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2.
EMBO Rep ; 23(4): e54199, 2022 04 05.
Article in English | MEDLINE | ID: mdl-35253970

ABSTRACT

The ongoing COVID-19 pandemic represents an unprecedented global health crisis. Here, we report the identification of a synthetic nanobody (sybody) pair, Sb#15 and Sb#68, that can bind simultaneously to the SARS-CoV-2 spike RBD and efficiently neutralize pseudotyped and live viruses by interfering with ACE2 interaction. Cryo-EM confirms that Sb#15 and Sb#68 engage two spatially discrete epitopes, influencing rational design of bispecific and tri-bispecific fusion constructs that exhibit up to 100- and 1,000-fold increase in neutralization potency, respectively. Cryo-EM of the sybody-spike complex additionally reveals a novel up-out RBD conformation. While resistant viruses emerge rapidly in the presence of single binders, no escape variants are observed in the presence of the bispecific sybody. The multivalent bispecific constructs further increase the neutralization potency against globally circulating SARS-CoV-2 variants of concern. Our study illustrates the power of multivalency and biparatopic nanobody fusions for the potential development of therapeutic strategies that mitigate the emergence of new SARS-CoV-2 escape mutants.


Subject(s)
COVID-19 Drug Treatment , Single-Domain Antibodies , Antibodies, Neutralizing , Antibodies, Viral/metabolism , Drug Resistance , Humans , Pandemics , Protein Binding , SARS-CoV-2/genetics , Single-Domain Antibodies/genetics , Single-Domain Antibodies/metabolism , Single-Domain Antibodies/pharmacology , Spike Glycoprotein, Coronavirus/genetics , Spike Glycoprotein, Coronavirus/metabolism
3.
Elife ; 82019 07 24.
Article in English | MEDLINE | ID: mdl-31339488

ABSTRACT

The epithelial anion transporter SLC26A9 contributes to airway surface hydration and gastric acid production. Colocalizing with CFTR, SLC26A9 has been proposed as a target for the treatment of cystic fibrosis. To provide molecular details of its transport mechanism, we present cryo-EM structures and a functional characterization of murine Slc26a9. These structures define the general architecture of eukaryotic SLC26 family members and reveal an unusual mode of oligomerization which relies predominantly on the cytosolic STAS domain. Our data illustrates conformational transitions of Slc26a9, supporting a rapid alternate-access mechanism which mediates uncoupled chloride transport with negligible bicarbonate or sulfate permeability. The characterization of structure-guided mutants illuminates the properties of the ion transport path, including a selective anion binding site located in the center of a mobile module within the transmembrane domain. This study thus provides a structural foundation for the understanding of the entire SLC26 family and potentially facilitates their therapeutic exploitation.


Subject(s)
Antiporters/metabolism , Antiporters/ultrastructure , Chlorides/metabolism , Cryoelectron Microscopy , Sulfate Transporters/metabolism , Sulfate Transporters/ultrastructure , Animals , Antiporters/chemistry , Binding Sites , HEK293 Cells , Humans , Ion Transport , Mice , Models, Molecular , Protein Domains , Proteolipids/metabolism , Static Electricity , Substrate Specificity , Sulfate Transporters/chemistry
4.
FEBS J ; 284(11): 1631-1643, 2017 06.
Article in English | MEDLINE | ID: mdl-28342293

ABSTRACT

Ribosomal protein L7/L12 is associated with translation initiation, elongation, and termination by the 70S ribosome. The guanosine 5' triphosphate hydrolase (GTPase) activity of elongation factor G (EF-G) requires the presence of L7/L12, which is critical for ribosomal translocation. Here, we have developed new methods for the complete depletion of L7/L12 from Escherichia coli 70S ribosomes to analyze the effect of L7/L12 on the activities of the GTPase factors EF-G, RF3, IF2, and LepA. Upon removal of L7/L12 from ribosomes, the GTPase activities of EF-G, RF3, and IF2 decreased to basal levels, while the activity of LepA decreased marginally. Upon reconstitution of ribosomes with recombinant L12, the GTPase activities of all GTPases returned to full activity. Moreover, ribosome binding assays indicated that EF-G, RF3, and IF2 require L7/L12 for stable binding in the GTP state, and LepA retained > 50% binding. Lastly, an EF-G∆G' truncation mutant possessed ribosome-dependent GTPase activity, which was insensitive to L7/L12. Our results indicate that L7/L12 is required for stable binding of ribosome-dependent GTPases that harbor direct interactions to the L7/L12 C-terminal domains, either through a G' domain (EF-G, RF3) or a unique N-terminal domain (IF2). Furthermore, we hypothesize this interaction is concomitant with counterclockwise ribosomal intersubunit rotation, which is required for translocation, initiation, and post-termination.


Subject(s)
Escherichia coli Proteins/metabolism , Escherichia coli Proteins/physiology , Guanosine Triphosphate/metabolism , Peptide Elongation Factor G/metabolism , Peptide Termination Factors/metabolism , Prokaryotic Initiation Factor-2/metabolism , Ribosomal Proteins/physiology , Ribosomes/metabolism , Enzyme Activation , Escherichia coli Proteins/genetics , Hydrolysis , Mutagenesis, Site-Directed , Peptide Initiation Factors/metabolism , Recombinant Proteins/metabolism , Ribosomal Proteins/deficiency , Ribosomal Proteins/genetics
5.
PLoS One ; 10(3): e0122447, 2015.
Article in English | MEDLINE | ID: mdl-25775247

ABSTRACT

The factor VIII C2 domain is essential for binding to activated platelet surfaces as well as the cofactor activity of factor VIII in blood coagulation. Inhibitory antibodies against the C2 domain commonly develop following factor VIII replacement therapy for hemophilia A patients, or they may spontaneously arise in cases of acquired hemophilia. Porcine factor VIII is an effective therapeutic for hemophilia patients with inhibitor due to its low cross-reactivity; however, the molecular basis for this behavior is poorly understood. In this study, the X-ray crystal structure of the porcine factor VIII C2 domain was determined, and superposition of the human and porcine C2 domains demonstrates that most surface-exposed differences cluster on the face harboring the "non-classical" antibody epitopes. Furthermore, antibody-binding results illustrate that the "classical" 3E6 antibody can bind both the human and porcine C2 domains, although the inhibitory titer to human factor VIII is 41 Bethesda Units (BU)/mg IgG versus 0.8 BU/mg IgG to porcine factor VIII, while the non-classical G99 antibody does not bind to the porcine C2 domain nor inhibit porcine factor VIII activity. Further structural analysis of differences between the electrostatic surface potentials suggest that the C2 domain binds to the negatively charged phospholipid surfaces of activated platelets primarily through the 3E6 epitope region. In contrast, the G99 face, which contains residue 2227, should be distal to the membrane surface. Phospholipid binding assays indicate that both porcine and human factor VIII C2 domains bind with comparable affinities, and the human K2227A and K2227E mutants bind to phospholipid surfaces with similar affinities as well. Lastly, the G99 IgG bound to PS-immobilized factor VIII C2 domain with an apparent dissociation constant of 15.5 nM, whereas 3E6 antibody binding to PS-bound C2 domain was not observed.


Subject(s)
Antibodies/chemistry , Factor VIII/chemistry , Animals , Crystallography, X-Ray , Humans , Protein Structure, Quaternary , Protein Structure, Tertiary , Swine
6.
Blood ; 122(26): 4270-8, 2013 Dec 19.
Article in English | MEDLINE | ID: mdl-24085769

ABSTRACT

The factor VIII C2 domain is a highly immunogenic domain, whereby inhibitory antibodies develop following factor VIII replacement therapy for congenital hemophilia A patients. Inhibitory antibodies also arise spontaneously in cases of acquired hemophilia A. The structural basis for molecular recognition by 2 classes of anti-C2 inhibitory antibodies that bind to factor VIII simultaneously was investigated by x-ray crystallography. The C2 domain/3E6 FAB/G99 FAB ternary complex illustrates that each antibody recognizes epitopes on opposing faces of the factor VIII C2 domain. The 3E6 epitope forms direct contacts to the C2 domain at 2 loops consisting of Glu2181-Ala2188 and Thr2202-Arg2215, whereas the G99 epitope centers on Lys2227 and also makes direct contacts with loops Gln2222-Trp2229, Leu2261-Ser2263, His2269-Val2282, and Arg2307-Gln2311. Each binding interface is highly electrostatic, with positive charge present on both C2 epitopes and complementary negative charge on each antibody. A new model of membrane association is also presented, where the 3E6 epitope faces the negatively charged membrane surface and Arg2320 is poised at the center of the binding interface. These results illustrate the potential complexities of the polyclonal anti-factor VIII immune response and further define the "classical" and "nonclassical" types of antibody inhibitors against the factor VIII C2 domain.


Subject(s)
Antibodies/chemistry , Epitopes/chemistry , Factor VIII/chemistry , Hemophilia A/blood , Ternary Complex Factors/chemistry , Antibodies/immunology , Crystallography, X-Ray , Electrochemistry , Epitopes/immunology , Factor VIII/immunology , Hemophilia A/immunology , Humans , Protein Structure, Quaternary , Protein Structure, Tertiary , Ternary Complex Factors/immunology
7.
J Biol Chem ; 288(14): 9905-9914, 2013 Apr 05.
Article in English | MEDLINE | ID: mdl-23417672

ABSTRACT

The most significant complication for patients with severe cases of congenital or acquired hemophilia A is the development of inhibitor antibodies against coagulation factor VIII (fVIII). The C2 domain of fVIII is a significant antigenic target of anti-fVIII antibodies. Here, we have utilized small angle x-ray scattering (SAXS) and biochemical techniques to characterize interactions between two different classes of anti-C2 domain inhibitor antibodies and the isolated C2 domain. Multiple assays indicated that antibodies 3E6 and G99 bind independently to the fVIII C2 domain and can form a stable ternary complex. SAXS-derived numerical estimates of dimensional parameters for all studied complexes agree with the proportions of the constituent proteins. Ab initio modeling of the SAXS data results in a long kinked structure of the ternary complex, showing an angle centered at the C2 domain of ∼130°. Guided by biochemical data, rigid body modeling of subunits into the molecular envelope of the ternary complex suggests that antibody 3E6 recognizes a C2 domain epitope consisting of the Arg(2209)-Ser(2216) and Leu(2178)-Asp(2187) loops. In contrast, antibody G99 recognizes the C2 domain primarily through the Pro(2221)-Trp(2229) loop. These two epitopes are on opposing sides of the fVIII C2 domain, are consistent with the solvent accessibility in the context of the entire fVIII molecule, and provide further structural detail regarding the pathogenic immune response to fVIII.


Subject(s)
Factor VIII/chemistry , Blood Coagulation Factors/chemistry , Chromatography/methods , Enzyme-Linked Immunosorbent Assay/methods , Epitopes/chemistry , Factor VIII/metabolism , Hemophilia A/immunology , Humans , Immunoglobulin Fab Fragments/chemistry , Mutation , Protein Binding , Protein Conformation , Protein Structure, Tertiary , Scattering, Small Angle , Solvents/chemistry
8.
Nucleic Acids Res ; 40(1): 360-70, 2012 Jan.
Article in English | MEDLINE | ID: mdl-21908407

ABSTRACT

Thiostrepton, a macrocyclic thiopeptide antibiotic, inhibits prokaryotic translation by interfering with the function of elongation factor G (EF-G). Here, we have used 70S ribosome binding and GTP hydrolysis assays to study the effects of thiostrepton on EF-G and a newly described translation factor, elongation factor 4 (EF4). In the presence of thiostrepton, ribosome-dependent GTP hydrolysis is inhibited for both EF-G and EF4, with IC(50) values equivalent to the 70S ribosome concentration (0.15 µM). Further studies indicate the mode of thiostrepton inhibition is to abrogate the stable binding of EF-G and EF4 to the 70S ribosome. In support of this model, an EF-G truncation variant that does not possess domains IV and V was shown to possess ribosome-dependent GTP hydrolysis activity that was not affected by the presence of thiostrepton (>100 µM). Lastly, chemical footprinting was employed to examine the nature of ribosome interaction and tRNA movements associated with EF4. In the presence of non-hydrolyzable GTP, EF4 showed chemical protections similar to EF-G and stabilized a ratcheted state of the 70S ribosome. These data support the model that thiostrepton inhibits stable GTPase binding to 70S ribosomal complexes, and a model for the first step of EF4-catalyzed reverse-translocation is presented.


Subject(s)
Anti-Bacterial Agents/pharmacology , Escherichia coli Proteins/antagonists & inhibitors , Peptide Elongation Factor G/antagonists & inhibitors , Protein Synthesis Inhibitors/pharmacology , Ribosomes/drug effects , Thiostrepton/pharmacology , Transcriptional Elongation Factors/antagonists & inhibitors , Enzyme Activation , Enzyme Inhibitors/pharmacology , Escherichia coli Proteins/genetics , Escherichia coli Proteins/metabolism , Guanosine Triphosphate/analogs & derivatives , Guanosine Triphosphate/metabolism , Mutation , Peptide Elongation Factor G/metabolism , Peptide Initiation Factors , RNA, Ribosomal, 23S/chemistry , RNA, Ribosomal, 23S/metabolism , Ribosomes/metabolism , Transcriptional Elongation Factors/genetics , Transcriptional Elongation Factors/metabolism
9.
Biochem Mol Biol Educ ; 38(1): 17-22, 2010 Jan.
Article in English | MEDLINE | ID: mdl-21567785

ABSTRACT

New approaches are currently being developed to expose biochemistry and molecular biology undergraduates to a more interactive learning environment. Here, we propose a unique project-based laboratory module, which incorporates exposure to biophysical chemistry approaches to address problems in protein chemistry. Each of the experiments described herein contributes to the stepwise process of isolating, identifying, and analyzing a protein involved in a central biological process, prokaryotic translation. Students are provided with expression plasmids that harbor an unknown translation factor, and it is their charge to complete a series of experiments that will allow them to develop hypotheses for discovering the identity of their unknown (from a list of potential candidates). Subsequent to the identification of their unknown translation factor, a series of protein unfolding exercises are performed employing circular dichroism and fluorescence spectroscopies, allowing students to directly calculate thermodynamic parameters centered around determining the equilibrium constant for unfolding as a function of denaturant (temperature or chemical). The conclusion of this multi-part laboratory exercise consists of both oral and written presentations, emphasizing synthesis of the roles of each translation factor during the stepwise process of translation.

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