biochemistry ; 56(4): 592-601, 2017 01 31.
Article En | MEDLINE | ID: mdl-28045507

3-Deoxy-d-arabino-heptulosonate-7-phosphate (DAHP) synthase catalyzes an aldol-like reaction of phosphoenolpyruvate (PEP) with erythrose 4-phosphate (E4P) to form DAHP in the first step of the shikimate biosynthetic pathway. DAHP oxime, in which an oxime replaces the ketone, is a potent inhibitor, with Ki = 1.5 µM. Linear free energy relationship (LFER) analysis of DAHP oxime inhibition using DAHP synthase mutants revealed an excellent correlation between transition state stabilization and inhibition. The equations of LFER analysis were rederived to formalize the possibility of proportional, rather than equal, changes in the free energies of transition state stabilization and inhibitor binding, in accord with the fact that the majority of LFER analyses in the literature demonstrate nonunity slopes. A slope of unity, m = 1, indicates that catalysis and inhibitor binding are equally sensitive to perturbations such as mutations or modified inhibitor/substrate structures. Slopes <1 or >1 indicate that inhibitor binding is less sensitive or more sensitive, respectively, to perturbations than is catalysis. LFER analysis using the tetramolecular specificity constant, that is, plotting log(KM,MnKM,PEPKM,E4P/kcat) versus log(Ki), revealed a slope, m, of 0.34, with r2 = 0.93. This provides evidence that DAHP oxime is mimicking the first irreversible transition state of the DAHP synthase reaction, presumably phosphate departure from the tetrahedral intermediate. This is evidence that the oxime group can act as a functional, as well as structural, mimic of phosphate groups.


3-Deoxy-7-Phosphoheptulonate Synthase/antagonists & inhibitors , Bacterial Proteins/antagonists & inhibitors , Enzyme Inhibitors/chemistry , Oximes/chemistry , Recombinant Fusion Proteins/chemistry , Sugar Phosphates/chemistry , 3-Deoxy-7-Phosphoheptulonate Synthase/chemistry , 3-Deoxy-7-Phosphoheptulonate Synthase/genetics , 3-Deoxy-7-Phosphoheptulonate Synthase/metabolism , Bacterial Proteins/chemistry , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Binding Sites , Biocatalysis , Cloning, Molecular , Escherichia coli/genetics , Escherichia coli/metabolism , Kinetics , Models, Molecular , Molecular Mimicry , Mutation , Phosphoenolpyruvate/chemistry , Phosphoenolpyruvate/metabolism , Protein Binding , Recombinant Fusion Proteins/genetics , Recombinant Fusion Proteins/metabolism , Shikimic Acid/chemistry , Shikimic Acid/metabolism , Sugar Phosphates/metabolism , Thermodynamics
19.
J Ind Microbiol Biotechnol ; 44(2): 259-270, 2017 02.
Article En | MEDLINE | ID: mdl-27909940

Rapamycin, as a macrocyclic polyketide with immunosuppressive, antifungal, and anti-tumor activity produced by Streptomyces hygroscopicus, is receiving considerable attention for its significant contribution in medical field. However, the production capacity of the wild strain is very low. Hereby, a computational guided engineering approach was proposed to improve the capability of rapamycin production. First, a genome-scale metabolic model of Streptomyces hygroscopicus ATCC 29253 was constructed based on its annotated genome and biochemical information. The model consists of 1003 reactions, 711 metabolites after manual refinement. Subsequently, several potential genetic targets that likely guaranteed an improved yield of rapamycin were identified by flux balance analysis and minimization of metabolic adjustment algorithm. Furthermore, according to the results of model prediction, target gene pfk (encoding 6-phosphofructokinase) was knocked out, and target genes dahP (encoding 3-deoxy-D-arabino-heptulosonate-7-phosphate synthase) and rapK (encoding chorismatase) were overexpressed in the parent strain ATCC 29253. The yield of rapamycin increased by 30.8% by knocking out gene pfk and increased by 36.2 and 44.8% by overexpression of rapK and dahP, respectively, compared with parent strain. Finally, the combined effect of the genetic modifications was evaluated. The titer of rapamycin reached 250.8 mg/l by knockout of pfk and co-expression of genes dahP and rapK, corresponding to a 142.3% increase relative to that of the parent strain. The relationship between model prediction and experimental results demonstrates the validity and rationality of this approach for target identification and rapamycin production improvement.


Bacterial Proteins/genetics , Metabolic Engineering , Models, Genetic , Sirolimus/metabolism , Streptomyces/genetics , 3-Deoxy-7-Phosphoheptulonate Synthase/genetics , 3-Deoxy-7-Phosphoheptulonate Synthase/metabolism , Bacterial Proteins/metabolism , Cloning, Molecular , Gene Expression Regulation, Bacterial , Gene Knockout Techniques , Industrial Microbiology , Microorganisms, Genetically-Modified/genetics , Molecular Sequence Annotation , Phosphofructokinase-1/genetics , Phosphofructokinase-1/metabolism , Streptomyces/metabolism
20.
J Biol Chem ; 291(42): 21836-21847, 2016 10 14.
Article En | MEDLINE | ID: mdl-27502275

Multifunctional proteins play a variety of roles in metabolism. Here, we examine the catalytic function of the combined 3-deoxy-d-arabino heptulosonate-7-phosphate synthase (DAH7PS) and chorismate mutase (CM) from Geobacillus sp. DAH7PS operates at the start of the biosynthetic pathway for aromatic metabolites, whereas CM operates in a dedicated branch of the pathway for the biosynthesis of amino acids tyrosine and phenylalanine. In line with sequence predictions, the two catalytic functions are located in distinct domains, and these two activities can be separated and retain functionality. For the full-length protein, prephenate, the product of the CM reaction, acts as an allosteric inhibitor for the DAH7PS. The crystal structure of the full-length protein with prephenate bound and the accompanying small angle x-ray scattering data reveal the molecular mechanism of the allostery. Prephenate binding results in the tighter association between the dimeric CM domains and the tetrameric DAH7PS, occluding the active site and therefore disrupting DAH7PS function. Acquisition of a physical gating mechanism to control catalytic function through gene fusion appears to be a general mechanism for providing allostery for this enzyme.


3-Deoxy-7-Phosphoheptulonate Synthase/metabolism , Chorismate Mutase/metabolism , 3-Deoxy-7-Phosphoheptulonate Synthase/genetics , Allosteric Regulation , Amino Acids, Aromatic/metabolism , Chorismate Mutase/genetics , Crystallography, X-Ray , Geobacillus/enzymology , Shikimic Acid/metabolism
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