Your browser doesn't support javascript.
loading
Mostrar: 20 | 50 | 100
Resultados 1 - 20 de 1.750
Filtrar
1.
Sheng Wu Gong Cheng Xue Bao ; 40(8): 2403-2417, 2024 Aug 25.
Artículo en Chino | MEDLINE | ID: mdl-39174461

RESUMEN

Cadaverine is a fundamental C5 building block in the production of polyamides. Due to the limited regeneration efficiency of intracellular pyridoxal 5'-phosphate (PLP), the current fermentation-based production of cadaverine exhibits low efficiency. In this study, we developed an Escherichia coli strain L01 by introducing lysine decarboxylase (lysine decarboxylase, LDC, a key enzyme in the synthesis of cadaverine) into a lysine-producing strain E. coli LY-4, achieving a cadaverine tier of 1.07 g/L in shake flask fermentation. Subsequently, a dual metabolic pathway enhancement strategy was proposed to synergistically strengthen both endogenous and exogenous PLP synthesis modules, thereby improving intracellular PLP synthesis. The optimized strain L11 achieved a cadaverine titer of 9.23 g/L in shake flask fermentation. Finally, the fermentation process for cadaverine production by strain L11 was optimized in a 5 L fermenter. After 48 h of fed-batch fermentation, the engineered strain L11 achieved the cadaverine titer, yield, and productivity of 54.43 g/L, 0.22 g/g, and 1.13 g/(L·h), respectively. This study provides a theoretical and technical foundation for establishing microbial cell factories for bioamine production.


Asunto(s)
Cadaverina , Carboxiliasas , Escherichia coli , Fermentación , Ingeniería Metabólica , Fosfato de Piridoxal , Cadaverina/biosíntesis , Cadaverina/metabolismo , Ingeniería Metabólica/métodos , Escherichia coli/metabolismo , Escherichia coli/genética , Carboxiliasas/genética , Carboxiliasas/metabolismo , Fosfato de Piridoxal/metabolismo
2.
J Am Chem Soc ; 146(29): 20263-20269, 2024 Jul 24.
Artículo en Inglés | MEDLINE | ID: mdl-39001849

RESUMEN

α,ß-Diamino acids are important structural motifs and building blocks for numerous bioactive natural products, peptidomimetics, and pharmaceuticals, yet efficient asymmetric synthesis to access these stereoarrays remains a challenge. Herein, we report the development of a pyridoxal 5'-phosphate (PLP)-dependent enzyme that is engineered to catalyze stereoselective Mannich-type reactions between free α-amino acids and enolizable cyclic imines. This biocatalyst enabled one-step asymmetric enzymatic synthesis of the unusual pyrrolidine-containing amino acid L-tambroline at gram-scale with high enantio- and diastereocontrol. Furthermore, this enzymatic platform is capable of utilizing a diverse range of α-amino acids as the Mannich donor and various cyclic imines as the acceptor. By coupling with different imine-generating enzymes, we established versatile biocatalytic cascades and demonstrated a general, concise, versatile, and atom-economic approach to access unprotected α,ß-diamino acids, including structurally complex α,α-disubstituted α,ß-diamino acids with contiguous stereocenters.


Asunto(s)
Aminoácidos , Iminas , Iminas/química , Iminas/metabolismo , Estereoisomerismo , Aminoácidos/química , Aminoácidos/síntesis química , Aminoácidos/metabolismo , Biocatálisis , Fosfato de Piridoxal/química , Fosfato de Piridoxal/metabolismo , Estructura Molecular
3.
Biochim Biophys Acta Mol Cell Res ; 1871(7): 119794, 2024 Oct.
Artículo en Inglés | MEDLINE | ID: mdl-39033933

RESUMEN

Sulfur-containing biomolecules such as [FeS] clusters, thiamin, biotin, molybdenum cofactor, and sulfur-containing tRNA nucleosides are essential for various biochemical reactions. The amino acid l-cysteine serves as the major sulfur source for the biosynthetic pathways of these sulfur-containing cofactors in prokaryotic and eukaryotic systems. The first reaction in the sulfur mobilization involves a class of pyridoxal-5'-phosphate (PLP) dependent enzymes catalyzing a Cys:sulfur acceptor sulfurtransferase reaction. The first half of the catalytic reaction involves a PLP-dependent CS bond cleavage, resulting in a persulfide enzyme intermediate. The second half of the reaction involves the subsequent transfer of the thiol group to a specific acceptor molecule, which is responsible for the physiological role of the enzyme. Structural and biochemical analysis of these Cys sulfurtransferase enzymes shows that specific protein-protein interactions with sulfur acceptors modulate their catalytic reactivity and restrict their biochemical functions.


Asunto(s)
Cisteína , Fosfato de Piridoxal , Azufre , Sulfurtransferasas , Azufre/metabolismo , Azufre/química , Cisteína/metabolismo , Cisteína/química , Sulfurtransferasas/metabolismo , Sulfurtransferasas/química , Fosfato de Piridoxal/metabolismo , Humanos , Cofactores de Molibdeno , Liasas de Carbono-Azufre/metabolismo , Liasas de Carbono-Azufre/química
4.
Molecules ; 29(13)2024 Jun 28.
Artículo en Inglés | MEDLINE | ID: mdl-38999045

RESUMEN

1,4-diaminobutane is widely used in the industrial production of polymers, pharmaceuticals, agrochemicals and surfactants. Owing to economic and environmental concerns, there has been a growing interest in using microbes to produce 1,4-diaminobutane. However, there is lack of research on the influence of cofactors pyridoxal phosphate (PLP) and NADPH on the synthesis of 1,4-diaminobutane. PLP serves as a cofactor of ornithine decarboxylase in the synthesis of 1,4-diaminobutane. Additionally, the synthesis of 1 mol 1,4-diaminobutane requires 2 mol NADPH, thus necessitating consideration of NADPH balance in the efficient synthesis of 1,4-diaminobutane by Escherichia coli. The aim of this study was to enhance the synthesis efficiency of 1,4-diaminobutane through increasing production of PLP and NADPH. By optimizing the expression of the genes associated with synthesis of PLP and NADPH in E. coli, cellular PLP and NADPH levels increased, and the yield of 1,4-diaminobutane also increased accordingly. Ultimately, using glucose as the primary carbon source, the yield of 1,4-diaminobutane in the recombinant strain NAP19 reached 272 mg/L·DCW, by increased 79% compared with its chassis strain.


Asunto(s)
Escherichia coli , NADP , Fosfato de Piridoxal , Escherichia coli/genética , Escherichia coli/metabolismo , Fosfato de Piridoxal/metabolismo , NADP/metabolismo , Glucosa/metabolismo , Ingeniería Metabólica/métodos
5.
Plant Cell ; 36(9): 3689-3708, 2024 Sep 03.
Artículo en Inglés | MEDLINE | ID: mdl-38954500

RESUMEN

Coenzyme management is important for homeostasis of the pool of active metabolic enzymes. The coenzyme pyridoxal 5'-phosphate (PLP) is involved in diverse enzyme reactions including amino acid and hormone metabolism. Regulatory proteins that contribute to PLP homeostasis remain to be explored in plants. Here, we demonstrate the importance of proteins annotated as PLP homeostasis proteins (PLPHPs) for controlling PLP in Arabidopsis (Arabidopsis thaliana). A systematic analysis indicates that while most organisms across kingdoms have a single PLPHP homolog, Angiosperms have two. PLPHPs from Arabidopsis bind PLP and exist as monomers, in contrast to reported PLP-dependent enzymes, which exist as multimers. Disrupting the function of both PLPHP homologs perturbs vitamin B6 (pyridoxine) content, inducing a PLP deficit accompanied by light hypersensitive root growth, unlike PLP biosynthesis mutants. Micrografting studies show that the PLP deficit can be relieved distally between shoots and roots. Chemical treatments probing PLP-dependent reactions, notably those for auxin and ethylene, provide evidence that PLPHPs function in the dynamic management of PLP. Assays in vitro show that Arabidopsis PLPHP can coordinate PLP transfer and withdrawal from other enzymes. This study thus expands our knowledge of vitamin B6 biology and highlights the importance of PLP coenzyme homeostasis in plants.


Asunto(s)
Proteínas de Arabidopsis , Arabidopsis , Homeostasis , Fosfato de Piridoxal , Fosfato de Piridoxal/metabolismo , Arabidopsis/genética , Arabidopsis/metabolismo , Proteínas de Arabidopsis/metabolismo , Proteínas de Arabidopsis/genética , Raíces de Plantas/metabolismo , Raíces de Plantas/genética
6.
Phys Chem Chem Phys ; 26(23): 16579-16588, 2024 Jun 12.
Artículo en Inglés | MEDLINE | ID: mdl-38832404

RESUMEN

The transsulfuration pathway plays a key role in mammals for maintaining the balance between cysteine and homocysteine, whose concentrations are critical in several biochemical processes. Human cystathionine ß-synthase is a heme-containing, pyridoxal 5'-phosphate (PLP)-dependent enzyme found in this pathway. The heme group does not participate directly in catalysis, but has a regulatory function, whereby CO or NO binding inhibits the PLP-dependent reactions. In this study, we explore the detailed structural changes responsible for inhibition using quantum chemical calculations to validate the experimentally observed bonding patterns associated with heme CO and NO binding and molecular dynamics simulations to explore the medium-range structural changes triggered by gas binding and propagating to the PLP active site, which is more than 20 Å distant from the heme group. Our results support a previously proposed mechanical signaling model, whereby the cysteine decoordination associated with gas ligand binding leads to breaking of a hydrogen bond with an arginine residue on a neighbouring helix. In turn, this leads to a shift in position of the helix, and hence also of the PLP cofactor, ultimately disrupting a key hydrogen bond that stabilizes the PLP in its catalytically active form.


Asunto(s)
Cistationina betasintasa , Simulación de Dinámica Molecular , Fosfato de Piridoxal , Cistationina betasintasa/metabolismo , Cistationina betasintasa/química , Humanos , Fosfato de Piridoxal/metabolismo , Fosfato de Piridoxal/química , Gases/química , Gases/metabolismo , Óxido Nítrico/metabolismo , Óxido Nítrico/química , Enlace de Hidrógeno , Monóxido de Carbono/química , Monóxido de Carbono/metabolismo , Hemo/química , Hemo/metabolismo , Dominio Catalítico , Teoría Cuántica , Cisteína/química , Cisteína/metabolismo
7.
Elife ; 132024 Jun 10.
Artículo en Inglés | MEDLINE | ID: mdl-38856179

RESUMEN

Vitamin B6 deficiency has been linked to cognitive impairment in human brain disorders for decades. Still, the molecular mechanisms linking vitamin B6 to these pathologies remain poorly understood, and whether vitamin B6 supplementation improves cognition is unclear as well. Pyridoxal 5'-phosphate phosphatase (PDXP), an enzyme that controls levels of pyridoxal 5'-phosphate (PLP), the co-enzymatically active form of vitamin B6, may represent an alternative therapeutic entry point into vitamin B6-associated pathologies. However, pharmacological PDXP inhibitors to test this concept are lacking. We now identify a PDXP and age-dependent decline of PLP levels in the murine hippocampus that provides a rationale for the development of PDXP inhibitors. Using a combination of small-molecule screening, protein crystallography, and biolayer interferometry, we discover, visualize, and analyze 7,8-dihydroxyflavone (7,8-DHF) as a direct and potent PDXP inhibitor. 7,8-DHF binds and reversibly inhibits PDXP with low micromolar affinity and sub-micromolar potency. In mouse hippocampal neurons, 7,8-DHF increases PLP in a PDXP-dependent manner. These findings validate PDXP as a druggable target. Of note, 7,8-DHF is a well-studied molecule in brain disorder models, although its mechanism of action is actively debated. Our discovery of 7,8-DHF as a PDXP inhibitor offers novel mechanistic insights into the controversy surrounding 7,8-DHF-mediated effects in the brain.


Vitamin B6 is an important nutrient for optimal brain function, with deficiencies linked to impaired memory, learning and mood in various mental disorders. In older people, vitamin B6 deficiency is also associated with declining memory and dementia. Although this has been known for years, the precise role of vitamin B6 in these disorders and whether supplements can be used to treat or prevent them remained unclear. This is partly because vitamin B6 is actually an umbrella term for a small number of very similar and interchangeable molecules. Only one of these is 'bioactive', meaning it has a biological role in cells. However, therapeutic strategies aimed at increasing only the bioactive form of vitamin B6 are lacking. Previous work showed that disrupting the gene for an enzyme called pyridoxal phosphatase, which breaks down vitamin B6, improves memory and learning in mice. To investigate whether these effects could be mimicked by drug-like compounds, Brenner, Zink, Witzinger et al. used several biochemical and structural biology approaches to search for molecules that bind to and inhibit pyridoxal phosphatase. The experiments showed that a molecule called 7,8-dihydroxyflavone ­ which was previously found to improve memory and learning in laboratory animals with brain disorders ­ binds to pyridoxal phosphatase and inhibits its activity. This led to increased bioactive vitamin B6 levels in mouse brain cells involved in memory and learning. The findings of Brenner et al. suggest that inhibiting pyridoxal phosphatase to increase vitamin B6 levels in the brain could be used together with supplements. The identification of 7,8-dihydroxyflavone as a promising candidate drug is a first step in the discovery of more efficient pyridoxal phosphatase inhibitors. These will be useful experimental tools to directly study whether increasing the levels of bioactive vitamin B6 in the brain may help those with mental health conditions associated with impaired memory, learning and mood.


Asunto(s)
Inhibidores Enzimáticos , Monoéster Fosfórico Hidrolasas , Animales , Ratones , Humanos , Inhibidores Enzimáticos/farmacología , Inhibidores Enzimáticos/química , Monoéster Fosfórico Hidrolasas/metabolismo , Monoéster Fosfórico Hidrolasas/antagonistas & inhibidores , Hipocampo/metabolismo , Hipocampo/efectos de los fármacos , Neuronas/efectos de los fármacos , Neuronas/metabolismo , Fosfato de Piridoxal/metabolismo , Flavonas/farmacología , Flavonas/metabolismo , Flavonas/química , Ratones Endogámicos C57BL
8.
Cell Death Dis ; 15(6): 388, 2024 Jun 03.
Artículo en Inglés | MEDLINE | ID: mdl-38830901

RESUMEN

Vitamin B6 is a water-soluble vitamin which possesses antioxidant properties. Its catalytically active form, pyridoxal 5'-phosphate (PLP), is a crucial cofactor for DNA and amino acid metabolism. The inverse correlation between vitamin B6 and cancer risk has been observed in several studies, although dietary vitamin B6 intake sometimes failed to confirm this association. However, the molecular link between vitamin B6 and cancer remains elusive. Previous work has shown that vitamin B6 deficiency causes chromosome aberrations (CABs) in Drosophila and human cells, suggesting that genome instability may correlate the lack of this vitamin to cancer. Here we provide evidence in support of this hypothesis. Firstly, we show that PLP deficiency, induced by the PLP antagonists 4-deoxypyridoxine (4DP) or ginkgotoxin (GT), promoted tumorigenesis in eye larval discs transforming benign RasV12 tumors into aggressive forms. In contrast, PLP supplementation reduced the development of tumors. We also show that low PLP levels, induced by 4DP or by silencing the sgllPNPO gene involved in PLP biosynthesis, worsened the tumor phenotype in another Drosophila cancer model generated by concomitantly activating RasV12 and downregulating Discs-large (Dlg) gene. Moreover, we found that RasV12 eye discs from larvae reared on 4DP displayed CABs, reactive oxygen species (ROS) and low catalytic activity of serine hydroxymethyltransferase (SHMT), a PLP-dependent enzyme involved in thymidylate (dTMP) biosynthesis, in turn required for DNA replication and repair. Feeding RasV12 4DP-fed larvae with PLP or ascorbic acid (AA) plus dTMP, rescued both CABs and tumors. The same effect was produced by overexpressing catalase in RasV12 DlgRNAi 4DP-fed larvae, thus allowing to establish a relationship between PLP deficiency, CABs, and cancer. Overall, our data provide the first in vivo demonstration that PLP deficiency can impact on cancer by increasing genome instability, which is in turn mediated by ROS and reduced dTMP levels.


Asunto(s)
Deficiencia de Vitamina B 6 , Animales , Deficiencia de Vitamina B 6/metabolismo , Deficiencia de Vitamina B 6/complicaciones , Proteínas de Drosophila/metabolismo , Proteínas de Drosophila/genética , Vitamina B 6/metabolismo , Vitamina B 6/farmacología , Drosophila melanogaster/metabolismo , Drosophila melanogaster/genética , Drosophila/metabolismo , Fosfato de Piridoxal/metabolismo , Especies Reactivas de Oxígeno/metabolismo , Carcinogénesis/genética , Carcinogénesis/patología , Carcinogénesis/metabolismo , Carcinogénesis/efectos de los fármacos , Proteínas ras/metabolismo , Neoplasias/patología , Neoplasias/metabolismo , Neoplasias/genética , Larva/metabolismo , Humanos
9.
Curr Opin Chem Biol ; 81: 102472, 2024 Aug.
Artículo en Inglés | MEDLINE | ID: mdl-38815536

RESUMEN

Pyridoxal phosphate (PLP) is a cofactor that is widely employed in enzymology. This pyridine-containing cofactor can be used for reactions ranging from transaminations to oxidations. The catalytic versatility can be understood by considering the chemical features of this cofactor. In recent years, exciting new reactions involving PLP have been discovered in natural products biosynthesis, upending our understanding of what this cofactor is capable of. Here we review some of the most exciting PLP-dependent reactions from the last five years.


Asunto(s)
Fosfato de Piridoxal , Fosfato de Piridoxal/metabolismo , Fosfato de Piridoxal/química , Enzimas/metabolismo , Enzimas/química , Humanos , Oxidación-Reducción , Animales
10.
J Am Chem Soc ; 146(21): 14672-14684, 2024 May 29.
Artículo en Inglés | MEDLINE | ID: mdl-38743881

RESUMEN

Pyridoxal 5'-phosphate (PLP)-dependent enzymes are the most versatile biocatalysts for synthesizing nonproteinogenic amino acids. α,α-Disubstituted quaternary amino acids, such as 1-aminocyclopentane-1-carboxylic acid (cycloleucine), are useful building blocks for pharmaceuticals. In this study, starting with the biosynthesis of fusarilin A, we discovered a family of PLP-dependent enzymes that can facilitate tandem carbon-carbon forming steps to catalyze an overall [3 + 2]-annulation. In the first step, the cycloleucine synthases use SAM as the latent electrophile and an in situ-generated enamine as the nucleophile for γ-substitution. Whereas previously characterized γ-replacement enzymes protonate the resulting α-carbon and release the acyclic amino acid, cycloleucine synthases can catalyze an additional, intramolecular aldol or Mannich reaction with the nucleophilic α-carbon to form the substituted cyclopentane. Overall, the net [3 + 2]-annulation reaction can lead to 2-hydroxy or 2-aminocycloleucine products. These studies further expand the biocatalytic scope of PLP-dependent enzymes.


Asunto(s)
Fosfato de Piridoxal , Fosfato de Piridoxal/metabolismo , Fosfato de Piridoxal/química , Biocatálisis , Estructura Molecular , Ciclopentanos/química , Ciclopentanos/metabolismo
11.
ACS Synth Biol ; 13(6): 1820-1830, 2024 Jun 21.
Artículo en Inglés | MEDLINE | ID: mdl-38767944

RESUMEN

Cadaverine is a critical C5 monomer for the production of polyamides. Pyridoxal 5'-phosphate (PLP), as a crucial cofactor for the key enzyme lysine decarboxylase in the cadaverine biosynthesis pathway, has seen a persistent shortage, leading to limitations in cadaverine production. To address this issue, a dual-pathway strategy was implemented, synergistically enhancing both endogenous and heterologous PLP synthesis modules and resulting in improved PLP synthesis. Subsequently, a growth-stage-dependent molecular switch was introduced to balance the precursor competition between PLP synthesis and cell growth. Additionally, a PLP sensor-based negative feedback circuit was constructed by integrating a newly identified PLP-responsive promoter PygjH and an arabinose-regulated system, dynamically regulating the expression of the PLP synthetic genes and preventing excessive intracellular PLP accumulation. The optimal strain, L18, cultivated in the minimal medium AM1, demonstrated cadaverine production with a titer, yield, and productivity of 64.03 g/L, 0.23 g/g glucose, and 1.33 g/L/h, respectively. This represents the highest titer reported to date in engineered Escherichia coli by fed-batch fermentation in a minimal medium.


Asunto(s)
Cadaverina , Medios de Cultivo , Escherichia coli , Ingeniería Metabólica , Fosfato de Piridoxal , Cadaverina/metabolismo , Cadaverina/biosíntesis , Fosfato de Piridoxal/metabolismo , Escherichia coli/genética , Escherichia coli/metabolismo , Ingeniería Metabólica/métodos , Medios de Cultivo/química , Regiones Promotoras Genéticas , Carboxiliasas/genética , Carboxiliasas/metabolismo
12.
Nature ; 629(8010): 98-104, 2024 May.
Artículo en Inglés | MEDLINE | ID: mdl-38693411

RESUMEN

Photobiocatalysis-where light is used to expand the reactivity of an enzyme-has recently emerged as a powerful strategy to develop chemistries that are new to nature. These systems have shown potential in asymmetric radical reactions that have long eluded small-molecule catalysts1. So far, unnatural photobiocatalytic reactions are limited to overall reductive and redox-neutral processes2-9. Here we report photobiocatalytic asymmetric sp3-sp3 oxidative cross-coupling between organoboron reagents and amino acids. This reaction requires the cooperative use of engineered pyridoxal biocatalysts, photoredox catalysts and an oxidizing agent. We repurpose a family of pyridoxal-5'-phosphate-dependent enzymes, threonine aldolases10-12, for the α-C-H functionalization of glycine and α-branched amino acid substrates by a radical mechanism, giving rise to a range of α-tri- and tetrasubstituted non-canonical amino acids 13-15 possessing up to two contiguous stereocentres. Directed evolution of pyridoxal radical enzymes allowed primary and secondary radical precursors, including benzyl, allyl and alkylboron reagents, to be coupled in an enantio- and diastereocontrolled fashion. Cooperative photoredox-pyridoxal biocatalysis provides a platform for sp3-sp3 oxidative coupling16, permitting the stereoselective, intermolecular free-radical transformations that are unknown to chemistry or biology.


Asunto(s)
Aminoácidos , Biocatálisis , Acoplamiento Oxidativo , Procesos Fotoquímicos , Aminoácidos/biosíntesis , Aminoácidos/química , Aminoácidos/metabolismo , Biocatálisis/efectos de la radiación , Evolución Molecular Dirigida , Radicales Libres/química , Radicales Libres/metabolismo , Glicina/química , Glicina/metabolismo , Glicina Hidroximetiltransferasa/metabolismo , Glicina Hidroximetiltransferasa/química , Indicadores y Reactivos , Luz , Acoplamiento Oxidativo/efectos de la radiación , Fosfato de Piridoxal/metabolismo , Estereoisomerismo , Aminoácidos de Cadena Ramificada/química , Aminoácidos de Cadena Ramificada/metabolismo
13.
Nat Metab ; 6(6): 1108-1127, 2024 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-38822028

RESUMEN

Oxygen is critical for all metazoan organisms on the earth and impacts various biological processes in physiological and pathological conditions. While oxygen-sensing systems inducing acute hypoxic responses, including the hypoxia-inducible factor pathway, have been identified, those operating in prolonged hypoxia remain to be elucidated. Here we show that pyridoxine 5'-phosphate oxidase (PNPO), which catalyses bioactivation of vitamin B6, serves as an oxygen sensor and regulates lysosomal activity in macrophages. Decreased PNPO activity under prolonged hypoxia reduced an active form of vitamin B6, pyridoxal 5'-phosphate (PLP), and inhibited lysosomal acidification, which in macrophages led to iron dysregulation, TET2 protein loss and delayed resolution of the inflammatory response. Among PLP-dependent metabolism, supersulfide synthesis was suppressed in prolonged hypoxia, resulting in the lysosomal inhibition and consequent proinflammatory phenotypes of macrophages. The PNPO-PLP axis creates a distinct layer of oxygen sensing that gradually shuts down PLP-dependent metabolism in response to prolonged oxygen deprivation.


Asunto(s)
Lisosomas , Macrófagos , Fosfato de Piridoxal , Lisosomas/metabolismo , Macrófagos/metabolismo , Animales , Ratones , Fosfato de Piridoxal/metabolismo , Hipoxia/metabolismo , Hipoxia de la Célula , Vitamina B 6/metabolismo , Oxígeno/metabolismo , Inflamación/metabolismo
14.
J Biol Chem ; 300(6): 107404, 2024 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-38782204

RESUMEN

Infectious diseases are a significant cause of death, and recent studies estimate that common bacterial infectious diseases were responsible for 13.6% of all global deaths in 2019. Among the most significant bacterial pathogens is Staphylococcus aureus, accounting for more than 1.1 million deaths worldwide in 2019. Vitamin biosynthesis has been proposed as a promising target for antibacterial therapy. Here, we investigated the biochemical, structural, and dynamic properties of the enzyme complex responsible for vitamin B6 (pyridoxal 5-phosphate, PLP) biosynthesis in S. aureus, which comprises enzymes SaPdx1 and SaPdx2. The crystal structure of the 24-mer complex of SaPdx1-SaPdx2 enzymes indicated that the S. aureus PLP synthase complex forms a highly dynamic assembly with transient interaction between the enzymes. Solution scattering data indicated that SaPdx2 typically binds to SaPdx1 at a substoichiometric ratio. We propose a structure-based view of the PLP synthesis mechanism initiated with the assembly of SaPLP synthase complex that proceeds in a highly dynamic interaction between Pdx1 and Pdx2. This interface interaction can be further explored as a potentially druggable site for the design of new antibiotics.


Asunto(s)
Proteínas Bacterianas , Fosfato de Piridoxal , Staphylococcus aureus , Staphylococcus aureus/enzimología , Staphylococcus aureus/metabolismo , Fosfato de Piridoxal/metabolismo , Fosfato de Piridoxal/química , Proteínas Bacterianas/química , Proteínas Bacterianas/metabolismo , Proteínas Bacterianas/genética , Cristalografía por Rayos X , Conformación Proteica , Unión Proteica
15.
Arch Biochem Biophys ; 756: 110011, 2024 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-38649133

RESUMEN

Structure-function relationships are key to understanding enzyme mechanisms, controlling enzyme activities, and designing biocatalysts. Here, we investigate the functions of arginine residues in the active sites of pyridoxal-5'-phosphate (PLP)-dependent non-canonical d-amino acid transaminases, focusing on the analysis of a transaminase from Haliscomenobacter hydrossis. Our results show that the tandem of arginine residues R28* and R90, which form the conserved R-[RK] motif in non-canonical d-amino acid transaminases, not only facilitates effective substrate binding but also regulates the catalytic properties of PLP. Non-covalent interactions between residues R28*, R90, and Y147 strengthen the hydrogen bond between Y147 and PLP, thereby maintaining the reactivity of the cofactor. Next, the R90 residue contributes to the stability of the holoenzyme. Finally, the R90I substitution induces structural changes that lead to substrate promiscuity, as evidenced by the effective binding of substrates with and without the α-carboxylate group. This study sheds light on the structural determinants of the activity of non-canonical d-amino acid transaminases. Understanding the structural basis of the active site plasticity in the non-canonical transaminase from H. hydrossis, which is characterized by effective conversion of d-amino acids and α-keto acids, may help to tailor it for industrial applications.


Asunto(s)
Arginina , Dominio Catalítico , Fosfato de Piridoxal , Transaminasas , Transaminasas/metabolismo , Transaminasas/química , Arginina/química , Arginina/metabolismo , Fosfato de Piridoxal/metabolismo , Fosfato de Piridoxal/química , Especificidad por Sustrato , Proteínas Bacterianas/química , Proteínas Bacterianas/metabolismo , Modelos Moleculares
16.
Plant Cell Rep ; 43(5): 127, 2024 Apr 23.
Artículo en Inglés | MEDLINE | ID: mdl-38652203

RESUMEN

KEY MESSAGE: This study identified 16 pyridoxal phosphate-dependent decarboxylases in olive at the whole-genome level, conducted analyses on their physicochemical properties, evolutionary relationships and characterized their activity. Group II pyridoxal phosphate-dependent decarboxylases (PLP_deC II) mediate the biosynthesis of characteristic olive metabolites, such as oleuropein and hydroxytyrosol. However, there have been no report on the functional differentiation of this gene family at the whole-genome level. This study conducted an exploration of the family members of PLP_deC II at the whole-genome level, identified 16 PLP_deC II genes, and analyzed their gene structure, physicochemical properties, cis-acting elements, phylogenetic evolution, and gene expression patterns. Prokaryotic expression and enzyme activity assays revealed that OeAAD2 and OeAAD4 could catalyze the decarboxylation reaction of tyrosine and dopa, resulting in the formation of their respective amine compounds, but it did not catalyze phenylalanine and tryptophan. Which is an important step in the synthetic pathway of hydroxytyrosol and oleuropein. This finding established the foundational data at the molecular level for studying the functional aspects of the olive PLP_deC II gene family and provided essential gene information for genetic improvement of olive.


Asunto(s)
Regulación de la Expresión Génica de las Plantas , Olea , Alcohol Feniletílico , Alcohol Feniletílico/análogos & derivados , Filogenia , Olea/genética , Olea/metabolismo , Alcohol Feniletílico/metabolismo , Proteínas de Plantas/genética , Proteínas de Plantas/metabolismo , Genoma de Planta , Glucósidos Iridoides/metabolismo , Carboxiliasas/genética , Carboxiliasas/metabolismo , Fosfato de Piridoxal/metabolismo , Iridoides/metabolismo , Genes de Plantas
17.
Int J Biol Macromol ; 268(Pt 1): 131696, 2024 May.
Artículo en Inglés | MEDLINE | ID: mdl-38642679

RESUMEN

Carbon­carbon (C-C) bonds serve as the fundamental structural backbone of organic molecules. As a critical CC bond forming enzyme, α-oxoamine synthase is responsible for the synthesis of α-amino ketones by performing the condensation reaction between amino acids and acyl-CoAs. We previously identified an α-oxoamine synthase (AOS), named as Alb29, involved in albogrisin biosynthesis in Streptomyces albogriseolus MGR072. This enzyme belongs to the α-oxoamine synthase family, a subfamily under the pyridoxal 5'-phosphate (PLP) dependent enzyme superfamily. In this study, we report the crystal structures of Alb29 bound to PLP and L-Glu, which provide the atomic-level structural insights into the substrate recognition by Alb29. We discover that Alb29 can catalyze the amino transformation from L-Gln to L-Glu, besides the condensation of L-Glu with ß-methylcrotonyl coenzyme A. Subsequent structural analysis has revealed that one flexible loop in Alb29 plays an important role in both amino transformation and condensation. Based on the crystal structure of the S87G mutant in the loop region, we capture two distinct conformations of the flexible loop in the active site, compared with the wild-type Alb29. Our study offers valuable insights into the catalytic mechanism underlying substrate recognition of Alb29.


Asunto(s)
Ácido Glutámico , Especificidad por Sustrato , Ácido Glutámico/química , Modelos Moleculares , Streptomyces/enzimología , Cristalografía por Rayos X , Dominio Catalítico , Conformación Proteica , Fosfato de Piridoxal/metabolismo , Fosfato de Piridoxal/química , Proteínas Bacterianas/química , Proteínas Bacterianas/metabolismo , Proteínas Bacterianas/genética , Relación Estructura-Actividad
18.
J Bacteriol ; 206(4): e0004224, 2024 04 18.
Artículo en Inglés | MEDLINE | ID: mdl-38563759

RESUMEN

In Salmonella enterica, the absence of the RidA deaminase results in the accumulation of the reactive enamine 2-aminoacrylate (2AA). The resulting 2AA stress impacts metabolism and prevents growth in some conditions by inactivating a specific target pyridoxal 5'-phosphate (PLP)-dependent enzyme(s). The detrimental effects of 2AA stress can be overcome by changing the sensitivity of a critical target enzyme or modifying flux in one or more nodes in the metabolic network. The catabolic L-alanine racemase DadX is a target of 2AA, which explains the inability of an alr ridA strain to use L-alanine as the sole nitrogen source. Spontaneous mutations that suppressed the growth defect of the alr ridA strain were identified as lesions in folE, which encodes GTP cyclohydrolase and catalyzes the first step of tetrahydrofolate (THF) synthesis. The data here show that THF limitation resulting from a folE lesion, or inhibition of dihydrofolate reductase (FolA) by trimethoprim, decreases the 2AA generated from endogenous serine. The data are consistent with an increased level of threonine, resulting from low folate levels, decreasing 2AA stress.IMPORTANCERidA is an enamine deaminase that has been characterized as preventing the 2-aminoacrylate (2AA) stress. In the absence of RidA, 2AA accumulates and damages various cellular enzymes. Much of the work describing the 2AA stress system has depended on the exogenous addition of serine to increase the production of the enamine stressor. The work herein focuses on understanding the effect of 2AA stress generated from endogenous serine pools. As such, this work describes the consequences of a subtle level of stress that nonetheless compromises growth in at least two conditions. Describing mechanisms that alter the physiological consequences of 2AA stress increases our understanding of endogenous metabolic stress and how the robustness of the metabolic network allows perturbations to be modulated.


Asunto(s)
Salmonella enterica , Scrapie , Ovinos , Animales , Salmonella enterica/genética , Acrilatos/metabolismo , Proteínas Bacterianas/genética , Fosfato de Piridoxal/metabolismo , Tetrahidrofolatos/metabolismo , Serina/metabolismo
19.
Int J Mol Sci ; 25(8)2024 Apr 15.
Artículo en Inglés | MEDLINE | ID: mdl-38673932

RESUMEN

Platinum-containing chemotherapeutic drugs are efficacious in many forms of cancer but are dose-restricted by serious side effects, of which peripheral neuropathy induced by oxidative-nitrosative-stress-mediated chain reactions is most disturbing. Recently, hope has been raised regarding the catalytic antioxidants mangafodipir (MnDPDP) and calmangafodipir [Ca4Mn(DPDP)5; PledOx®], which by mimicking mitochondrial manganese superoxide dismutase (MnSOD) may be expected to overcome oxaliplatin-associated chemotherapy-induced peripheral neuropathy (CIPN). Unfortunately, two recent phase III studies (POLAR A and M trials) applying Ca4Mn(DPDP)5 in colorectal cancer (CRC) patients receiving multiple cycles of FOLFOX6 (5-FU + oxaliplatin) failed to demonstrate efficacy. Instead of an anticipated 50% reduction in the incidence of CIPN in patients co-treated with Ca4Mn(DPDP)5, a statistically significant increase of about 50% was seen. The current article deals with confusing differences between early and positive findings with MnDPDP in comparison to the recent findings with Ca4Mn(DPDP)5. The POLAR failure may also reveal important mechanisms behind oxaliplatin-associated CIPN itself. Thus, exacerbated neurotoxicity in patients receiving Ca4Mn(DPDP)5 may be explained by redox interactions between Pt2+ and Mn2+ and subtle oxidative-nitrosative chain reactions. In peripheral sensory nerves, Pt2+ presumably leads to oxidation of the Mn2+ from Ca4Mn(DPDP)5 as well as from Mn2+ in MnSOD and other endogenous sources. Thereafter, Mn3+ may be oxidized by peroxynitrite (ONOO-) into Mn4+, which drives site-specific nitration of tyrosine (Tyr) 34 in the MnSOD enzyme. Conformational changes of MnSOD then lead to the closure of the superoxide (O2•-) access channel. A similar metal-driven nitration of Tyr74 in cytochrome c will cause an irreversible disruption of electron transport. Altogether, these events may uncover important steps in the mechanism behind Pt2+-associated CIPN. There is little doubt that the efficacy of MnDPDP and its therapeutic improved counterpart Ca4Mn(DPDP)5 mainly depends on their MnSOD-mimetic activity when it comes to their potential use as rescue medicines during, e.g., acute myocardial infarction. However, pharmacokinetic considerations suggest that the efficacy of MnDPDP on Pt2+-associated neurotoxicity depends on another action of this drug. Electron paramagnetic resonance (EPR) studies have demonstrated that Pt2+ outcompetes Mn2+ and endogenous Zn2+ in binding to fodipir (DPDP), hence suggesting that the previously reported protective efficacy of MnDPDP against CIPN is a result of chelation and elimination of Pt2+ by DPDP, which in turn suggests that Mn2+ is unnecessary for efficacy when it comes to oxaliplatin-associated CIPN.


Asunto(s)
Antineoplásicos , Manganeso , Oxaliplatino , Enfermedades del Sistema Nervioso Periférico , Platino (Metal) , Humanos , Antineoplásicos/efectos adversos , Ácido Edético/análogos & derivados , Manganeso/efectos adversos , Estrés Nitrosativo/efectos de los fármacos , Oxaliplatino/efectos adversos , Oxaliplatino/farmacología , Estrés Oxidativo/efectos de los fármacos , Enfermedades del Sistema Nervioso Periférico/inducido químicamente , Enfermedades del Sistema Nervioso Periférico/metabolismo , Platino (Metal)/efectos adversos , Fosfato de Piridoxal/análogos & derivados , Fosfato de Piridoxal/farmacología , Fosfato de Piridoxal/metabolismo , Superóxido Dismutasa/metabolismo , Ensayos Clínicos Fase III como Asunto
20.
Angew Chem Int Ed Engl ; 63(31): e202319344, 2024 07 29.
Artículo en Inglés | MEDLINE | ID: mdl-38519422

RESUMEN

Amino acids (AAs) are modular building blocks which nature uses to synthesize both macromolecules, such as proteins, and small molecule natural products, such as alkaloids and non-ribosomal peptides. While the 20 main proteinogenic AAs display relatively limited side chain diversity, a wide range of non-canonical amino acids (ncAAs) exist that are not used by the ribosome for protein synthesis, but contain a broad array of structural features and functional groups. In this communication, we report the discovery of the biosynthetic pathway for a new ncAA, pazamine, which contains a cyclopropane ring formed in two steps. In the first step, a chlorine is added onto the C4 position of lysine by a radical halogenase, PazA. The cyclopropane ring is then formed in the next step by a pyridoxal-5'-phosphate-dependent enzyme, PazB, via an SN2-like attack at C4 to eliminate chloride. Genetic studies of this pathway in the native host, Pseudomonas azotoformans, show that pazamine potentially inhibits ethylene biosynthesis in growing plants based on alterations in the root phenotype of Arabidopsis thaliana seedlings. We further show that PazB can be utilized to make an alternative cyclobutane-containing AA. These discoveries may lead to advances in biocatalytic production of specialty chemicals and agricultural biotechnology.


Asunto(s)
Aminoácidos , Halogenación , Aminoácidos/metabolismo , Aminoácidos/química , Aminoácidos/biosíntesis , Fosfato de Piridoxal/metabolismo , Fosfato de Piridoxal/química , Arabidopsis/metabolismo , Arabidopsis/enzimología , Pseudomonas/metabolismo , Pseudomonas/enzimología , Ciclopropanos/química , Ciclopropanos/metabolismo
SELECCIÓN DE REFERENCIAS
DETALLE DE LA BÚSQUEDA