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1.
J Agric Food Chem ; 71(13): 5117-5126, 2023 Apr 05.
Artículo en Inglés | MEDLINE | ID: mdl-36943718

RESUMEN

Amidosulfuron (AS) is from the commercial sulfonylurea herbicide family. It is highly effective against dicot broad-leaf weeds. This herbicide targets acetohydroxyacid synthase (AHAS), the first enzyme in the branched chain amino acid biosynthesis pathway. Here, we have determined the crystal structure of AS in complex with wildtype Arabidopsis thaliana AHAS (AtAHAS) and with the resistance mutant, S653T. In both structures, the cofactor, ThDP, is modified to a peracetate adduct, consistent with time-dependent accumulative inhibition. Compared to other AHAS-inhibiting herbicides of the sulfonylurea family, AS lacks a second aromatic ring. The replacement is an aryl sulfonyl group with a reduced number of interactions with the enzyme and relatively low affinity (Ki = 4.2 µM vs low nM when two heteroaromatic rings are present). This study shows that effective herbicides can have a relatively high Ki for plant AHAS but can still be a potent herbicide provided accumulative inhibition also occurs.


Asunto(s)
Acetolactato Sintasa , Arabidopsis , Herbicidas , Arabidopsis/metabolismo , Acetolactato Sintasa/química , Herbicidas/química , Compuestos de Sulfonilurea/química , Resistencia a los Herbicidas
2.
Chemistry ; 29(9): e202203140, 2023 Feb 10.
Artículo en Inglés | MEDLINE | ID: mdl-36385513

RESUMEN

Enzyme-catalyzed reaction cascades play an increasingly important role for the sustainable manufacture of diverse chemicals from renewable feedstocks. For instance, dehydratases from the ilvD/EDD superfamily have been embedded into a cascade to convert glucose via pyruvate to isobutanol, a platform chemical for the production of aviation fuels and other valuable materials. These dehydratases depend on the presence of both a Fe-S cluster and a divalent metal ion for their function. However, they also represent the rate-limiting step in the cascade. Here, catalytic parameters and the crystal structure of the dehydratase from Paralcaligenes ureilyticus (PuDHT, both in presence of Mg2+ and Mn2+ ) were investigated. Rate measurements demonstrate that the presence of stoichiometric concentrations Mn2+ promotes higher activity than Mg2+ , but at high concentrations the former inhibits the activity of PuDHT. Molecular dynamics simulations identify the position of a second binding site for the divalent metal ion. Only binding of Mn2+ (not Mg2+ ) to this site affects the ligand environment of the catalytically essential divalent metal binding site, thus providing insight into an inhibitory mechanism of Mn2+ at higher concentrations. Furthermore, in silico docking identified residues that play a role in determining substrate binding and selectivity. The combined data inform engineering approaches to design an optimal dehydratase for the cascade.


Asunto(s)
Hidroliasas , Secuencia de Aminoácidos , Hidroliasas/química , Sitios de Unión , Catálisis
3.
Front Plant Sci ; 13: 909073, 2022.
Artículo en Inglés | MEDLINE | ID: mdl-35845697

RESUMEN

Herbicides are commonly deployed as the front-line treatment to control infestations of weeds in native ecosystems and among crop plants in agriculture. However, the prevalence of herbicide resistance in many species is a major global challenge. The specificity and effectiveness of herbicides acting on diverse weed species are tightly linked to targeted proteins. The conservation and variance at these sites among different weed species remain largely unexplored. Using novel genome data in a genome-guided approach, 12 common herbicide-target genes and their coded proteins were identified from seven species of Weeds of National Significance in Australia: Alternanthera philoxeroides (alligator weed), Lycium ferocissimum (African boxthorn), Senecio madagascariensis (fireweed), Lantana camara (lantana), Parthenium hysterophorus (parthenium), Cryptostegia grandiflora (rubber vine), and Eichhornia crassipes (water hyacinth). Gene and protein sequences targeted by the acetolactate synthase (ALS) inhibitors and glyphosate were recovered. Compared to structurally resolved homologous proteins as reference, high sequence conservation was observed at the herbicide-target sites in the ALS (target for ALS inhibitors), and in 5-enolpyruvylshikimate-3-phosphate (EPSP) synthase (target for glyphosate). Although the sequences are largely conserved in the seven phylogenetically diverse species, mutations observed in the ALS proteins of fireweed and parthenium suggest resistance of these weeds to ALS-inhibiting and other herbicides. These protein sites remain as attractive targets for the development of novel inhibitors and herbicides. This notion is reinforced by the results from the phylogenetic analysis of the 12 proteins, which reveal a largely consistent vertical inheritance in their evolutionary histories. These results demonstrate the utility of high-throughput genome sequencing to rapidly identify and characterize gene targets by computational methods, bypassing the experimental characterization of individual genes. Data generated from this study provide a useful reference for future investigations in herbicide discovery and development.

4.
Nat Commun ; 13(1): 3368, 2022 06 11.
Artículo en Inglés | MEDLINE | ID: mdl-35690625

RESUMEN

Acetohydroxyacid synthase (AHAS) is the target for more than 50 commercial herbicides; first applied to crops in the 1980s. Since then, 197 site-of-action resistance isolates have been identified in weeds, with mutations at P197 and W574 the most prevalent. Consequently, AHAS is at risk of not being a useful target for crop protection. To develop new herbicides, a functional understanding to explain the effect these mutations have on activity is required. Here, we show that these mutations can have two effects (i) to reduce binding affinity of the herbicides and (ii) to abolish time-dependent accumulative inhibition, critical to the exceptional effectiveness of this class of herbicide. In the two mutants, conformational changes occur resulting in a loss of accumulative inhibition by most herbicides. However, bispyribac, a bulky herbicide is able to counteract the detrimental effects of these mutations, explaining why no site-of-action resistance has yet been reported for this herbicide.


Asunto(s)
Acetolactato Sintasa , Herbicidas , Acetolactato Sintasa/genética , Acetolactato Sintasa/metabolismo , Productos Agrícolas/metabolismo , Herbicidas/química , Herbicidas/farmacología , Mutación , Malezas/metabolismo
5.
Chemistry ; 28(44): e202200927, 2022 Aug 04.
Artículo en Inglés | MEDLINE | ID: mdl-35535733

RESUMEN

There is an urgent global need for the development of novel therapeutics to combat the rise of various antibiotic-resistant superbugs. Enzymes of the branched-chain amino acid (BCAA) biosynthesis pathway are an attractive target for novel anti-microbial drug development. Dihydroxy-acid dehydratase (DHAD) is the third enzyme in the BCAA biosynthesis pathway. It relies on an Fe-S cluster for catalytic activity and has recently also gained attention as a catalyst in cell-free enzyme cascades. Two types of Fe-S clusters have been identified in DHADs, i.e. [2Fe-2S] and [4Fe-4S], with the latter being more prone to degradation in the presence of oxygen. Here, we characterise two DHADs from bacterial human pathogens, Staphylococcus aureus and Campylobacter jejuni (SaDHAD and CjDHAD). Purified SaDHAD and CjDHAD are virtually inactive, but activity could be reversibly reconstituted in vitro (up to ∼19,000-fold increase with kcat as high as ∼6.7 s-1 ). Inductively-coupled plasma-optical emission spectroscopy (ICP-OES) measurements are consistent with the presence of [4Fe-4S] clusters in both enzymes. N-isopropyloxalyl hydroxamate (IpOHA) and aspterric acid are both potent inhibitors for both SaDHAD (Ki =7.8 and 51.6 µM, respectively) and CjDHAD (Ki =32.9 and 35.1 µM, respectively). These compounds thus present suitable starting points for the development of novel anti-microbial chemotherapeutics.


Asunto(s)
Farmacorresistencia Bacteriana , Hidroliasas , Proteínas Bacterianas/química , Campylobacter jejuni/efectos de los fármacos , Campylobacter jejuni/enzimología , Catálisis , Hidroliasas/química , Proteínas Hierro-Azufre/química , Staphylococcus aureus/efectos de los fármacos , Staphylococcus aureus/enzimología
6.
PLoS Genet ; 17(5): e1009561, 2021 05.
Artículo en Inglés | MEDLINE | ID: mdl-33999950

RESUMEN

The DEFECTIVE EMBRYO AND MERISTEMS 1 (DEM1) gene encodes a protein of unknown biochemical function required for meristem formation and seedling development in tomato, but it was unclear whether DEM1's primary role was in cell division or alternatively, in defining the identity of meristematic cells. Genome sequence analysis indicates that flowering plants possess at least two DEM genes. Arabidopsis has two DEM genes, DEM1 and DEM2, which we show are expressed in developing embryos and meristems in a punctate pattern that is typical of genes involved in cell division. Homozygous dem1 dem2 double mutants were not recovered, and plants carrying a single functional DEM1 allele and no functional copies of DEM2, i.e. DEM1/dem1 dem2/dem2 plants, exhibit normal development through to the time of flowering but during male reproductive development, chromosomes fail to align on the metaphase plate at meiosis II and result in abnormal numbers of daughter cells following meiosis. Additionally, these plants show defects in both pollen and embryo sac development, and produce defective male and female gametes. In contrast, dem1/dem1 DEM2/dem2 plants showed normal levels of fertility, indicating that DEM2 plays a more important role than DEM1 in gamete viability. The increased importance of DEM2 in gamete viability correlated with higher mRNA levels of DEM2 compared to DEM1 in most tissues examined and particularly in the vegetative shoot apex, developing siliques, pollen and sperm. We also demonstrate that gamete viability depends not only on the number of functional DEM alleles inherited following meiosis, but also on the number of functional DEM alleles in the parent plant that undergoes meiosis. Furthermore, DEM1 interacts with RAS-RELATED NUCLEAR PROTEIN 1 (RAN1) in yeast two-hybrid and pull-down binding assays, and we show that fluorescent proteins fused to DEM1 and RAN1 co-localize transiently during male meiosis and pollen development. In eukaryotes, RAN is a highly conserved GTPase that plays key roles in cell cycle progression, spindle assembly during cell division, reformation of the nuclear envelope following cell division, and nucleocytoplasmic transport. Our results demonstrate that DEM proteins play an essential role in cell division in plants, most likely through an interaction with RAN1.


Asunto(s)
Arabidopsis/citología , Arabidopsis/genética , Genes Esenciales , Genes de Plantas/genética , Células Germinativas/metabolismo , Alelos , Proteínas de Arabidopsis/metabolismo , División Celular , Supervivencia Celular/genética , Evolución Molecular , Dosificación de Gen , Regulación de la Expresión Génica de las Plantas , Prueba de Complementación Genética , Células Germinativas/citología , Meiosis , Familia de Multigenes , Especificidad de Órganos , Polen/crecimiento & desarrollo , ARN Mensajero/genética , Proteínas de Unión al ARN/metabolismo , Semillas , Transgenes , Proteína de Unión al GTP ran/metabolismo
7.
Chemistry ; 27(9): 3130-3141, 2021 Feb 10.
Artículo en Inglés | MEDLINE | ID: mdl-33215746

RESUMEN

New drugs aimed at novel targets are urgently needed to combat the increasing rate of drug-resistant tuberculosis (TB). Herein, the National Cancer Institute Developmental Therapeutic Program (NCI-DTP) chemical library was screened against a promising new target, ketol-acid reductoisomerase (KARI), the second enzyme in the branched-chain amino acid (BCAA) biosynthesis pathway. From this library, 6-hydroxy-2-methylthiazolo[4,5-d]pyrimidine-5,7(4H,6H)-dione (NSC116565) was identified as a potent time-dependent inhibitor of Mycobacterium tuberculosis (Mt) KARI with a Ki of 95.4 nm. Isothermal titration calorimetry studies showed that this inhibitor bound to MtKARI in the presence and absence of the cofactor, nicotinamide adenine dinucleotide phosphate (NADPH), which was confirmed by crystal structures of the compound in complex with closely related Staphylococcus aureus KARI. It is also shown that NSC116565 inhibits the growth of H37Ra and H37Rv strains of Mt with MIC50 values of 2.93 and 6.06 µm, respectively. These results further validate KARI as a TB drug target and show that NSC116565 is a promising lead for anti-TB drug development.


Asunto(s)
Antituberculosos/farmacología , Cetoácido Reductoisomerasa/antagonistas & inhibidores , Mycobacterium tuberculosis/enzimología , Pirimidinonas/farmacología , Línea Celular , Humanos , Cetoácido Reductoisomerasa/metabolismo , Mycobacterium tuberculosis/efectos de los fármacos , NADP/metabolismo , Staphylococcus aureus/enzimología , Tuberculosis/tratamiento farmacológico , Tuberculosis/microbiología
8.
ACS Infect Dis ; 6(11): 2901-2912, 2020 11 13.
Artículo en Inglés | MEDLINE | ID: mdl-32986949

RESUMEN

Acetohydroxyacid synthase (AHAS, EC 2.2.1.6), the first enzyme in the branched chain amino acid biosynthesis pathway, is the target for more than 50 commercially available herbicides, and is a promising target for antimicrobial drug discovery. Herein, we have expressed and purified AHAS from Candida auris, a newly identified human invasive fungal pathogen. Thirteen AHAS inhibiting herbicides have Ki values of <2 µM for this enzyme, with the most potent having Ki values of <32 nM. Six of these compounds exhibited MIC50 values of <1 µM against C. auris (CBS10913 strain) grown in culture, with bensulfuron methyl (BSM) being fungicidal and the most potent (MIC50 of 0.090 µM) in defined minimal media. The MIC50 value increases to 0.90 µM in media enriched by the addition of branched-chain amino acids at the expected concentration in the blood serum. The sessile MIC50 for BSM is 0.6 µM. Thus, it is also an excellent inhibitor of the growth of C. auris biofilms. BSM is nontoxic in HEK-293 cells at concentrations >100 µM and thus possesses a therapeutic index of >100. These data suggest that targeting AHAS is a viable strategy for treating C. auris infections.


Asunto(s)
Acetolactato Sintasa , Herbicidas , Preparaciones Farmacéuticas , Acetolactato Sintasa/genética , Candida , Células HEK293 , Humanos
9.
Nature ; 586(7828): 317-321, 2020 10.
Artículo en Inglés | MEDLINE | ID: mdl-32640464

RESUMEN

Acetohydroxyacid synthase (AHAS), also known as acetolactate synthase, is a flavin adenine dinucleotide-, thiamine diphosphate- and magnesium-dependent enzyme that catalyses the first step in the biosynthesis of branched-chain amino acids1. It is the target for more than 50 commercial herbicides2. AHAS requires both catalytic and regulatory subunits for maximal activity and functionality. Here we describe structures of the hexadecameric AHAS complexes of Saccharomyces cerevisiae and dodecameric AHAS complexes of Arabidopsis thaliana. We found that the regulatory subunits of these AHAS complexes form a core to which the catalytic subunit dimers are attached, adopting the shape of a Maltese cross. The structures show how the catalytic and regulatory subunits communicate with each other to provide a pathway for activation and for feedback inhibition by branched-chain amino acids. We also show that the AHAS complex of Mycobacterium tuberculosis adopts a similar structure, thus demonstrating that the overall AHAS architecture is conserved across kingdoms.


Asunto(s)
Acetolactato Sintasa/química , Arabidopsis/enzimología , Saccharomyces cerevisiae/enzimología , Acetolactato Sintasa/metabolismo , Adenosina Trifosfato/metabolismo , Aminoácidos de Cadena Ramificada/biosíntesis , Dominio Catalítico , Activación Enzimática , Evolución Molecular , Retroalimentación Fisiológica , Modelos Moleculares , Complejos Multiproteicos/química , Complejos Multiproteicos/metabolismo , Mycobacterium tuberculosis/enzimología , Unión Proteica , Conformación Proteica , Subunidades de Proteína/química , Subunidades de Proteína/metabolismo , Valina/metabolismo
10.
Plant Sci ; 294: 110445, 2020 May.
Artículo en Inglés | MEDLINE | ID: mdl-32234228

RESUMEN

Phosphate acquisition by plants is an essential process that is directly implicated in the optimization of crop yields. Purple acid phosphatases (PAPs) are ubiquitous metalloenzymes, which catalyze the hydrolysis of a wide range of phosphate esters and anhydrides. While some plant PAPs display a preference for ATP as the substrate, others are efficient in hydrolyzing phytate or 2-phosphoenolpyruvate (PEP). PAP from red kidney bean (rkbPAP) is an efficient ATP- and ADPase, but has no activity towards phytate. Crystal structures of this enzyme in complex with ATP analogues (to 2.20 and 2.60 Å resolution, respectively) complement the recent structure of rkbPAP with a bound ADP analogue (ChemBioChem 20 (2019) 1536). Together these complexes provide the first structural insight of a PAP in complex with molecules that mimic biologically relevant substrates. Homology modeling was used to generate three-dimensional structures for the active sites of PAPs from tobacco (NtPAP) and thale cress (AtPAP26) that are efficient in hydrolyzing phytate and PEP as preferred substrates, respectively. The combining of crystallographic data, substrate docking simulations and a phylogenetic analysis of 49 plant PAP sequences (including the first PAP sequences reported from Eucalyptus) resulted in the identification of several active site residues that are important in defining the substrate specificities of plant PAPs; of particular relevance is the identification of a motif ("REKA") that is characteristic for plant PAPs that possess phytase activity. These results may inform bioengineering studies aimed at identifying and incorporating suitable plant PAP genes into crops to improve phosphorus acquisition and use efficiency. Organic phosphorus sources increasingly supplement or replace inorganic fertilizer, and efficient phosphorus use of crops will lower the environmental footprint of agriculture while enhancing food production.


Asunto(s)
Fosfatasa Ácida/metabolismo , Fosfatasa Ácida/genética , Bioingeniería/métodos , Regulación de la Expresión Génica de las Plantas/genética , Regulación de la Expresión Génica de las Plantas/fisiología , Phaseolus/genética , Phaseolus/metabolismo , Especificidad por Sustrato
11.
Proc Natl Acad Sci U S A ; 115(41): E9649-E9658, 2018 10 09.
Artículo en Inglés | MEDLINE | ID: mdl-30249642

RESUMEN

The increased prevalence of drug-resistant human pathogenic fungal diseases poses a major threat to global human health. Thus, new drugs are urgently required to combat these infections. Here, we demonstrate that acetohydroxyacid synthase (AHAS), the first enzyme in the branched-chain amino acid biosynthesis pathway, is a promising new target for antifungal drug discovery. First, we show that several AHAS inhibitors developed as commercial herbicides are powerful accumulative inhibitors of Candida albicans AHAS (Ki values as low as 800 pM) and have determined high-resolution crystal structures of this enzyme in complex with several of these herbicides. In addition, we have demonstrated that chlorimuron ethyl (CE), a member of the sulfonylurea herbicide family, has potent antifungal activity against five different Candida species and Cryptococcus neoformans (with minimum inhibitory concentration, 50% values as low as 7 nM). Furthermore, in these assays, we have shown CE and itraconazole (a P450 inhibitor) can act synergistically to further improve potency. Finally, we show in Candida albicans-infected mice that CE is highly effective in clearing pathogenic fungal burden in the lungs, liver, and spleen, thus reducing overall mortality rates. Therefore, in view of their low toxicity to human cells, AHAS inhibitors represent a new class of antifungal drug candidates.


Asunto(s)
Acetolactato Sintasa , Antifúngicos , Candida albicans/enzimología , Candidiasis , Criptococosis , Cryptococcus neoformans/enzimología , Proteínas Fúngicas , Acetolactato Sintasa/antagonistas & inhibidores , Acetolactato Sintasa/química , Acetolactato Sintasa/metabolismo , Animales , Antifúngicos/química , Antifúngicos/farmacología , Candidiasis/tratamiento farmacológico , Candidiasis/enzimología , Criptococosis/tratamiento farmacológico , Criptococosis/enzimología , Proteínas Fúngicas/antagonistas & inhibidores , Proteínas Fúngicas/química , Herbicidas/química , Herbicidas/farmacología , Humanos , Ratones
12.
Proc Natl Acad Sci U S A ; 115(9): E1945-E1954, 2018 02 27.
Artículo en Inglés | MEDLINE | ID: mdl-29440497

RESUMEN

Acetohydroxyacid synthase (AHAS), the first enzyme in the branched amino acid biosynthesis pathway, is present only in plants and microorganisms, and it is the target of >50 commercial herbicides. Penoxsulam (PS), which is a highly effective broad-spectrum AHAS-inhibiting herbicide, is used extensively to control weed growth in rice crops. However, the molecular basis for its inhibition of AHAS is poorly understood. This is despite the availability of structural data for all other classes of AHAS-inhibiting herbicides. Here, crystallographic data for Saccharomyces cerevisiae AHAS (2.3 Å) and Arabidopsis thaliana AHAS (2.5 Å) in complex with PS reveal the extraordinary molecular mechanisms that underpin its inhibitory activity. The structures show that inhibition of AHAS by PS triggers expulsion of two molecules of oxygen bound in the active site, releasing them as substrates for an oxygenase side reaction of the enzyme. The structures also show that PS either stabilizes the thiamin diphosphate (ThDP)-peracetate adduct, a product of this oxygenase reaction, or traps within the active site an intact molecule of peracetate in the presence of a degraded form of ThDP: thiamine aminoethenethiol diphosphate. Kinetic analysis shows that PS inhibits AHAS by a combination of events involving FAD oxidation and chemical alteration of ThDP. With the emergence of increasing levels of resistance toward front-line herbicides and the need to optimize the use of arable land, these data suggest strategies for next generation herbicide design.


Asunto(s)
Acetolactato Sintasa/antagonistas & inhibidores , Acetolactato Sintasa/química , Herbicidas/química , Oxígeno/química , Especies Reactivas de Oxígeno/química , Arabidopsis/enzimología , Catálisis , Dominio Catalítico , Cristalografía por Rayos X , Modelos Moleculares , Unión Proteica , Saccharomyces cerevisiae/enzimología , Temperatura , Tiamina Pirofosfato/química
13.
FEBS J ; 284(13): 2037-2051, 2017 07.
Artículo en Inglés | MEDLINE | ID: mdl-28485824

RESUMEN

Acetohydroxyacid synthase (AHAS, EC 2.2.1.6) is the first enzyme in the branched-chain amino acid biosynthesis pathway. Five of the most widely used commercial herbicides (i.e. sulfonylureas, imidazolinones, triazolopyrimidines, pyrimidinyl-benzoates and sulfonylamino-cabonyl-triazolinones) target this enzyme. Here we have determined the first crystal structure of a plant AHAS in the absence of any inhibitor (2.9 Å resolution) and it shows that the herbicide-binding site adopts a folded state even in the absence of an inhibitor. This is unexpected because the equivalent regions for herbicide binding in uninhibited Saccharomyces cerevisiae AHAS crystal structures are either disordered, or adopt a different fold when the herbicide is not present. In addition, the structure provides an explanation as to why some herbicides are more potent inhibitors of Arabidopsis thaliana AHAS compared to AHASs from other species (e.g. S. cerevisiae). The elucidation of the native structure of plant AHAS provides a new platform for future rational structure-based herbicide design efforts. DATABASE: The coordinates and structure factors for uninhibited AtAHAS have been deposited in the Protein Data Bank (www.pdb.org) with the PDB ID code 5K6Q.


Asunto(s)
Acetolactato Sintasa/antagonistas & inhibidores , Acetolactato Sintasa/química , Herbicidas/farmacología , Proteínas de Plantas/química , Acetolactato Sintasa/metabolismo , Secuencia de Aminoácidos , Proteínas de Arabidopsis/química , Proteínas de Arabidopsis/genética , Proteínas de Arabidopsis/metabolismo , Sitios de Unión/genética , Cristalografía por Rayos X , Resistencia a los Herbicidas , Herbicidas/química , Herbicidas/metabolismo , Modelos Moleculares , Estructura Molecular , Proteínas de Plantas/genética , Proteínas de Plantas/metabolismo , Conformación Proteica , Multimerización de Proteína , Estructura Terciaria de Proteína , Proteínas de Saccharomyces cerevisiae/química , Proteínas de Saccharomyces cerevisiae/genética , Proteínas de Saccharomyces cerevisiae/metabolismo , Homología de Secuencia de Aminoácido
14.
J Biol Chem ; 292(12): 5101-5109, 2017 03 24.
Artículo en Inglés | MEDLINE | ID: mdl-28159840

RESUMEN

Acetohydroxyacid synthase (AHAS) catalyzes the first step of branched-chain amino acid (BCAA) biosynthesis, a pathway essential to the lifecycle of plants and microorganisms. This enzyme is of high interest because its inhibition is at the base of the exceptional potency of herbicides and potentially a target for the discovery of new antimicrobial drugs. The enzyme has conserved attributes from its predicted ancestor, pyruvate oxidase, such as a ubiquinone-binding site and the requirement for FAD as cofactor. Here, we show that these requirements are linked to the regulation of AHAS, in relationship to its anabolic function. Using various soluble quinone derivatives (e.g. ubiquinones), we reveal a new path of down-regulation of AHAS activity involving inhibition by oxidized redox-signaling molecules. The inhibition process relies on two factors specific to AHAS: (i) the requirement of a reduced FAD cofactor for the enzyme to be active and (ii) a characteristic slow rate of FAD reduction by the pyruvate oxidase side reaction of the enzyme. The mechanism of inhibition involves the oxidation of the FAD cofactor, leading to a time-dependent inhibition of AHAS correlated with the slow process of FAD re-reduction. The existence and conservation of such a complex mechanism suggests that the redox level of the environment regulates the BCAA biosynthesis pathway. This mode of regulation appears to be the foundation of the inhibitory activity of many of the commercial herbicides that target AHAS.


Asunto(s)
Acetolactato Sintasa/metabolismo , Benzoquinonas/metabolismo , Flavina-Adenina Dinucleótido/metabolismo , Mycobacterium tuberculosis/enzimología , Saccharomyces cerevisiae/enzimología , Ubiquinona/metabolismo , Humanos , Modelos Moleculares , Mycobacterium tuberculosis/química , Mycobacterium tuberculosis/metabolismo , Oxidación-Reducción , Saccharomyces cerevisiae/química , Saccharomyces cerevisiae/metabolismo , Tuberculosis/microbiología
15.
PLoS One ; 12(2): e0171443, 2017.
Artículo en Inglés | MEDLINE | ID: mdl-28178302

RESUMEN

Acetohydroxyacid synthase (AHAS) catalyzes the first step of branched-chain amino acid biosynthesis, a pathway essential to the life-cycle of plants and micro-organisms. The catalytic subunit has thiamin diphosphate (ThDP) and flavin adenine dinucleotide (FAD) as indispensable co-factors. A new, high resolution, 2.0 Å crystal structure of Saccharomyces cerevisiae AHAS reveals that the dimer is asymmetric, with the catalytic centres having distinct structures where FAD is trapped in two different conformations indicative of different redox states. Two molecules of oxygen (O2) are bound on the surface of each active site and a tunnel in the polypeptide appears to passage O2 to the active site independently of the substrate. Thus, O2 appears to play a novel "co-factor" role in this enzyme. We discuss the functional implications of these features of the enzyme that have not previously been described.


Asunto(s)
Acetolactato Sintasa/química , Flavina-Adenina Dinucleótido/química , Modelos Moleculares , Estructura Cuaternaria de Proteína , Saccharomyces cerevisiae/enzimología , Acetolactato Sintasa/metabolismo , Secuencia de Aminoácidos , Catálisis , Flavina-Adenina Dinucleótido/metabolismo , Oxidación-Reducción , Oxígeno/química , Multimerización de Proteína
16.
Proc Natl Acad Sci U S A ; 114(7): E1091-E1100, 2017 02 14.
Artículo en Inglés | MEDLINE | ID: mdl-28137884

RESUMEN

Five commercial herbicide families inhibit acetohydroxyacid synthase (AHAS, E.C. 2.2.1.6), which is the first enzyme in the branched-chain amino acid biosynthesis pathway. The popularity of these herbicides is due to their low application rates, high crop vs. weed selectivity, and low toxicity in animals. Here, we have determined the crystal structures of Arabidopsis thaliana AHAS in complex with two members of the pyrimidinyl-benzoate (PYB) and two members of the sulfonylamino-carbonyl-triazolinone (SCT) herbicide families, revealing the structural basis for their inhibitory activity. Bispyribac, a member of the PYBs, possesses three aromatic rings and these adopt a twisted "S"-shaped conformation when bound to A. thaliana AHAS (AtAHAS) with the pyrimidinyl group inserted deepest into the herbicide binding site. The SCTs bind such that the triazolinone ring is inserted deepest into the herbicide binding site. Both compound classes fill the channel that leads to the active site, thus preventing substrate binding. The crystal structures and mass spectrometry also show that when these herbicides bind, thiamine diphosphate (ThDP) is modified. When the PYBs bind, the thiazolium ring is cleaved, but when the SCTs bind, ThDP is modified to thiamine 2-thiazolone diphosphate. Kinetic studies show that these compounds not only trigger reversible accumulative inhibition of AHAS, but also can induce inhibition linked with ThDP degradation. Here, we describe the features that contribute to the extraordinarily powerful herbicidal activity exhibited by four classes of AHAS inhibitors.


Asunto(s)
Acetolactato Sintasa/antagonistas & inhibidores , Proteínas de Arabidopsis/antagonistas & inhibidores , Herbicidas/farmacología , Acetolactato Sintasa/química , Proteínas de Arabidopsis/química , Benzoatos/química , Benzoatos/farmacología , Dominio Catalítico , Cristalografía por Rayos X , Herbicidas/química , Imidazoles/química , Imidazoles/farmacología , Cinética , Modelos Moleculares , Estructura Molecular , Unión Proteica , Conformación Proteica , Pirimidinas/química , Pirimidinas/farmacología , Quinolinas/química , Quinolinas/farmacología , Compuestos de Sulfonilurea/química , Compuestos de Sulfonilurea/farmacología , Tiamina Pirofosfato/metabolismo , Tiofenos/química , Tiofenos/farmacología , Triazoles/química , Triazoles/farmacología
17.
Sci Rep ; 6: 37389, 2016 11 21.
Artículo en Inglés | MEDLINE | ID: mdl-27869215

RESUMEN

Bacterial species in the plant-beneficial-environmental clade of Burkholderia represent a substantial component of rhizosphere microbes in many plant species. To better understand the molecular mechanisms of the interaction, we combined functional studies with high-resolution dual transcriptome analysis of sugarcane and root-associated diazotrophic Burkholderia strain Q208. We show that Burkholderia Q208 forms a biofilm at the root surface and suppresses the virulence factors that typically trigger immune response in plants. Up-regulation of bd-type cytochromes in Burkholderia Q208 suggests an increased energy production and creates the microaerobic conditions suitable for BNF. In this environment, a series of metabolic pathways are activated in Burkholderia Q208 implicated in oxalotrophy, microaerobic respiration, and formation of PHB granules, enabling energy production under microaerobic conditions. In the plant, genes involved in hypoxia survival are up-regulated and through increased ethylene production, larger aerenchyma is produced in roots which in turn facilitates diffusion of oxygen within the cortex. The detected changes in gene expression, physiology and morphology in the partnership are evidence of a sophisticated interplay between sugarcane and a plant-growth promoting Burkholderia species that advance our understanding of the mutually beneficial processes occurring in the rhizosphere.


Asunto(s)
Burkholderia/fisiología , Saccharum/crecimiento & desarrollo , Saccharum/microbiología , Anaerobiosis , Biopelículas/crecimiento & desarrollo , Burkholderia/genética , Burkholderia/ultraestructura , Carbono/metabolismo , Citocromos/metabolismo , Regulación hacia Abajo/genética , Flagelos/metabolismo , Perfilación de la Expresión Génica , Regulación de la Expresión Génica de las Plantas , Genes Bacterianos , Genes de Plantas , Lipopolisacáridos/biosíntesis , Redes y Vías Metabólicas/genética , Fotosíntesis , Raíces de Plantas/microbiología , Raíces de Plantas/ultraestructura , Saccharum/ultraestructura , Análisis de Secuencia de ARN , Regulación hacia Arriba/genética
18.
Angew Chem Int Ed Engl ; 55(13): 4247-51, 2016 Mar 18.
Artículo en Inglés | MEDLINE | ID: mdl-26924714

RESUMEN

Acetohydroxyacid synthase (AHAS) inhibitors are highly successful commercial herbicides. New kinetic data show that the binding of these compounds leads to reversible accumulative inhibition of AHAS. Crystallographic data (to a resolution of 2.17 Å) for an AHAS-herbicide complex shows that closure of the active site occurs when the herbicidal inhibitor binds, thus preventing exchange with solvent. This feature combined with new kinetic data shows that molecular oxygen promotes an accumulative inhibition leading to the conclusion that the exceptional potency of these herbicides is augmented by subversion of an inherent oxygenase side reaction. The reactive oxygen species produced by this reaction are trapped in the active site, triggering oxidation reactions that ultimately lead to the alteration of the redox state of the cofactor flavin adenine dinucleotide (FAD), a feature that accounts for the observed reversible accumulative inhibition.


Asunto(s)
Acetolactato Sintasa/antagonistas & inhibidores , Herbicidas/farmacología , Oxidación-Reducción
19.
PLoS One ; 10(9): e0138266, 2015.
Artículo en Inglés | MEDLINE | ID: mdl-26378781

RESUMEN

Lipopolysaccharide (LPS), a surface polymer of Gram-negative bacteria, helps bacteria survive in different environments and acts as a virulence determinant of host infection. The O-antigen (Oag) component of LPS exhibits a modal chain-length distribution that is controlled by polysaccharide co-polymerases (PCPs). The molecular basis of the regulation of Oag chain-lengths remains unclear, despite extensive mutagenesis and structural studies of PCPs from Escherichia coli and Shigella. Here, we identified a single mutation (A107P) of the Shigella flexneri WzzBSF, by a random mutagenesis approach, that causes a shortened Oag chain-length distribution in bacteria. We determined the crystal structures of the periplasmic domains of wild-type WzzBSF and the A107P mutant. Both structures form a highly similar open trimeric assembly in the crystals, and show a similar tendency to self-associate in solution. Binding studies by bio-layer interferometry reveal cooperative binding of very short (VS)-core-plus-O-antigen polysaccharide (COPS) to the periplasmic domains of both proteins, but with decreased affinity for the A107P mutant. Our studies reveal that subtle and localized structural differences in PCPs can have dramatic effects on LPS chain-length distribution in bacteria, for example by altering the affinity for the substrate, which supports the role of the structure of the growing Oag polymer in this process.


Asunto(s)
Aminoácidos/genética , Proteínas Bacterianas/genética , Lipopolisacáridos/genética , Mutación/genética , Antígenos O/genética , Shigella flexneri/genética , Cristalografía por Rayos X/métodos , Escherichia coli/genética , Proteínas de Escherichia coli/genética , Regulación Bacteriana de la Expresión Génica/genética , Mutagénesis/genética , Estructura Terciaria de Proteína/genética
20.
Sci Rep ; 5: 8678, 2015 Mar 02.
Artículo en Inglés | MEDLINE | ID: mdl-25728892

RESUMEN

Fungi play important roles as decomposers, plant symbionts and pathogens in soils. The structure of fungal communities in the rhizosphere is the result of complex interactions among selection factors that may favour beneficial or detrimental relationships. Using culture-independent fungal community profiling, we have investigated the effects of nitrogen fertilizer dosage on fungal communities in soil and rhizosphere of field-grown sugarcane. The results show that the concentration of nitrogen fertilizer strongly modifies the composition but not the taxon richness of fungal communities in soil and rhizosphere. Increased nitrogen fertilizer dosage has a potential negative impact on carbon cycling in soil and promotes fungal genera with known pathogenic traits, uncovering a negative effect of intensive fertilization.


Asunto(s)
Fertilizantes , Hongos/crecimiento & desarrollo , Nitrógeno/farmacología , Rizosfera , Saccharum/crecimiento & desarrollo , Microbiología del Suelo , Australia , Biodiversidad , Hongos/clasificación , Hongos/efectos de los fármacos
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