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Molybdenum and tungsten enzymes: a brief overview, Cordas, C. M., and Moura J. J. G. , Coord Chem Rev, Volume 394, p.53-64, (2019)
Camelid nanobodies raised against an integral membrane enzyme, nitric oxide reductase, Conrath, K., Pereira A. S., Martins C. E., Timoteo C. G., Tavares P., Spinelli S., Kinne J., Flaudrops C., Cambillau C., Muyldermans S., Moura I., Moura J. J., Tegoni M., and Desmyter A. , Protein Sci, Mar, Volume 18, Number 3, p.619-28, (2009) AbstractWebsite

Nitric Oxide Reductase (NOR) is an integral membrane protein performing the reduction of NO to N(2)O. NOR is composed of two subunits: the large one (NorB) is a bundle of 12 transmembrane helices (TMH). It contains a b type heme and a binuclear iron site, which is believed to be the catalytic site, comprising a heme b and a non-hemic iron. The small subunit (NorC) harbors a cytochrome c and is attached to the membrane through a unique TMH. With the aim to perform structural and functional studies of NOR, we have immunized dromedaries with NOR and produced several antibody fragments of the heavy chain (VHHs, also known as nanobodies). These fragments have been used to develop a faster NOR purification procedure, to proceed to crystallization assays and to analyze the electron transfer of electron donors. BIAcore experiments have revealed that up to three VHHs can bind concomitantly to NOR with affinities in the nanomolar range. This is the first example of the use of VHHs with an integral membrane protein. Our results indicate that VHHs are able to recognize with high affinity distinct epitopes on this class of proteins, and can be used as versatile and valuable tool for purification, functional study and crystallization of integral membrane proteins.

Heterodimeric nitrate reductase (NapAB) from Cupriavidus necator H16: purification, crystallization and preliminary X-ray analysis, Coelho, C., Gonzalez P. J., Trincao J., Carvalho A. L., Najmudin S., Hettman T., Dieckman S., Moura J. J., Moura I., and Romao M. J. , Acta Crystallogr Sect F Struct Biol Cryst Commun, Jun 1, Volume 63, Number Pt 6, p.516-9, (2007) AbstractWebsite

The periplasmic nitrate reductase from Cupriavidus necator (also known as Ralstonia eutropha) is a heterodimer that is able to reduce nitrate to nitrite. It comprises a 91 kDa catalytic subunit (NapA) and a 17 kDa subunit (NapB) that is involved in electron transfer. The larger subunit contains a molybdenum active site with a bis-molybdopterin guanine dinucleotide cofactor as well as one [4Fe-4S] cluster, while the small subunit is a di-haem c-type cytochrome. Crystals of the oxidized form of this enzyme were obtained using polyethylene glycol 3350 as precipitant. A single crystal grown at the High Throughput Crystallization Laboratory of the EMBL in Grenoble diffracted to beyond 1.5 A at the ESRF (ID14-1), which is the highest resolution reported to date for a nitrate reductase. The unit-cell parameters are a = 142.2, b = 82.4, c = 96.8 A, beta = 100.7 degrees, space group C2, and one heterodimer is present per asymmetric unit.

Preliminary crystallographic analysis and further characterization of a dodecaheme cytochrome c from Desulfovibrio desulfuricans ATCC 27774, Coelho, A. V., Matias P. M., Sieker L. C., Morais J., Carrondo M. A., Lampreia J., Costa C., Moura J. J., Moura I., and Legall J. , Acta Crystallogr D Biol Crystallogr, Nov 1, Volume 52, Number Pt 6, p.1202-8, (1996) AbstractWebsite

Dodecaheme cytochrome c has been purified from Desulfovibrio (D.) desulfuricans ATCC 27774 cells grown under both nitrate and sulfate-respiring conditions. Therefore, it is likely to play a role in the electron-transfer system of both respiratory chains. Its molecular mass (37768 kDa) was determined by electrospray mass spectrometry. Its first 39 amino acids were sequenced and a motif was found between amino acids 32 and 37 that seems to exist in all the cytochromes of the c(3) type from sulfate-reducing bacteria sequenced at present. The midpoint redox potentials of this cytochrome were estimated to be -68, -120, -248 and -310 mV. Electron paramagnetic resonance spectroscopy of the oxidized cytochrome shows several low-spin components with a g(max) spreading from 3.254 to 2.983. Two crystalline forms were obtained by vapour diffusion from a solution containing 2% PEG 6000 and 0.25-0.75 M acetate buffer pH = 5.5. Both crystals belong to monoclinic space groups: one is P2(1), with a = 61.00, b = 106.19, c = 82.05 A, beta = 103.61 degrees, and the other is C2 with a = 152.17, b = 98.45, c = 89.24 A, beta = 119.18 degrees. Density measurements of the P2(1) crystals suggest that there are two independent molecules in the asymmetric unit. Self-rotation function calculations indicate, in both crystal forms, the presence of a non-crystallographic axis perpendicular to the crystallographic twofold axis. This result and the calculated values for the volume per unit molecular weight of the C2 crystals suggest the presence of two or four molecules in the asymmetric unit.

Induced peroxidase activity of haem containing nitrate reductases revealed by protein film electrochemistry, Coelho, C., Marangon J., Rodrigues D., Moura J. J. G., Romão M. J., Paes de Sousa P. M., and Correia dos Santos M. M. , J Electroanal Chem, Volume 693, p.105-113, (2013)
The crystal structure of Cupriavidus necator nitrate reductase in oxidized and partially reduced states, Coelho, C., Gonzalez P. J., Moura J. G., Moura I., Trincao J., and Joao Romao M. , J Mol Biol, May 20, Volume 408, Number 5, p.932-48, (2011) AbstractWebsite

The periplasmic nitrate reductase (NapAB) from Cupriavidus necator is a heterodimeric protein that belongs to the dimethyl sulfoxide reductase family of mononuclear Mo-containing enzymes and catalyzes the reduction of nitrate to nitrite. The protein comprises a large catalytic subunit (NapA, 91 kDa) containing the molybdenum active site plus one [4Fe-4S] cluster, as well as a small subunit (NapB, 17 kDa), which is a diheme c-type cytochrome involved in electron transfer. Crystals of the oxidized form of the enzyme diffracted beyond 1.5 A at the European Synchrotron Radiation Facility. This is the highest resolution reported to date for a nitrate reductase, providing true atomic details of the protein active center, and this showed further evidence on the molybdenum coordination sphere, corroborating previous data on the related Desulfovibrio desulfuricans NapA. The molybdenum atom is bound to a total of six sulfur atoms, with no oxygen ligands or water molecules in the vicinity. In the present work, we were also able to prepare partially reduced crystals that revealed two alternate conformations of the Mo-coordinating cysteine. This crystal form was obtained by soaking dithionite into crystals grown in the presence of the ionic liquid [C(4)mim]Cl(-). In addition, UV-Vis and EPR spectroscopy studies showed that the periplasmic nitrate reductase from C. necator might work at unexpectedly high redox potentials when compared to all periplasmic nitrate reductases studied to date.

Preliminary crystallographic analysis of the oxidized form of a two mono-nuclear iron centres protein from Desulfovibrio desulfuricans ATCC 27774, Coelho, A. V., Matias P. M., Carrondo M. A., Tavares P., Moura J. J., Moura I., Fulop V., Hajdu J., and Legall J. , Protein Sci, Jun, Volume 5, Number 6, p.1189-91, (1996) AbstractWebsite

Crystals of the fully oxidized form of desulfoferrodoxin were obtained by vapor diffusion from a solution containing 20% PEG 4000, 0.1 M HEPES buffer, pH 7.5, and 0.2 M CaCl2. Trigonal and/or rectangular prisms could be obtained, depending on the temperature used for the crystal growth. Trigonal prisms belong to the rhombohedral space group R32, with a = 112.5 A and c = 63.2 A; rectangular prisms belong to the monoclinic space group C2, with a = 77.7 A, b = 80.9 A, c = 53.9 A, and beta = 98.1 degrees. The crystallographic asymmetric unit of the rhombohedral crystal form contains one molecule. There are two molecules in the asymmetric unit of the monoclinic form, in agreement with the self-rotation function.

Spectroscopic and electronic structure studies of the mu(4)-sulfide bridged tetranuclear Cu(Z) cluster in N(2)O reductase: molecular insight into the catalytic mechanism, Chen, P., Cabrito I., Moura J. J., Moura I., and Solomon E. I. , J Am Chem Soc, Sep 4, Volume 124, Number 35, p.10497-507, (2002) AbstractWebsite

Spectroscopic methods combined with density functional calculations are used to develop a detailed bonding description of the mu(4)-sulfide bridged tetranuclear Cu(Z) cluster in N(2)O reductase. The ground state of Cu(Z) has the 1Cu(II)/3Cu(I) configuration. The single electron hole dominantly resides on one Cu atom (Cu(I)) and partially delocalizes onto a second Cu atom (Cu(II)) via a Cu(I)-S-Cu(II) sigma/sigma superexchange pathway which is manifested by a Cu(II) --> Cu(I) intervalence transfer transition in absorption. The observed excited-state spectral features of Cu(Z) are dominated by the S --> Cu(I) charge-transfer transitions and Cu(I) based d-d transitions. The intensity pattern of individual S --> Cu(I) charge-transfer transitions reflects different bonding interactions of the sulfur valence orbitals with the four Cu's in the Cu(Z) cluster, which are consistent with the individual Cu-S force constants obtained from a normal coordinate analysis of the Cu(Z) resonance Raman frequencies and profiles. The Cu(I) d orbital splitting pattern correlates with its distorted T-shaped ligand field geometry and accounts for the observed low g( parallel ) value of Cu(Z) in EPR. The dominantly localized electronic structure description of the Cu(Z) site results from interactions of Cu(II) with the two additional Cu's of the cluster (Cu(III)/Cu(IV)), where the Cu-Cu electrostatic interactions lead to hole localization with no metal-metal bonding. The substrate binding edge of Cu(Z) has a dominantly oxidized Cu(I) and a dominantly reduced Cu(IV). The electronic structure description of Cu(Z) provides a strategy to overcome the reaction barrier of N(2)O reduction at this Cu(I)/Cu(IV) edge by simultaneous two-electron transfer to N(2)O in a bridged binding mode. One electron can be donated directly from Cu(IV) and the other from Cu(II) through the Cu(II)-S-Cu(I) sigma/sigma superexchange pathway. A frontier orbital scheme provides molecular insight into the catalytic mechanism of N(2)O reduction by the Cu(Z) cluster.

Cloning, sequencing and overexpression of the Desulfovibrio gigas ferredoxin gene in E. coli, Chen, B., Menon N. K., Dervertarnian L., Moura J. J., and Przybyla A. E. , FEBS Lett, Sep 12, Volume 351, Number 3, p.401-4, (1994) AbstractWebsite

We have cloned the gene encoding Desulfovibrio gigas ferredoxin using a photodigoxigenin-labelled probe synthesized with the polymerase chain reaction. The DNA sequence of the gene predicts a polypeptide of 58 residues after removal of the initial formyl methionine (polypeptide M(r) = 6,276). The ferredoxin gene was expressed in aerobically grown E. coli behind the lac promoter of pUC18 resulting in a high level of ferredoxin expression which comprises about 10% of the total cell protein. EPR analysis of recombinant ferredoxin revealed the presence of a [3Fe-4S] cluster which is characteristic of native D. gigas ferredoxin II.

Electronic structure description of the mu(4)-sulfide bridged tetranuclear Cu(Z) center in N(2)O reductase, Chen, P., DeBeer George S., Cabrito I., Antholine W. E., Moura J. J., Moura I., Hedman B., Hodgson K. O., and Solomon E. I. , J Am Chem Soc, Feb 6, Volume 124, Number 5, p.744-5, (2002) AbstractWebsite

Spectroscopy coupled with density functional calculations has been used to define the spin state, oxidation states, spin distribution, and ground state wave function of the mu4-sulfide bridged tetranuclear CuZ cluster of nitrous oxide reductase. Initial insight into the electronic contribution to N2O reduction is developed, which involves a sigma superexchange pathway through the bridging sulfide.

Highly sensitive nitrite biosensor based on the electrical wiring of nitrite reductase by ZnCr-AQS LDH, Chen, H., Mousty C., Cosnier S., Silveira C., Moura J. J. G., and Almeida M. G. , Electrochemistry Communications, Sep, Volume 9, Number 9, p.2240-2245, (2007) AbstractWebsite

A biosensor for amperometric determination of nitrite was developed using cytochrome c nitrite reductase (ccNiR) from Desulfovibrio desulfuricans immobilized and electrically connected on a glassy carbon electrode by entrapment into redox active [ZnCr-AQS] layered double hydroxide containing anthraquinone-2-sulfonate (AQS). The transduction step corresponded to the electro-enzymatic reduction of nitrite by immobilized AQS molecules at -0.6 V. The biosensor showed a fast response to nitrite (5 s) with a linear range between 0.015 and 2.35 mu M, a sensitivity of 1.8 A M-1 cm(-2) and a detection limit of 4 nM. The apparent Michaelis-Menten constant (K-M(app)) M was 7.5 mu M. (c) 2007 Elsevier B.V. All rights reserved.

The effect of the sixth sulfur ligand in the catalytic mechanism of periplasmic nitrate reductase, Cerqueira, N. M., Gonzalez P. J., Brondino C. D., Romao M. J., Romao C. C., Moura I., and Moura J. J. , J Comput Chem, Nov 30, Volume 30, Number 15, p.2466-84, (2009) AbstractWebsite

The catalytic mechanism of nitrate reduction by periplasmic nitrate reductases has been investigated using theoretical and computational means. We have found that the nitrate molecule binds to the active site with the Mo ion in the +6 oxidation state. Electron transfer to the active site occurs only in the proton-electron transfer stage, where the Mo(V) species plays an important role in catalysis. The presence of the sulfur atom in the molybdenum coordination sphere creates a pseudo-dithiolene ligand that protects it from any direct attack from the solvent. Upon the nitrate binding there is a conformational rearrangement of this ring that allows the direct contact of the nitrate with Mo(VI) ion. This rearrangement is stabilized by the conserved methionines Met141 and Met308. The reduction of nitrate into nitrite occurs in the second step of the mechanism where the two dimethyl-dithiolene ligands have a key role in spreading the excess of negative charge near the Mo atom to make it available for the chemical reaction. The reaction involves the oxidation of the sulfur atoms and not of the molybdenum as previously suggested. The mechanism involves a molybdenum and sulfur-based redox chemistry instead of the currently accepted redox chemistry based only on the Mo ion. The second part of the mechanism involves two protonation steps that are promoted by the presence of Mo(V) species. Mo(VI) intermediates might also be present in this stage depending on the availability of protons and electrons. Once the water molecule is generated only the Mo(VI) species allow water molecule dissociation, and, the concomitant enzymatic turnover.

Periplasmic nitrate reductase and formate dehydrogenase: similar molecular architectures with very different enzymatic activities, Cerqueira, N., Gonzalez P. J., Fernandes P. A., Moura J. J. G., and Ramos M. J. , Acc Chem Res, Volume 48, p.2875−2884, (2015)
The sulfur-shift: an activation mechanism for periplasmic nitrate reductase and formate dehydrogenase, Cerqueira, N., Fernandes P., González P., Moura J. J. G., and Ramos M. J. , Inorg Chem, Volume 52, p.10766-10772, (2013)
Fluorescence anisotropy of fluorescein varies according to pH: lessons for binding studies, Castro, N. S. S., Laia C. A. T., Moura I., and Carepo M. S. , J Photochem Photobiol A: Chemistry, Volume 372, p.59-62, (2019)
Small phospho-donors phosphorylate MorR without inducing protein conformational changes, Castro, N. S. S., Laia C. A. T., Maiti B. K., Cerqueira N., Moura I., and Carepo M. S. P. , Biophys Chem, Volume 240, p.25-33, (2018)
Electrode Kinetics of Ion Jelly and Ion Sol-Gel Redox Materials on Screen-Printed Electrodes, Carvalho, R. N. H., Cordas C. M., and Fonseca L. P. , Appl Sci, Volume 12, p.2087, (2022)
Sandwich-Type Enzymatic Fuel Cell Based on a New Electro-Conductive Material - Ion Jelly, Carvalho, R., Almeida R., Moura J. J. G., Lourenço N., Fonseca L., and Cordas C. M. , Chemistry Select, Volume 1, p.6546–6552, (2016) Website
Genomic organization, gene expression and activity profile of Marinobacter hydrocarbonoclasticus denitrification enzymes, Carreira, C., Mestre O., Nunes R. F., Moura I., and Pauleta S. R. , PEERJ, Volume 6, p.DOI: 10.7717/peerj.5603, (2018)
Can ultrasonic energy efficiently speed (18)O-labeling of proteins?, Carreira, Ricardo J., Lodeiro Carlos, Diniz Mario S., Moura Isabel, and Capelo Jose L. , Proteomics, Nov, Volume 9, Number 21, p.4974-4977, (2009) AbstractWebsite

We report in this work on the robustness of ultrasonic energy as a tool to speed the isotopic labeling of proteins using the (18)O-decoupling procedure. The first part of the decoupling procedure, comprising protein denaturation, reduction, alkylation and digestion, is done in 8 min under the effects of an ultrasonic field whilst the second part, the isotopic labeling, was assayed with and without the use of ultrasonic energy. Our results clearly demonstrate that the (18)O-isotopic labeling in a decoupling procedure cannot be accelerated using an ultrasonic field.

The effect of pH on Marinobacter hydrocarbonoclasticus denitrification pathway and nitrous oxide reductase, Carreira, C., Nunes R. F., Mestre O., Moura I., and Pauleta S. R. , J Biol Inorg Chem, Volume 25, p.927, (2020)
New findings for in-gel digestion accelerated by high-intensity focused ultrasound for protein identification by matrix-assisted laser desorption ionization time-of-flight mass spectrometry, Carreira, R. J., Cordeiro F. M., Moro A. J., Rivas M. G., Rial-Otero R., Gaspar E. M., Moura I., and Capelo J. L. , Journal of Chromatography A, Jun 15, Volume 1153, Number 1-2, p.291-299, (2007) AbstractWebsite

New findings in sample treatment based on high-intensity focused ultrasound (HIFU) for protein digestion after polyacrylamide gel electrophoresis separation are presented. The following variables were studied: (i) sample volume; (ii) sonotrode diameter; (iii) previous protein denaturation; (iv) cooling; (v) enzyme concentration; and (vi) protein concentration. Results showed that positive protein identification could be done after protein separation by gel electrophoresis through peptide mass fingerprint (PMF) in a volume as low as 25 mu L. The time needed was less than 2 min and no cooling was necessary. The importance of the sonotrode diameter was negligible. On the other hand, protein denaturation before sonication was a trade-off for the success of procedure here described. The protein coverage was raised from 5 to 30%, and the number of peptides matching the proteins was also increased in a percentage ranging 10-100% when the classical overnight treatment is compared with the proposed HIFU procedure. The minimum amount of protein that can be identified using the HIFU sample treatment by matrix-assisted laser desorption ionization time-of-flight mass spectrometry (MALDI-TOF-MS) was 0.06 mu g. The lower concentration of trypsin successfully used to obtain an adequate protein digestion was 3.6 mu g/mL. (c) 2006 Elsevier B.V. All rights reserved.

The catalytic cycle of nitrous oxide reductase - The enzyme that catalyzes the last step of denitrification, Carreira, C., Pauleta S. R., and Moura I. , J Inorg Biochem, Volume 177, p.423-434, (2017)
Can ultrasonic energy efficiently speed (18)O-labeling of proteins?, Carreira, Ricardo J., Lodeiro Carlos, Diniz Mario S., Moura Isabel, and Capelo Jose L. , Proteomics, Nov, Volume 9, Number 21, p.4974-4977, (2009) AbstractWebsite

We report in this work on the robustness of ultrasonic energy as a tool to speed the isotopic labeling of proteins using the (18)O-decoupling procedure. The first part of the decoupling procedure, comprising protein denaturation, reduction, alkylation and digestion, is done in 8 min under the effects of an ultrasonic field whilst the second part, the isotopic labeling, was assayed with and without the use of ultrasonic energy. Our results clearly demonstrate that the (18)O-isotopic labeling in a decoupling procedure cannot be accelerated using an ultrasonic field.

Orange protein from Desulfovibrio alaskensis G20: insights into the Mo-Cu cluster protein-assisted synthesis, Carepo, M. S., Carreira C., Grazina R., Zakrzewska M. E., Dolla A., Aubert C., Pauleta S. R., Moura J. J. G., and Moura I. , J Biol Inorg Chem, Volume 21, p.53-62, (2016)