Catalogue Search | MBRL
Search Results Heading
Explore the vast range of titles available.
MBRLSearchResults
-
DisciplineDiscipline
-
Is Peer ReviewedIs Peer Reviewed
-
Item TypeItem Type
-
SubjectSubject
-
YearFrom:-To:
-
More FiltersMore FiltersSourceLanguage
Done
Filters
Reset
55
result(s) for
"Herr, Andrew B."
Sort by:
Structural basis for concerted recruitment and activation of IRF-3 by innate immune adaptor proteins
by
Li, Pingwei
,
Shu, Chang
,
Zhao, Baoyu
in
60 APPLIED LIFE SCIENCES
,
Adaptor Proteins, Signal Transducing - chemistry
,
Adaptor Proteins, Signal Transducing - genetics
2016
Type I IFNs are key cytokines mediating innate antiviral immunity. cGMP-AMP synthase, ritinoic acid-inducible protein 1 (RIG-I)–like receptors, and Toll-like receptors recognize microbial double-stranded (ds)DNA, dsRNA, and LPS to induce the expression of type I IFNs. These signaling pathways converge at the recruitment and activation of the transcription factor IRF-3 (IFN regulatory factor 3). The adaptor proteins STING (stimulator of IFN genes), MAVS (mitochondrial antiviral signaling), and TRIF (TIR domain-containing adaptor inducing IFN-β) mediate the recruitment of IRF-3 through a conserved pLxIS motif. Here we show that the pLxIS motif of phosphorylated STING, MAVS, and TRIF binds to IRF-3 in a similar manner, whereas residues upstream of the motif confer specificity. The structure of the IRF-3 phosphomimetic mutant S386/396E bound to the cAMP response element binding protein (CREB)-binding protein reveals that the pLxIS motif also mediates IRF-3 dimerization and activation. Moreover, rotavirus NSP1 (nonstructural protein 1) employs a pLxIS motif to target IRF-3 for degradation, but phosphorylation of NSP1 is not required for its activity. These results suggest a concerted mechanism for the recruitment and activation of IRF-3 that can be subverted by viral proteins to evade innate immune responses.
Journal Article
Structural basis for Zn²⁺-dependent intercellular adhesion in staphylococcal biofilms
by
Andrew B. Herr
,
Deborah G. Conrady
,
Jeffrey J. Wilson
in
Amino Acid Sequence
,
Amino Acid Substitution
,
antibiotic resistance
2013
Significance Under adverse environmental conditions, bacteria can form specialized antibiotic-resistant colonies called “biofilms.” In Staphylococcus epidermidis biofilms, a protein, Aap, links bacterial cells together but does so only in the presence of zinc ions. We have determined the atomic structure of an adhesive portion of Aap bound to zinc. The protein adopts an elongated, flexible fold with zinc ions bridging two protein chains. The mode of assembly indicates that Aap is likely to form twisted rope-like structures between bacterial cells. These data provide clues about regions of the protein that could be targeted to prevent intercellular adhesion in the developing biofilm.
Journal Article
Modification of cell wall polysaccharide guides cell division in Streptococcus mutans
by
Dorfmueller, Helge C.
,
Ajay Castro, Sowmya
,
Yarawsky, Alexander E.
in
631/326/41
,
631/337/641
,
631/92/221
2021
In ovoid-shaped, Gram-positive bacteria, MapZ guides FtsZ-ring positioning at cell equators. The cell wall of the ovococcus
Streptococcus mutans
contains peptidoglycan decorated with serotype
c
carbohydrates (SCCs). In the present study, we identify the major cell separation autolysin AtlA as an SCC-binding protein. AtlA binding to SCC is attenuated by the glycerol phosphate (GroP) modification. Using fluorescently labeled AtlA constructs, we mapped SCC distribution on the streptococcal surface, revealing enrichment of GroP-deficient immature SCCs at the cell poles and equators. The immature SCCs co-localize with MapZ at the equatorial rings throughout the cell cycle. In GroP-deficient mutants, AtlA is mislocalized, resulting in dysregulated cellular autolysis. These mutants display morphological abnormalities associated with MapZ mislocalization, leading to FtsZ-ring misplacement. Altogether, our data support a model in which maturation of a cell wall polysaccharide provides the molecular cues for the recruitment of cell division machinery, ensuring proper daughter cell separation and FtsZ-ring positioning.
Glycerol phosphate modifications of cell wall carbohydrates localize regulators of cell division in
Streptococcus mutans
.
Journal Article
Enterococcus faecalis autolysin EpaU binds the enterococcal polysaccharide antigen via its teichoic acid-like repeats and modulates c-di-AMP signaling
by
Yarawsky, Alexander E.
,
Huang, Lei
,
Rush, Jeffrey S.
in
Antigens, Bacterial - metabolism
,
autolysin
,
Bacterial Proteins - genetics
2026
Enterococcus faecalis is an important opportunistic pathogen that can cause severe nosocomial infections. Knowledge of how bacteria remodel the cell wall is key to understanding many important cellular processes, such as antibiotic resistance, cell division, biofilm formation, and stress resistance. In this study, we shed new light on the structural details of the main cell wall polysaccharide, enterococcal polysaccharide antigen (EPA), and its interaction with EpaU, an autolysin that cleaves peptidoglycan during cell wall remodeling. We also report a link between EpaU and the regulation of turgor pressure via cyclic dinucleotide signaling. This work contributes to a more complete picture of E. faecalis cell wall and may provide insight into the development of antimicrobial agents based on autolysins.
Journal Article
Shiga Toxin Binding to Glycolipids and Glycans
by
Weiss, Alison A.
,
Gunasekera, Thusitha S.
,
Herr, Andrew B.
in
Antibiotics
,
Binding
,
Biochemistry
2012
Immunologically distinct forms of Shiga toxin (Stx1 and Stx2) display different potencies and disease outcomes, likely due to differences in host cell binding. The glycolipid globotriaosylceramide (Gb3) has been reported to be the receptor for both toxins. While there is considerable data to suggest that Gb3 can bind Stx1, binding of Stx2 to Gb3 is variable.
We used isothermal titration calorimetry (ITC) and enzyme-linked immunosorbent assay (ELISA) to examine binding of Stx1 and Stx2 to various glycans, glycosphingolipids, and glycosphingolipid mixtures in the presence or absence of membrane components, phosphatidylcholine, and cholesterol. We have also assessed the ability of glycolipids mixtures to neutralize Stx-mediated inhibition of protein synthesis in Vero kidney cells.
By ITC, Stx1 bound both Pk (the trisaccharide on Gb3) and P (the tetrasaccharide on globotetraosylceramide, Gb4), while Stx2 did not bind to either glycan. Binding to neutral glycolipids individually and in combination was assessed by ELISA. Stx1 bound to glycolipids Gb3 and Gb4, and Gb3 mixed with other neural glycolipids, while Stx2 only bound to Gb3 mixtures. In the presence of phosphatidylcholine and cholesterol, both Stx1 and Stx2 bound well to Gb3 or Gb4 alone or mixed with other neutral glycolipids. Pre-incubation with Gb3 in the presence of phosphatidylcholine and cholesterol neutralized Stx1, but not Stx2 toxicity to Vero cells.
Stx1 binds primarily to the glycan, but Stx2 binding is influenced by residues in the ceramide portion of Gb3 and the lipid environment. Nanomolar affinities were obtained for both toxins to immobilized glycolipids mixtures, while the effective dose for 50% inhibition (ED(50)) of protein synthesis was about 10(-11) M. The failure of preincubation with Gb3 to protect cells from Stx2 suggests that in addition to glycolipid expression, other cellular components contribute to toxin potency.
Journal Article
A Zinc-Dependent Adhesion Module Is Responsible for Intercellular Adhesion in Staphylococcal Biofilms
by
Weiss, Alison A.
,
Herr, Andrew B.
,
Conrady, Deborah G.
in
Adhesion
,
antibiotic resistance
,
Bacteria
2008
Hospital-acquired bacterial infections are an increasingly important cause of morbidity and mortality worldwide. Staphylococcal species are responsible for the majority of hospital-acquired infections, which are often complicated by the ability of staphylococci to grow as biofilms. Biofilm formation by Staphylococcus epidermidis and Staphylococcus aureus requires cell-surface proteins (Aap and SasG) containing sequence repeats known as G5 domains; however, the precise role of these proteins in biofilm formation is unclear. We show here, using analytical ultracentrifugation (AUC) and circular dichroism (CD), that G5 domains from Aap are zinc (Zn²⁺)-dependent adhesion modules analogous to mammalian cadherin domains. The G5 domain dimerizes in the presence of Zn²⁺, incorporating 2-3 Zn²⁺ ions in the dimer interface. Tandem G5 domains associate in a modular fashion, suggesting a \"zinc zipper\" mechanism for G5 domain-based intercellular adhesion in staphylococcal biofilms. We demonstrate, using a biofilm plate assay, that Zn²⁺ chelation specifically prevents biofilm formation by S. epidermidis and methicillin-resistant S. aureus (MRSA). Furthermore, individual soluble G5 domains inhibit biofilm formation in a dose-dependent manner. Thus, the complex three-dimensional architecture of staphylococcal biofilms results from the self-association of a single type of protein domain. Surface proteins with tandem G5 domains are also found in other bacterial species, suggesting that this mechanism for intercellular adhesion in biofilms may be conserved among staphylococci and other Gram-positive bacteria. Zn²⁺ chelation represents a potential therapeutic approach for combating biofilm growth in a wide range of bacterial biofilm-related infections.
Journal Article
IgG1 protects against renal disease in a mouse model of cryoglobulinaemia
2015
Here, the predominant murine immunoglobulin G subclass, IgG1, which is a poor activator of effector mechanisms, is shown to have a regulatory function, protecting against the development of IgG3 immune-complex-driven renal disease by competing with IgG3 for antigen and increasing immune complex solubility.
A novel role for immunoglobulins
Some immunoglobulin isotypes, such as mouse IgG1 and human IgG4, have little ability to induce effector mechanisms: they don't efficiently activate complement, stimulate immunoglobulin crystallizable fragment receptors (FcRs), or aggregate antigens. So what do they do? Richard Strait
et al
. provide evidence IgG, the predominant murine IgG subclass has regulatory function and protects against the development of IgG3 immune complex driven renal disease by competing with IgG3 for antigen and increasing immune complex solubility. This result suggests that IgG isotypes that poorly activate effector mechanisms may inhibit immune complex immunopathology by other means.
Immunoglobulins protect against disease to a considerable extent by activating complement and stimulatory immunoglobulin crystallizable fragment receptors (Ig FcRs), and aggregating microbial pathogens
1
,
2
. Yet IgG1, the predominant murine serum Ig isotype, cannot activate complement by the classical pathway, binds more avidly to an inhibitory than to stimulatory FcRs, and has limited ability to aggregate pathogens
1
,
2
,
3
. In these regards, it resembles human IgG4 (ref.
4
). We hypothesized that limited ability to activate effector mechanisms might protect against immune complex immunopathology. Here we show that IgG1-deficient (γ1
−
) mice
5
, immunized with a potent antigen, develop lethal renal disease soon after they begin to produce antigen-specific antibody, whereas similarly immunized wild-type mice remain healthy. Surprisingly, renal disease in this model is complement and FcR independent and results from immune complex precipitation in glomerular capillaries, as in some cryoglobulinaemic humans
6
. IgG3, which self-associates to form large immune complexes
7
,
8
, accounts for more than 97% of the mouse Ig in this cryoglobulin; furthermore, glomerular disease develops when mice are injected with IgG3 anti-trinitrophenyl (TNP) monoclonal antibody followed by a TNP-labelled protein. Renal disease is prevented in both active and passive immunization models by antigen-specific IgG1; other isotypes are less potent at preventing disease. These observations demonstrate the adaptive significance of Ig isotypes that poorly activate effector mechanisms, reveal an immune-complex-dependent, complement- and FcR-independent nephrotoxic mechanism, and suggest that isotypes that poorly activate effector mechanisms may be useful for inhibiting immune complex immunopathology.
Journal Article
Structural basis of nucleotide exchange and client binding by the Hsp70 cochaperone Bag2
by
Gomes, Michelle M
,
Kohli, Ekta
,
Patterson, Cam
in
Adaptor Proteins, Signal Transducing
,
Adenosine diphosphate
,
Adenosine Diphosphate - metabolism
2008
Bag2 acts as a nucleotide-exchange factor for Hsp70 and also binds misfolded substrates. Now structural work reveals that Bag2 promotes nucleotide exchange via a mechanism distinct from other Hsp70 nucleotide-exchange factors, and mapping of the binding sites for client peptides suggests how Bag2 assists Hsp70 in processing misfolded proteins.
Cochaperones are essential for Hsp70- and Hsc70-mediated folding of proteins and include nucleotide-exchange factors (NEFs) that assist protein folding by accelerating ADP-ATP exchange on Hsp70. The cochaperone Bag2 binds misfolded Hsp70 clients and also acts as an NEF, but the molecular basis for its function is unclear. We show that, rather than being a member of the Bag domain family, Bag2 contains a new type of Hsp70 NEF domain, which we call the 'brand new bag' (BNB) domain. Free and Hsc70-bound crystal structures of Bag2-BNB show its dimeric structure, in which a flanking linker helix and loop bind to Hsc70 to promote nucleotide exchange. NMR analysis demonstrates that the client binding sites and Hsc70-interaction sites of the Bag2-BNB overlap, and that Hsc70 can displace clients from Bag2-BNB, indicating a distinct mechanism for the regulation of Hsp70-mediated protein folding by Bag2.
Journal Article
Molecular Basis of Differential B-Pentamer Stability of Shiga Toxins 1 and 2
by
Weiss, Alison A.
,
Kovall, Rhett A.
,
Conrady, Deborah G.
in
Acids
,
Amino Acid Sequence
,
Antigens
2010
Escherichia coli strain O157:H7 is a major cause of food poisoning that can result in severe diarrhea and, in some cases, renal failure. The pathogenesis of E. coli O157:H7 is in large part due to the production of Shiga toxin (Stx), an AB(5) toxin that consists of a ribosomal RNA-cleaving A-subunit surrounded by a pentamer of receptor-binding B subunits. There are two major isoforms, Stx1 and Stx2, which differ dramatically in potency despite having 57% sequence identity. Animal studies and epidemiological studies show Stx2 is associated with more severe disease. Although the molecular basis of this difference is unknown, data suggest it is associated with the B-subunit. Mass spectrometry studies have suggested differential B-pentamer stability between Stx1 and Stx2. We have examined the relative stability of the B-pentamers in solution. Analytical ultracentrifugation using purified B-subunits demonstrates that Stx2B, the more deadly isoform, shows decreased pentamer stability compared to Stx1B (EC(50) = 2.3 µM vs. EC(50) = 0.043 µM for Stx1B). X-ray crystal structures of Stx1B and Stx2B identified a glutamine in Stx2 (versus leucine in Stx1) within the otherwise strongly hydrophobic interface between B-subunits. Interchanging these residues switches the stability phenotype of the B-pentamers of Stx1 and Stx2, as demonstrated by analytical ultracentrifugation and circular dichroism. These studies demonstrate a profound difference in stability of the B-pentamers in Stx1 and Stx2, illustrate the mechanistic basis for this differential stability, and provide novel reagents to test the basis for differential pathogenicity of these toxins.
Journal Article