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1.
J Biol Chem ; 300(3): 105688, 2024 Mar.
Artículo en Inglés | MEDLINE | ID: mdl-38280431

RESUMEN

Cytochrome b5 (b5) is known to stimulate some catalytic activities of cytochrome P450 (P450, CYP) enzymes, although mechanisms still need to be defined. The reactions most strongly enhanced by b5 are the 17,20-lyase reactions of P450 17A1 involved in steroid biosynthesis. We had previously used a fluorescently labeled human b5 variant (Alexa 488-T70C-b5) to characterize human P450 17A1-b5 interactions, but subsequent proteomic analyses indicated that lysines in b5 were also modified with Alexa 488 maleimide in addition to Cys-70, due to disulfide dimerization of the T70C mutant. A series of b5 variants were constructed with Cys replacements for the identified lysine residues and labeled with the dye. Fluorescence attenuation and the function of b5 in the steroid lyase reaction depended on the modified position. Apo-b5 (devoid of heme group) studies revealed the lack of involvement of the b5 heme in the fluorescence attenuation. A structural model of b5 with P450 17A1 was predicted using AlphaFold-Multimer algorithms/Rosetta docking, based upon the individual structures, which predicted several new contacts not previously reported, that is, interactions of b5 Glu-48:17A1 Arg-347, b5 Glu-49:17A1 Arg-449, b5 Asp-65:17A1 Arg-126, b5 Asp-65:17A1 Arg-125, and b5 Glu-61:17A1 Lys-91. Fluorescence polarization assays with two modified b5 variants yielded Kd values (for b5-P450 17A1) of 120 to 380 nM, the best estimate of binding affinity. We conclude that both monomeric and dimeric b5 can bind to P450 17A1 and stimulate activity. Results with the mutants indicate that several Lys residues in b5 are sensitive to the interaction with P450 17A1, including Lys-88 and Lys-91.


Asunto(s)
Citocromos b5 , Modelos Moleculares , Esteroide 17-alfa-Hidroxilasa , Humanos , Citocromos b5/genética , Citocromos b5/metabolismo , Fluorescencia , Hemo , Proteómica , Esteroide 17-alfa-Hidroxilasa/química , Esteroide 17-alfa-Hidroxilasa/metabolismo , Unión Proteica/genética , Activación Enzimática/genética , Estructura Cuaternaria de Proteína , Mutación
2.
Methods Enzymol ; 689: 39-63, 2023.
Artículo en Inglés | MEDLINE | ID: mdl-37802581

RESUMEN

Cytochrome P450 (P450) 17A1 plays a key role in steroidogenesis, in that this enzyme catalyzes the 17α-hydroxylation of both pregnenolone and progesterone, followed by a lyase reaction to cleave the C-20 land C-21 carbons from each steroid. The reactions are important in the production of both glucocorticoids and androgens. The enzyme is critical in humans but is also a drug target in treatment of prostate cancer. Detailed methods are described for the heterologous expression of human P450 17A1 in bacteria, purification of the recombinant enzyme, reconstitution of the enzyme system in the presence of cytochrome b5, and chromatographic procedures for sensitive analyses of reaction products. Historic assay approaches are reviewed. Some information is also provided about outstanding questions in the research field, including catalytic mechanisms and searches for selective inhibitors.


Asunto(s)
Liasas , Humanos , Progesterona/metabolismo , Esteroides , Esteroide 17-alfa-Hidroxilasa/genética , Esteroide 17-alfa-Hidroxilasa/química
3.
J Inorg Biochem ; 240: 112085, 2023 03.
Artículo en Inglés | MEDLINE | ID: mdl-36640554

RESUMEN

Cytochrome P450 17A1 (CYP17A1) catalyzes 17α-hydroxylation and 17,20-lyase reactions with steroid hormones. Mice contain an orthologous Cyp17a1 enzyme in the genome, and its amino acid sequence has high similarity with human CYP17A1. We purified recombinant mouse Cyp17a1 and characterized its oxidation reactions with progesterone and pregnenolone. The open reading frame of the mouse Cyp17a1 gene was inserted and successfully expressed in Escherichia coli and then purified using Ni2+-nitrilotriacetic acid (NTA) affinity column chromatography. Purified mouse Cyp17a1 displayed typical Type I binding titration spectral changes upon the addition of progesterone, 17α-OH progesterone, pregnenolone, and 17α-OH pregnenolone, with similar binding affinities to those of human CYP17A1. Catalytic activities for 17α-hydroxylation and 17,20-lyase reactions were studied using ultra-performance liquid chromatography (UPLC)-mass spectrometry analysis. Mouse Cyp17a1 showed cytochrome b5 stimulation in catalysis. In comparison to human enzyme, much higher specificity constants (kcat/Km) were observed with mouse Cyp17a1. In the reactions of Δ4-steroids (progesterone and 17α-OH progesterone), the specificity constants were 2100 times higher than the human enzyme. The addition of cytochrome b5 produced significant stimulation of 17,20-lyase activities of mouse Cyp17a1. Two Arg mutants of mouse Cyp17a1 (R347H and R358Q) displayed a larger decrease in 17,20-lyase reaction (from 17α-OH pregnenolone to dehydroepiandrosterone, DHEA) than 17α-hydroxylation, indicating that -as in human CYP17A1-these basic residues in mouse Cyp17a1 are important in interacting with the cytochrome b5 protein in the lyase reactions.


Asunto(s)
Liasas , Progesterona , Humanos , Ratones , Animales , Progesterona/química , Progesterona/metabolismo , Esteroide 17-alfa-Hidroxilasa/química , Liasas/metabolismo , Citocromos b/metabolismo , Hidroxilación , Esteroides , Pregnenolona/química , Pregnenolona/metabolismo , Catálisis
4.
Curr Drug Metab ; 23(3): 172-187, 2022.
Artículo en Inglés | MEDLINE | ID: mdl-35366770

RESUMEN

Cytochrome P450s are a widespread and vast superfamily of hemeprotein monooxygenases that metabolize physiologically essential chemicals necessary for most species' survival, ranging from protists to plants to humans. They catalyze the synthesis of steroid hormones, cholesterol, bile acids, and arachidonate metabolites and the degradation of endogenous compounds, such as steroids, fatty acids, and other catabolizing compounds as an energy source and detoxifying xenobiotics, such as drugs, procarcinogens, and carcinogens. The human CYP17A1 is one of the cytochrome P450 genes located at the 10q chromosome. The gene expression occurs in the adrenals and gonads, with minor amounts in the brain, placenta, and heart. This P450c17 cytochrome gene is a critical steroidogenesis regulator which performs two distinct activities: 17 alpha-hydroxylase activity (converting pregnenolone to 17- hydroxypregnenolone and progesterone to 17-hydroxyprogesterone; these precursors are further processed to provide glucocorticoids and sex hormones) and 17, 20-lyase activity (which converts 17-hydroxypregnenolone to DHEA). Dozens of mutations within CYP17A1 are found to cause 17-alpha-hydroxylase and 17, 20-lyase deficiency. This condition affects the function of certain hormone-producing glands, resulting in high blood pressure levels (hypertension), abnormal sexual development, and other deficiency diseases. This review highlights the changes in CYP17A1 associated with gene-gene interaction, drug-gene interaction, chemical-gene interaction, and its biochemical reactions; they have some insights to correlate with the fascinating functional characteristics of this human steroidogenic gene. The findings of our theoretical results will be helpful to further the design of specific inhibitors of CYP17A1.


Asunto(s)
Liasas , Esteroide 17-alfa-Hidroxilasa , Humanos , Pregnenolona/química , Pregnenolona/metabolismo , Progesterona , Esteroide 17-alfa-Hidroxilasa/química , Esteroide 17-alfa-Hidroxilasa/genética , Esteroide 17-alfa-Hidroxilasa/metabolismo , Esteroides/metabolismo
5.
Biochemistry ; 61(7): 583-594, 2022 04 05.
Artículo en Inglés | MEDLINE | ID: mdl-35287432

RESUMEN

The multifunctional cytochrome P450 17A1 (CYP17A1) plays a crucial role in human steroid hormone synthesis (UniProtKB─P05093). It first carries out standard monooxygenase chemistry, converting pregnenolone (PREG) and progesterone (PROG) into 17OH-PREG and 17OH-PROG, utilizing a "Compound I" to initiate hydrogen abstraction and radical recombination in the classic "oxygen rebound" mechanism. Additionally, these hydroxylated products also serve as substrates in a second oxidative cycle which cleaves the 17-20 carbon-carbon bond to form dehydroepiandrosterone and androstenedione, which are key precursors in the generation of powerful androgens and estrogens. Interestingly, in humans, with 17OH-PREG, this so-called lyase reaction is more efficient than with 17OH-PROG, based on Kcat/Km values. In the present work, the asparagine residue at 202 position was replaced by serine, an alteration which can affect substrate orientation and control substrate preference for the lyase reaction. First, we report studies of solvent isotope effects for the N202S CYP17A1 mutant in the presence of 17OH-PREG and 17OH-PROG, which suggest that the ferric peroxo species is the predominant catalytically active intermediate in the lyase step. This conclusion is further supported by employing a combination of cryoradiolysis and resonance Raman techniques to successfully trap and structurally characterize the key reaction intermediates, including the peroxo, the hydroperoxo, and the crucial peroxo-hemiketal intermediate. Collectively, these studies show that the mutation causes active site structural changes that alter the H-bonding interactions with the key Fe-O-O fragment and the degree of protonation of the reactive ferric peroxo intermediate, thereby impacting lyase efficiency.


Asunto(s)
Asparagina , Esteroide 17-alfa-Hidroxilasa , Androstenodiona , Dominio Catalítico , Humanos , Pregnenolona/química , Progesterona/química , Esteroide 17-alfa-Hidroxilasa/química
6.
J Am Chem Soc ; 143(10): 3729-3733, 2021 03 17.
Artículo en Inglés | MEDLINE | ID: mdl-33656879

RESUMEN

CYP17A1 is an essential human steroidogenic enzyme, which catalyzes two sequential reactions leading to the formation of androstenedione from progesterone and dehydroepiandrosterone from pregnenolone. The second reaction is the C17-C20 bond scission, which is strongly dependent on the presence of cytochrome b5 and displays a heretofore unexplained more pronounced acceleration when 17OH-progesteone (17OH-PROG) is a substrate. The origin of the stimulating effect of cytochrome b5 on C-C bond scission catalyzed by CYP17A1 is still debated as mostly due to either the acceleration of the electron transfer to the P450 oxy complex or allosteric effects of cytochrome b5 favoring active site conformations that promote lyase activity. Using resonance Raman spectroscopy, we compared the effect of Mn-substituted cytochrome b5 (Mn-Cytb5) on the oxy complex of CYP17A1 with both proteins co-incorporated in lipid nanodiscs. For CYP17A1 with 17OH-PROG, a characteristic shift of the Fe-O mode is observed in the presence of Mn-b5, indicating reorientation of a hydrogen bond between the 17OH group of the substrate from the terminal to the proximal oxygen atom of the Fe-O-O moiety, a configuration favorable for the lyase catalysis. For 17OH-pregnenolone, no such shift is observed, the favorable H-bonding orientation being present even without Mn-Cytb5. These new data provide a precise allosteric interpretation for the more pronounced acceleration seen for the 17OH-PROG substrate.


Asunto(s)
Citocromos b5/química , Esteroide 17-alfa-Hidroxilasa/metabolismo , Regulación Alostérica , Biocatálisis , Dominio Catalítico , Citocromos b5/metabolismo , Humanos , Pregnenolona/química , Pregnenolona/metabolismo , Esteroide 17-alfa-Hidroxilasa/química , Especificidad por Sustrato
7.
Mol Cell Endocrinol ; 528: 111261, 2021 05 15.
Artículo en Inglés | MEDLINE | ID: mdl-33781841

RESUMEN

Cytochrome P450 17A1 (CYP17A1) is a critical steroidogenic enzyme, essential for producing glucocorticoids and sex hormones. This review discusses the complex activity of CYP17A1, looking at its role in both the classical and backdoor steroidogenic pathways and the complex chemistry it carries out to perform both a hydroxylation reaction and a carbon-carbon cleavage, or lyase reaction. Functional and structural investigations have informed our knowledge of these two reactions. This review focuses on a few specific aspects of this discussion: the identities of reaction intermediates, the coordination of hydroxylation and lyase reactions, the effects of cytochrome b5, and conformational selection. These discussions improve understanding of CYP17A1 in a physiological setting, where CYP17A1 is implicated in a variety of steroidogenic diseases. This information can be used to improve ways in which CYP17A1 can be effectively modulated to treat diseases such as prostate and breast cancer, Cushing's syndrome, and glioblastoma.


Asunto(s)
Neoplasias de la Mama/metabolismo , Síndrome de Cushing/metabolismo , Glioblastoma/metabolismo , Neoplasias de la Próstata/metabolismo , Esteroide 17-alfa-Hidroxilasa/química , Esteroide 17-alfa-Hidroxilasa/metabolismo , Dominio Catalítico , Femenino , Humanos , Hidroxilación , Masculino , Especificidad por Sustrato
8.
J Steroid Biochem Mol Biol ; 205: 105765, 2021 01.
Artículo en Inglés | MEDLINE | ID: mdl-32991989

RESUMEN

The aim of this project was to investigate the endocrine disrupting effects of three γ-aminobutyric acid type A receptor (GABAAR) agonists, diazepam (DZ), oxazepam (OX) and alprazolam (AL) using the steroidogenic in vitro H295R cell line assay, a recombinant CYP17A1 assay, qPCR analysis and computational modelling. Similar effects for DZ and OX on the steroidogenesis were observed in the H295R experiment at therapeutically relevant concentrations. Progestagens and corticosteroids were increased up to 10 fold and androgens were decreased indicating CYP17A1 lyase inhibition. For DZ the inhibition on both the hydroxylase and lyase was confirmed by the recombinant CYP17A1 assay, whereas OX did not appear to directly affect the recombinant CYP17A1 enzyme. Androgens were decreased when exposing the H295R cells to AL, indicating a CYP17A1 lyase inhibition. However, this was not confirmed by the recombinant CYP17A1 assay but a down-regulation in gene expression was observed for StAR and CYP17A1. The present study showed that the three investigated benzodiazepines (BZDs) are rather potent endocrine disruptors in vitro, exerting endocrine effects close the therapeutic Cmax. Both direct and indirect effects on steroidogenesis were observed, but molecular modelling indicated no direct interactions between the heme group in the steroidogenic CYP enzymes and the unique diazepin structure. In contrast, physicochemical properties such as high log P, structure and molecular weight similar to that of steroids appeared to influence the endocrine disrupting abilities of the investigated pharmaceuticals in vitro. Docking of the three BZDs in CYP17A1 and CYP21A2 confirmed that shape complementarity and hydrophobic effects seem to determine the binding modes.


Asunto(s)
Benzodiazepinas/química , Disruptores Endocrinos/química , Esteroide 17-alfa-Hidroxilasa/química , Esteroide 21-Hidroxilasa/química , Esteroides/biosíntesis , Corticoesteroides/química , Corticoesteroides/farmacología , Glándulas Suprarrenales/efectos de los fármacos , Alprazolam/química , Alprazolam/farmacología , Andrógenos/genética , Benzodiazepinas/farmacología , Diazepam/química , Diazepam/farmacología , Disruptores Endocrinos/farmacología , Humanos , Simulación del Acoplamiento Molecular , Oxazepam/química , Oxazepam/farmacología , Receptores Androgénicos/química , Receptores Androgénicos/genética , Receptores de GABA-A/química , Receptores de GABA-A/genética , Esteroide 17-alfa-Hidroxilasa/antagonistas & inhibidores , Esteroide 17-alfa-Hidroxilasa/genética , Esteroide 21-Hidroxilasa/antagonistas & inhibidores , Esteroide 21-Hidroxilasa/genética , Esteroides/química
9.
J Steroid Biochem Mol Biol ; 205: 105777, 2021 01.
Artículo en Inglés | MEDLINE | ID: mdl-33157220

RESUMEN

Cytochromes P450 are key enzymes for steroid hormone biosynthesis in human body. They are considered as targets for the screening of novel high efficient drugs. The results of screening of bile acids and androstane derivatives toward human recombinant steroid 17α-hydroxylase/17,20-lyase (CYP17A1) are presented in this paper. A group of steroids, binding with micromolar or submicromolar affinity (in a range from 9 µM - less than 0.1 µM), was identified. Results presented here showed that these steroidal compounds are able to decrease rate of hydroxylation of essential CYP17A1 substrate - progesterone, while some compounds completely inhibited enzyme activity. Structure-activity relationship (SAR) analysis based on in vitro and in silico studies showed that high affinity of the enzyme to bile acids derivatives is correlated with side chain hydrophobicity and presence of hydroxyl or keto group at C3 position. From the other side, bile acid-derived compounds with more polar side chain or substituents at C7 and C12 positions possess higher Kd values. Among androstane-derived steroids couple of Δ5-steroids with hydroxyl group at C3 position, as well as 16,17-secosteroids, were found to be high affinity ligands of this enzyme. The data obtained could be useful for the design of novel highly efficient inhibitors of CYP17A1, since the bile acids-derived compounds are for first time recognized as effective CYP17A1 inhibitors.


Asunto(s)
Androstanos/química , Ácidos y Sales Biliares/química , Inhibidores Enzimáticos del Citocromo P-450/química , Esteroide 17-alfa-Hidroxilasa/química , Androstanos/farmacología , Ácidos y Sales Biliares/farmacología , Inhibidores Enzimáticos del Citocromo P-450/farmacología , Sistema Enzimático del Citocromo P-450/química , Sistema Enzimático del Citocromo P-450/genética , Humanos , Ligandos , Progesterona/genética , Esteroide 17-alfa-Hidroxilasa/antagonistas & inhibidores , Esteroide 17-alfa-Hidroxilasa/genética , Relación Estructura-Actividad
10.
Chemistry ; 26(70): 16846-16852, 2020 Dec 15.
Artículo en Inglés | MEDLINE | ID: mdl-32681807

RESUMEN

Human cytochrome P450 CYP17A1 first catalyzes hydroxylation at the C17 position of either pregnenolone (PREG) or progesterone (PROG), and a subsequent C17 -C20 bond scission to produce dehydroepiandrosterone (DHEA) or androstenedione (AD). In the T306A mutant, replacement of the Threonine 306 alcohol functionality, essential for efficient proton delivery in the hydroxylase reaction, has only a small effect on the lyase activity. In this work, resonance Raman spectroscopy is employed to provide crucial structural insight, confirming that this mutant, with its disordered proton shuttle, fails to generate essential hydroxylase pathway intermediates, accounting for the loss in hydroxylase efficiency. Significantly, a corresponding spectroscopic study with the susceptible lyase substrate, 17-OH PREG, not only reveals an initially trapped peroxo-iron intermediate experiencing an H-bond interaction of the 17-OH group with the proximal oxygen of the Fe-Op -Ot fragment, facilitating peroxo- attack on the C20 carbon, but also unequivocally shows the presence of the subsequent hemiketal intermediate of the lyase reaction.


Asunto(s)
Liasas/genética , Liasas/metabolismo , Protones , Esteroide 17-alfa-Hidroxilasa/genética , Esteroide 17-alfa-Hidroxilasa/metabolismo , Humanos , Liasas/química , Pregnenolona , Progesterona , Esteroide 17-alfa-Hidroxilasa/química
11.
Horm Metab Res ; 52(3): 186-193, 2020 Mar.
Artículo en Inglés | MEDLINE | ID: mdl-32215889

RESUMEN

17-Hydroxylase-deficiency (17OHD) is a rare form of congenital adrenal hyperplasia. The aim of the work was to study clinical, biochemical, and the follow up of 17OHD patients and evaluate the function and structure of CYP17A1 mutations. Brazilian patients (three 46, XX and four 46, XY; 17±1.9 years) with combined 17-hydroxylase/17,20-lyase deficiency were evaluated. CYP17A1 gene was sequenced. Functional analysis was performed transfecting COS7 cells, which were exposed to progesterone or 17α-hydroxypregnolone substrates. Hormones were determined by RIA or LC-MS/MS. Three-dimensional structural modeling was performed by Modeller software. All patients presented prepubertal female external genitalia, primary amenorrhea, hypergonadotrophic hypogonadism, hypokalemic hypertension, decreased cortisol, and increased ACTH and corticosterone levels. Five patients presented previously described mutations: p.W406R/p.W406R, IVS2-2A>C/p.P428L, and p.P428L/p.P428L. Two patients presented the compound heterozygous p.G478S/p.I223Nfs*10 mutations, whose CYP17A1 activity and the three dimensional structural modeling are originally studied in this paper. CYP17A1 activity of p.G478S was 13 and 58% against progesterone and 17-hydroxypregnenolone, respectively. The p.I223Nfs*10 caused a truncated inactive protein. Three-dimensional p.G478S structural modeling showed different internal hydrophobic interaction with W313 and created an additional chain side contact with L476 residue. Due to the rarity of 17OHD, the long term follow up (15.3±3.1 years) of our patients will help endocrinologists on the management of patients with 17OHD. The mutation p.G478S/pI223Nfs*10 led to severe 17OHD and impaired CYP17A1 structure and function. The integration of in silico and in vitro analysis showed how the amino acid changes affected the CYP17A1 activity and contributed to clarify the molecular interactions of CYP17A1.


Asunto(s)
Hiperplasia Suprarrenal Congénita/enzimología , Esteroide 17-alfa-Hidroxilasa/genética , Adolescente , Hiperplasia Suprarrenal Congénita/sangre , Hiperplasia Suprarrenal Congénita/genética , Adulto , Secuencia de Aminoácidos , Secuencia de Bases , Brasil , Exones , Femenino , Hormonas/sangre , Humanos , Masculino , Mutación , Esteroide 17-alfa-Hidroxilasa/química , Esteroide 17-alfa-Hidroxilasa/metabolismo , Adulto Joven
12.
J Biol Chem ; 294(26): 10028-10041, 2019 06 28.
Artículo en Inglés | MEDLINE | ID: mdl-31072872

RESUMEN

Cytochrome P450 (P450, CYP) enzymes are the major catalysts involved in the oxidation of steroids as well as many other compounds. Their versatility has been explained in part by flexibility of the proteins and complexity of the binding mechanisms. However, whether these proteins bind their substrates via induced fit or conformational selection is not understood. P450 17A1 has a major role in steroidogenesis, catalyzing the two-step oxidations of progesterone and pregnenolone to androstenedione and dehydroepiandrosterone, respectively, via 17α-hydroxy (OH) intermediates. We examined the interaction of P450 17A1 with its steroid substrates by analyzing progress curves (UV-visible spectroscopy), revealing that the rates of binding of any of these substrates decreased with increasing substrate concentration, a hallmark of conformational selection. Further, when the concentration of 17α-OH pregnenolone was held constant and the P450 concentration increased, the binding rate increased, and such opposite patterns are also diagnostic of conformational selection. Kinetic simulation modeling was also more consistent with conformational selection than with an induced-fit mechanism. Cytochrome b5 partially enhances P450 17A1 lyase activity by altering the P450 17A1 conformation but did not measurably alter the binding of 17α-OH pregnenolone or 17α-OH progesterone, as judged by the apparent Kd and binding kinetics. The P450 17A1 inhibitor abiraterone also bound to P450 17A1 in a multistep manner, and modeling indicated that the selective inhibition of the two P450 17A1 steps by the drug orteronel can be rationalized only by a multiple-conformation model. In conclusion, P450 17A1 binds its steroid substrates via conformational selection.


Asunto(s)
17-alfa-Hidroxipregnenolona/metabolismo , 17-alfa-Hidroxiprogesterona/metabolismo , Androstenos/metabolismo , Esteroide 17-alfa-Hidroxilasa/química , Esteroide 17-alfa-Hidroxilasa/metabolismo , 17-alfa-Hidroxipregnenolona/química , 17-alfa-Hidroxiprogesterona/química , Androstenos/química , Humanos , Cinética , Conformación Proteica , Especificidad por Sustrato
13.
Gene ; 702: 17-26, 2019 Jun 20.
Artículo en Inglés | MEDLINE | ID: mdl-30898704

RESUMEN

P450c17, a key enzyme in the steroid generation pathway, plays an important role in the production of sex steroid and cortisol. In this study, two cyp17 gene isoforms, Pocyp17-I and Pocyp17-II were isolated from Paralichthys olivaceus gonads. Domain architecture analysis of Pocyp17-I and Pocyp17-II revealed that they had three regions important to enzymatic function. Structural analysis showed that Pocyp17-I and Pocyp17-II had 8 and 9 exons respectively, and the difference was caused by the insertion of an extra intron (intron1) in the latter. Quantitative real-time polymerase chain reaction results indicated that the expression of these two genes showed sexually dimorphism that Pocyp17-I and Pocyp17-II were highest expressed in testis and ovary, respectively. The in situ hybridization analysis of gonads indicated that Pocyp17-I and Pocyp17-II mRNA were both detected in oocytes, spermatocytes and Sertoli cells. After injection of androgen and estrogen (17α-methyltestosterone, 17ß-estradiol) of different concentrations, the expression level of Pocyp17-I decreased significantly (P < 0.01), whereas estrogen had no influence on Pocyp17-II, but androgen upregulated the expression of Pocyp17-II (P < 0.05). Moreover, Pocyp17-I expression level was down-regulated significantly by NR0b1 but up-regulated by NR5a2 (P < 0.05), whereas Pocyp17-II expression level was down-regulated significantly by NR0b1 and NR5a2 (P < 0.05). All these results demonstrated that there were differences in expression patterns, feedback actions of sex hormones and transcriptional regulations between cyp17-I and cyp17-II, which revealed that cyp17-I and cyp17-II might perform different functions in sex hormones biosynthesis and gonadal differentiation in Japanese flounder.


Asunto(s)
Lenguado/genética , Esteroide 17-alfa-Hidroxilasa/genética , Andrógenos/farmacología , Animales , Diferenciación Celular , Receptor Nuclear Huérfano DAX-1/metabolismo , Estrógenos/farmacología , Femenino , Lenguado/metabolismo , Regulación de la Expresión Génica , Hormonas Esteroides Gonadales/biosíntesis , Masculino , Ovario/citología , Ovario/enzimología , Alineación de Secuencia , Caracteres Sexuales , Esteroide 17-alfa-Hidroxilasa/química , Esteroide 17-alfa-Hidroxilasa/metabolismo , Testículo/citología , Testículo/enzimología , Transcripción Genética
14.
Biophys J ; 116(3): 419-432, 2019 02 05.
Artículo en Inglés | MEDLINE | ID: mdl-30658838

RESUMEN

Human cytochrome P450 (CYP) enzymes play an important role in the metabolism of drugs, steroids, fatty acids, and xenobiotics. Microsomal CYPs are anchored in the endoplasmic reticulum membrane by an N-terminal transmembrane (TM) helix that is connected to the globular catalytic domain by a flexible linker sequence. However, the structural and functional importance of the TM-helix is unclear because it has been shown that CYPs can still associate with the membrane and have enzymatic activity in reconstituted systems after truncation or modification of the N-terminal sequence. Here, we investigated the effect of mutations in the N-terminal TM-helix residues of two human steroidogenic enzymes, CYP 17A1 and CYP 19A1, that are major drug targets for cancer therapy. These mutations were originally introduced to increase the expression of the proteins in Escherichia coli. To investigate the effect of the mutations on protein-membrane interactions and function, we carried out coarse-grained and all-atom molecular dynamics simulations of the CYPs in a phospholipid bilayer. We confirmed the orientations of the globular domain in the membrane observed in the simulations by linear dichroism measurements in a Nanodisc. Whereas the behavior of CYP 19A1 was rather insensitive to truncation of the TM-helix, mutations in the TM-helix of CYP 17A1, especially W2A and E3L, led to a gradual drifting of the TM-helix out of the hydrophobic core of the membrane. This instability of the TM-helix could affect interactions with the allosteric redox partner, cytochrome b5, required for CYP 17A1's lyase activity. Furthermore, the simulations showed that the mutant TM-helix influenced the membrane interactions of the CYP 17A1 globular domain. In some simulations, the mutated TM-helix obstructed the substrate access tunnel from the membrane to the CYP active site, indicating a possible effect on enzyme function.


Asunto(s)
Aromatasa/química , Aromatasa/metabolismo , Membrana Celular/metabolismo , Mutación , Esteroide 17-alfa-Hidroxilasa/química , Esteroide 17-alfa-Hidroxilasa/metabolismo , Secuencia de Aminoácidos , Simulación de Dinámica Molecular , Unión Proteica , Conformación Proteica en Hélice alfa , Dominios Proteicos , Esteroide 17-alfa-Hidroxilasa/genética
15.
Artículo en Inglés | MEDLINE | ID: mdl-30218714

RESUMEN

Androgens are a recognized class of endocrine disrupting compounds with the ability to impact reproductive status in aquatic organisms. The current study utilized in vitro exposure of mummichog (Fundulus heteroclitus) testis tissue to either the aromatizable androgen 17α-methyltestosterone (MT) or the non-aromatizable androgen 5α-dihydrotestosterone (DHT) over the course of 24 h to determine if there were differential effects on steroidogenic gene expression. Testis tissue was exposed to androgen concentrations of 10-12 M, 10-9 M and 10-6 M for 6, 12, 18 or 24 h, after which a suite of steroidogenic genes, including steroidogenic acute regulatory protein, 3ß-hydroxysteroid dehydrogenase (3ßhsd) and cytochrome P450 17A1 (cyp17a1), were quantified using real-time polymerase chain reaction. Both androgens affected steroidogenic gene expression, with most alterations occurring at the 24-hour time point. The gene with the highest fold-change, and shortest interval to expression alteration, was 3ßhsd for both androgens. Potential differences between the two model androgens were observed in increased expression of cyp17a1 and 11ß-hydroxysteroid dehydrogenase (11ßhsd), which were only altered after exposure to DHT and in expression levels of cytochrome P450 11A1 (cyp11a1), which was upregulated by MT but not altered by DHT. Results from this study show both androgens interact at the gonadal level of the hypothalamus-pituitary-gonadal axis and may possess some distinct gene expression impacts. These data strengthen the current research initiatives of establishing in vitro test systems that allow toxic potential of untested chemicals to be predicted from molecular perturbations.


Asunto(s)
Andrógenos/toxicidad , Disruptores Endocrinos/toxicidad , Proteínas de Peces/metabolismo , Regulación del Desarrollo de la Expresión Génica/efectos de los fármacos , Peces Killi/fisiología , Testículo/efectos de los fármacos , Contaminantes Químicos del Agua/toxicidad , 3-Hidroxiesteroide Deshidrogenasas/química , 3-Hidroxiesteroide Deshidrogenasas/genética , 3-Hidroxiesteroide Deshidrogenasas/metabolismo , Animales , Océano Atlántico , Dihidrotestosterona/toxicidad , Estuarios , Proteínas de Peces/genética , Sistema Hipotálamo-Hipofisario/efectos de los fármacos , Sistema Hipotálamo-Hipofisario/crecimiento & desarrollo , Sistema Hipotálamo-Hipofisario/metabolismo , Peces Killi/crecimiento & desarrollo , Cinética , Masculino , Metiltestosterona/toxicidad , Nuevo Brunswick , Especificidad de Órganos , Fosfoproteínas/metabolismo , Esteroide 17-alfa-Hidroxilasa/química , Esteroide 17-alfa-Hidroxilasa/genética , Esteroide 17-alfa-Hidroxilasa/metabolismo , Testículo/crecimiento & desarrollo , Testículo/metabolismo
16.
J Biol Chem ; 293(43): 16623-16634, 2018 10 26.
Artículo en Inglés | MEDLINE | ID: mdl-30217815

RESUMEN

Human cytochrome P450 enzymes are membrane-bound heme-containing monooxygenases. As is the case for many heme-containing enzymes, substitution of the metal in the center of the heme can be useful for mechanistic and structural studies of P450 enzymes. For many heme proteins, the iron protoporphyrin prosthetic group can be extracted and replaced with protoporphyrin containing another metal, but human membrane P450 enzymes are not stable enough for this approach. The method reported herein was developed to endogenously produce human membrane P450 proteins with a nonnative metal in the heme. This approach involved coexpression of the P450 of interest, a heme uptake system, and a chaperone in Escherichia coli growing in iron-depleted minimal medium supplemented with the desired trans-metallated protoporphyrin. Using the steroidogenic P450 enzymes CYP17A1 and CYP21A2 and the drug-metabolizing CYP3A4, we demonstrate that this approach can be used with several human P450 enzymes and several different metals, resulting in fully folded proteins appropriate for mechanistic, functional, and structural studies including solution NMR.


Asunto(s)
Citocromo P-450 CYP3A/metabolismo , Metaloporfirinas/metabolismo , Metales/metabolismo , Protoporfirinas/metabolismo , Esteroide 17-alfa-Hidroxilasa/metabolismo , Esteroide 21-Hidroxilasa/metabolismo , Citocromo P-450 CYP3A/química , Humanos , Metaloporfirinas/química , Pliegue de Proteína , Protoporfirinas/química , Esteroide 17-alfa-Hidroxilasa/química , Esteroide 21-Hidroxilasa/química
17.
Chembiochem ; 19(18): 1954-1958, 2018 09 17.
Artículo en Inglés | MEDLINE | ID: mdl-29981252

RESUMEN

The CYP171 enzyme is known to catalyse a key step in the steroidogenesis of mammals. The substrates progesterone and pregnenolone are first hydroxylated at the C17 position, and this is followed by cleavage of the C17-C20 bond to yield important precursors for glucosteroids and androgens. In this study, we focused on the reaction of the bovine CYP17A1 enzyme with progesterone as a substrate. On the basis of a created homology model, active-site residues were identified and systematically mutated to alanine. In whole-cell biotransformations, the importance of the N202, R239, G297 and E305 residues for substrate conversion was confirmed. Additionally, mutation of the L206, V366 and V483 residues enhanced the formation of the 16α-hydroxyprogesterone side product up to 40 % of the total product formation. Furthermore, residue L105 was found not to be involved in this side activity, which contradicts a previous study with the human enzyme.


Asunto(s)
Progesterona/metabolismo , Esteroide 17-alfa-Hidroxilasa/metabolismo , Animales , Dominio Catalítico , Bovinos , Hidroxiprogesteronas/química , Hidroxiprogesteronas/metabolismo , Modelos Moleculares , Mutagénesis Sitio-Dirigida , Progesterona/química , Estereoisomerismo , Esteroide 17-alfa-Hidroxilasa/química , Esteroide 17-alfa-Hidroxilasa/genética , Especificidad por Sustrato
18.
J Am Chem Soc ; 140(23): 7324-7331, 2018 06 13.
Artículo en Inglés | MEDLINE | ID: mdl-29758981

RESUMEN

The multifunctional enzyme, cytochrome P450 (CYP17A1), plays a crucial role in the production of androgens, catalyzing two key reactions on pregnenolone (PREG) and progesterone (PROG), the first being a 17-hydroxylation to generate 17-OH PREG and 17-OH PROG, with roughly equal efficiencies. The second is a C-C bond scission or "lyase" reaction in which the C17-C20 bond is cleaved, leading to the eventual production of powerful androgens, whose involvement in the proliferation of prostate cancer has generated intense interest in developing inhibitors of CYP17A1. For humans, the significance of the C-C bond cleavage of 17-OH PROG is lessened, because it is about 50 times less efficient than for 17-OH PREG in terms of kcat/Km. Recognizing the need to clarify relevant reaction mechanisms involved with such transformations, we first report studies of solvent isotope effects, results of which are consistent with a Compound I mediated PROG hydroxylase activity, yet exclude this intermediate as a participant in the formation of androstenedione (AD) via the lyase reaction. This finding is also supported by a combination of cryoreduction and resonance Raman spectroscopy that traps and structurally characterizes the key hemiketal reaction intermediates. Adding to a previous study of PREG and 17-OH PREG metabolism, the current work provides definitive evidence for a more facile protonation of the initially formed ferric peroxo-intermediate for 17-OH PROG-bound CYP17A1, compared to the complex with 17-OH PREG. Importantly, Raman characterization also reveals an H-bonding interaction with the terminal oxygen of the peroxo fragment, rather than with the proximal oxygen, as is present for 17-OH PREG. These factors would favor a diminished lyase activity of the sample with 17-OH PROG relative to the complex with 17-OH PREG, thereby providing a convincing structural explanation for the dramatic differences in activity for these lyase substrates in humans.


Asunto(s)
17-alfa-Hidroxiprogesterona/química , Liasas de Carbono-Carbono/química , Enzimas Multifuncionales/química , Esteroide 17-alfa-Hidroxilasa/química , Dominio Catalítico , Humanos , Enlace de Hidrógeno , Hidroxilación , Cinética , Oxidación-Reducción , Espectrometría Raman/métodos
19.
J Inorg Biochem ; 186: 24-33, 2018 09.
Artículo en Inglés | MEDLINE | ID: mdl-29807244

RESUMEN

Abiraterone and galeterone induce type I differential spectral changes in human sterol 14α-demethylase (cytochrome P450 51A1, CYP51A1) with the sigmoidal shape of the binding curve. After approximation of the data by Hill model, the half-saturation concentrations (K0.5) were estimated as 22 ±â€¯1 µM and 16 ±â€¯1 µM and the Hill coefficients as 2.4 ±â€¯0.2 and 1.97 ±â€¯0.23 for abiraterone and galeterone, respectively. We analyzed the catalytic activity of CYP51A1 towards abiraterone and galeterone using an electrochemical system based on recombinant CYP51A1 immobilized on the screen-printed graphite electrode (SPE) modified by didodecyldimethylammonium bromide (DDAB) film. The study revealed the amperometric response of CYP51A1 upon addition of abiraterone, which may indicate the substrate properties of abiraterone towards CYP51A1. Galeterone caused negligible amperometric response of CYP51A1. Mass-spectrometric analysis of the products of CYP51A1-dependent electrocatalytic reaction at a controlled potential towards abiraterone and galeterone revealed products with m/z of 366.3 and 405.2, respectively, indicating monohydroxylation of abiraterone and galeterone. We have observed the sigmoidal character of the dependence of the catalytic current on abiraterone concentration. Analysis of molecular docking data demonstrated the ability of abiraterone and galeterone to bind to the active site of CYP51A1, but abiraterone occupies the position closer to the heme.


Asunto(s)
Androstadienos/química , Androstenos/química , Bencimidazoles/química , Inhibidores Enzimáticos del Citocromo P-450/química , Simulación del Acoplamiento Molecular , Esteroide 17-alfa-Hidroxilasa/antagonistas & inhibidores , Esterol 14-Desmetilasa/química , Catálisis , Dominio Catalítico , Técnicas Electroquímicas , Humanos , Esteroide 17-alfa-Hidroxilasa/química , Esteroide 17-alfa-Hidroxilasa/metabolismo , Esterol 14-Desmetilasa/metabolismo
20.
J Med Chem ; 61(11): 4946-4960, 2018 06 14.
Artículo en Inglés | MEDLINE | ID: mdl-29792703

RESUMEN

Inhibition of androgen biosynthesis is clinically effective for treating androgen-responsive prostate cancer. Abiraterone is a clinical first-in-class inhibitor of cytochrome P450 17A1 (CYP17A1) required for androgen biosynthesis. However, abiraterone also causes hypertension, hypokalemia, and edema, likely due in part to off-target inhibition of another steroidogenic cytochrome P450, CYP21A2. Abiraterone analogs were designed based on structural evidence that B-ring substituents may favorably interact with polar residues in binding CYP17A1 and sterically clash with residues in the CYP21A2 active site. The best analogs increased selectivity of CYP17A1 inhibition up to 84-fold compared with 6.6-fold for abiraterone. Cocrystallization with CYP17A1 validated the intended new contacts with CYP17A1 active site residues. Docking these analogs into CYP21A2 identified steric clashes that likely underlie decreased binding and CYP21A2 inhibition. Overall, these analogs may offer a clinical advantage in the form of reduced side effects.


Asunto(s)
Androstenos/química , Androstenos/farmacología , Inhibidores Enzimáticos del Citocromo P-450/química , Inhibidores Enzimáticos del Citocromo P-450/farmacología , Diseño de Fármacos , Esteroide 17-alfa-Hidroxilasa/antagonistas & inhibidores , Esteroide 21-Hidroxilasa/antagonistas & inhibidores , Androstenos/metabolismo , Dominio Catalítico , Inhibidores Enzimáticos del Citocromo P-450/metabolismo , Humanos , Simulación del Acoplamiento Molecular , Esteroide 17-alfa-Hidroxilasa/química , Esteroide 17-alfa-Hidroxilasa/metabolismo , Esteroide 21-Hidroxilasa/química , Esteroide 21-Hidroxilasa/metabolismo
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