Two-step bioconversion of pyridoxal 5'-phosphate from pyridoxine through cofactor regeneration and pyridoxine 5'-phosphate oxidase evolution.
Two-step bioconversion of pyridoxal 5'-phosphate from pyridoxine through cofactor regeneration and pyridoxine 5'-phosphate oxidase evolution.
- Research Article
18
- 10.1016/j.biochi.2020.12.025
- Jan 6, 2021
- Biochimie
Inborn errors in the vitamin B6 salvage enzymes associated with neonatal epileptic encephalopathy and other pathologies
- Research Article
117
- 10.1128/jb.180.7.1814-1821.1998
- Apr 1, 1998
- Journal of Bacteriology
pdrK encodes a pyridoxine (PN)/pyridoxal (PL)/pyridoxamine (PM) kinase thought to function in the salvage pathway of pyridoxal 5'-phosphate (PLP) coenzyme biosynthesis. The observation that pdxK null mutants still contain PL kinase activity led to the hypothesis that Escherichia coli K-12 contains at least one other B6-vitamer kinase. Here we support this hypothesis by identifying the pdxY gene (formally, open reading frame f287b) at 36.92 min, which encodes a novel PL kinase. PdxY was first identified by its homology to PdxK in searches of the complete E. coli genome. Minimal clones of pdxY+ overexpressed PL kinase specific activity about 10-fold. We inserted an omega cassette into pdxY and crossed the resulting pdxY::omegaKan(r) mutation into the bacterial chromosome of a pdrB mutant, in which de novo PLP biosynthesis is blocked. We then determined the growth characteristics and PL and PN kinase specific activities in extracts of pdxK and pdxY single and double mutants. Significantly, the requirement of the pdxB pdxK pdxY triple mutant for PLP was not satisfied by PL and PN, and the triple mutant had negligible PL and PN kinase specific activities. Our combined results suggest that the PL kinase PdxY and the PN/PL/PM kinase PdxK are the only physiologically important B6 vitamer kinases in E. coli and that their function is confined to the PLP salvage pathway. Last, we show that pdxY is located downstream from pdxH (encoding PNP/PMP oxidase) and essential tyrS (encoding aminoacyl-tRNA(Tyr) synthetase) in a multifunctional operon. pdxY is completely cotranscribed with tyrS, but about 92% of tyrS transcripts terminate at a putative Rho-factor-dependent attenuator located in the tyrS-pdxY intercistronic region.
- Research Article
11
- 10.3390/ijms24010642
- Dec 30, 2022
- International journal of molecular sciences
Pyridoxal 5'-phosphate (PLP), the active form of vitamin B6, serves as a cofactor for scores of B6-dependent (PLP-dependent) enzymes involved in many cellular processes. One such B6 enzyme is dopa decarboxylase (DDC), which is required for the biosynthesis of key neurotransmitters, e.g., dopamine and serotonin. PLP-dependent enzymes are biosynthesized as apo-B6 enzymes and then converted to the catalytically active holo-B6 enzymes by Schiff base formation between the aldehyde of PLP and an active site lysine of the protein. In eukaryotes, PLP is made available to the B6 enzymes through the activity of the B6-salvage enzymes, pyridoxine 5'-phosphate oxidase (PNPO) and pyridoxal kinase (PLK). To minimize toxicity, the cell keeps the content of free PLP (unbound) very low through dephosphorylation and PLP feedback inhibition of PNPO and PLK. This has led to a proposed mechanism of complex formation between the B6-salvage enzymes and apo-B6 enzymes prior to the transfer of PLP, although such complexes are yet to be characterized at the atomic level, presumably due to their transient nature. A computational study, for the first time, was used to predict a likely PNPO and DDC complex, which suggested contact between the allosteric PLP tight-binding site on PNPO and the active site of DDC. Using isothermal calorimetry and/or surface plasmon resonance, we also show that PNPO binds both apoDDC and holoDDC with dissociation constants of 0.93 ± 0.07 μM and 2.59 ± 0.11 μM, respectively. Finally, in the presence of apoDDC, the tightly bound PLP on PNPO is transferred to apoDDC, resulting in the formation of about 35% holoDDC.
- Research Article
- 10.1111/febs.70471
- Feb 25, 2026
- The FEBS journal
Pyridoxal 5'-phosphate (PLP), the coenzyme form of vitamin B6, is indispensable for diverse metabolic processes, especially amino acid metabolism. In mammals, PLP is primarily synthesized via a salvage pathway involving pyridoxal kinase (PLK), pyridoxine/pyridoxamine 5'-phosphate oxidase (PNPO), and pyridoxal phosphate phosphatase (PLPP). However, recent evidence suggests the presence of additional, yet unidentified, enzymatic contributors to this pathway. Here, we identify aldo-keto reductase family 1 member C (AKR1C) isozymes as previously unrecognized enzymes involved in vitamin B6 metabolism. We demonstrate that AKR1Cs catalyze two novel reactions: an NADPH-dependent pyridoxal reductase (PLR) activity that converts pyridoxal (PL) to pyridoxine (PN), and an NADP+-dependent pyridoxal dehydrogenase (PLD) activity that oxidizes PL to 4-pyridoxolactone (4-PLA). Both reactions occur under physiological conditions and significantly impact intracellular vitamin B6 vitamer profiles. Moreover, we show that elevated PL levels suppress AKR1C activities toward non-B6 substrates, indicating reciprocal cross-talk between vitamin B6 metabolism and other AKR1C-dependent metabolic processes. This study expands the current framework of mammalian vitamin B6 metabolism, highlighting AKR1Cs as metabolic hubs with broad regulatory implications.
- Research Article
7
- 10.1016/j.jsb.2020.107645
- Oct 9, 2020
- Journal of Structural Biology
Characterization and functional insights into the Entamoeba histolytica pyridoxal kinase, an enzyme essential for its survival
- Research Article
- 10.25772/5zmh-eg93
- Jul 12, 2014
- VCU Scholars Compass (Virginia Commonwealth University)
xii Chapter Page 1 General Introduction 1 1.1 Role of water in protein-protein complex interface 1 1.1.1 Water the vivacious molecule 1 1.1.2 Different roles of water in biological processes 1 1.1.2.1 Role of water molecules in protein-ligand binding... 2 1.1.2.2 Role of water molecules in protein-DNA binding.... 3 1.1.2.3 Role of water molecules in protein-protein binding.. 4 1.2 Pyridoxal kinase (PLK) – Serine hydroxymethyltransferase (SHMT) complex 8 1.2.1 Pyridoxal 5‟-Phosphate (PLP)-dependent enzymes 8 1.2.2 Pyridoxal Kinase (PLK) 8 1.2.3 Pyridoxal 5‟-Phosphate (PLP) metabolic pathways 10 1.2.4 Mechanism of transfer of PLP from PLK to SHMT and other
- Research Article
3
- 10.1111/febs.17274
- Sep 17, 2024
- The FEBS journal
Pyridoxal 5'-phosphate (PLP), the catalytically active form of vitamin B6, acts as a cofactor in many metabolic processes. In humans, PLP is produced in the reactions catalysed by pyridox(am)ine 5'-phosphate oxidase (PNPO) and pyridoxal kinase (PDXK). Both PNPO and PDXK are involved in cancer progression of many tumours. The silencing of PNPO and PDXK encoding genes determines a strong reduction in tumour size and neoplastic cell invasiveness in models of acute myeloid leukaemia (in the case of PDXK) and ovarian and breast cancer (in the case of PNPO). In the present work, we demonstrate that pyridoxilidenerhodanine 5'-phosphate (PLP-R), a PLP analogue that has been tested by other authors on malignant cell lines reporting a reduction in proliferation, inhibits PNPO in vitro following a mixed competitive and allosteric mechanism. We also show that the unphosphorylated precursor of this inhibitor (PL-R), which has more favourable pharmacokinetic properties according to our predictions, is phosphorylated by PDXK and therefore transformed into PLP-R. On this ground, we propose the prototype of a novel prodrug-drug system as a useful starting point for the development of new, potential, antineoplastic agents.
- Research Article
11
- 10.1128/jb.00521-21
- Jan 3, 2022
- Journal of Bacteriology
The pyridoxal 5'-phosphate (PLP)-binding protein (PLPBP) plays an important role in vitamin B6 homeostasis. Loss of this protein in organisms such as Escherichia coli and humans disrupts the vitamin B6 pool and induces intracellular accumulation of pyridoxine 5'-phosphate (PNP), which is normally undetectable in wild-type cells. This accumulated PNP could affect diverse metabolic systems through the inhibition of some PLP-dependent enzymes. In this study, we investigated the as-yet-unclear mechanism of intracellular accumulation of PNP due to the loss of PLPBP protein encoded by yggS in E. coli. Genetic studies using several PLPBP-deficient strains of E. coli lacking a known enzyme(s) in the de novo or salvage pathways of vitamin B6, including pyridoxine (amine) 5'-phosphate oxidase (PNPO), PNP synthase, pyridoxal kinase, and pyridoxal reductase, demonstrated that neither the flux from the de novo pathway nor the salvage pathway solely contributed to the PNP accumulation caused by the PLPBP mutation. Studies of the strains lacking both PLPBP and PNPO suggested that PNP shares the same pool with PMP, and showed that PNP levels are impacted by PMP levels and vice versa. Here, we show that disruption of PLPBP perturbs PMP homeostasis, which may result in PNP accumulation in the PLPBP-deficient strains. IMPORTANCE A PLP-binding protein (PLPBP) from the conserved COG0325 family has recently been recognized as a key player in vitamin B6 homeostasis in various organisms. Loss of PLPBP disrupts vitamin B6 homeostasis and perturbs diverse metabolisms, including amino acid and α-keto acid metabolism. Accumulation of PNP is a characteristic phenotype of PLPBP deficiency and is suggested to be a potential cause of the pleiotropic effects, but the mechanism of this accumulation has been poorly understood. In this study, we show that fluxes for PNP synthesis/metabolism are not responsible for the accumulation of PNP. Our results indicate that PLPBP is involved in the homeostasis of pyridoxamine 5'-phosphate, and that its disruption may lead to the accumulation of PNP in PLPBP deficiency.
- Research Article
24
- 10.3945/jn.114.208769
- Jul 1, 2015
- The Journal of Nutrition
Common Variants at Putative Regulatory Sites of the Tissue Nonspecific Alkaline Phosphatase Gene Influence Circulating Pyridoxal 5′-Phosphate Concentration in Healthy Adults1–3
- Research Article
15
- 10.3390/ijms25063174
- Mar 9, 2024
- International Journal of Molecular Sciences
Enzymes reliant on pyridoxal 5'-phosphate (PLP), the metabolically active form of vitamin B6, hold significant importance in both biology and medicine. They facilitate various biochemical reactions, particularly in amino acid and neurotransmitter metabolisms. Vitamin B6 is absorbed by organisms in its non-phosphorylated form and phosphorylated within cells via pyridoxal kinase (PLK) and pyridox-(am)-ine 5'-phosphate oxidase (PNPOx). The flavin mononucleotide-dependent PNPOx enzyme converts pyridoxine 5'-phosphate and pyridoxamine 5'-phosphate into PLP. PNPOx is vital for both biosynthesis and salvage pathways in organisms producing B6 vitamers. However, for those depending on vitamin B6 as a nutrient, PNPOx participates only in the salvage pathway. Transferring the PLP produced via PNPOx to client apo-enzymes is indispensable for their catalytic function, proper folding and targeting of specific organelles. PNPOx activity deficiencies due to inborn errors lead to severe neurological pathologies, particularly neonatal epileptic encephalopathy. PNPOx maintains PLP homeostasis through highly regulated mechanisms, including structural alterations throughout the catalytic cycle and allosteric PLP binding, influencing substrate transformation at the active site. Elucidation at the molecular level of the mechanisms underlying PNPOx activity deficiencies is a requirement to develop personalized approaches to treat related disorders. Finally, despite shared features, the few PNPOx enzymes molecularly and functionally studied show species-specific regulatory properties that open the possibility of targeting it in pathogenic organisms.
- Research Article
26
- 10.1016/j.bbapap.2015.01.013
- Feb 3, 2015
- Biochimica et Biophysica Acta (BBA) - Proteins and Proteomics
On the mechanism of Escherichia coli pyridoxal kinase inhibition by pyridoxal and pyridoxal 5′-phosphate
- Research Article
33
- 10.1016/j.enzmictec.2017.05.002
- May 13, 2017
- Enzyme and Microbial Technology
Biotransformation of pyridoxal 5'-phosphate from pyridoxal by pyridoxal kinase (pdxY) to support cadaverine production in Escherichia coli.
- Research Article
73
- 10.1016/s0006-2952(97)00252-9
- Oct 1, 1997
- Biochemical Pharmacology
Mechanisms of the inhibition of human erythrocyte pyridoxal kinase by drugs
- Research Article
14
- 10.14348/molcells.2018.0363
- Nov 14, 2018
- Molecules and Cells
Involvement of Pyridoxine/Pyridoxamine 5'-Phosphate Oxidase (PDX3) in Ethylene-Induced Auxin Biosynthesis in the Arabidopsis Root.
- Research Article
12
- 10.3389/fphar.2019.01086
- Sep 20, 2019
- Frontiers in Pharmacology
Neonatal epileptic encephalopathy (NEE), as a result of pyridoxine 5′-phosphate oxidase (PNPO) deficiency, is a rare neural disorder characterized by intractable seizures and usually leads to early infant death. The clinical phenotypes do not respond to antiepileptic drugs but are alleviated in most cases by giving large doses of pyridoxal 5′-phosphate (PLP). PLP is the active form of vitamin B6 participating in more than 100 enzymatic pathways. One of the causes of NEE is pathogenic mutations in the gene for human PNPO (hPNPO). PNPO is a key enzyme in converting pyridoxine (PN), the common dietary form of vitamin B6, and some other B6 vitamers to PLP. More than 25 different mutations in hPNPO, which result in reduced catalytic activity, have been described for PNPO-deficiency NEE. To date, no animal model is available to test new therapeutic strategies. In this report, we describe using zebrafish with reduced activity of Pnpo as an animal model. Knocking down zPnpo resulted in developmental anomalies including brain malformation and impaired locomotor activity, similar to the clinical features of PNPO-deficiency NEE. Other anomalies include a defective circulation system. These anomalies were significantly alleviated by co-injecting either zpnpo or hPNPO mRNAs. As expected from clinical observations in humans, supplementing with PLP improved the morphological and behavioral anomalies. PN only showed marginal positive effects, and only in a few anomalies. Remarkably, pyridoxamine (PM), another dietary form of vitamin B6, showed rescue effects even at a lower concentration than PLP, presenting a possible new therapeutic treatment for PNPO-deficiency NEE. Finally, GABA, a neurotransmitter whose biosynthesis depends on a PLP-dependent enzyme, showed some positive rescue effect. These results suggest zebrafish to be a promising PNPO-deficiency model for studying PLP homeostasis and drug therapy in vivo.