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1.
Proc Natl Acad Sci U S A ; 121(12): e2313513121, 2024 Mar 19.
Artículo en Inglés | MEDLINE | ID: mdl-38483989

RESUMEN

Cooperative interactions between amino acids are critical for protein function. A genetic reflection of cooperativity is epistasis, which is when a change in the amino acid at one position changes the sequence requirements at another position. To assess epistasis within an enzyme active site, we utilized CTX-M ß-lactamase as a model system. CTX-M hydrolyzes ß-lactam antibiotics to provide antibiotic resistance, allowing a simple functional selection for rapid sorting of modified enzymes. We created all pairwise mutations across 17 active site positions in the ß-lactamase enzyme and quantitated the function of variants against two ß-lactam antibiotics using next-generation sequencing. Context-dependent sequence requirements were determined by comparing the antibiotic resistance function of double mutations across the CTX-M active site to their predicted function based on the constituent single mutations, revealing both positive epistasis (synergistic interactions) and negative epistasis (antagonistic interactions) between amino acid substitutions. The resulting trends demonstrate that positive epistasis is present throughout the active site, that epistasis between residues is mediated through substrate interactions, and that residues more tolerant to substitutions serve as generic compensators which are responsible for many cases of positive epistasis. Additionally, we show that a key catalytic residue (Glu166) is amenable to compensatory mutations, and we characterize one such double mutant (E166Y/N170G) that acts by an altered catalytic mechanism. These findings shed light on the unique biochemical factors that drive epistasis within an enzyme active site and will inform enzyme engineering efforts by bridging the gap between amino acid sequence and catalytic function.


Asunto(s)
Escherichia coli , beta-Lactamasas , Escherichia coli/genética , Dominio Catalítico/genética , Mutación , Sustitución de Aminoácidos , beta-Lactamasas/química
2.
Nature ; 581(7808): 329-332, 2020 05.
Artículo en Inglés | MEDLINE | ID: mdl-32433610

RESUMEN

Diacylglycerol O-acyltransferase 1 (DGAT1) synthesizes triacylglycerides and is required for dietary fat absorption and fat storage in humans1. DGAT1 belongs to the membrane-bound O-acyltransferase (MBOAT) superfamily, members of which are found in all kingdoms of life and are involved in the acylation of lipids and proteins2,3. How human DGAT1 and other mammalian members of the MBOAT family recognize their substrates and catalyse their reactions is unknown. The absence of three-dimensional structures also hampers rational targeting of DGAT1 for therapeutic purposes. Here we present the cryo-electron microscopy structure of human DGAT1 in complex with an oleoyl-CoA substrate. Each DGAT1 protomer has nine transmembrane helices, eight of which form a conserved structural fold that we name the MBOAT fold. The MBOAT fold in DGAT1 forms a hollow chamber in the membrane that encloses highly conserved catalytic residues. The chamber has separate entrances for each of the two substrates, fatty acyl-CoA and diacylglycerol. DGAT1 can exist as either a homodimer or a homotetramer and the two forms have similar enzymatic activity. The N terminus of DGAT1 interacts with the neighbouring protomer and these interactions are required for enzymatic activity.


Asunto(s)
Microscopía por Crioelectrón , Diacilglicerol O-Acetiltransferasa/química , Diacilglicerol O-Acetiltransferasa/metabolismo , Acilcoenzima A/química , Acilcoenzima A/metabolismo , Sitios de Unión , Diacilglicerol O-Acetiltransferasa/genética , Diacilglicerol O-Acetiltransferasa/ultraestructura , Diglicéridos/metabolismo , Humanos , Modelos Moleculares , Multimerización de Proteína , Relación Estructura-Actividad , Triglicéridos/metabolismo
3.
Proc Natl Acad Sci U S A ; 120(24): e2219404120, 2023 06 13.
Artículo en Inglés | MEDLINE | ID: mdl-37276413

RESUMEN

Nogo-66 receptor 1 (NgR1) binds a variety of structurally dissimilar ligands in the adult central nervous system to inhibit axon extension. Disruption of ligand binding to NgR1 and subsequent signaling can improve neuron outgrowth, making NgR1 an important therapeutic target for diverse neurological conditions such as spinal crush injuries and Alzheimer's disease. Human NgR1 serves as a receptor for mammalian orthoreovirus (reovirus), but the mechanism of virus-receptor engagement is unknown. To elucidate how NgR1 mediates cell binding and entry of reovirus, we defined the affinity of interaction between virus and receptor, determined the structure of the virus-receptor complex, and identified residues in the receptor required for virus binding and infection. These studies revealed that central NgR1 surfaces form a bridge between two copies of viral capsid protein σ3, establishing that σ3 serves as a receptor ligand for reovirus. This unusual binding interface produces high-avidity interactions between virus and receptor to prime early entry steps. These studies refine models of reovirus cell-attachment and highlight the evolution of viruses to engage multiple receptors using distinct capsid components.


Asunto(s)
Orthoreovirus , Reoviridae , Animales , Humanos , Receptor Nogo 1/metabolismo , Acoplamiento Viral , Proteínas Virales/metabolismo , Ligandos , Reoviridae/metabolismo , Orthoreovirus/metabolismo , Receptores Virales/metabolismo , Mamíferos/metabolismo
4.
J Biol Chem ; 300(1): 105493, 2024 Jan.
Artículo en Inglés | MEDLINE | ID: mdl-38000656

RESUMEN

Klebsiella pneumoniae carbapenemase 2 (KPC-2) is an important source of drug resistance as it can hydrolyze and inactivate virtually all ß-lactam antibiotics. KPC-2 is potently inhibited by avibactam via formation of a reversible carbamyl linkage of the inhibitor with the catalytic serine of the enzyme. However, the use of avibactam in combination with ceftazidime (CAZ-AVI) has led to the emergence of CAZ-AVI-resistant variants of KPC-2 in clinical settings. One such variant, KPC-44, bears a 15 amino acid duplication in one of the active-site loops (270-loop). Here, we show that the KPC-44 variant exhibits higher catalytic efficiency in hydrolyzing ceftazidime, lower efficiency toward imipenem and meropenem, and a similar efficiency in hydrolyzing ampicillin, than the WT KPC-2 enzyme. In addition, the KPC-44 variant enzyme exhibits 12-fold lower AVI carbamylation efficiency than the KPC-2 enzyme. An X-ray crystal structure of KPC-44 showed that the 15 amino acid duplication results in an extended and partially disordered 270-loop and also changes the conformation of the adjacent 240-loop, which in turn has altered interactions with the active-site omega loop. Furthermore, a structure of KPC-44 with avibactam revealed that formation of the covalent complex results in further disorder in the 270-loop, suggesting that rearrangement of the 270-loop of KPC-44 facilitates AVI carbamylation. These results suggest that the duplication of 15 amino acids in the KPC-44 enzyme leads to resistance to CAZ-AVI by modulating the stability and conformation of the 270-, 240-, and omega-loops.


Asunto(s)
Ceftazidima , Farmacorresistencia Bacteriana , Modelos Moleculares , Humanos , Aminoácidos/genética , Antibacterianos/farmacología , Antibacterianos/uso terapéutico , Proteínas Bacterianas/química , Proteínas Bacterianas/genética , Proteínas Bacterianas/metabolismo , beta-Lactamasas/química , beta-Lactamasas/genética , beta-Lactamasas/metabolismo , Ceftazidima/farmacología , Infecciones por Klebsiella/tratamiento farmacológico , Infecciones por Klebsiella/microbiología , Klebsiella pneumoniae/efectos de los fármacos , Klebsiella pneumoniae/genética , Farmacorresistencia Bacteriana/genética , Cristalografía por Rayos X , Dominio Catalítico/genética , Estructura Terciaria de Proteína
5.
J Biol Chem ; 299(5): 104630, 2023 05.
Artículo en Inglés | MEDLINE | ID: mdl-36963495

RESUMEN

CTX-M ß-lactamases are a widespread source of resistance to ß-lactam antibiotics in Gram-negative bacteria. These enzymes readily hydrolyze penicillins and cephalosporins, including oxyimino-cephalosporins such as cefotaxime. To investigate the preference of CTX-M enzymes for cephalosporins, we examined eleven active-site residues in the CTX-M-14 ß-lactamase model system by alanine mutagenesis to assess the contribution of the residues to catalysis and specificity for the hydrolysis of the penicillin, ampicillin, and the cephalosporins cephalothin and cefotaxime. Key active site residues for class A ß-lactamases, including Lys73, Ser130, Asn132, Lys234, Thr216, and Thr235, contribute significantly to substrate binding and catalysis of penicillin and cephalosporin substrates in that alanine substitutions decrease both kcat and kcat/KM. A second group of residues, including Asn104, Tyr105, Asn106, Thr215, and Thr216, contribute only to substrate binding, with the substitutions decreasing only kcat/KM. Importantly, calculating the average effect of a substitution across the 11 active-site residues shows that the most significant impact is on cefotaxime hydrolysis while ampicillin hydrolysis is least affected, suggesting the active site is highly optimized for cefotaxime catalysis. Furthermore, we determined X-ray crystal structures for the apo-enzymes of the mutants N106A, S130A, N132A, N170A, T215A, and T235A. Surprisingly, in the structures of some mutants, particularly N106A and T235A, the changes in structure propagate from the site of substitution to other regions of the active site, suggesting that the impact of substitutions is due to more widespread changes in structure and illustrating the interconnected nature of the active site.


Asunto(s)
Dominio Catalítico , Cefalosporinas , Resistencia a Medicamentos , Escherichia coli , beta-Lactamasas , Ampicilina/metabolismo , Ampicilina/farmacología , beta-Lactamasas/química , beta-Lactamasas/metabolismo , Catálisis , Dominio Catalítico/genética , Cefotaxima/metabolismo , Cefotaxima/farmacología , Cefalosporinas/metabolismo , Cefalosporinas/farmacología , Resistencia a Medicamentos/genética , Escherichia coli/efectos de los fármacos , Escherichia coli/metabolismo , Mutagénesis , Penicilinas/metabolismo , Penicilinas/farmacología , beta-Lactamas/metabolismo , Modelos Moleculares , Estructura Terciaria de Proteína
6.
Proc Natl Acad Sci U S A ; 118(11)2021 03 16.
Artículo en Inglés | MEDLINE | ID: mdl-33836586

RESUMEN

Intracellular protein homeostasis is maintained by a network of chaperones that function to fold proteins into their native conformation. The eukaryotic TRiC chaperonin (TCP1-ring complex, also called CCT for cytosolic chaperonin containing TCP1) facilitates folding of a subset of proteins with folding constraints such as complex topologies. To better understand the mechanism of TRiC folding, we investigated the biogenesis of an obligate TRiC substrate, the reovirus σ3 capsid protein. We discovered that the σ3 protein interacts with a network of chaperones, including TRiC and prefoldin. Using a combination of cryoelectron microscopy, cross-linking mass spectrometry, and biochemical approaches, we establish functions for TRiC and prefoldin in folding σ3 and promoting its assembly into higher-order oligomers. These studies illuminate the molecular dynamics of σ3 folding and establish a biological function for TRiC in virus assembly. In addition, our findings provide structural and functional insight into the mechanism by which TRiC and prefoldin participate in the assembly of protein complexes.


Asunto(s)
Proteínas de la Cápside/metabolismo , Chaperonina con TCP-1/metabolismo , Chaperonas Moleculares/metabolismo , Reoviridae/metabolismo , Proteínas de la Cápside/química , Chaperonina con TCP-1/química , Microscopía por Crioelectrón , Espectrometría de Masas , Chaperonas Moleculares/química , Conformación Proteica , Pliegue de Proteína , Proteostasis
7.
J Biol Chem ; 296: 100799, 2021.
Artículo en Inglés | MEDLINE | ID: mdl-34022225

RESUMEN

The Klebsiella pneumoniae carbapenemase-2 (KPC-2) is a common source of antibiotic resistance in Gram-negative bacterial infections. KPC-2 is a class A ß-lactamase that exhibits a broad substrate profile and hydrolyzes most ß-lactam antibiotics including carbapenems owing to rapid deacylation of the covalent acyl-enzyme intermediate. However, the features that allow KPC-2 to deacylate substrates more rapidly than non-carbapenemase enzymes are not clear. The active-site residues in KPC-2 are largely conserved in sequence and structure compared with non-carbapenemases, suggesting that subtle alterations may collectively facilitate hydrolysis of carbapenems. We utilized a nonbiased genetic approach to identify mutants deficient in carbapenem hydrolysis but competent for ampicillin hydrolysis. Subsequent pre-steady-state enzyme kinetics analyses showed that the substitutions slow the rate of deacylation of carbapenems. Structure determination via X-ray diffraction indicated that a F72Y mutant forms a hydrogen bond between the tyrosine hydroxyl group and Glu166, which may lower basicity and impair the activation of the catalytic water for deacylation, whereas several mutants impact the structure of the Q214-R220 active site loop. A T215P substitution lowers the deacylation rate and drastically alters the conformation of the loop, thereby disrupting interactions between the enzyme and the carbapenem acyl-enzyme intermediate. Thus, the environment of the Glu166 general base and the precise placement and conformational stability of the Q214-R220 loop are critical for efficient deacylation of carbapenems by the KPC-2 enzyme. Therefore, the design of carbapenem antibiotics that interact with Glu166 or alter the Q214-R220 loop conformation may disrupt enzyme function and overcome resistance.


Asunto(s)
Antibacterianos/metabolismo , Proteínas Bacterianas/metabolismo , Carbapenémicos/metabolismo , Klebsiella pneumoniae/metabolismo , beta-Lactamasas/metabolismo , Proteínas Bacterianas/química , Dominio Catalítico , Cristalografía por Rayos X , Humanos , Hidrólisis , Infecciones por Klebsiella/microbiología , Klebsiella pneumoniae/química , Modelos Moleculares , Conformación Proteica , beta-Lactamasas/química
8.
J Biol Chem ; 295(52): 18239-18255, 2020 12 25.
Artículo en Inglés | MEDLINE | ID: mdl-33109613

RESUMEN

Lys234 is one of the residues present in class A ß-lactamases that is under selective pressure due to antibiotic use. Located adjacent to proton shuttle residue Ser130, it is suggested to play a role in proton transfer during catalysis of the antibiotics. The mechanism underpinning how substitutions in this position modulate inhibitor efficiency and substrate specificity leading to drug resistance is unclear. The K234R substitution identified in several inhibitor-resistant ß-lactamase variants is associated with decreased potency of the inhibitor clavulanic acid, which is used in combination with amoxicillin to overcome ß-lactamase-mediated antibiotic resistance. Here we show that for CTX-M-14 ß-lactamase, whereas Lys234 is required for hydrolysis of cephalosporins such as cefotaxime, either lysine or arginine is sufficient for hydrolysis of ampicillin. Further, by determining the acylation and deacylation rates for cefotaxime hydrolysis, we show that both rates are fast, and neither is rate-limiting. The K234R substitution causes a 1500-fold decrease in the cefotaxime acylation rate but a 5-fold increase in kcat for ampicillin, suggesting that the K234R enzyme is a good penicillinase but a poor cephalosporinase due to slow acylation. Structural results suggest that the slow acylation by the K234R enzyme is due to a conformational change in Ser130, and this change also leads to decreased inhibition potency of clavulanic acid. Because other inhibitor resistance mutations also act through changes at Ser130 and such changes drastically reduce cephalosporin but not penicillin hydrolysis, we suggest that clavulanic acid paired with an oxyimino-cephalosporin rather than penicillin would impede the evolution of resistance.


Asunto(s)
Antibacterianos/farmacología , Mutación , Protones , Resistencia betalactámica/genética , Inhibidores de beta-Lactamasas/farmacología , beta-Lactamasas/química , beta-Lactamasas/metabolismo , Dominio Catalítico , Escherichia coli/enzimología , Escherichia coli/crecimiento & desarrollo , Mutagénesis Sitio-Dirigida , Conformación Proteica , Especificidad por Sustrato , beta-Lactamasas/genética
9.
J Biol Chem ; 295(21): 7376-7390, 2020 05 22.
Artículo en Inglés | MEDLINE | ID: mdl-32299911

RESUMEN

CTX-M ß-lactamases are widespread in Gram-negative bacterial pathogens and provide resistance to the cephalosporin cefotaxime but not to the related antibiotic ceftazidime. Nevertheless, variants have emerged that confer resistance to ceftazidime. Two natural mutations, causing P167S and D240G substitutions in the CTX-M enzyme, result in 10-fold increased hydrolysis of ceftazidime. Although the combination of these mutations would be predicted to increase ceftazidime hydrolysis further, the P167S/D240G combination has not been observed in a naturally occurring CTX-M variant. Here, using recombinantly expressed enzymes, minimum inhibitory concentration measurements, steady-state enzyme kinetics, and X-ray crystallography, we show that the P167S/D240G double mutant enzyme exhibits decreased ceftazidime hydrolysis, lower thermostability, and decreased protein expression levels compared with each of the single mutants, indicating negative epistasis. X-ray structures of mutant enzymes with covalently trapped ceftazidime suggested that a change of an active-site Ω-loop to an open conformation accommodates ceftazidime leading to enhanced catalysis. 10-µs molecular dynamics simulations further correlated Ω-loop opening with catalytic activity. We observed that the WT and P167S/D240G variant with acylated ceftazidime both favor a closed conformation not conducive for catalysis. In contrast, the single substitutions dramatically increased the probability of open conformations. We conclude that the antagonism is due to restricting the conformation of the Ω-loop. These results reveal the importance of conformational heterogeneity of active-site loops in controlling catalytic activity and directing evolutionary trajectories.


Asunto(s)
Proteínas de Escherichia coli/química , Escherichia coli/enzimología , Evolución Molecular , Mutación Missense , Resistencia betalactámica , beta-Lactamasas/química , Sustitución de Aminoácidos , Catálisis , Ceftazidima/química , Escherichia coli/genética , Proteínas de Escherichia coli/genética , Proteínas de Escherichia coli/metabolismo , beta-Lactamasas/genética , beta-Lactamasas/metabolismo
10.
J Virol ; 95(1)2020 12 09.
Artículo en Inglés | MEDLINE | ID: mdl-33055250

RESUMEN

Norovirus (NoV) infections are a leading cause of gastroenteritis. The humoral immune response plays an important role in the control of NoV, and recent studies have identified neutralizing antibodies that bind the capsid protein VP1 to block viral infection. Here, we utilize a NoV GI.1 Jun-Fos-assisted phage display library constructed from randomly fragmented genomic DNA coupled with affinity selection for antibody binding and subsequent deep sequencing to map epitopes. The epitopes were identified by quantitating the phage clones before and after affinity selection and aligning the sequences of the most enriched peptides. The HJT-R3-A9 single-chain variable fragment (scFv) antibody epitope was mapped to a 12-amino-acid region of VP1 that is also the binding site for several previously identified monoclonal antibodies. We synthesized the 12-mer peptide and found that it binds the scFv antibody with a KD (equilibrium dissociation constant) of 46 nM. Further, alignment of enriched peptides after affinity selection on rabbit anti-NoV polyclonal antisera revealed five families of overlapping sequences that define distinct epitopes in VP1. One of these is identical to the HJT-R3-A9 scFv epitope, further suggesting that it is immunodominant. Similarly, other epitopes identified using the polyclonal antisera overlap binding sites for previously reported monoclonal antibodies, suggesting that they are also dominant epitopes. The results demonstrate that affinity selection and deep sequencing of the phage library provide sufficient resolution to map multiple epitopes simultaneously from complex samples such as polyclonal antisera. This approach can be extended to examine the antigenic landscape in patient sera to facilitate investigation of the immune response to NoV.IMPORTANCE NoV infections are a leading cause of gastroenteritis in the United States. Human NoVs exhibit extensive genetic and antigenic diversity, which makes it challenging to design a vaccine that provides broad protection against infection. Antibodies developed during the immune response play an important role in the control of NoV infections. Neutralizing antibodies that act by sterically blocking the site on the virus used to bind human cells have been identified. Identification of other antibody binding sites associated with virus neutralization is therefore of interest. Here, we use a high-resolution method to map multiple antibody binding sites simultaneously from complex serum samples. The results show that a relatively small number of sites on the virus bind a large number of independently generated antibodies, suggesting that immunodominance plays a role in the humoral immune response to NoV infections.


Asunto(s)
Antígenos Virales/genética , Antígenos Virales/inmunología , Norovirus/inmunología , Secuencia de Aminoácidos , Animales , Anticuerpos Monoclonales/inmunología , Anticuerpos Antivirales/inmunología , Bacteriófagos/genética , Sitios de Unión de Anticuerpos , Proteínas de la Cápside/genética , Proteínas de la Cápside/inmunología , Técnicas de Visualización de Superficie Celular , Mapeo Epitopo , Epítopos , Genoma Viral/genética , Biblioteca Genómica , Secuenciación de Nucleótidos de Alto Rendimiento , Humanos , Norovirus/genética , Conejos , Anticuerpos de Cadena Única/inmunología
11.
Proc Natl Acad Sci U S A ; 115(51): E12015-E12023, 2018 12 18.
Artículo en Inglés | MEDLINE | ID: mdl-30509975

RESUMEN

The rotavirus (RV) genome is replicated and packaged into virus progeny in cytoplasmic inclusions called viroplasms, which require interactions between RV nonstructural proteins NSP2 and NSP5. How viroplasms form remains unknown. We previously found two forms of NSP2 in RV-infected cells: a cytoplasmically dispersed dNSP2, which interacts with hypophosphorylated NSP5; and a viroplasm-specific vNSP2, which interacts with hyperphosphorylated NSP5. Other studies report that CK1α, a ubiquitous cellular kinase, hyperphosphorylates NSP5, but requires NSP2 for reasons that are unclear. Here we show that silencing CK1α in cells before RV infection resulted in (i) >90% decrease in RV replication, (ii) disrupted vNSP2 and NSP5 interaction, (iii) dispersion of vNSP2 throughout the cytoplasm, and (iv) reduced vNSP2 protein levels. Together, these data indicate that CK1α directly affects NSP2. Accordingly, an in vitro kinase assay showed that CK1α phosphorylates serine 313 of NSP2 and triggers NSP2 octamers to form a lattice structure as demonstrated by crystallographic analysis. Additionally, a dual-specificity autokinase activity for NSP2 was identified and confirmed by mass spectrometry. Together, our studies show that phosphorylation of NSP2 involving CK1α controls viroplasm assembly. Considering that CK1α plays a role in the replication of other RNA viruses, similar phosphorylation-dependent mechanisms may exist for other virus pathogens that require cytoplasmic virus factories for replication.


Asunto(s)
Replicación del ADN/fisiología , Proteínas de Unión al ARN/metabolismo , Rotavirus/genética , Rotavirus/metabolismo , Proteínas no Estructurales Virales/metabolismo , Replicación Viral/fisiología , Animales , Caseína Quinasa Ialfa/genética , Caseína Quinasa Ialfa/metabolismo , Línea Celular , Cristalografía por Rayos X , Citoplasma/metabolismo , Citoplasma/virología , Silenciador del Gen , Humanos , Cuerpos de Inclusión/metabolismo , Ratones , Modelos Moleculares , Fosforilación , Fosfotransferasas/metabolismo , Conformación Proteica , Dominios y Motivos de Interacción de Proteínas , Proteínas de Unión al ARN/genética , Infecciones por Rotavirus/genética , Infecciones por Rotavirus/metabolismo , Proteínas no Estructurales Virales/genética
12.
J Virol ; 93(21)2019 11 01.
Artículo en Inglés | MEDLINE | ID: mdl-31375595

RESUMEN

Influenza A virus (IAV) nonstructural protein 1 (NS1), a potent antagonist of the host immune response, is capable of interacting with RNA and a wide range of cellular proteins. NS1 consists of an RNA-binding domain (RBD) and an effector domain (ED) separated by a flexible linker region (LR). H5N1-NS1 has a characteristic 5-residue deletion in the LR, with either G (minor group) or E (major group) at the 71st position, and non-H5N1-NS1 contains E71 with an intact linker. Based on the orientation of the ED with respect to the RBD, previous crystallographic studies have shown that minor group H5N1-NS1(G71), a non-H5N1-NS1 [H6N6-NS1(E71)], and the LR deletion mutant H6N6-NS1(Δ80-84/E71) mimicking the major group H5N1-NS1 exhibit "open," "semiopen," and "closed" conformations, respectively, suggesting that NS1 exhibits a strain-dependent conformational preference. Here we report the first crystal structure of a naturally occurring H5N1-NS1(E71) and show that it adopts an open conformation similar to that of the minor group of H5N1-NS1 [H5N1-NS1(G71)]. We also show that H6N6-NS1(Δ80-84/E71) under a different crystallization condition and H6N6-NS1(Δ80-84/G71) also exhibit open conformations, suggesting that NS1 can adopt an open conformation irrespective of E or G at the 71st position. Our single-molecule fluorescence resonance energy transfer (FRET) analysis to investigate the conformational preference of NS1 in solution showed that all NS1 constructs predominantly exist in an open conformation. Further, our coimmunoprecipitation and binding studies showed that they all bind to cellular factors with similar affinities. Taken together, our studies suggest that NS1 exhibits strain-independent structural plasticity that allows it to interact with a wide variety of cellular ligands during viral infection.IMPORTANCE IAV is responsible for several pandemics over the last century and continues to infect millions annually. The frequent rise in drug-resistant strains necessitates exploring novel targets for developing antiviral drugs that can reduce the global burden of influenza infection. Because of its critical role in the replication and pathogenesis of IAV, nonstructural protein 1 (NS1) is a potential target for developing antivirals. Previous studies suggested that NS1 adopts strain-dependent "open," "semiopen," and "closed" conformations. Here we show, based on three crystal structures, that NS1 irrespective of strain differences can adopt an open conformation. We further show that NS1 from different strains primarily exists in an open conformation in solution and binds to cellular proteins with a similar affinity. Together, our findings suggest that conformational polymorphism facilitated by a flexible linker is intrinsic to NS1, and this may be the underlying factor allowing NS1 to bind several cellular factors during IAV replication.


Asunto(s)
Virus de la Influenza A/química , Proteínas no Estructurales Virales/química , Secuencia de Aminoácidos , Cristalografía por Rayos X , Transferencia Resonante de Energía de Fluorescencia , Virus de la Influenza A/clasificación , Virus de la Influenza A/genética , Ligandos , Mutación , Unión Proteica , Conformación Proteica , Relación Estructura-Actividad , Proteínas no Estructurales Virales/genética , Proteínas no Estructurales Virales/metabolismo
13.
J Biol Chem ; 293(46): 17971-17984, 2018 11 16.
Artículo en Inglés | MEDLINE | ID: mdl-30275013

RESUMEN

The CTX-M ß-lactamases have emerged as the most widespread extended-spectrum ß-lactamases (ESBLs) in Gram-negative bacteria. These enzymes rapidly hydrolyze cefotaxime, but not the related cephalosporin, ceftazidime. ESBL variants have evolved, however, that provide enhanced ceftazidime resistance. We show here that a natural variant at a nonactive site, i.e. second-shell residue N106S, enhances enzyme stability but reduces catalytic efficiency for cefotaxime and ceftazidime and decreases resistance levels. However, when the N106S variant was combined with an active-site variant, D240G, that enhances enzyme catalytic efficiency, but decreases stability, the resultant double mutant exhibited higher resistance levels than predicted on the basis of the phenotypes of each variant. We found that this epistasis is due to compensatory effects, whereby increased stability provided by N106S overrides its cost of decreased catalytic activity. X-ray structures of the variant enzymes in complex with cefotaxime revealed conformational changes in the active-site loop spanning residues 103-106 that were caused by the N106S substitution and relieve steric strain to stabilize the enzyme, but also alter contacts with cefotaxime and thereby reduce catalytic activity. We noted that the 103-106 loop conformation in the N106S-containing variants is different from that of WT CTX-M but nearly identical to that of the non-ESBL, TEM-1 ß-lactamase, having a serine at the 106 position. Therefore, residue 106 may serve as a "switch" that toggles the conformations of the 103-106 loop. When it is serine, the loop is in the non-ESBL, TEM-like conformation, and when it is asparagine, the loop is in a CTX-M-like, cefotaximase-favorable conformation.


Asunto(s)
Resistencia a las Cefalosporinas/genética , beta-Lactamasas/genética , Sustitución de Aminoácidos , Cefotaxima/química , Ceftazidima/química , Cristalografía por Rayos X , Estabilidad de Enzimas , Epistasis Genética , Escherichia coli/genética , Hidrólisis , Cinética , Pruebas de Sensibilidad Microbiana , Mutagénesis Sitio-Dirigida , Conformación Proteica , beta-Lactamasas/química
14.
J Virol ; 92(15)2018 08 01.
Artículo en Inglés | MEDLINE | ID: mdl-29769334

RESUMEN

Viral nonstructural proteins, which are not packaged into virions, are essential for the replication of most viruses. Reovirus, a nonenveloped, double-stranded RNA (dsRNA) virus, encodes three nonstructural proteins that are required for viral replication and dissemination in the host. The reovirus nonstructural protein σNS is a single-stranded RNA (ssRNA)-binding protein that must be expressed in infected cells for production of viral progeny. However, the activities of σNS during individual steps of the reovirus replication cycle are poorly understood. We explored the function of σNS by disrupting its expression during infection using cells expressing a small interfering RNA (siRNA) targeting the σNS-encoding S3 gene and found that σNS is required for viral genome replication. Using complementary biochemical assays, we determined that σNS forms complexes with viral and nonviral RNAs. We also discovered, using in vitro and cell-based RNA degradation experiments, that σNS increases the RNA half-life. Cryo-electron microscopy revealed that σNS and ssRNAs organize into long, filamentous structures. Collectively, our findings indicate that σNS functions as an RNA-binding protein that increases the viral RNA half-life. These results suggest that σNS forms RNA-protein complexes in preparation for genome replication.IMPORTANCE Following infection, viruses synthesize nonstructural proteins that mediate viral replication and promote dissemination. Viruses from the family Reoviridae encode nonstructural proteins that are required for the formation of progeny viruses. Although nonstructural proteins of different viruses in the family Reoviridae diverge in primary sequence, they are functionally homologous and appear to facilitate conserved mechanisms of dsRNA virus replication. Using in vitro and cell culture approaches, we found that the mammalian reovirus nonstructural protein σNS binds and stabilizes viral RNA and is required for genome synthesis. This work contributes new knowledge about basic mechanisms of dsRNA virus replication and provides a foundation for future studies to determine how viruses in the family Reoviridae assort and replicate their genomes.


Asunto(s)
Genoma Viral , Orthoreovirus de los Mamíferos/fisiología , ARN Viral/biosíntesis , Proteínas de Unión al ARN/metabolismo , Proteínas no Estructurales Virales/metabolismo , Replicación Viral/fisiología , Células HEK293 , Humanos , ARN Viral/genética , Proteínas de Unión al ARN/genética , Proteínas no Estructurales Virales/genética
15.
Proc Natl Acad Sci U S A ; 113(40): E5830-E5837, 2016 10 04.
Artículo en Inglés | MEDLINE | ID: mdl-27647885

RESUMEN

Human noroviruses (HuNoVs) cause sporadic and epidemic gastroenteritis worldwide. They are classified into two major genogroups (GI and GII), with each genogroup further divided into multiple genotypes. Susceptibility to these viruses is influenced by genetically determined histo-blood group antigen (HBGA) expression. HBGAs function as cell attachment factors by binding to a surface-exposed region in the protruding (P) domain of the capsid protein. Sequence variations in this region that result in differential HBGA binding patterns and antigenicity are suggested to form a basis for strain diversification. Recent studies show that serum antibodies that block HBGA binding correlate with protection against illness. Although genogroup-dependent variation in HBGA binding specificity is structurally well characterized, an understanding of how antibodies block HBGA binding and how genotypic variations affect such blockade is lacking. Our crystallographic studies of the GI.1 P domain in complex with the Fab fragment of a human IgA monoclonal antibody (IgA 5I2) with HBGA blocking activity show that the antibody recognizes a conformational epitope formed by two surface-exposed loop clusters in the P domain. The antibody engulfs the HBGA binding site but does not affect its structural integrity. An unusual feature of the antigen recognition by IgA 5I2 is the predominant involvement of the CDR light chain 1 in contrast to the commonly observed CDR heavy chain 3, providing a unique perspective into antibody diversity in antigen recognition. Identification of the antigenic site in the P domain shows how genotypic variations might allow escape from antibody neutralization and exemplifies the interplay between antigenicity and HBGA specificity in HuNoV evolution.


Asunto(s)
Anticuerpos Bloqueadores/farmacología , Antígenos de Grupos Sanguíneos/inmunología , Inmunoglobulina A/metabolismo , Pruebas de Neutralización , Norovirus/inmunología , Secuencia de Aminoácidos , Antígenos/química , Cristalografía por Rayos X , Epítopos/química , Genotipo , Humanos , Fragmentos Fab de Inmunoglobulinas/metabolismo , Modelos Moleculares , Norovirus/efectos de los fármacos , Norovirus/genética , Dominios Proteicos , Proteínas Virales/química , Proteínas Virales/metabolismo
16.
PLoS Pathog ; 12(6): e1005719, 2016 06.
Artículo en Inglés | MEDLINE | ID: mdl-27355511

RESUMEN

Noroviruses (NoV) are the most common cause of non-bacterial acute gastroenteritis and cause local outbreaks of illness, especially in confined situations. Despite being identified four decades ago, the correlates of protection against norovirus gastroenteritis are still being elucidated. Recent studies have shown an association of protection with NoV-specific serum histo-blood group antigen-blocking antibody and with serum IgA in patients vaccinated with NoV VLPs. Here, we describe the isolation and characterization of human monoclonal IgG and IgA antibodies against a GI.I NoV, Norwalk virus (NV). A higher proportion of the IgA antibodies blocked NV VLP binding to glycans than did IgG antibodies. We generated isotype-switched variants of IgG and IgA antibodies to study the effects of the constant domain on blocking and binding activities. The IgA form of antibodies appears to be more potent than the IgG form in blocking norovirus binding to histo-blood group antigens. These studies suggest a unique role for IgA antibodies in protection from NoV infections by blocking attachment to cell receptors.


Asunto(s)
Anticuerpos Monoclonales/inmunología , Linfocitos B/inmunología , Antígenos de Grupos Sanguíneos/inmunología , Infecciones por Caliciviridae/inmunología , Western Blotting , Línea Celular , Ensayo de Inmunoadsorción Enzimática , Gastroenteritis/inmunología , Humanos , Hibridomas , Inmunoglobulina A/inmunología , Inmunoglobulina G/inmunología , Virus Norwalk/inmunología , Reacción en Cadena de la Polimerasa
17.
Nature ; 485(7397): 256-9, 2012 Apr 15.
Artículo en Inglés | MEDLINE | ID: mdl-22504179

RESUMEN

As with many other viruses, the initial cell attachment of rotaviruses, which are the major causative agent of infantile gastroenteritis, is mediated by interactions with specific cellular glycans. The distally located VP8* domain of the rotavirus spike protein VP4 (ref. 5) mediates such interactions. The existing paradigm is that 'sialidase-sensitive' animal rotavirus strains bind to glycans with terminal sialic acid (Sia), whereas 'sialidase-insensitive' human rotavirus strains bind to glycans with internal Sia such as GM1 (ref. 3). Although the involvement of Sia in the animal strains is firmly supported by crystallographic studies, it is not yet known how VP8* of human rotaviruses interacts with Sia and whether their cell attachment necessarily involves sialoglycans. Here we show that VP8* of a human rotavirus strain specifically recognizes A-type histo-blood group antigen (HBGA) using a glycan array screen comprised of 511 glycans, and that virus infectivity in HT-29 cells is abrogated by anti-A-type antibodies as well as significantly enhanced in Chinese hamster ovary cells genetically modified to express the A-type HBGA, providing a novel paradigm for initial cell attachment of human rotavirus. HBGAs are genetically determined glycoconjugates present in mucosal secretions, epithelia and on red blood cells, and are recognized as susceptibility and cell attachment factors for gastric pathogens like Helicobacter pylori and noroviruses. Our crystallographic studies show that the A-type HBGA binds to the human rotavirus VP8* at the same location as the Sia in the VP8* of animal rotavirus, and suggest how subtle changes within the same structural framework allow for such receptor switching. These results raise the possibility that host susceptibility to specific human rotavirus strains and pathogenesis are influenced by genetically controlled expression of different HBGAs among the world's population.


Asunto(s)
Sistema del Grupo Sanguíneo ABO/metabolismo , Especificidad del Huésped/fisiología , Proteínas de Unión al ARN/metabolismo , Receptores Virales/metabolismo , Rotavirus , Proteínas no Estructurales Virales/metabolismo , Sistema del Grupo Sanguíneo ABO/química , Sistema del Grupo Sanguíneo ABO/genética , Sistema del Grupo Sanguíneo ABO/inmunología , Secuencia de Aminoácidos , Animales , Células CHO , Cricetinae , Cristalografía por Rayos X , Eritrocitos/metabolismo , Eritrocitos/virología , Humanos , Modelos Moleculares , Datos de Secuencia Molecular , Ácido N-Acetilneuramínico/antagonistas & inhibidores , Ácido N-Acetilneuramínico/química , Ácido N-Acetilneuramínico/inmunología , Ácido N-Acetilneuramínico/metabolismo , Proteínas de Unión al ARN/química , Receptores Virales/química , Receptores Virales/genética , Rotavirus/química , Rotavirus/clasificación , Rotavirus/metabolismo , Rotavirus/patogenicidad , Proteínas no Estructurales Virales/química
18.
Biochemistry ; 56(27): 3443-3453, 2017 07 11.
Artículo en Inglés | MEDLINE | ID: mdl-28613873

RESUMEN

CTX-M ß-lactamases provide resistance against the ß-lactam antibiotic, cefotaxime, but not a related antibiotic, ceftazidime. ß-Lactamases that carry the P167S substitution, however, provide ceftazidime resistance. In this study, CTX-M-14 was used as a model to study the structural changes caused by the P167S mutation that accelerate ceftazidime turnover. X-ray crystallography was used to determine the structures of the P167S apoenzyme along with the structures of the S70G/P167S, E166A/P167S, and E166A mutant enzymes complexed with ceftazidime as well as the E166A/P167S apoenzyme. The S70G and E166A mutations allow capture of the enzyme-substrate complex and the acylated form of ceftazidime, respectively. The results showed a large conformational change in the Ω-loop of the ceftazidime acyl-enzyme complex of the P167S mutant but not in the enzyme-substrate complex, suggesting the change occurs upon acylation. The change results in a larger active site that prevents steric clash between the aminothiazole ring of ceftazidime and the Asn170 residue in the Ω-loop, allowing accommodation of ceftazidime for hydrolysis. In addition, the conformational change was not observed in the E166A/P167S apoenzyme, suggesting the presence of acylated ceftazidime influences the conformational change. Finally, the E166A acyl-enzyme structure with ceftazidime did not exhibit the altered conformation, indicating the P167S substitution is required for the change. Taken together, the results reveal that the P167S substitution and the presence of acylated ceftazidime both drive the structure toward a conformational change in the Ω-loop and that in CTX-M P167S enzymes found in drug-resistant bacteria this will lead to an increased level of ceftazidime hydrolysis.


Asunto(s)
Antibacterianos/metabolismo , Ceftazidima/metabolismo , Proteínas de Escherichia coli/metabolismo , Escherichia coli/enzimología , Modelos Moleculares , beta-Lactamasas/metabolismo , Acilación , Sustitución de Aminoácidos , Antibacterianos/química , Antibacterianos/farmacología , Apoenzimas/química , Apoenzimas/genética , Apoenzimas/metabolismo , Dominio Catalítico , Ceftazidima/química , Ceftazidima/farmacología , Cefalosporinas/química , Cefalosporinas/metabolismo , Cefalosporinas/farmacología , Cristalografía por Rayos X , Farmacorresistencia Bacteriana Múltiple , Estabilidad de Enzimas , Escherichia coli/efectos de los fármacos , Proteínas de Escherichia coli/química , Proteínas de Escherichia coli/genética , Hidrólisis , Ligandos , Mutagénesis Sitio-Dirigida , Oximas/química , Oximas/metabolismo , Oximas/farmacología , Mutación Puntual , Conformación Proteica , Proteínas Recombinantes/química , Proteínas Recombinantes/metabolismo , Especificidad por Sustrato , beta-Lactamasas/química , beta-Lactamasas/genética
19.
BMC Biol ; 14(1): 81, 2016 Sep 21.
Artículo en Inglés | MEDLINE | ID: mdl-27655155

RESUMEN

BACKGROUND: Due to the paucity of novel antibiotics, colistin has become a last resort antibiotic for treating multidrug resistant bacteria. Colistin acts by binding the lipid A component of lipopolysaccharides and subsequently disrupting the bacterial membrane. The recently identified plasmid-encoded MCR-1 enzyme is the first transmissible colistin resistance determinant and is a cause for concern for the spread of this resistance trait. MCR-1 is a phosphoethanolamine transferase that catalyzes the addition of phosphoethanolamine to lipid A to decrease colistin affinity. RESULTS: The structure of the catalytic domain of MCR-1 at 1.32 Å reveals the active site is similar to that of related phosphoethanolamine transferases. CONCLUSIONS: The putative nucleophile for catalysis, threonine 285, is phosphorylated in cMCR-1 and a zinc is present at a conserved site in addition to three zincs more peripherally located in the active site. As noted for catalytic domains of other phosphoethanolamine transferases, binding sites for the lipid A and phosphatidylethanolamine substrates are not apparent in the cMCR-1 structure, suggesting that they are present in the membrane domain.

20.
Biochemistry ; 55(17): 2479-90, 2016 05 03.
Artículo en Inglés | MEDLINE | ID: mdl-27073009

RESUMEN

Serine ß-lactamases are bacterial enzymes that hydrolyze ß-lactam antibiotics. They utilize an active-site serine residue as a nucleophile, forming an acyl-enzyme intermediate during hydrolysis. In this study, thermal denaturation experiments as well as X-ray crystallography were performed to test the effect of substitution of the catalytic serine with glycine on protein stability in serine ß-lactamases. Six different enzymes comprising representatives from each of the three classes of serine ß-lactamases were examined, including TEM-1, CTX-M-14, and KPC-2 of class A, P99 of class C, and OXA-48 and OXA-163 of class D. For each enzyme, the wild type and a serine-to-glycine mutant were evaluated for stability. The glycine mutants all exhibited enhanced thermostability compared to that of the wild type. In contrast, alanine substitutions of the catalytic serine in TEM-1, OXA-48, and OXA-163 did not alter stability, suggesting removal of the Cß atom is key to the stability increase associated with the glycine mutants. The X-ray crystal structures of P99 S64G, OXA-48 S70G and S70A, and OXA-163 S70G suggest that removal of the side chain of the catalytic serine releases steric strain to improve enzyme stability. Additionally, analysis of the torsion angles at the nucleophile position indicates that the glycine mutants exhibit improved distance and angular parameters of the intrahelical hydrogen bond network compared to those of the wild-type enzymes, which is also consistent with increased stability. The increased stability of the mutants indicates that the enzyme pays a price in stability for the presence of a side chain at the catalytic serine position but that the cost is necessary in that removal of the serine drastically impairs function. These findings support the stability-function hypothesis, which states that active-site residues are optimized for substrate binding and catalysis but that the requirements for catalysis are often not consistent with the requirements for optimal stability.


Asunto(s)
Escherichia coli/enzimología , Glicina/química , Serina/química , beta-Lactamasas/química , Sitios de Unión , Catálisis , Dominio Catalítico , Cristalografía por Rayos X , Estabilidad de Enzimas , Glicina/genética , Glicina/metabolismo , Hidrólisis , Cinética , Modelos Moleculares , Mutagénesis Sitio-Dirigida , Serina/genética , Serina/metabolismo , beta-Lactamasas/genética , beta-Lactamasas/metabolismo
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