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1.
Cell ; 187(13): 3357-3372.e19, 2024 Jun 20.
Artigo em Inglês | MEDLINE | ID: mdl-38866018

RESUMO

Microbial hydrogen (H2) cycling underpins the diversity and functionality of diverse anoxic ecosystems. Among the three evolutionarily distinct hydrogenase superfamilies responsible, [FeFe] hydrogenases were thought to be restricted to bacteria and eukaryotes. Here, we show that anaerobic archaea encode diverse, active, and ancient lineages of [FeFe] hydrogenases through combining analysis of existing and new genomes with extensive biochemical experiments. [FeFe] hydrogenases are encoded by genomes of nine archaeal phyla and expressed by H2-producing Asgard archaeon cultures. We report an ultraminimal hydrogenase in DPANN archaea that binds the catalytic H-cluster and produces H2. Moreover, we identify and characterize remarkable hybrid complexes formed through the fusion of [FeFe] and [NiFe] hydrogenases in ten other archaeal orders. Phylogenetic analysis and structural modeling suggest a deep evolutionary history of hybrid hydrogenases. These findings reveal new metabolic adaptations of archaea, streamlined H2 catalysts for biotechnological development, and a surprisingly intertwined evolutionary history between the two major H2-metabolizing enzymes.


Assuntos
Archaea , Hidrogênio , Hidrogenase , Filogenia , Archaea/genética , Archaea/enzimologia , Proteínas Arqueais/metabolismo , Proteínas Arqueais/química , Proteínas Arqueais/genética , Genoma Arqueal , Hidrogênio/metabolismo , Hidrogenase/metabolismo , Hidrogenase/genética , Hidrogenase/química , Proteínas Ferro-Enxofre/metabolismo , Proteínas Ferro-Enxofre/genética , Proteínas Ferro-Enxofre/química , Modelos Moleculares , Estrutura Terciária de Proteína
2.
Annu Rev Biochem ; 88: 551-576, 2019 06 20.
Artigo em Inglês | MEDLINE | ID: mdl-30485755

RESUMO

Energy-coupling factor (ECF)-type ATP-binding cassette (ABC) transporters catalyze membrane transport of micronutrients in prokaryotes. Crystal structures and biochemical characterization have revealed that ECF transporters are mechanistically distinct from other ABC transport systems. Notably, ECF transporters make use of small integral membrane subunits (S-components) that are predicted to topple over in the membrane when carrying the bound substrate from the extracellular side of the bilayer to the cytosol. Here, we review the phylogenetic diversity of ECF transporters as well as recent structural and biochemical advancements that have led to the postulation of conceptually different mechanistic models. These models can be described as power stroke and thermal ratchet. Structural data indicate that the lipid composition and bilayer structure are likely to have great impact on the transport function. We argue that study of ECF transporters could lead to generic insight into membrane protein structure, dynamics, and interaction.


Assuntos
Transportadores de Cassetes de Ligação de ATP/metabolismo , Transportadores de Cassetes de Ligação de ATP/química , Transportadores de Cassetes de Ligação de ATP/genética , Trifosfato de Adenosina/metabolismo , Animais , Archaea/metabolismo , Proteínas Arqueais/química , Proteínas Arqueais/genética , Proteínas Arqueais/metabolismo , Bactérias/metabolismo , Proteínas de Bactérias/química , Proteínas de Bactérias/genética , Proteínas de Bactérias/metabolismo , Transporte Biológico , Cristalografia por Raios X , Humanos , Modelos Moleculares , Filogenia , Conformação Proteica
3.
Cell ; 173(7): 1636-1649.e16, 2018 06 14.
Artigo em Inglês | MEDLINE | ID: mdl-29754813

RESUMO

Hydrogen gas-evolving membrane-bound hydrogenase (MBH) and quinone-reducing complex I are homologous respiratory complexes with a common ancestor, but a structural basis for their evolutionary relationship is lacking. Here, we report the cryo-EM structure of a 14-subunit MBH from the hyperthermophile Pyrococcus furiosus. MBH contains a membrane-anchored hydrogenase module that is highly similar structurally to the quinone-binding Q-module of complex I while its membrane-embedded ion-translocation module can be divided into a H+- and a Na+-translocating unit. The H+-translocating unit is rotated 180° in-membrane with respect to its counterpart in complex I, leading to distinctive architectures for the two respiratory systems despite their largely conserved proton-pumping mechanisms. The Na+-translocating unit, absent in complex I, resembles that found in the Mrp H+/Na+ antiporter and enables hydrogen gas evolution by MBH to establish a Na+ gradient for ATP synthesis near 100°C. MBH also provides insights into Mrp structure and evolution of MBH-based respiratory enzymes.


Assuntos
Proteínas Arqueais/metabolismo , Hidrogenase/metabolismo , Pyrococcus furiosus/metabolismo , Sequência de Aminoácidos , Proteínas Arqueais/química , Proteínas de Bactérias/química , Proteínas de Bactérias/metabolismo , Sítios de Ligação , Membrana Celular/química , Membrana Celular/metabolismo , Microscopia Crioeletrônica , Complexo I de Transporte de Elétrons/química , Complexo I de Transporte de Elétrons/metabolismo , Evolução Molecular , Hidrogênio/metabolismo , Hidrogenase/química , Hidrogenase/genética , Mutagênese , Estrutura Quaternária de Proteína , Subunidades Proteicas/química , Subunidades Proteicas/genética , Subunidades Proteicas/metabolismo , Proteínas Recombinantes/biossíntese , Proteínas Recombinantes/química , Proteínas Recombinantes/isolamento & purificação , Alinhamento de Sequência , Sódio/química , Sódio/metabolismo , Trocadores de Sódio-Hidrogênio/química , Trocadores de Sódio-Hidrogênio/metabolismo
4.
Cell ; 160(3): 542-53, 2015 Jan 29.
Artigo em Inglês | MEDLINE | ID: mdl-25635461

RESUMO

Excitatory amino acid transporters (EAATs) are essential for terminating glutamatergic synaptic transmission. They are not only coupled glutamate/Na(+)/H(+)/K(+) transporters but also function as anion-selective channels. EAAT anion channels regulate neuronal excitability, and gain-of-function mutations in these proteins result in ataxia and epilepsy. We have combined molecular dynamics simulations with fluorescence spectroscopy of the prokaryotic homolog GltPh and patch-clamp recordings of mammalian EAATs to determine how these transporters conduct anions. Whereas outward- and inward-facing GltPh conformations are nonconductive, lateral movement of the glutamate transport domain from intermediate transporter conformations results in formation of an anion-selective conduction pathway. Fluorescence quenching of inserted tryptophan residues indicated the entry of anions into this pathway, and mutations of homologous pore-forming residues had analogous effects on GltPh simulations and EAAT2/EAAT4 measurements of single-channel currents and anion/cation selectivities. These findings provide a mechanistic framework of how neurotransmitter transporters can operate as anion-selective and ligand-gated ion channels.


Assuntos
Sistema X-AG de Transporte de Aminoácidos/química , Ânions/metabolismo , Proteínas Arqueais/química , Proteínas de Transporte de Glutamato da Membrana Plasmática/química , Simulação de Dinâmica Molecular , Pyrococcus horikoshii/química , Sequência de Aminoácidos , Sistema X-AG de Transporte de Aminoácidos/metabolismo , Animais , Proteínas Arqueais/metabolismo , Proteínas de Transporte de Glutamato da Membrana Plasmática/genética , Proteínas de Transporte de Glutamato da Membrana Plasmática/metabolismo , Humanos , Dados de Sequência Molecular , Mutação , Técnicas de Patch-Clamp , Ratos , Alinhamento de Sequência
5.
Cell ; 159(5): 1042-1055, 2014 Nov 20.
Artigo em Inglês | MEDLINE | ID: mdl-25416944

RESUMO

The eukaryotic chaperonin TRiC (also called CCT) is the obligate chaperone for many essential proteins. TRiC is hetero-oligomeric, comprising two stacked rings of eight different subunits each. Subunit diversification from simpler archaeal chaperonins appears linked to proteome expansion. Here, we integrate structural, biophysical, and modeling approaches to identify the hitherto unknown substrate-binding site in TRiC and uncover the basis of substrate recognition. NMR and modeling provided a structural model of a chaperonin-substrate complex. Mutagenesis and crosslinking-mass spectrometry validated the identified substrate-binding interface and demonstrate that TRiC contacts full-length substrates combinatorially in a subunit-specific manner. The binding site of each subunit has a distinct, evolutionarily conserved pattern of polar and hydrophobic residues specifying recognition of discrete substrate motifs. The combinatorial recognition of polypeptides broadens the specificity of TRiC and may direct the topology of bound polypeptides along a productive folding trajectory, contributing to TRiC's unique ability to fold obligate substrates.


Assuntos
Chaperonina com TCP-1/química , Chaperonina com TCP-1/metabolismo , Eucariotos/química , Dobramento de Proteína , Animais , Archaea/metabolismo , Proteínas Arqueais/química , Proteínas Arqueais/genética , Proteínas Arqueais/metabolismo , Bovinos , Chaperonina com TCP-1/genética , Eucariotos/citologia , Modelos Moleculares , Mutagênese Sítio-Dirigida , Ressonância Magnética Nuclear Biomolecular , Estrutura Terciária de Proteína , Saccharomyces cerevisiae/química , Saccharomyces cerevisiae/genética , Saccharomyces cerevisiae/metabolismo , Especificidade por Substrato
6.
Nature ; 602(7896): 336-342, 2022 02.
Artigo em Inglês | MEDLINE | ID: mdl-35110733

RESUMO

By catalysing the microbial formation of methane, methyl-coenzyme M reductase has a central role in the global levels of this greenhouse gas1,2. The activity of methyl-coenzyme M reductase is profoundly affected by several unique post-translational modifications3-6, such as  a unique C-methylation reaction catalysed by methanogenesis marker protein 10 (Mmp10), a radical S-adenosyl-L-methionine (SAM) enzyme7,8. Here we report the spectroscopic investigation and atomic resolution structure of Mmp10 from Methanosarcina acetivorans, a unique B12 (cobalamin)-dependent radical SAM enzyme9. The structure of Mmp10 reveals a unique enzyme architecture with four metallic centres and critical structural features involved in the control of catalysis. In addition, the structure of the enzyme-substrate complex offers a glimpse into a B12-dependent radical SAM enzyme in a precatalytic state. By combining electron paramagnetic resonance spectroscopy, structural biology and biochemistry, our study illuminates the mechanism by which the emerging superfamily of B12-dependent radical SAM enzymes catalyse chemically challenging alkylation reactions and identifies distinctive active site rearrangements to provide a structural rationale for the dual use of the SAM cofactor for radical and nucleophilic chemistry.


Assuntos
Proteínas Arqueais , Methanosarcina , S-Adenosilmetionina , Proteínas Arqueais/química , Espectroscopia de Ressonância de Spin Eletrônica , Methanosarcina/enzimologia , Metilação , Conformação Proteica , Processamento de Proteína Pós-Traducional , S-Adenosilmetionina/química , Vitamina B 12
7.
Nature ; 609(7925): 197-203, 2022 09.
Artigo em Inglês | MEDLINE | ID: mdl-35882349

RESUMO

Archaea synthesize isoprenoid-based ether-linked membrane lipids, which enable them to withstand extreme environmental conditions, such as high temperatures, high salinity, and low or high pH values1-5. In some archaea, such as Methanocaldococcus jannaschii, these lipids are further modified by forming carbon-carbon bonds between the termini of two lipid tails within one glycerophospholipid to generate the macrocyclic archaeol or forming two carbon-carbon bonds between the termini of two lipid tails from two glycerophospholipids to generate the macrocycle glycerol dibiphytanyl glycerol tetraether (GDGT)1,2. GDGT contains two 40-carbon lipid chains (biphytanyl chains) that span both leaflets of the membrane, providing enhanced stability to extreme conditions. How these specialized lipids are formed has puzzled scientists for decades. The reaction necessitates the coupling of two completely inert sp3-hybridized carbon centres, which, to our knowledge, has not been observed in nature. Here we show that the gene product of mj0619 from M. jannaschii, which encodes a radical S-adenosylmethionine enzyme, is responsible for biphytanyl chain formation during synthesis of both the macrocyclic archaeol and GDGT membrane lipids6. Structures of the enzyme show the presence of four metallocofactors: three [Fe4S4] clusters and one mononuclear rubredoxin-like iron ion. In vitro mechanistic studies show that Csp3-Csp3 bond formation takes place on fully saturated archaeal lipid substrates and involves an intermediate bond between the substrate carbon and a sulfur of one of the [Fe4S4] clusters. Our results not only establish the biosynthetic route for tetraether formation but also improve the use of GDGT in GDGT-based paleoclimatology indices7-10.


Assuntos
Proteínas Arqueais , Éteres de Glicerila , Lipídeos de Membrana , Methanocaldococcus , Proteínas Arqueais/química , Proteínas Arqueais/isolamento & purificação , Proteínas Arqueais/metabolismo , Carbono/química , Carbono/metabolismo , Glicerol/química , Glicerol/metabolismo , Éteres de Glicerila/química , Éteres de Glicerila/metabolismo , Lipídeos de Membrana/biossíntese , Lipídeos de Membrana/química , Lipídeos de Membrana/metabolismo , Methanocaldococcus/química , Methanocaldococcus/enzimologia , Methanocaldococcus/metabolismo , S-Adenosilmetionina/metabolismo , Terpenos/química , Terpenos/metabolismo
8.
Mol Cell ; 79(5): 741-757.e7, 2020 09 03.
Artigo em Inglês | MEDLINE | ID: mdl-32730741

RESUMO

Cmr-ß is a type III-B CRISPR-Cas complex that, upon target RNA recognition, unleashes a multifaceted immune response against invading genetic elements, including single-stranded DNA (ssDNA) cleavage, cyclic oligoadenylate synthesis, and also a unique UA-specific single-stranded RNA (ssRNA) hydrolysis by the Cmr2 subunit. Here, we present the structure-function relationship of Cmr-ß, unveiling how binding of the target RNA regulates the Cmr2 activities. Cryoelectron microscopy (cryo-EM) analysis revealed the unique subunit architecture of Cmr-ß and captured the complex in different conformational stages of the immune response, including the non-cognate and cognate target-RNA-bound complexes. The binding of the target RNA induces a conformational change of Cmr2, which together with the complementation between the 5' tag in the CRISPR RNAs (crRNA) and the 3' antitag of the target RNA activate different configurations in a unique loop of the Cmr3 subunit, which acts as an allosteric sensor signaling the self- versus non-self-recognition. These findings highlight the diverse defense strategies of type III complexes.


Assuntos
Imunidade Adaptativa/fisiologia , Proteínas Associadas a CRISPR/química , Proteínas Associadas a CRISPR/fisiologia , Repetições Palindrômicas Curtas Agrupadas e Regularmente Espaçadas , Proteínas Arqueais/química , Proteínas Arqueais/fisiologia , Proteínas Arqueais/ultraestrutura , Proteínas Associadas a CRISPR/ultraestrutura , Repetições Palindrômicas Curtas Agrupadas e Regularmente Espaçadas/fisiologia , Microscopia Crioeletrônica , DNA de Cadeia Simples/metabolismo , Modelos Moleculares , Ligação Proteica , Conformação Proteica , RNA Mensageiro/metabolismo , Relação Estrutura-Atividade , Sulfolobus/genética , Sulfolobus/fisiologia
9.
Cell ; 151(7): 1406-16, 2012 Dec 21.
Artigo em Inglês | MEDLINE | ID: mdl-23260134

RESUMO

Harnessing energy as ion gradients across membranes is as universal as the genetic code. We leverage new insights into anaerobe metabolism to propose geochemical origins that account for the ubiquity of chemiosmotic coupling, and Na(+)/H(+) transporters in particular. Natural proton gradients acting across thin FeS walls within alkaline hydrothermal vents could drive carbon assimilation, leading to the emergence of protocells within vent pores. Protocell membranes that were initially leaky would eventually become less permeable, forcing cells dependent on natural H(+) gradients to pump Na(+) ions. Our hypothesis accounts for the Na(+)/H(+) promiscuity of bioenergetic proteins, as well as the deep divergence between bacteria and archaea.


Assuntos
Archaea/metabolismo , Bactérias/metabolismo , Metabolismo Energético , Fontes Hidrotermais/microbiologia , Bombas de Íon/metabolismo , Proteínas Arqueais/química , Proteínas Arqueais/metabolismo , Proteínas de Bactérias/química , Proteínas de Bactérias/metabolismo , Membrana Celular/química , Membrana Celular/metabolismo , Bombas de Íon/química , Osmose , Força Próton-Motriz
10.
Nature ; 589(7840): 120-124, 2021 01.
Artigo em Inglês | MEDLINE | ID: mdl-32937646

RESUMO

Viperin is an interferon-induced cellular protein that is conserved in animals1. It has previously been shown to inhibit the replication of multiple viruses by producing the ribonucleotide 3'-deoxy-3',4'-didehydro (ddh)-cytidine triphosphate (ddhCTP), which acts as a chain terminator for viral RNA polymerase2. Here we show that eukaryotic viperin originated from a clade of bacterial and archaeal proteins that protect against phage infection. Prokaryotic viperins produce a set of modified ribonucleotides that include ddhCTP, ddh-guanosine triphosphate (ddhGTP) and ddh-uridine triphosphate (ddhUTP). We further show that prokaryotic viperins protect against T7 phage infection by inhibiting viral polymerase-dependent transcription, suggesting that it has an antiviral mechanism of action similar to that of animal viperin. Our results reveal a class of potential natural antiviral compounds produced by bacterial immune systems.


Assuntos
Antivirais/metabolismo , Proteínas Arqueais/metabolismo , Proteínas de Bactérias/metabolismo , Bacteriófago T7/imunologia , Evolução Molecular , Células Procarióticas/metabolismo , Proteínas/metabolismo , Antivirais/imunologia , Proteínas Arqueais/química , Bactérias/imunologia , Bactérias/metabolismo , Bactérias/virologia , Proteínas de Bactérias/química , Bacteriófago T7/enzimologia , Bacteriófago T7/fisiologia , DNA Polimerase Dirigida por DNA/metabolismo , Humanos , Oxirredutases atuantes sobre Doadores de Grupo CH-CH , Células Procarióticas/imunologia , Células Procarióticas/virologia , Proteínas/química , Proteínas/genética , Ribonucleotídeos/biossíntese , Ribonucleotídeos/química , Ribonucleotídeos/metabolismo , Transcrição Gênica/efeitos dos fármacos
11.
Mol Cell ; 75(5): 944-956.e6, 2019 09 05.
Artigo em Inglês | MEDLINE | ID: mdl-31326273

RESUMO

Type III-A CRISPR-Cas surveillance complexes containing multi-subunit Csm effector, guide, and target RNAs exhibit multiple activities, including formation of cyclic-oligoadenylates (cAn) from ATP and subsequent cAn-mediated cleavage of single-strand RNA (ssRNA) by the trans-acting Csm6 RNase. Our structure-function studies have focused on Thermococcus onnurineus Csm6 to deduce mechanistic insights into how cA4 binding to the Csm6 CARF domain triggers the RNase activity of the Csm6 HEPN domain and what factors contribute to regulation of RNA cleavage activity. We demonstrate that the Csm6 CARF domain is a ring nuclease, whereby bound cA4 is stepwise cleaved initially to ApApApA>p and subsequently to ApA>p in its CARF domain-binding pocket, with such cleavage bursts using a timer mechanism to regulate the RNase activity of the Csm6 HEPN domain. In addition, we establish T. onnurineus Csm6 as an adenosine-specific RNase and identify a histidine in the cA4 CARF-binding pocket involved in autoinhibitory regulation of RNase activity.


Assuntos
Nucleotídeos de Adenina/química , Proteínas Arqueais/química , Proteínas Associadas a CRISPR/química , Sistemas CRISPR-Cas , Oligorribonucleotídeos/química , Ribonucleases/química , Thermococcus/química , Sítios de Ligação , Domínios Proteicos
12.
Mol Cell ; 75(5): 933-943.e6, 2019 09 05.
Artigo em Inglês | MEDLINE | ID: mdl-31326272

RESUMO

Target RNA binding to crRNA-bound type III-A CRISPR-Cas multi-subunit Csm surveillance complexes activates cyclic-oligoadenylate (cAn) formation from ATP subunits positioned within the composite pair of Palm domain pockets of the Csm1 subunit. The generated cAn second messenger in turn targets the CARF domain of trans-acting RNase Csm6, triggering its HEPN domain-based RNase activity. We have undertaken cryo-EM studies on multi-subunit Thermococcus onnurineus Csm effector ternary complexes, as well as X-ray studies on Csm1-Csm4 cassette, both bound to substrate (AMPPNP), intermediates (pppAn), and products (cAn), to decipher mechanistic aspects of cAn formation and release. A network of intermolecular hydrogen bond alignments accounts for the observed adenosine specificity, with ligand positioning dictating formation of linear pppAn intermediates and subsequent cAn formation by cyclization. We combine our structural results with published functional studies to highlight mechanistic insights into the role of the Csm effector complex in mediating the cAn signaling pathway.


Assuntos
Nucleotídeos de Adenina/química , Proteínas Arqueais/química , Sistemas CRISPR-Cas , Oligorribonucleotídeos/química , Ribonucleases/química , Sistemas do Segundo Mensageiro , Thermococcus/química , Nucleotídeos de Adenina/metabolismo , Proteínas Arqueais/metabolismo , Microscopia Crioeletrônica , Oligorribonucleotídeos/metabolismo , Ribonucleases/metabolismo , Thermococcus/metabolismo , Thermococcus/ultraestrutura
13.
Cell ; 144(2): 240-52, 2011 Jan 21.
Artigo em Inglês | MEDLINE | ID: mdl-21241893

RESUMO

Group II chaperonins are ATP-dependent ring-shaped complexes that bind nonnative polypeptides and facilitate protein folding in archaea and eukaryotes. A built-in lid encapsulates substrate proteins within the central chaperonin chamber. Here, we describe the fate of the substrate during the nucleotide cycle of group II chaperonins. The chaperonin substrate-binding sites are exposed, and the lid is open in both the ATP-free and ATP-bound prehydrolysis states. ATP hydrolysis has a dual function in the folding cycle, triggering both lid closure and substrate release into the central chamber. Notably, substrate release can occur in the absence of a lid, and lid closure can occur without substrate release. However, productive folding requires both events, so that the polypeptide is released into the confined space of the closed chamber where it folds. Our results show that ATP hydrolysis coordinates the structural and functional determinants that trigger productive folding.


Assuntos
Trifosfato de Adenosina/metabolismo , Proteínas Arqueais/metabolismo , Chaperoninas do Grupo II/metabolismo , Mathanococcus/metabolismo , Dobramento de Proteína , Adenosina Trifosfatases/metabolismo , Regulação Alostérica , Proteínas Arqueais/química , Sítios de Ligação , Chaperoninas do Grupo II/química , Modelos Moleculares
14.
Nucleic Acids Res ; 52(15): 8930-8946, 2024 Aug 27.
Artigo em Inglês | MEDLINE | ID: mdl-38966985

RESUMO

The TOPOVIL complex catalyzes the formation of DNA double strand breaks (DSB) that initiate meiotic homologous recombination, an essential step for chromosome segregation and genetic diversity during gamete production. TOPOVIL is composed of two subunits (SPO11 and TOPOVIBL) and is evolutionarily related to the archaeal TopoVI topoisomerase complex. SPO11 is the TopoVIA subunit orthologue and carries the DSB formation catalytic activity. TOPOVIBL shares homology with the TopoVIB ATPase subunit. TOPOVIBL is essential for meiotic DSB formation, but its molecular function remains elusive, partly due to the lack of biochemical studies. Here, we purified TOPOVIBLΔC25 and characterized its structure and mode of action in vitro. Our structural analysis revealed that TOPOVIBLΔC25 adopts a dynamic conformation in solution and our biochemical study showed that the protein remains monomeric upon incubation with ATP, which correlates with the absence of ATP binding. Moreover, TOPOVIBLΔC25 interacted with DNA, with a preference for some geometries, suggesting that TOPOVIBL senses specific DNA architectures. Altogether, our study identified specific TOPOVIBL features that might help to explain how TOPOVIL function evolved toward a DSB formation activity in meiosis.


Assuntos
Quebras de DNA de Cadeia Dupla , Meiose , Trifosfato de Adenosina/metabolismo , Proteínas Arqueais/metabolismo , Proteínas Arqueais/química , Proteínas Arqueais/genética , DNA/metabolismo , DNA/química , DNA/genética , DNA Topoisomerases Tipo II , Endodesoxirribonucleases/metabolismo , Endodesoxirribonucleases/química , Endodesoxirribonucleases/genética , Modelos Moleculares , Ligação Proteica
15.
Nucleic Acids Res ; 52(7): 3924-3937, 2024 Apr 24.
Artigo em Inglês | MEDLINE | ID: mdl-38421610

RESUMO

RNA ligases are important enzymes in molecular biology and are highly useful for the manipulation and analysis of nucleic acids, including adapter ligation in next-generation sequencing of microRNAs. Thermophilic RNA ligases belonging to the RNA ligase 3 family are gaining attention for their use in molecular biology, for example a thermophilic RNA ligase from Methanobacterium thermoautotrophicum is commercially available for the adenylation of nucleic acids. Here we extensively characterise a newly identified RNA ligase from the thermophilic archaeon Palaeococcus pacificus (PpaRnl). PpaRnl exhibited significant substrate adenylation activity but low ligation activity across a range of oligonucleotide substrates. Mutation of Lys92 in motif I to alanine, resulted in an enzyme that lacked adenylation activity, but demonstrated improved ligation activity with pre-adenylated substrates (ATP-independent ligation). Subsequent structural characterisation revealed that in this mutant enzyme Lys238 was found in two alternate positions for coordination of the phosphate tail of ATP. In contrast mutation of Lys238 in motif V to glycine via structure-guided engineering enhanced ATP-dependent ligation activity via an arginine residue compensating for the absence of Lys238. Ligation activity for both mutations was higher than the wild-type, with activity observed across a range of oligonucleotide substrates with varying sequence and secondary structure.


Assuntos
RNA Ligase (ATP) , RNA Ligase (ATP)/metabolismo , RNA Ligase (ATP)/genética , RNA Ligase (ATP)/química , Especificidade por Substrato , Proteínas Arqueais/metabolismo , Proteínas Arqueais/genética , Proteínas Arqueais/química , Planococáceas/enzimologia , Planococáceas/genética , Engenharia de Proteínas , Mutação , Modelos Moleculares , Trifosfato de Adenosina/metabolismo , Oligonucleotídeos/metabolismo , Oligonucleotídeos/genética
16.
Nucleic Acids Res ; 52(16): 9966-9977, 2024 Sep 09.
Artigo em Inglês | MEDLINE | ID: mdl-39077943

RESUMO

Genome segregation is a fundamental process that preserves the genetic integrity of all organisms, but the mechanisms driving genome segregation in archaea remain enigmatic. This study delved into the unknown function of SegC (SSO0033), a novel protein thought to be involved in chromosome segregation in archaea. Using fluorescence polarization DNA binding assays, we discovered the ability of SegC to bind DNA without any sequence preference. Furthermore, we determined the crystal structure of SegC at 2.8 Å resolution, revealing the multimeric configuration and forming a large positively charged surface that can bind DNA. SegC has a tertiary structure folding similar to those of the ThDP-binding fold superfamily, but SegC shares only 5-15% sequence identity with those proteins. Unexpectedly, we found that SegC has nucleotide triphosphatase (NTPase) activity. We also determined the SegC-ADP complex structure, identifying the NTP binding pocket and relative SegC residues involved in the interaction. Interestingly, images from negative-stain electron microscopy revealed that SegC forms filamentous structures in the presence of DNA and NTPs. Further, more uniform and larger SegC-filaments are observed, when SegA-ATP was added. Notably, the introduction of SegB disrupts these oligomers, with ATP being essential for regulating filament formation. These findings provide insights into the functional and structural role of SegC in archaeal chromosome segregation.


Assuntos
Proteínas Arqueais , Segregação de Cromossomos , Modelos Moleculares , Proteínas Arqueais/química , Proteínas Arqueais/metabolismo , Proteínas Arqueais/genética , Ligação Proteica , Cristalografia por Raios X , Difosfato de Adenosina/metabolismo , Difosfato de Adenosina/química , Sítios de Ligação , DNA Arqueal/metabolismo , DNA Arqueal/química , DNA Arqueal/genética , Proteínas de Ligação a DNA/química , Proteínas de Ligação a DNA/metabolismo , Proteínas de Ligação a DNA/genética , Proteínas de Ligação a DNA/ultraestrutura
17.
Nucleic Acids Res ; 52(10): 6017-6035, 2024 Jun 10.
Artigo em Inglês | MEDLINE | ID: mdl-38709902

RESUMO

Archaeal transcription is carried out by a multi-subunit RNA polymerase (RNAP) that is highly homologous in structure and function to eukaryotic RNAP II. Among the set of basal transcription factors, only Spt5 is found in all domains of life, but Spt5 has been shaped during evolution, which is also reflected in the heterodimerization of Spt5 with Spt4 in Archaea and Eukaryotes. To unravel the mechanistic basis of Spt4/5 function in Archaea, we performed structure-function analyses using the archaeal transcriptional machinery of Pyrococcus furiosus (Pfu). We report single-particle cryo-electron microscopy reconstructions of apo RNAP and the archaeal elongation complex (EC) in the absence and presence of Spt4/5. Surprisingly, Pfu Spt4/5 also binds the RNAP in the absence of nucleic acids in a distinct super-contracted conformation. We show that the RNAP clamp/stalk module exhibits conformational flexibility in the apo state of RNAP and that the enzyme contracts upon EC formation or Spt4/5 engagement. We furthermore identified a contact of the Spt5-NGN domain with the DNA duplex that stabilizes the upstream boundary of the transcription bubble and impacts Spt4/5 activity in vitro. This study, therefore, provides the structural basis for Spt4/5 function in archaeal transcription and reveals a potential role beyond the well-described support of elongation.


Assuntos
Proteínas Arqueais , RNA Polimerases Dirigidas por DNA , Modelos Moleculares , Elongação da Transcrição Genética , Fatores de Elongação da Transcrição , Proteínas Arqueais/química , Proteínas Arqueais/metabolismo , Proteínas Arqueais/genética , Proteínas Cromossômicas não Histona/química , Proteínas Cromossômicas não Histona/genética , Proteínas Cromossômicas não Histona/metabolismo , Microscopia Crioeletrônica , RNA Polimerases Dirigidas por DNA/metabolismo , RNA Polimerases Dirigidas por DNA/química , RNA Polimerases Dirigidas por DNA/genética , Ligação Proteica , Pyrococcus furiosus/enzimologia , Pyrococcus furiosus/genética , Fatores de Elongação da Transcrição/metabolismo , Fatores de Elongação da Transcrição/química , Fatores de Elongação da Transcrição/genética
18.
J Biol Chem ; 300(6): 107379, 2024 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-38762184

RESUMO

Bacterial RecJ exhibits 5'→3' exonuclease activity that is specific to ssDNA; however, archaeal RecJs show 5' or 3' exonuclease activity. The hyperthermophilic archaea Methanocaldococcus jannaschii encodes the 5'-exonuclease MjRecJ1 and the 3'-exonuclease MjRecJ2. In addition to nuclease activity, archaeal RecJ interacts with GINS, a structural subcomplex of the replicative DNA helicase complex. However, MjRecJ1 and MjRecJ2 do not interact with MjGINS. Here, we report the structural basis for the inability of the MjRecJ2 homologous dimer to interact with MjGINS and its efficient 3' hydrolysis polarity for short dinucleotides. Based on the crystal structure of MjRecJ2, we propose that the interaction surface of the MjRecJ2 dimer overlaps the potential interaction surface for MjGINS and blocks the formation of the MjRecJ2-GINS complex. Exposing the interaction surface of the MjRecJ2 dimer restores its interaction with MjGINS. The cocrystal structures of MjRecJ2 with substrate dideoxynucleotides or product dCMP/CMP show that MjRecJ2 has a short substrate binding patch, which is perpendicular to the longer patch of bacterial RecJ. Our results provide new insights into the function and diversification of archaeal RecJ/Cdc45 proteins.


Assuntos
Proteínas Arqueais , Proteínas Arqueais/química , Proteínas Arqueais/metabolismo , Proteínas Arqueais/genética , Cristalografia por Raios X , Methanocaldococcus/enzimologia , Methanocaldococcus/metabolismo , Ligação Proteica , Multimerização Proteica , DNA Helicases/metabolismo , DNA Helicases/química , DNA Helicases/genética , Modelos Moleculares , Exodesoxirribonucleases/metabolismo , Exodesoxirribonucleases/química , Exodesoxirribonucleases/genética
19.
J Biol Chem ; 300(8): 107505, 2024 Aug.
Artigo em Inglês | MEDLINE | ID: mdl-38944122

RESUMO

Archaeosine (G+) is an archaea-specific tRNA modification synthesized via multiple steps. In the first step, archaeosine tRNA guanine transglucosylase (ArcTGT) exchanges the G15 base in tRNA with 7-cyano-7-deazaguanine (preQ0). In Euryarchaea, preQ015 in tRNA is further modified by archaeosine synthase (ArcS). Thermococcus kodakarensis ArcS catalyzes a lysine-transfer reaction to produce preQ0-lysine (preQ0-Lys) as an intermediate. The resulting preQ0-Lys15 in tRNA is converted to G+15 by a radical S-adenosyl-L-methionine enzyme for archaeosine formation (RaSEA), which forms a complex with ArcS. Here, we focus on the substrate tRNA recognition mechanism of ArcS. Kinetic parameters of ArcS for lysine and tRNA-preQ0 were determined using a purified enzyme. RNA fragments containing preQ0 were prepared from Saccharomyces cerevisiae tRNAPhe-preQ015. ArcS transferred 14C-labeled lysine to RNA fragments. Furthermore, ArcS transferred lysine to preQ0 nucleoside and preQ0 nucleoside 5'-monophosphate. Thus, the L-shaped structure and the sequence of tRNA are not essential for the lysine-transfer reaction by ArcS. However, the presence of D-arm structure accelerates the lysine-transfer reaction. Because ArcTGT from thermophilic archaea recognizes the common D-arm structure, we expected the combination of T. kodakarensis ArcTGT and ArcS and RaSEA complex would result in the formation of preQ0-Lys15 in all tRNAs. This hypothesis was confirmed using 46 T. kodakarensis tRNA transcripts and three Haloferax volcanii tRNA transcripts. In addition, ArcTGT did not exchange the preQ0-Lys15 in tRNA with guanine or preQ0 base, showing that formation of tRNA-preQ0-Lys by ArcS plays a role in preventing the reverse reaction in G+ biosynthesis.


Assuntos
Proteínas Arqueais , Lisina , Thermococcus , Thermococcus/metabolismo , Thermococcus/genética , Thermococcus/enzimologia , Lisina/metabolismo , Lisina/química , Proteínas Arqueais/metabolismo , Proteínas Arqueais/genética , Proteínas Arqueais/química , RNA de Transferência/metabolismo , RNA de Transferência/genética , RNA de Transferência/química , RNA Arqueal/metabolismo , RNA Arqueal/genética , RNA Arqueal/química , Guanina/metabolismo , Guanina/química , Guanina/análogos & derivados , Especificidade por Substrato , Cinética , Nucleosídeos/metabolismo , Nucleosídeos/química , Saccharomyces cerevisiae/metabolismo , Saccharomyces cerevisiae/genética , Guanosina/análogos & derivados
20.
Proc Natl Acad Sci U S A ; 119(26): e2207037119, 2022 06 28.
Artigo em Inglês | MEDLINE | ID: mdl-35727984

RESUMO

While biofilms formed by bacteria have received great attention due to their importance in pathogenesis, much less research has been focused on the biofilms formed by archaea. It has been known that extracellular filaments in archaea, such as type IV pili, hami, and cannulae, play a part in the formation of archaeal biofilms. We have used cryo-electron microscopy to determine the atomic structure of a previously uncharacterized class of archaeal surface filaments from hyperthermophilic Pyrobaculum calidifontis. These filaments, which we call archaeal bundling pili (ABP), assemble into highly ordered bipolar bundles. The bipolar nature of these bundles most likely arises from the association of filaments from at least two different cells. The component protein, AbpA, shows homology, both at the sequence and structural level, to the bacterial protein TasA, a major component of the extracellular matrix in bacterial biofilms, contributing to biofilm stability. We show that AbpA forms very stable filaments in a manner similar to the donor-strand exchange of bacterial TasA fibers and chaperone-usher pathway pili where a ß-strand from one subunit is incorporated into a ß-sheet of the next subunit. Our results reveal likely mechanistic similarities and evolutionary connection between bacterial and archaeal biofilms, and suggest that there could be many other archaeal surface filaments that are as yet uncharacterized.


Assuntos
Proteínas Arqueais , Biofilmes , Fímbrias Bacterianas , Pyrobaculum , Proteínas Arqueais/química , Microscopia Crioeletrônica , Fímbrias Bacterianas/química , Conformação Proteica em Folha beta , Pyrobaculum/química , Pyrobaculum/fisiologia
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