Your browser doesn't support javascript.
loading
Mostrar: 20 | 50 | 100
Resultados 1 - 7 de 7
Filtrar
Mais filtros

Base de dados
Ano de publicação
Tipo de documento
Intervalo de ano de publicação
1.
Acc Chem Res ; 57(16): 2267-2278, 2024 Aug 20.
Artigo em Inglês | MEDLINE | ID: mdl-39083571

RESUMO

ConspectusLife is an exergonic chemical reaction. The same was true when the very first cells emerged at life's origin. In order to live, all cells need a source of carbon, energy, and electrons to drive their overall reaction network (metabolism). In most cells, these are separate pathways. There is only one biochemical pathway that serves all three needs simultaneously: the acetyl-CoA pathway of CO2 fixation. In the acetyl-CoA pathway, electrons from H2 reduce CO2 to pyruvate for carbon supply, while methane or acetate synthesis are coupled to energy conservation as ATP. This simplicity and thermodynamic favorability prompted Georg Fuchs and Erhard Stupperich to propose in 1985 that the acetyl-CoA pathway might mark the origin of metabolism, at the same time that Steve Ragsdale and Harland Wood were uncovering catalytic roles for Fe, Co, and Ni in the enzymes of the pathway. Subsequent work has provided strong support for those proposals.In the presence of Fe, Co, and Ni in their native metallic state as catalysts, aqueous H2 and CO2 react specifically to formate, acetate, methane, and pyruvate overnight at 100 °C. These metals (and their alloys) thus replace the function of over 120 enzymes required for the conversion of H2 and CO2 to pyruvate via the pathway and its cofactors, an unprecedented set of findings in the study of biochemical evolution. The reactions require alkaline conditions, which promote hydrogen oxidation by proton removal and are naturally generated in serpentinizing (H2-producing) hydrothermal vents. Serpentinizing hydrothermal vents furthermore produce natural deposits of native Fe, Co, Ni, and their alloys. These are precisely the metals that reduce CO2 with H2 in the laboratory; they are also the metals found at the active sites of enzymes in the acetyl-CoA pathway. Iron, cobalt and nickel are relicts of the environments in which metabolism arose, environments that still harbor ancient methane- and acetate-producing autotrophs today. This convergence indicates bedrock-level antiquity for the acetyl-CoA pathway. In acetogens and methanogens growing on H2 as reductant, the acetyl-CoA pathway requires flavin-based electron bifurcation as a source of reduced ferredoxin (a 4Fe4S cluster-containing protein) in order to function. Recent findings show that H2 can reduce the 4Fe4S clusters of ferredoxin in the presence of native iron, uncovering an evolutionary precursor of flavin-based electron bifurcation and suggesting an origin of FeS-dependent electron transfer in proteins. Traditionally discussed as catalysts in early evolution, the most common function of FeS clusters in metabolism is one-electron transfer, also in radical SAM enzymes, a large and ancient enzyme family. The cofactors and active sites in enzymes of the acetyl-CoA pathway uncover chemical antiquity in metabolism involving metals, methyl groups, methyl transfer reactions, cobamides, pterins, GTP, S-adenosylmethionine, radical SAM enzymes, and carbon-metal bonds. The reaction sequence from H2 and CO2 to pyruvate on naturally deposited native metals is maximally simple. It requires neither nitrogen, sulfur, phosphorus, RNA, ion gradients, nor light. Solid-state metal catalysts tether the origin of metabolism to a H2-producing, serpentinizing hydrothermal vent.


Assuntos
Acetilcoenzima A , Acetilcoenzima A/metabolismo , Acetilcoenzima A/química , Metano/química , Metano/metabolismo , Dióxido de Carbono/metabolismo , Dióxido de Carbono/química , Hidrogênio/química , Hidrogênio/metabolismo , Termodinâmica
2.
J Am Chem Soc ; 146(30): 21034-21043, 2024 Jul 31.
Artigo em Inglês | MEDLINE | ID: mdl-39023163

RESUMO

Acetyl coenzyme A synthase (ACS) catalyzes the formation and deconstruction of the key biological metabolite, acetyl coenzyme A (acetyl-CoA). The active site of ACS features a {NiNi} cluster bridged to a [Fe4S4]n+ cubane known as the A-cluster. The mechanism by which the A-cluster functions is debated, with few model complexes able to replicate the oxidation states, coordination features, or reactivity proposed in the catalytic cycle. In this work, we isolate the first bimetallic models of two hypothesized intermediates on the paramagnetic pathway of the ACS function. The heteroligated {Ni2+Ni1+} cluster, [K(12-crown-4)2][1], effectively replicates the coordination number and oxidation state of the proposed "Ared" state of the A-cluster. Addition of carbon monoxide to [1]- allows for isolation of a dinuclear {Ni2+Ni1+(CO)} complex, [K(12-crown-2)n][2] (n = 1-2), which bears similarity to the "ANiFeC" enzyme intermediate. Structural and electronic properties of each cluster are elucidated by X-ray diffraction, nuclear magnetic resonance, cyclic voltammetry, and UV/vis and electron paramagnetic resonance spectroscopies, which are supplemented by density functional theory (DFT) calculations. Calculations indicate that the pseudo-T-shaped geometry of the three-coordinate nickel in [1]- is more stable than the Y-conformation by 22 kcal mol-1, and that binding of CO to Ni1+ is barrierless and exergonic by 6 kcal mol-1. UV/vis absorption spectroscopy on [2]- in conjunction with time-dependent DFT calculations indicates that the square-planar nickel site is involved in electron transfer to the CO π*-orbital. Further, we demonstrate that [2]- promotes thioester synthesis in a reaction analogous to the production of acetyl coenzyme A by ACS.


Assuntos
Níquel , Níquel/química , Níquel/metabolismo , Acetato-CoA Ligase/química , Acetato-CoA Ligase/metabolismo , Modelos Moleculares , Complexos de Coordenação/química , Complexos de Coordenação/metabolismo , Oxirredução , Acetilcoenzima A/metabolismo , Acetilcoenzima A/química
3.
Angew Chem Int Ed Engl ; 63(31): e202405120, 2024 07 29.
Artigo em Inglês | MEDLINE | ID: mdl-38743001

RESUMO

The bifunctional CO-dehydrogenase/acetyl-CoA synthase (CODH/ACS) complex couples the reduction of CO2 to the condensation of CO with a methyl moiety and CoA to acetyl-CoA. Catalysis occurs at two sites connected by a tunnel transporting the CO. In this study, we investigated how the bifunctional complex and its tunnel support catalysis using the CODH/ACS from Carboxydothermus hydrogenoformans as a model. Although CODH/ACS adapted to form a stable bifunctional complex with a secluded substrate tunnel, catalysis and CO transport is even more efficient when two monofunctional enzymes are coupled. Efficient CO channeling appears to be ensured by hydrophobic binding sites for CO, which act in a bucket-brigade fashion rather than as a simple tube. Tunnel remodeling showed that opening the tunnel increased activity but impaired directed transport of CO. Constricting the tunnel impaired activity and CO transport, suggesting that the tunnel evolved to sequester CO rather than to maximize turnover.


Assuntos
Acetilcoenzima A , Dióxido de Carbono , Oxirredução , Dióxido de Carbono/química , Dióxido de Carbono/metabolismo , Acetilcoenzima A/metabolismo , Acetilcoenzima A/química , Monóxido de Carbono/metabolismo , Monóxido de Carbono/química , Aldeído Oxirredutases/metabolismo , Aldeído Oxirredutases/química , Acetato-CoA Ligase/metabolismo , Acetato-CoA Ligase/química , Biocatálise , Complexos Multienzimáticos/metabolismo , Complexos Multienzimáticos/química , Modelos Moleculares
4.
ACS Chem Biol ; 19(7): 1495-1505, 2024 Jul 19.
Artigo em Inglês | MEDLINE | ID: mdl-38904252

RESUMO

Lysine acetylation (AcK) is a prominent post-translational modification in eye lens crystallins. We have observed that AcK formation is preferred in some lysine residues over others in crystallins. In this study, we have investigated the role of thiols in such AcK formation. Upon incubation with acetyl-CoA (AcCoA), αA-Crystallin, which contains two cysteine residues, showed significantly higher levels of AcK than αB-Crystallin, which lacks cysteine residues. Incubation with thiol-rich γS-Crystallin resulted in higher AcK formation in αB-Crystallin from AcCoA. External free thiol (glutathione and N-acetyl cysteine) increased the AcK content in AcCoA-incubated αB-Crystallin. Reductive alkylation of cysteine residues significantly decreased (p < 0.001) the AcCoA-mediated AcK formation in αA-Crystallin. Introduction of cysteine residues within ∼5 Å of lysine residues (K92C, E99C, and V169C) in αB-Crystallin followed by incubation with AcCoA resulted in a 3.5-, 1.3- and 1.3-fold increase in the AcK levels when compared to wild-type αB-Crystallin, respectively. Together, these results suggested that AcK formation in α-Crystallin is promoted by the proximal cysteine residues and protein-free thiols through an S → N acetyl transfer mechanism.


Assuntos
Lisina , Compostos de Sulfidrila , Lisina/metabolismo , Lisina/química , Compostos de Sulfidrila/química , Compostos de Sulfidrila/metabolismo , Acetilação , Cristalinas/metabolismo , Cristalinas/química , Cristalino/metabolismo , Processamento de Proteína Pós-Traducional , Humanos , Acetilcoenzima A/metabolismo , Acetilcoenzima A/química
5.
Nat Commun ; 15(1): 4094, 2024 May 15.
Artigo em Inglês | MEDLINE | ID: mdl-38750017

RESUMO

tRNA modifications affect ribosomal elongation speed and co-translational folding dynamics. The Elongator complex is responsible for introducing 5-carboxymethyl at wobble uridine bases (cm5U34) in eukaryotic tRNAs. However, the structure and function of human Elongator remain poorly understood. In this study, we present a series of cryo-EM structures of human ELP123 in complex with tRNA and cofactors at four different stages of the reaction. The structures at resolutions of up to 2.9 Å together with complementary functional analyses reveal the molecular mechanism of the modification reaction. Our results show that tRNA binding exposes a universally conserved uridine at position 33 (U33), which triggers acetyl-CoA hydrolysis. We identify a series of conserved residues that are crucial for the radical-based acetylation of U34 and profile the molecular effects of patient-derived mutations. Together, we provide the high-resolution view of human Elongator and reveal its detailed mechanism of action.


Assuntos
Microscopia Crioeletrônica , RNA de Transferência , Humanos , RNA de Transferência/metabolismo , RNA de Transferência/química , RNA de Transferência/genética , Uridina/química , Uridina/metabolismo , Mutação , Acetilcoenzima A/metabolismo , Acetilcoenzima A/química , Modelos Moleculares , Acetilação , Histona Acetiltransferases/metabolismo , Histona Acetiltransferases/química , Histona Acetiltransferases/genética , Ligação Proteica
6.
Int J Biol Macromol ; 274(Pt 2): 133055, 2024 Aug.
Artigo em Inglês | MEDLINE | ID: mdl-38866271

RESUMO

Previously, we biosynthesized an evolved version of a bio-based polylactide (PLA) on microbial platforms using our engineered lactate-polymerizing enzyme (LPE). This lactate (LA)-based copolyester, LAHB, has advantages over PLA, including improved flexibility and biodegradability, and its properties can be regulated through the LA fraction. To expand the LA-incorporation capacity and improve polymer properties, in the state of in vivo LAHB production, propionyl-CoA transferases (PCTs) that exhibited enhanced production of LA-CoA than the conventional PCTs were selected. Here, the present study has demonstrated that the LA fraction of LAHB could be altered using various PCTs. Enhanced PCT performance was achieved by balancing polymer production and cell growth. Both events are governed by the use of acetyl-CoA, a commonly shared key metabolite. This could be attributed to the different reactivities of individual PCTs towards acetyl-CoA, which serves both as a CoA donor and a leading compound in the TCA cycle. Interestingly, we found complete sequence randomness in the LAHB copolymers, independent of the LA fraction. The mechanism of LA fraction-independent sequence randomness is discussed. This new PCT-based strategy synergistically combines with the evolution of LPE to advance the LAHB project, and enables us to perform advanced applications other than LAHB production utilizing CoA-linked substrates.


Assuntos
Coenzima A-Transferases , Ácido Láctico , Ácido Láctico/química , Coenzima A-Transferases/metabolismo , Coenzima A-Transferases/genética , Coenzima A-Transferases/química , Poliésteres/química , Acil Coenzima A/metabolismo , Acil Coenzima A/química , Polímeros/química , Acetilcoenzima A/metabolismo , Acetilcoenzima A/química
7.
Nat Commun ; 15(1): 5388, 2024 Jun 25.
Artigo em Inglês | MEDLINE | ID: mdl-38918376

RESUMO

Heparan sulfate (HS) is degraded in lysosome by a series of glycosidases. Before the glycosidases can act, the terminal glucosamine of HS must be acetylated by the integral lysosomal membrane enzyme heparan-α-glucosaminide N-acetyltransferase (HGSNAT). Mutations of HGSNAT cause HS accumulation and consequently mucopolysaccharidosis IIIC, a devastating lysosomal storage disease characterized by progressive neurological deterioration and early death where no treatment is available. HGSNAT catalyzes a unique transmembrane acetylation reaction where the acetyl group of cytosolic acetyl-CoA is transported across the lysosomal membrane and attached to HS in one reaction. However, the reaction mechanism remains elusive. Here we report six cryo-EM structures of HGSNAT along the reaction pathway. These structures reveal a dimer arrangement and a unique structural fold, which enables the elucidation of the reaction mechanism. We find that a central pore within each monomer traverses the membrane and controls access of cytosolic acetyl-CoA to the active site at its luminal mouth where glucosamine binds. A histidine-aspartic acid catalytic dyad catalyzes the transfer reaction via a ternary complex mechanism. Furthermore, the structures allow the mapping of disease-causing variants and reveal their potential impact on the function, thus creating a framework to guide structure-based drug discovery efforts.


Assuntos
Acetiltransferases , Microscopia Crioeletrônica , Lisossomos , Mucopolissacaridose III , Mucopolissacaridose III/genética , Mucopolissacaridose III/metabolismo , Mucopolissacaridose III/enzimologia , Humanos , Lisossomos/metabolismo , Lisossomos/enzimologia , Acetiltransferases/metabolismo , Acetiltransferases/química , Acetiltransferases/genética , Domínio Catalítico , Mutação , Heparitina Sulfato/metabolismo , Acetilcoenzima A/metabolismo , Acetilcoenzima A/química , Modelos Moleculares , Glucosamina/metabolismo , Glucosamina/química , Acetilação , Membranas Intracelulares/metabolismo
SELEÇÃO DE REFERÊNCIAS
DETALHE DA PESQUISA