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1.
J Biol Inorg Chem ; 26(4): 403-410, 2021 06.
Artigo em Inglês | MEDLINE | ID: mdl-33905031

RESUMO

NifB, a radical SAM enzyme, catalyzes the biosynthesis of the L cluster (Fe8S9C), a structural homolog and precursor to the nitrogenase active-site M cluster ([MoFe7S9C·R-homocitrate]). Sequence analysis shows that NifB contains the CxxCxxxC motif that is typically associated with the radical SAM cluster ([Fe4S4]SAM) involved in the binding of S-adenosylmethionine (SAM). In addition, NifB houses two transient [Fe4S4] clusters (K cluster) that can be fused into an 8Fe L cluster concomitant with the incorporation of an interstitial carbide ion, which is achieved through radical SAM chemistry initiated at the [Fe4S4]SAM cluster upon its interaction with SAM. Here, we report a VTVH MCD/EPR spectroscopic study of the L cluster biosynthesis on NifB, which focuses on the initial interaction of SAM with [Fe4S4]SAM in a variant NifB protein (MaNifBSAM) containing only the [Fe4S4]SAM cluster and no K cluster. Titration of MaNifBSAM with SAM reveals that [Fe4S4]SAM exists in two forms, labeled [Formula: see text] and [Formula: see text]. It is proposed that these forms are involved in the synthesis of the L cluster. Of the two cluster types, only [Formula: see text] initially interacts with SAM, resulting in the generation of Z, an S = ½ paramagnetic [Fe4S4]SAM/SAM complex.


Assuntos
Proteínas de Bactérias/metabolismo , Dicroísmo Circular/métodos , Espectroscopia de Ressonância de Spin Eletrônica , Proteínas de Bactérias/genética , Ligação Proteica , Conformação Proteica , S-Adenosilmetionina/química
2.
Chembiochem ; 21(12): 1767-1772, 2020 06 15.
Artigo em Inglês | MEDLINE | ID: mdl-31881119

RESUMO

The active site of the nitrogen-fixing enzyme Mo-nitrogenase is the M cluster ([MoFe7 S9 C⋅R-homocitrate]), also known as the FeMo cofactor or FeMoco. The biosynthesis of this highly complex metallocluster involves a series of proteins. Among them, NifB, a radical-SAM enzyme, is instrumental in the assembly of the L cluster ([Fe8 S9 C]), a precursor and all-iron core of the M cluster. In the absence of sulfite, NifB assembles a precursor form of the L cluster called the L* cluster ([Fe8 S8 C]), which lacks the final ninth sulfur. EPR and MCD spectroscopies are used to probe the electronic structures of the paramagnetic, oxidized forms of both the L and L* clusters, labeled LOx and [L*]Ox . This study shows that both LOx and [L*]Ox have nearly identical EPR and MCD spectra, thus suggesting that the two clusters have identical structures upon oxidation; in other words, a sulfur migrates away from LOx following oxidation, thereby rendering the cluster identical to [L*]Ox . It is proposed that a similar migration could occur to the M cluster upon oxidation, and that this is an instrumental part of both M cluster formation and nitrogenase substrate/inhibitor binding.


Assuntos
Elétrons , Compostos de Ferro/metabolismo , Enxofre/metabolismo , Sítios de Ligação/efeitos dos fármacos , Dicroísmo Circular , Espectroscopia de Ressonância de Spin Eletrônica , Inibidores Enzimáticos/química , Inibidores Enzimáticos/farmacologia , Compostos de Ferro/química , Fenômenos Magnéticos , Methanosarcina/química , Nitrogenase/antagonistas & inibidores , Nitrogenase/química , Nitrogenase/metabolismo , Oxirredução , Especificidade por Substrato , Enxofre/química
3.
Inorg Chem ; 57(8): 4719-4725, 2018 Apr 16.
Artigo em Inglês | MEDLINE | ID: mdl-29611695

RESUMO

The P-cluster of the nitrogenase MoFe protein is a [ Fe8 S7] cluster that mediates efficient transfer of electrons to the active site for substrate reduction. Arguably the most complex homometallic FeS cluster found in nature, the biosynthetic mechanism of the P-cluster is of considerable theoretical and synthetic interest to chemists and biochemists alike. Previous studies have revealed a biphasic assembly mechanism of the two P-clusters in the MoFe protein upon incubation with Fe protein and ATP, in which the first P-cluster is formed through fast fusion of a pair of [ Fe4 S4]+ clusters within 5 min and the second P-cluster is formed through slow fusion of the second pair of [ Fe4 S4]+ clusters in a period of 2 h. Here we report a VTVH MCD and EPR spectroscopic study of the biosynthesis of the slow-forming, second P-cluster within the MoFe protein. Our results show that the first major step in the formation of the second P-cluster is the conversion of one of the precursor [ Fe4 S4]+ clusters into the integer spin cluster [ Fe4 S3-4]α, a process aided by the assembly protein NifZ, whereas the second major biosynthetic step appears to be the formation of a diamagnetic cluster with a possible structure of [ Fe8 S7-8]ß, which is eventually converted into the P-cluster.


Assuntos
Proteínas de Bactérias/química , Proteínas Ferro-Enxofre/química , Nitrogenase/química , Oxirredutases/química , Azotobacter vinelandii , Proteínas de Bactérias/biossíntese , Dicroísmo Circular , Espectroscopia de Ressonância de Spin Eletrônica , Proteínas Ferro-Enxofre/biossíntese , Modelos Químicos , Nitrogenase/biossíntese , Oxirredutases/biossíntese
4.
Biochemistry ; 53(7): 1108-16, 2014 Feb 25.
Artigo em Inglês | MEDLINE | ID: mdl-24520862

RESUMO

The P-cluster in the nitrogenase MoFe protein is a [Fe8S7] cluster and represents the most complex FeS cluster found in Nature. To date, the exact mechanism of the in vivo synthesis of the P-cluster remains unclear. What is known is that the precursor to the P-cluster is a pair of neighboring [Fe4S4]-like clusters found on the ΔnifH MoFe protein, a protein expressed in the absence of the nitrogenase Fe protein (NifH). Moreover, incubation of the ΔnifH MoFe protein with NifH and MgATP results in the synthesis of the MoFe protein P-clusters. To improve our understanding of the mechanism of this reaction, we conducted a magnetic circular dichroism (MCD) spectroscopic study of the [Fe4S4]-like clusters on the ΔnifH MoFe protein. Reducing the ΔnifH MoFe protein with Ti(III) citrate results in the quenching of the S = (1)/2 electron paramagnetic resonance signal associated with the [Fe4S4](+) state of the clusters. MCD spectroscopy reveals this reduction results in all four 4Fe clusters being converted into the unusual, all-ferrous [Fe4S4](0) state. Subsequent increases of the redox potential generate new clusters. Most significantly, one of these newly formed clusters is the P-cluster, which represents approximately 20-25% of the converted Fe concentration. The other two clusters are an X cluster, of unknown structure, and a classic [Fe4S4] cluster, which represents approximately 30-35% of the Fe concentration. Diamagnetic FeS clusters may also have been generated but, because of their low spectral intensity, would not have been identified. These results demonstrate that the nitrogenase P-cluster can be generated in the absence of NifH and MgATP.


Assuntos
Azotobacter vinelandii/metabolismo , Compostos Ferrosos/metabolismo , Molibdoferredoxina/química , Molibdoferredoxina/metabolismo , Nitrogenase/química , Nitrogenase/metabolismo , Azotobacter vinelandii/química , Dicroísmo Circular , Compostos Ferrosos/química , Molibdoferredoxina/isolamento & purificação , Nitrogenase/isolamento & purificação
5.
Photochem Photobiol Sci ; 13(9): 1270-80, 2014 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-24976521

RESUMO

A new kind of material called nanoGUMBOS, comprised entirely of cations and anions, has been developed by pairing various functional ions that exhibit fluorescence activity with biocompatible ions, in a process very much akin to that employed in ionic liquid chemistry. In the present study, spectral and biological properties of NIR absorbing nanoGUMBOS were evaluated using electron microscopy, dynamic light scattering, absorbance, thermal imaging, and live/dead fluorescence assays in conjunction with malignant MDA-MB-231 and non-malignant HS-578-BST epithelial human breast cells. The primary focus of this study was to maximize heat generation using NIR laser irradiation and minimize non-specific cytotoxicity using biocompatible constituent ions (e.g. amino acids, vitamins, or organic acids). Concurrently, in order to generate highly responsive nanomaterials for NIR-laser-triggered hyperthermia, optimization of the nanoparticle size, shape, and uniformity was carried out. Evaluation of data from hyperthermal studies of NIR absorbing nanoGUMBOS shows that these materials can achieve temperatures above the threshold for killing cancerous cells. Additionally, in vitro cell based assays demonstrated their promising hyperthermal effects on cancer derived epithelial cells.


Assuntos
Nanoestruturas/química , Neoplasias da Mama/metabolismo , Neoplasias da Mama/patologia , Linhagem Celular Tumoral , Sobrevivência Celular/efeitos dos fármacos , Sobrevivência Celular/efeitos da radiação , Feminino , Ácido Fólico/química , Humanos , Hipertermia Induzida , Lasers , Microscopia de Fluorescência , Nanoestruturas/toxicidade
6.
J Am Chem Soc ; 134(33): 13749-54, 2012 Aug 22.
Artigo em Inglês | MEDLINE | ID: mdl-22839751

RESUMO

Mo nitrogenase consists of two component proteins: the Fe protein, which contains a [Fe(4)S(4)] cluster, and the MoFe protein, which contains two different classes of metal cluster: P-cluster ([Fe(8)S(7)]) and FeMoco ([MoFe(7)S(9)C·homocitrate]). The P-cluster is believed to mediate the electron transfer between the Fe protein and the MoFe protein via interconversions between its various oxidation states, such as the all-ferrous state (P(N)) and the one- (P(+)) and two-electron (P(2+)) oxidized states. While the structural and electronic properties of P(N) and P(2+) states have been well characterized, little is known about the electronic structure of the P(+) state. Here, a mutant strain of Azotobacter vinelandii (DJ1193) was used to facilitate the characterization of the P(+) state of P-cluster. This strain expresses a MoFe protein variant (designated ΔnifB ß-188(Cys) MoFe protein) that accumulates the P(+) form of P-cluster in the resting state. Magnetic circular dichroism (MCD) spectrum of the P-cluster in the oxidized ΔnifB ß-188(Cys) MoFe protein closely resembles that of the P(2+) state in the oxidized wild-type MoFe protein, except for the absence of a major charge-transfer band centered at 823 nm. Moreover, magnetization curves of ΔnifB ß-188(Cys) and wild-type MoFe proteins suggest that the P(2+) species in both proteins have the same spin state. MCD spectrum of the P(+) state in the ΔnifB ß-188(Cys) MoFe protein, on the other hand, is associated with a classic [Fe(4)S(4)](+) cluster, suggesting that the P-cluster could be viewed as two coupled 4Fe clusters and that it could donate either one or two electrons to FeMoco by using one or both of its 4Fe halves. Such a mode of action of P-cluster could provide energetic and kinetic advantages to nitrogenase in the complex mechanism of N(2) reduction.


Assuntos
Azotobacter vinelandii/enzimologia , Molibdoferredoxina/química , Azotobacter vinelandii/química , Azotobacter vinelandii/genética , Transporte de Elétrons , Modelos Moleculares , Molibdoferredoxina/genética , Mutação , Oxirredução , Conformação Proteica
7.
J Am Chem Soc ; 133(18): 6871-3, 2011 May 11.
Artigo em Inglês | MEDLINE | ID: mdl-21488637

RESUMO

Two proteins involved in nitrogen fixation contain ferredoxin-type [4Fe4S] clusters that exist in paramagnetic ground state upon oxidation, a property never observed since the discovery of ferredoxins 50 years ago. This unique characteristic suggests a specific coupling in these clusters necessary for nitrogen fixation and implies an evolutionary connection between the clusters in the two proteins.


Assuntos
Proteínas de Bactérias/química , Proteínas Ferro-Enxofre/química , Molibdoferredoxina/química , Fixação de Nitrogênio , Oxirredutases/química , Espectroscopia de Ressonância de Spin Eletrônica , Oxirredução , Multimerização Proteica
8.
J Biol Inorg Chem ; 16(2): 325-32, 2011 Feb.
Artigo em Inglês | MEDLINE | ID: mdl-21038112

RESUMO

NifEN plays a key role in the biosynthesis of the iron-molybdenum cofactor (FeMoco) of nitrogenase. A scaffold protein that hosts the conversion of a FeMoco precursor to a mature cofactor, NifEN can assume three conformations during the process of FeMoco maturation. One, designated ΔnifB NifEN, contains only two permanent [Fe(4)S(4)]-like clusters. The second, designated NifEN(Precursor), contains the permanent clusters and a precursor form of FeMoco. The third, designated NifEN("FeMoco"), contains the permanent [Fe(4)S(4)]-like clusters and a fully complemented, "FeMoco"-like structure. Here, we report a variable-temperature, variable-field magnetic circular dichroism spectroscopic investigation of the electronic structure of the metal clusters in the three forms of dithionite-reduced NifEN. Our data indicate that the permanent [Fe(4)S(4)]-like clusters are structurally and electronically conserved in all three NifEN species and exhibit spectral features of classic [Fe(4)S(4)](+) clusters; however, they are present in a mixed spin state with a small contribution from the S > ½ spin state. Our results also suggest that both the precursor and "FeMoco" have a conserved Fe/S electronic structure that is similar to the electronic structure of FeMoco in the MoFe protein, and that the "FeMoco" in NifEN("FeMoco") exists, predominantly, in an S = 3/2 spin state with spectral parameters identical to those of FeMoco in the MoFe protein. These observations provide strong support to the outcome of our previous EPR and X-ray absorption spectroscopy/extended X-ray absorption fine structure analysis of the three NifEN species while providing significant new insights into the unique electronic properties of the precursor and "FeMoco" in NifEN.


Assuntos
Proteínas de Bactérias/metabolismo , Molibdoferredoxina/metabolismo , Azotobacter vinelandii/metabolismo , Proteínas de Bactérias/química , Dicroísmo Circular , Proteínas Ferro-Enxofre/metabolismo , Temperatura
9.
J Am Chem Soc ; 131(13): 4558-9, 2009 Apr 08.
Artigo em Inglês | MEDLINE | ID: mdl-19334767

RESUMO

NifZ is a member of a series of proteins associated with the maturation of the nitrogenase MoFe protein. An MCD spectroscopic study was undertaken on the Delta nifB Delta nifZ MoFe protein generated in the absence of both NifZ and NifB (deletion of NifB generates an apo-MoFe protein lacking the FeMo cofactor). Results presented here show that, in the absence of NifZ, only one of the two P-clusters of the MoFe protein is matured to the ultimate [8Fe-7S] structure. The other P-cluster site in the protein contains a [4Fe-4S] cluster pair, representing a P-cluster precursor that is electronically identical to the analogous clusters observed in the Delta nifH MoFe protein. These results suggest that the MoFe protein is synthesized in a stepwise fashion where NifZ is specifically required for the formation of the second P-cluster.


Assuntos
Azotobacter vinelandii/enzimologia , Deleção de Genes , Molibdoferredoxina/química , Molibdoferredoxina/genética , Azotobacter vinelandii/genética , Proteínas de Bactérias/genética , Dicroísmo Circular , Elétrons , Genes Bacterianos , Magnetismo , Metais/química , Modelos Moleculares , Conformação Proteica , Multimerização Proteica
10.
Appl Spectrosc ; 68(3): 340-52, 2014.
Artigo em Inglês | MEDLINE | ID: mdl-24666951

RESUMO

The photothermal properties of several near-infrared-absorbing nanoparticles derived from group of uniform materials based on organic salts (GUMBOS) and composed of cationic dyes coupled with biocompatible anions are evaluated. These nanoparticles were synthesized using a reprecipitation method performed at various pH values: 2.0, 5.0, 7.0, 9.0, and 11.0. The cations for the nanoparticles derived from GUMBOS (nanoGUMBOS), [1048] and [1061], have absorbance maxima at wavelengths overlapping with human soft tissue absorbance minima. Near-infrared-absorbing nanoGUMBOS excited with a 1064 nm continuous laser led to heat generation, with an average temperature increase of 20.4 ± 2.7 °C. Although the [1061][Deoxycholate] nanoGUMBOS generated the highest temperature increase (23.7 ± 2.4 °C), it was the least photothermally efficient compound (13.0%) due to its relatively large energy band gap of 0.892 eV. The more photothermally efficient compound [1048][Ascorbate] (64.4%) had a smaller energy band gap of 0.861 eV and provided an average photothermal temperature increase of 21.0 ± 2.1 °C.

11.
J Lab Autom ; 16(2): 112-125, 2011 Apr 01.
Artigo em Inglês | MEDLINE | ID: mdl-21483651

RESUMO

Controllers for scanning probe instruments can be programmed for automated lithography to generate desired surface arrangements of nanopatterns of organic thin films, such as n-alkanethiol self-assembled monolayers (SAMs). In this report, atomic force microscopy (AFM) methods of lithography known as nanoshaving and nanografting are used to write nanopatterns within organic thin films. Commercial instruments provide software to control the length, direction, speed, and applied force of the scanning motion of the tip. For nanoshaving, higher forces are applied to an AFM tip to selectively remove regions of the matrix monolayer, exposing bare areas of the gold substrate. Nanografting is accomplished by force-induced displacement of molecules of a matrix SAM, followed immediately by the surface self-assembly of n-alkanethiol molecules from solution. Advancements in AFM automation enable rapid protocols for nanolithography, which can be accomplished within the tight time restraints of undergraduate laboratories. Example experiments with scanning probe lithography (SPL) will be described in this report that were accomplished by undergraduate students during laboratory course activities and research internships in the chemistry department of Louisiana State University. Students were introduced to principles of surface analysis and gained "hands-on" experience with nanoscale chemistry.

12.
J Lab Autom ; 16(2): 112-25, 2011 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-21609692

RESUMO

Controllers for scanning probe instruments can be programmed for automated lithography to generate desired surface arrangements of nanopatterns of organic thin films, such as n-alkanethiol self-assembled monolayers (SAMs). In this report, atomic force microscopy (AFM) methods of lithography known as nanoshaving and nanografting are used to write nanopatterns within organic thin films. Commercial instruments provide software to control the length, direction, speed, and applied force of the scanning motion of the tip. For nanoshaving, higher forces are applied to an AFM tip to selectively remove regions of the matrix monolayer, exposing bare areas of the gold substrate. Nanografting is accomplished by force-induced displacement of molecules of a matrix SAM, followed immediately by the surface self-assembly of n-alkanethiol molecules from solution. Advancements in AFM automation enable rapid protocols for nanolithography, which can be accomplished within the tight time restraints of undergraduate laboratories. Example experiments with scanning probe lithography will be described in this report that were accomplished by undergraduate students during laboratory course activities and research internships in the chemistry department of Louisiana State University. Students were introduced to principles of surface analysis and gained "hands-on" experience with nanoscale chemistry.

13.
Biochemistry ; 45(50): 15039-48, 2006 Dec 19.
Artigo em Inglês | MEDLINE | ID: mdl-17154541

RESUMO

Deletion of nifB results in the formation of a variant nitrogenase MoFe protein (DeltanifB MoFe protein) that appears to contain two normal [8Fe-7S] P clusters. This protein can be reactivated to form the holo MoFe protein upon addition of isolated FeMo cofactor. In contrast, deletion of nifH results in a variant protein (DeltanifH MoFe protein) that appears to contain FeS clusters different from the normal P cluster, presumably representing precursors of the normal P cluster. The DeltanifH MoFe protein is not reconstituted to the holo MoFe protein with isolated FeMo cofactor. The EPR and EXAFS spectroscopic properties of FeS clusters in the DeltanifH MoFe protein clearly differ from those of the normal P cluster found in the DeltanifB MoFe protein and suggest the presence of [4Fe-4S]-like clusters. To further characterize the metal cluster structures in the DeltanifH MoFe protein, a variable-temperature, variable-field magnetic circular dichroism (VTVH-MCD) spectroscopic study has been undertaken on both the DeltanifB MoFe protein and the DeltanifH MoFe protein in both the dithionite-reduced and oxidized states. This study clearly shows that each half of the dithionite-reduced DeltanifH MoFe protein contains a [4Fe-4S]+ cluster paired with a diamagnetic [4Fe-4S]-like cluster. Upon oxidation, the VTVH-MCD spectrum of the DeltanifH MoFe protein reveals a paramagnetic, albeit EPR-silent system, suggesting an integer spin state. These results suggest that the DeltanifH MoFe protein contains a pair of neighboring, unusual [4Fe-4S]-like clusters, which are paramagnetic in their oxidized state.


Assuntos
Azotobacter vinelandii/enzimologia , Ferro/química , Molibdênio/química , Molibdoferredoxina/química , Sulfetos/química , Azotobacter vinelandii/genética , Proteínas de Bactérias/genética , Sítios de Ligação , Dicroísmo Circular , Espectroscopia de Ressonância de Spin Eletrônica , Deleção de Genes , Temperatura Alta , Molibdoferredoxina/genética , Oxirredução , Oxirredutases/genética
14.
J Am Chem Soc ; 125(14): 4016-7, 2003 Apr 09.
Artigo em Inglês | MEDLINE | ID: mdl-12670200

RESUMO

Metal-hydrogen bonding is important in chemistry and catalysis, but H atoms are often difficult to observe, especially in metalloproteins. In this work we show that Fe-H interactions can be probed by nuclear resonance vibrational spectroscopy at the 14.4 keV 57Fe nuclear resonance. An important advantage of this method, compared to Raman and IR spectroscopy, is the selectivity for modes that involve 57Fe motion. We present data on the FeS4 site in rubredoxin and the [FeH(D)6]2- ion. Prospects for studying more complex systems are discussed.


Assuntos
Hidrogênio/química , Hidrogenase/química , Compostos de Ferro/química , Nitrogenase/química , Pyrococcus furiosus/química , Rubredoxinas/química , Espalhamento de Radiação , Análise Espectral/métodos , Sulfetos/química , Vibração , Raios X
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