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1.
Mol Cell ; 69(1): 75-86.e9, 2018 01 04.
Artículo en Inglés | MEDLINE | ID: mdl-29290613

RESUMEN

Human APOBEC3H and homologous single-stranded DNA cytosine deaminases are unique to mammals. These DNA-editing enzymes function in innate immunity by restricting the replication of viruses and transposons. APOBEC3H also contributes to cancer mutagenesis. Here, we address the fundamental nature of RNA in regulating human APOBEC3H activities. APOBEC3H co-purifies with RNA as an inactive protein, and RNase A treatment enables strong DNA deaminase activity. RNA-binding-defective mutants demonstrate clear separation of function by becoming DNA hypermutators. Biochemical and crystallographic data demonstrate a mechanism in which double-stranded RNA mediates enzyme dimerization. Additionally, APOBEC3H separation-of-function mutants show that RNA binding is required for cytoplasmic localization, packaging into HIV-1 particles, and antiviral activity. Overall, these results support a model in which structured RNA negatively regulates the potentially harmful DNA deamination activity of APOBEC3H while, at the same time, positively regulating its antiviral activity.


Asunto(s)
Aminohidrolasas/metabolismo , Dimerización , VIH-1/crecimiento & desarrollo , Ensamble de Virus/genética , Aminohidrolasas/genética , Línea Celular Tumoral , Cristalografía por Rayos X , Citosina Desaminasa/metabolismo , Células HEK293 , Células HeLa , Humanos , Estructura Secundaria de Proteína , ARN/genética , ARN/metabolismo , Proteínas de Unión al ARN/genética , Ribonucleasa Pancreática/metabolismo
2.
Mol Cell Proteomics ; 23(5): 100755, 2024 May.
Artículo en Inglés | MEDLINE | ID: mdl-38548018

RESUMEN

Human APOBEC3 enzymes are a family of single-stranded (ss)DNA and RNA cytidine deaminases that act as part of the intrinsic immunity against viruses and retroelements. These enzymes deaminate cytosine to form uracil which can functionally inactivate or cause degradation of viral or retroelement genomes. In addition, APOBEC3s have deamination-independent antiviral activity through protein and nucleic acid interactions. If expression levels are misregulated, some APOBEC3 enzymes can access the human genome leading to deamination and mutagenesis, contributing to cancer initiation and evolution. While APOBEC3 enzymes are known to interact with large ribonucleoprotein complexes, the function and RNA dependence are not entirely understood. To further understand their cellular roles, we determined by affinity purification mass spectrometry (AP-MS) the protein interaction network for the human APOBEC3 enzymes and mapped a diverse set of protein-protein and protein-RNA mediated interactions. Our analysis identified novel RNA-mediated interactions between APOBEC3C, APOBEC3H Haplotype I and II, and APOBEC3G with spliceosome proteins, and APOBEC3G and APOBEC3H Haplotype I with proteins involved in tRNA methylation and ncRNA export from the nucleus. In addition, we identified RNA-independent protein-protein interactions with APOBEC3B, APOBEC3D, and APOBEC3F and the prefoldin family of protein-folding chaperones. Interaction between prefoldin 5 (PFD5) and APOBEC3B disrupted the ability of PFD5 to induce degradation of the oncogene cMyc, implicating the APOBEC3B protein interaction network in cancer. Altogether, the results uncover novel functions and interactions of the APOBEC3 family and suggest they may have fundamental roles in cellular RNA biology, their protein-protein interactions are not redundant, and there are protein-protein interactions with tumor suppressors, suggesting a role in cancer biology. Data are available via ProteomeXchange with the identifier PXD044275.


Asunto(s)
Citidina Desaminasa , Mapas de Interacción de Proteínas , Humanos , Citidina Desaminasa/metabolismo , Citidina Desaminasa/genética , Desaminación , Desaminasas APOBEC/metabolismo , Aminohidrolasas/metabolismo , Aminohidrolasas/genética , Células HEK293 , Citosina Desaminasa/metabolismo , Desaminasa APOBEC-3G/metabolismo , Desaminasa APOBEC-3G/genética , Empalmosomas/metabolismo , Unión Proteica , Espectrometría de Masas , ARN/metabolismo , Antígenos de Histocompatibilidad Menor/metabolismo , Antígenos de Histocompatibilidad Menor/genética
3.
Nature ; 571(7764): 275-278, 2019 07.
Artículo en Inglés | MEDLINE | ID: mdl-31181567

RESUMEN

Recently developed DNA base editing methods enable the direct generation of desired point mutations in genomic DNA without generating any double-strand breaks1-3, but the issue of off-target edits has limited the application of these methods. Although several previous studies have evaluated off-target mutations in genomic DNA4-8, it is now clear that the deaminases that are integral to commonly used DNA base editors often bind to RNA9-13. For example, the cytosine deaminase APOBEC1-which is used in cytosine base editors (CBEs)-targets both DNA and RNA12, and the adenine deaminase TadA-which is used in adenine base editors (ABEs)-induces site-specific inosine formation on RNA9,11. However, any potential RNA mutations caused by DNA base editors have not been evaluated. Adeno-associated viruses are the most common delivery system for gene therapies that involve DNA editing; these viruses can sustain long-term gene expression in vivo, so the extent of potential RNA mutations induced by DNA base editors is of great concern14-16. Here we quantitatively evaluated RNA single nucleotide variations (SNVs) that were induced by CBEs or ABEs. Both the cytosine base editor BE3 and the adenine base editor ABE7.10 generated tens of thousands of off-target RNA SNVs. Subsequently, by engineering deaminases, we found that three CBE variants and one ABE variant showed a reduction in off-target RNA SNVs to the baseline while maintaining efficient DNA on-target activity. This study reveals a previously overlooked aspect of off-target effects in DNA editing and also demonstrates that such effects can be eliminated by engineering deaminases.


Asunto(s)
ADN/genética , Edición Génica/métodos , Mutagénesis , Mutación , Nucleósido Desaminasas/genética , Ingeniería de Proteínas , ARN/genética , Adenina/metabolismo , Aminohidrolasas/genética , Aminohidrolasas/metabolismo , Citosina/metabolismo , Citosina Desaminasa/genética , Citosina Desaminasa/metabolismo , Células HEK293 , Humanos , Nucleósido Desaminasas/metabolismo , Especificidad por Sustrato , Transfección
4.
J Struct Biol ; 216(2): 108093, 2024 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-38615726

RESUMEN

Many enzymes can self-assemble into higher-order structures with helical symmetry. A particularly noteworthy example is that of nitrilases, enzymes in which oligomerization of dimers into spiral homo-oligomers is a requirement for their enzymatic function. Nitrilases are widespread in nature where they catalyze the hydrolysis of nitriles into the corresponding carboxylic acid and ammonia. Here, we present the Cryo-EM structure, at 3 Å resolution, of a C-terminal truncate nitrilase from Rhodococcus sp. V51B that assembles in helical filaments. The model comprises a complete turn of the helical arrangement with a substrate-intermediate bound to the catalytic cysteine. The structure was solved having added the substrate to the protein. The length and stability of filaments was made more substantial in the presence of the aromatic substrate, benzonitrile, but not for aliphatic nitriles or dinitriles. The overall structure maintains the topology of the nitrilase family, and the filament is formed by the association of dimers in a chain-like mechanism that stabilizes the spiral. The active site is completely buried inside each monomer, while the substrate binding pocket was observed within the oligomerization interfaces. The present structure is in a closed configuration, judging by the position of the lid, suggesting that the intermediate is one of the covalent adducts. The proximity of the active site to the dimerization and oligomerization interfaces, allows the dimer to sense structural changes once the benzonitrile was bound, and translated to the rest of the filament, stabilizing the helical structure.


Asunto(s)
Aminohidrolasas , Microscopía por Crioelectrón , Nitrilos , Multimerización de Proteína , Rhodococcus , Aminohidrolasas/química , Aminohidrolasas/metabolismo , Aminohidrolasas/ultraestructura , Microscopía por Crioelectrón/métodos , Rhodococcus/enzimología , Nitrilos/química , Nitrilos/metabolismo , Especificidad por Sustrato , Modelos Moleculares , Dominio Catalítico , Proteínas Bacterianas/química , Proteínas Bacterianas/metabolismo , Proteínas Bacterianas/ultraestructura , Catálisis
5.
J Bioenerg Biomembr ; 56(3): 333-345, 2024 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-38488992

RESUMEN

Ovarian cancer (OC) is a deadliest gynecological cancer with the highest mortality rate. Methylenetetrahydrofolate dehydrogenase 2 (MTHFD2), a crucial tumor-promoting factor, is over-expressed in several malignancies including OC. The present study aimed to explore the role and mechanisms of MTHFD2 in OC malignant progression. Thus, cell proliferation, cycling, apoptosis, migration, and invasion were evaluated by CCK-8 assay, EdU assay, flow cytometry, wound healing, transwell assay and western blotting. Additionally, glycolysis was assessed by measuring the level of glucose and lactate production, as well as the expressions of GLUT1, HK2 and PKM2. Then the expression of ferroptosis-related proteins and ERK signaling was detected using western blotting. Ferroptosis was detected through the measurement of iron level, GSH, MDA and ROS activities. The results revealed that MTHFD2 was highly expressed in OC cells. Besides, interference with MTHFD2 induced ferroptosis, promoted ROS accumulation, destroyed mitochondrial function, reduced ATP content and inhibited glycolysis in OC cells. Subsequently, we further found that interference with MTHFD2 affected mitochondrial function and glycolysis in OC cells through ERK signaling. Moreover, interference with MTHFD2 affected ferroptosis to inhibit the malignant progression of OC cells. Collectively, our present study disclosed that interference with MTHFD2 induced ferroptosis in OC to inhibit tumor malignant progression through regulating ERK signaling.


Asunto(s)
Ferroptosis , Sistema de Señalización de MAP Quinasas , Metilenotetrahidrofolato Deshidrogenasa (NADP) , Neoplasias Ováricas , Humanos , Femenino , Neoplasias Ováricas/patología , Neoplasias Ováricas/metabolismo , Neoplasias Ováricas/genética , Ferroptosis/fisiología , Metilenotetrahidrofolato Deshidrogenasa (NADP)/metabolismo , Metilenotetrahidrofolato Deshidrogenasa (NADP)/genética , Enzimas Multifuncionales/metabolismo , Línea Celular Tumoral , Aminohidrolasas/metabolismo , Aminohidrolasas/genética , Progresión de la Enfermedad , Ratones
6.
Bioorg Chem ; 143: 107055, 2024 Feb.
Artículo en Inglés | MEDLINE | ID: mdl-38185008

RESUMEN

Hydration, a secondary activity mediated by nitrilase, is a promising new pathway for amide production. However, low hydration activity of nitrilase or trade-off between hydration and catalytic activity hinders its application in the production of amides. Here, natural C-terminal-truncated wild-type nitrilase, mined from a public database, obtained a high-hydration activity nitrilase as a novel evolutionary starting point for further protein engineering. The nitrilase Nit-74 from Spirosoma linguale DSM 74 was successfully obtained and exhibited the highest hydration activity level, performing 50.7 % nicotinamide formation and 87.6 % conversion to 2 mM substrate 3-cyanopyridine. Steric hindrance of the catalytic activity center and the N-terminus of the catalytic cysteine residue helped us identify three key residues: I166, W168, and T191. Saturation mutations resulted in three single mutants that further improved the hydration activity of N-heterocyclic nitriles. Among them, the mutant T191S performed 72.7 % nicotinamide formation, which was much higher than the previously reported highest level of 18.7 %. Additionally, mutants I166N and W168Y exhibited a 97.5 % 2-picolinamide ratio and 97.7 % isonicotinamide ratio without any loss of catalytic activity, which did not indicate a trade-off effect. Our results expand the screening and evolution library of promiscuous nitrilases with high hydration activity for amide formation.


Asunto(s)
Aminohidrolasas , Cytophagaceae , Nitrilos , Pirimidinas , Triazoles , Nitrilos/química , Aminohidrolasas/genética , Aminohidrolasas/química , Aminohidrolasas/metabolismo , Amidas , Niacinamida , Especificidad por Sustrato
7.
Nature ; 554(7690): 128-132, 2018 02 01.
Artículo en Inglés | MEDLINE | ID: mdl-29364879

RESUMEN

Folates enable the activation and transfer of one-carbon units for the biosynthesis of purines, thymidine and methionine. Antifolates are important immunosuppressive and anticancer agents. In proliferating lymphocytes and human cancers, mitochondrial folate enzymes are particularly strongly upregulated. This in part reflects the need for mitochondria to generate one-carbon units and export them to the cytosol for anabolic metabolism. The full range of uses of folate-bound one-carbon units in the mitochondrial compartment itself, however, has not been thoroughly explored. Here we show that loss of the catalytic activity of the mitochondrial folate enzyme serine hydroxymethyltransferase 2 (SHMT2), but not of other folate enzymes, leads to defective oxidative phosphorylation in human cells due to impaired mitochondrial translation. We find that SHMT2, presumably by generating mitochondrial 5,10-methylenetetrahydrofolate, provides methyl donors to produce the taurinomethyluridine base at the wobble position of select mitochondrial tRNAs. Mitochondrial ribosome profiling in SHMT2-knockout human cells reveals that the lack of this modified base causes defective translation, with preferential mitochondrial ribosome stalling at certain lysine (AAG) and leucine (UUG) codons. This results in the impaired expression of respiratory chain enzymes. Stalling at these specific codons also occurs in certain inborn errors of mitochondrial metabolism. Disruption of whole-cell folate metabolism, by either folate deficiency or antifolate treatment, also impairs the respiratory chain. In summary, mammalian mitochondria use folate-bound one-carbon units to methylate tRNA, and this modification is required for mitochondrial translation and thus oxidative phosphorylation.


Asunto(s)
Ácido Fólico/metabolismo , Mitocondrias/metabolismo , Biosíntesis de Proteínas , ARN de Transferencia/química , ARN de Transferencia/metabolismo , Aminohidrolasas/metabolismo , Biocatálisis , Proteínas Portadoras/metabolismo , Codón/genética , Transporte de Electrón , Antagonistas del Ácido Fólico/farmacología , Proteínas de Unión al GTP/metabolismo , Glicina Hidroximetiltransferasa/deficiencia , Glicina Hidroximetiltransferasa/metabolismo , Guanosina/metabolismo , Células HCT116 , Células HEK293 , Humanos , Leucina/genética , Lisina/genética , Metilación/efectos de los fármacos , Metilenotetrahidrofolato Deshidrogenasa (NADP)/metabolismo , Mitocondrias/efectos de los fármacos , Mitocondrias/enzimología , Enzimas Multifuncionales/metabolismo , Fosforilación Oxidativa/efectos de los fármacos , ARN de Transferencia/genética , Proteínas de Unión al ARN , Ribosomas/metabolismo , Sarcosina/metabolismo , Tetrahidrofolatos/metabolismo , Nucleótidos de Timina/biosíntesis
8.
Proc Natl Acad Sci U S A ; 118(28)2021 07 13.
Artículo en Inglés | MEDLINE | ID: mdl-34244426

RESUMEN

Cancer cells acquire metabolic reprogramming to satisfy their high biogenetic demands, but little is known about how metabolic remodeling enables cancer cells to survive stress associated with genomic instability. Here, we show that the mitochondrial methylenetetrahydrofolate dehydrogenase (MTHFD2) is transcriptionally suppressed by p53, and its up-regulation by p53 inactivation leads to increased folate metabolism, de novo purine synthesis, and tumor growth in vivo and in vitro. Moreover, MTHFD2 unexpectedly promotes nonhomologous end joining in response to DNA damage by forming a complex with PARP3 to enhance its ribosylation, and the introduction of a PARP3-binding but enzymatically inactive MTHFD2 mutant (e.g., D155A) sufficiently prevents DNA damage. Notably, MTHFD2 depletion strongly restrains p53-deficient cell proliferation and sensitizes cells to chemotherapeutic agents, indicating a potential role for MTHFD2 depletion in the treatment of p53-deficient tumors.


Asunto(s)
Aminohidrolasas/genética , Daño del ADN , Metilenotetrahidrofolato Deshidrogenasa (NADP)/genética , Enzimas Multifuncionales/genética , Transcripción Genética , Proteína p53 Supresora de Tumor/deficiencia , Adenilato Quinasa/metabolismo , Aminohidrolasas/metabolismo , Aminoimidazol Carboxamida/análogos & derivados , Aminoimidazol Carboxamida/farmacología , Carbono/metabolismo , Proteínas de Ciclo Celular/metabolismo , Proliferación Celular/efectos de los fármacos , Proliferación Celular/genética , Respiración de la Célula/efectos de los fármacos , Supervivencia Celular/efectos de los fármacos , Supervivencia Celular/genética , Inhibidor p21 de las Quinasas Dependientes de la Ciclina/metabolismo , Daño del ADN/genética , Reparación del ADN por Unión de Extremidades/efectos de los fármacos , Reparación del ADN por Unión de Extremidades/genética , Regulación Neoplásica de la Expresión Génica/efectos de los fármacos , Células HCT116 , Humanos , Metilenotetrahidrofolato Deshidrogenasa (NADP)/metabolismo , Mitocondrias/efectos de los fármacos , Mitocondrias/metabolismo , Enzimas Multifuncionales/metabolismo , Mutación/genética , Neoplasias/genética , Neoplasias/patología , Poli(ADP-Ribosa) Polimerasas/metabolismo , Unión Proteica/efectos de los fármacos , Ribonucleótidos/farmacología , Transducción de Señal/efectos de los fármacos , Transcripción Genética/efectos de los fármacos , Proteína p53 Supresora de Tumor/genética
9.
Int J Mol Sci ; 25(8)2024 Apr 18.
Artículo en Inglés | MEDLINE | ID: mdl-38674043

RESUMEN

Molecular studies about cyanide biodegradation have been mainly focused on the hydrolytic pathways catalyzed by the cyanide dihydratase CynD or the nitrilase NitC. In some Pseudomonas strains, the assimilation of cyanide has been linked to NitC, such as the cyanotrophic model strain Pseudomonas pseudoalcaligenes CECT 5344, which has been recently reclassified as Pseudomonas oleovorans CECT 5344. In this work, a phylogenomic approach established a more precise taxonomic position of the strain CECT 5344 within the species P. oleovorans. Furthermore, a pan-genomic analysis of P. oleovorans and other species with cyanotrophic strains, such as P. fluorescens and P. monteilii, allowed for the comparison and identification of the cioAB and mqoAB genes involved in cyanide resistance, and the nitC and cynS genes required for the assimilation of cyanide or cyanate, respectively. While cyanide resistance genes presented a high frequency among the analyzed genomes, genes responsible for cyanide or cyanate assimilation were identified in a considerably lower proportion. According to the results obtained in this work, an in silico approach based on a comparative genomic approach can be considered as an agile strategy for the bioprospection of putative cyanotrophic bacteria and for the identification of new genes putatively involved in cyanide biodegradation.


Asunto(s)
Biodegradación Ambiental , Cianuros , Genoma Bacteriano , Filogenia , Pseudomonas , Cianuros/metabolismo , Pseudomonas/genética , Pseudomonas/metabolismo , Genómica/métodos , Proteínas Bacterianas/genética , Proteínas Bacterianas/metabolismo , Aminohidrolasas/genética , Aminohidrolasas/metabolismo , Pseudomonas pseudoalcaligenes/metabolismo , Pseudomonas pseudoalcaligenes/genética
10.
Appl Environ Microbiol ; 89(6): e0022023, 2023 06 28.
Artículo en Inglés | MEDLINE | ID: mdl-37191513

RESUMEN

Nitrilase can catalyze nitrile compounds to generate corresponding carboxylic acids. Nitrilases as promiscuous enzymes can catalyze a variety of nitrile substrates, such as aliphatic nitriles, aromatic nitriles, etc. However, researchers tend to prefer enzymes with high substrate specificity and high catalytic efficiency. In this study, we developed an active pocket remodeling (ALF-scanning) based on modulating the geometry of the nitrilase active pocket to alter substrate preference and improve catalytic efficiency. Using this strategy, combined with site-directed saturation mutagenesis, we successfully obtained 4 mutants with strong aromatic nitrile preference and high catalytic activity, W170G, V198L, M197F, and F202M, respectively. To explore the synergistic relationship of these 4 mutations, we constructed 6 double-combination mutants and 4 triple-combination mutants. By combining mutations, we obtained the synergistically enhanced mutant V198L/W170G, which has a significant preference for aromatic nitrile substrates. Compared with the wild type, its specific activities for 4 aromatic nitrile substrates are increased to 11.10-, 12.10-, 26.25-, and 2.55-fold, respectively. By mechanistic dissection, we found that V198L/W170G introduced a stronger substrate-residue π-alkyl interaction in the active pocket and obtained a larger substrate cavity (225.66 Å3 to 307.58 Å3), making aromatic nitrile substrates more accessible to be catalyzed by the active center. Finally, we conducted experiments to rationally design the substrate preference of 3 other nitrilases based on the substrate preference mechanism and also obtained the corresponding aromatic nitrile substrate preference mutants of these three nitrilases and these mutants with greatly improved catalytic efficiency. Notably, the substrate range of SmNit is widened. IMPORTANCE In this study, the active pocket was largely remodeled based on the ALF-scanning strategy we developed. It is believed that ALF-scanning not only could be employed for substrate preference modification but might also play a role in protein engineering of other enzymatic properties, such as substrate region selectivity and substrate spectrum. In addition, the mechanism of aromatic nitrile substrate adaptation we found is widely applicable to other nitrilases in nature. To a large extent, it could provide a theoretical basis for the rational design of other industrial enzymes.


Asunto(s)
Aminohidrolasas , Nitrilos , Aminohidrolasas/genética , Aminohidrolasas/metabolismo , Catálisis , Ingeniería de Proteínas , Especificidad por Sustrato
11.
Crit Rev Biotechnol ; 43(8): 1226-1235, 2023 Dec.
Artículo en Inglés | MEDLINE | ID: mdl-36154348

RESUMEN

(R)-(-)-mandelic acid is an important carboxylic acid known for its numerous potential applications in the pharmaceutical industry as it is an ideal starting material for the synthesis of antibiotics, antiobesity drugs and antitumor agents. In past few decades, the synthesis of (R)-(-)-mandelic acid has been undertaken mainly through the chemical route. However, chemical synthesis of optically pure (R)-(-)-mandelic acid is difficult to achieve at an industrial scale. Therefore, its microbe mediated production has gained considerable attention as it exhibits many merits over the chemical approaches. The present review focuses on various biotechnological strategies for the production of (R)-(-)-mandelic acid through microbial biotransformation and enzymatic catalysis; in particular, an analysis and comparison of the synthetic methods and different enzymes. The wild type as well as recombinant microbial strains for the production of (R)-(-)-mandelic acid have been elucidated. In addition, different microbial strategies used for maximum bioconversion of mandelonitrile into (R)-(-)-mandelic acid are discussed in detail with regard to higher substrate tolerance and maximum bioconversion.HighlightsMandelonitrile, mandelamide and o-chloromandelonitrile can be used as substrates to produce (R)-(-)-mandelic acid by enzymes.Three enzymes (nitrilase, nitrile hydratase and amidase) are systematically introduced for production of (R)-(-)-mandelic acid.Microbial transformation is able to produce optically pure (R)-(-)-mandelic acid with 100% productive yield.


Asunto(s)
Biotecnología , Ácidos Mandélicos , Ácidos Mandélicos/metabolismo , Biotransformación , Aminohidrolasas/metabolismo
12.
PLoS Comput Biol ; 18(5): e1010140, 2022 05.
Artículo en Inglés | MEDLINE | ID: mdl-35613161

RESUMEN

Methylenetetrahydrofolate dehydrogenase/cyclohydrolase (MTHFD2) is a new drug target that is expressed in cancer cells but not in normal adult cells, which provides an Achilles heel to selectively kill cancer cells. Despite the availability of crystal structures of MTHFD2 in the inhibitor- and cofactor-bound forms, key information is missing due to technical limitations, including (a) the location of absolutely required Mg2+ ion, and (b) the substrate-bound form of MTHFD2. Using computational modeling and simulations, we propose that two magnesium ions are present at the active site whereby (i) Arg233, Asp225, and two water molecules coordinate [Formula: see text], while [Formula: see text] together with Arg233 stabilize the inorganic phosphate (Pi); (ii) Asp168 and three water molecules coordinate [Formula: see text], and [Formula: see text] further stabilizes Pi by forming a hydrogen bond with two oxygens of Pi; (iii) Arg201 directly coordinates the Pi; and (iv) through three water-mediated interactions, Asp168 contributes to the positioning and stabilization of [Formula: see text], [Formula: see text] and Pi. Our computational study at the empirical valence bond level allowed us also to elucidate the detailed reaction mechanisms. We found that the dehydrogenase activity features a proton-coupled electron transfer with charge redistribution connected to the reorganization of the surrounding water molecules which further facilitates the subsequent cyclohydrolase activity. The cyclohydrolase activity then drives the hydration of the imidazoline ring and the ring opening in a concerted way. Furthermore, we have uncovered that two key residues, Ser197/Arg233, are important factors in determining the cofactor (NADP+/NAD+) preference of the dehydrogenase activity. Our work sheds new light on the structural and kinetic framework of MTHFD2, which will be helpful to design small molecule inhibitors that can be used for cancer treatment.


Asunto(s)
Aminohidrolasas , Metilenotetrahidrofolato Deshidrogenasa (NADP) , Aminohidrolasas/química , Aminohidrolasas/metabolismo , Cinética , Magnesio , Metilenotetrahidrofolato Deshidrogenasa (NADP)/química , Metilenotetrahidrofolato Deshidrogenasa (NADP)/metabolismo , Mitocondrias/metabolismo , Agua
13.
Biotechnol Appl Biochem ; 70(1): 193-200, 2023 Feb.
Artículo en Inglés | MEDLINE | ID: mdl-35352406

RESUMEN

Microbes make a remarkable contribution to the health and well-being of living beings all over the world. Interestingly, pterin deaminase is an amidohydrolase enzyme that exhibits antitumor, anticancer activities and antioxidant properties. With the existing evidence of the presence of pterin deaminase from microbial sources, an attempt was made to reveal the existence of this enzyme in the unexplored bacterium Agrobacterium tumefaciens LBA4404. After, the cells were harvested and characterized as intracellular enzymes and then partially purified through acetone precipitation. Subsequently, further purification step was carried out with an ion-exchange chromatogram (HiTrap Q FF) using the Fast-Protein Liquid Chromatography technique (FPLC). Henceforward, the approximate molecular weight of the purified pterin deaminase was determined through SDS-PAGE. Furthermore, the purified protein was identified accurately by MALDI-TOF, and the sequence was explored through a Mascot search engine. Additionally, the three-dimensional structure was predicted and then validated, as well as ligand-binding sites, and the stability of this enzyme was confirmed for the first time. Thus, the present study revealed the selected parameters showing a considerable impact on the identification and purification of pterin deaminase from A. tumefaciens LBA4404 for the first time. The enzyme specificity makes it a favorable choice as a potent anticancer agent.


Asunto(s)
Agrobacterium tumefaciens , Amidohidrolasas , Aminohidrolasas/química , Aminohidrolasas/metabolismo
14.
Biotechnol Appl Biochem ; 70(6): 2150-2162, 2023 Dec.
Artículo en Inglés | MEDLINE | ID: mdl-37766485

RESUMEN

Pterin deaminase stands as a metalloenzyme and exhibits both antitumor and anticancer activities. Therefore, this study aimed to explore the molecular function of zinc finger protein-160 (zfp160) from Aspergillus terreus with its enzyme mechanism in detail. Subsequently, preliminary molecular docking studies on zfp160 from A. terreus were done. Next, the cloning and expression of zfp160 protein were carried out. Following, protein expression was induced and purified through nickel NTA column with imidazole gradient elution. Through the Mascot search engine tool, the expressed protein of MALDI-TOF was confirmed by 32 kDa bands of SDS-PAGE. Furthermore, its enzymatic characterization and biochemical categorization were also explored. The optimum conditions for enzyme were determined to be pH 8, temperature 35°C, km 50 µm with folic acid as substrate, and Vmax of 24.16 (IU/mL). Further, in silico analysis tried to explore the interactions and binding affinity of various substrates to the modeled pterin deaminase from A. terreus. Our results revealed the binding mode of different substrate molecules with pterin deaminase using the approximate scoring functions that possibly correlate with actual experimental binding affinities. Following this, molecular dynamic simulations provided the in-depth knowledge on deciphering functional mechanisms of pterin deaminase over other drugs.


Asunto(s)
Aminohidrolasas , Aspergillus , Simulación del Acoplamiento Molecular , Aminohidrolasas/química , Aminohidrolasas/metabolismo , Concentración de Iones de Hidrógeno , Temperatura
15.
Mol Cell ; 57(6): 984-994, 2015 Mar 19.
Artículo en Inglés | MEDLINE | ID: mdl-25728768

RESUMEN

One of several roles of the Mycobacterium tuberculosis proteasome is to defend against host-produced nitric oxide (NO), a free radical that can damage numerous biological macromolecules. Mutations that inactivate proteasomal degradation in Mycobacterium tuberculosis result in bacteria that are hypersensitive to NO and attenuated for growth in vivo, but it was not known why. To elucidate the link between proteasome function, NO resistance, and pathogenesis, we screened for suppressors of NO hypersensitivity in a mycobacterial proteasome ATPase mutant and identified mutations in Rv1205. We determined that Rv1205 encodes a pupylated proteasome substrate. Rv1205 is a homolog of the plant enzyme LONELY GUY, which catalyzes the production of hormones called cytokinins. Remarkably, we report that an obligate human pathogen secretes several cytokinins. Finally, we determined that the Rv1205-dependent accumulation of cytokinin breakdown products is likely responsible for the sensitization of Mycobacterium tuberculosis proteasome-associated mutants to NO.


Asunto(s)
Aminohidrolasas/metabolismo , Citocininas/biosíntesis , Mycobacterium tuberculosis/metabolismo , Óxido Nítrico/metabolismo , Complejo de la Endopetidasa Proteasomal/metabolismo , Aldehídos/metabolismo , Aminohidrolasas/genética , Animales , Proteínas de Arabidopsis/metabolismo , Proteínas Bacterianas/química , Proteínas Bacterianas/metabolismo , Citocininas/metabolismo , Interacciones Huésped-Patógeno , Ratones Endogámicos C57BL , Mutación , Mycobacterium tuberculosis/efectos de los fármacos , Mycobacterium tuberculosis/genética , Mycobacterium tuberculosis/patogenicidad , Óxido Nítrico/farmacología , Supresión Genética
16.
Biophys J ; 121(1): 119-130, 2022 01 04.
Artículo en Inglés | MEDLINE | ID: mdl-34864045

RESUMEN

Understanding the relationship between protein structures and their function is still an open question that becomes very challenging when allostery plays an important functional role. Allosteric proteins, in fact, exploit different ranges of motions (from sidechain local fluctuations to long-range collective motions) to effectively couple distant binding sites, and of particular interest is whether allosteric proteins of the same families with similar functions and structures also necessarily share the same allosteric mechanisms. Here, we compared the early dynamics initiating the allosteric communication of a prototypical allosteric enzyme from two different organisms, i.e., the imidazole glycerol phosphate synthase (IGPS) enzymes from the thermophilic bacteria and the yeast, working at high and room temperatures, respectively. By combining molecular dynamics simulations and network models derived from graph theory, we found rather distinct early allosteric dynamics in the IGPS from the two organisms, involving significatively different allosteric pathways in terms of both local and collective motions. Given the successful prediction of key allosteric residues in the bacterial IGPS, whose mutation disrupts its allosteric communication, the outcome of this study paves the way for future experimental studies on the yeast IGPS that could foster therapeutic applications by exploiting the control of IGPS enzyme allostery.


Asunto(s)
Aminohidrolasas , Saccharomyces cerevisiae , Regulación Alostérica , Aminohidrolasas/química , Aminohidrolasas/metabolismo , Bacterias/metabolismo , Humanos , Saccharomyces cerevisiae/metabolismo
17.
J Biol Chem ; 296: 100651, 2021.
Artículo en Inglés | MEDLINE | ID: mdl-33839153

RESUMEN

The Rid protein family (PF14588, IPR006175) is divided into nine subfamilies, of which only the RidA subfamily has been characterized biochemically. RutC, the founding member of one subfamily, is encoded in the pyrimidine utilization (rut) operon that encodes a pathway that allows Escherichia coli to use uracil as a sole nitrogen source. Results reported herein demonstrate that RutC has 3-aminoacrylate deaminase activity and facilitates one of the reactions previously presumed to occur spontaneously in vivo. RutC was active with several enamine-imine substrates, showing similarities and differences in substrate specificity with the canonical member of the Rid superfamily, Salmonella enterica RidA. Under standard laboratory conditions, a Rut pathway lacking RutC generates sufficient nitrogen from uracil for growth of E. coli. These results support a revised model of the Rut pathway and provide evidence that Rid proteins may modulate metabolic fitness, rather than catalyzing essential functions.


Asunto(s)
Acrilatos/metabolismo , Aminohidrolasas/metabolismo , Proteínas de Escherichia coli/metabolismo , Escherichia coli/metabolismo , Oxidorreductasas/metabolismo , Aminohidrolasas/genética , Escherichia coli/genética , Escherichia coli/crecimiento & desarrollo , Proteínas de Escherichia coli/genética , Nitrógeno/metabolismo , Oxidorreductasas/genética , Fosfato de Piridoxal/metabolismo , Salmonella enterica/enzimología , Especificidad por Sustrato , Uracilo/metabolismo
18.
Plant J ; 106(6): 1523-1540, 2021 06.
Artículo en Inglés | MEDLINE | ID: mdl-33768644

RESUMEN

Temperature passively affects biological processes involved in plant growth. Therefore, it is challenging to study the dedicated temperature signalling pathways that orchestrate thermomorphogenesis, a suite of elongation growth-based adaptations that enhance leaf-cooling capacity. We screened a chemical library for compounds that restored hypocotyl elongation in the pif4-2-deficient mutant background at warm temperature conditions in Arabidopsis thaliana to identify modulators of thermomorphogenesis. The small aromatic compound 'Heatin', containing 1-iminomethyl-2-naphthol as a pharmacophore, was selected as an enhancer of elongation growth. We show that ARABIDOPSIS ALDEHYDE OXIDASES redundantly contribute to Heatin-mediated hypocotyl elongation. Following a chemical proteomics approach, the members of the NITRILASE1-subfamily of auxin biosynthesis enzymes were identified among the molecular targets of Heatin. Our data reveal that nitrilases are involved in promotion of hypocotyl elongation in response to high temperature and Heatin-mediated hypocotyl elongation requires the NITRILASE1-subfamily members, NIT1 and NIT2. Heatin inhibits NIT1-subfamily enzymatic activity in vitro and the application of Heatin accordingly results in the accumulation of NIT1-subfamily substrate indole-3-acetonitrile in vivo. However, levels of the NIT1-subfamily product, bioactive auxin (indole-3-acetic acid), were also significantly increased. It is likely that the stimulation of hypocotyl elongation by Heatin might be independent of its observed interaction with NITRILASE1-subfamily members. However, nitrilases may contribute to the Heatin response by stimulating indole-3-acetic acid biosynthesis in an indirect way. Heatin and its functional analogues present novel chemical entities for studying auxin biology.


Asunto(s)
Aminohidrolasas/metabolismo , Arabidopsis/efectos de los fármacos , Inhibidores Enzimáticos/farmacología , Regulación de la Expresión Génica de las Plantas/efectos de los fármacos , Hipocótilo/efectos de los fármacos , Aldehído Oxidasa/genética , Aldehído Oxidasa/metabolismo , Aminohidrolasas/genética , Apomorfina/análogos & derivados , Apomorfina/farmacología , Arabidopsis/crecimiento & desarrollo , Proteínas de Arabidopsis/genética , Proteínas de Arabidopsis/metabolismo , Inhibidores Enzimáticos/administración & dosificación , Inhibidores Enzimáticos/química , Herbicidas/farmacología , Hipocótilo/crecimiento & desarrollo , Ácidos Indolacéticos , Estructura Molecular , Picloram/farmacología , Relación Estructura-Actividad , Transcriptoma/efectos de los fármacos
19.
J Am Chem Soc ; 144(16): 7146-7159, 2022 04 27.
Artículo en Inglés | MEDLINE | ID: mdl-35412310

RESUMEN

Deciphering the molecular mechanisms of enzymatic allosteric regulation requires the structural characterization of functional states and also their time evolution toward the formation of the allosterically activated ternary complex. The transient nature and usually slow millisecond time scale interconversion between these functional states hamper their experimental and computational characterization. Here, we combine extensive molecular dynamics simulations, enhanced sampling techniques, and dynamical networks to describe the allosteric activation of imidazole glycerol phosphate synthase (IGPS) from the substrate-free form to the active ternary complex. IGPS is a heterodimeric bienzyme complex whose HisH subunit is responsible for hydrolyzing glutamine and delivering ammonia for the cyclase activity in HisF. Despite significant advances in understanding the underlying allosteric mechanism, essential molecular details of the long-range millisecond allosteric activation of IGPS remain hidden. Without using a priori information of the active state, our simulations uncover how IGPS, with the allosteric effector bound in HisF, spontaneously captures glutamine in a catalytically inactive HisH conformation, subsequently attains a closed HisF:HisH interface, and finally forms the oxyanion hole in HisH for efficient glutamine hydrolysis. We show that the combined effector and substrate binding dramatically decreases the conformational barrier associated with oxyanion hole formation, in line with the experimentally observed 4500-fold activity increase in glutamine hydrolysis. The allosteric activation is controlled by correlated time-evolving dynamic networks connecting the effector and substrate binding sites. This computational strategy tailored to describe millisecond events can be used to rationalize the effect of mutations on the allosteric regulation and guide IGPS engineering efforts.


Asunto(s)
Aminohidrolasas , Glutamina , Regulación Alostérica , Aminohidrolasas/química , Aminohidrolasas/genética , Aminohidrolasas/metabolismo , Sitios de Unión , Glutamina/metabolismo
20.
Biochem Biophys Res Commun ; 616: 70-75, 2022 08 06.
Artículo en Inglés | MEDLINE | ID: mdl-35640488

RESUMEN

The Reactive intermediate deiminase (Rid) protein family is a group of enzymes widely distributed in all Kingdoms of Life. RidA is one of the eight known Rid subfamilies, and its members act by preventing the accumulation of 2-aminoacrylate, a highly reactive enamine generated during the metabolism of some amino acids, by hydrolyzing the 2-iminopyruvate tautomer to pyruvate and ammonia. RidA members are homotrimers exhibiting a remarkable thermal stability. Recently, a novel subclass of RidA was identified in teleosts, which differs for stability and substrate specificity from the canonical RidA. In this study we structurally and functionally characterized RidA from Apis mellifera (AmRidA) as the first example of an invertebrate RidA to assess its belonging to the canonical RidA group, and to further correlate structural and functional features of this novel enzyme class. Circular dichroism revealed a spectrum typical of the RidA proteins and the high thermal stability. AmRidA exhibits the 2-imino acid hydrolase activity typical of RidA family members with a substrate specificity similar to that of the canonical RidA. The crystal structure confirmed the homotrimeric assembly and the presence of the typical structural features of RidA proteins, such as the proposed substrate recognition loop, and the ß-sheets ß1-ß9 and ß1-ß2. In conclusion, our data define AmRidA as a canonical member of the well-conserved RidA family and further clarify the diagnostic structural features of this class of enzymes.


Asunto(s)
Iminas , Scrapie , Aminoácidos , Aminohidrolasas/metabolismo , Animales , Proteínas Bacterianas/metabolismo , Abejas , Ovinos
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