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1.
J Biol Chem ; 296: 100447, 2021.
Article in English | MEDLINE | ID: mdl-33617878

ABSTRACT

The fibronectin type III (FN3) monobody domain is a promising non-antibody scaffold, which features a less complex architecture than an antibody while maintaining analogous binding loops. We previously developed FN3Con, a hyperstable monobody derivative with diagnostic and therapeutic potential. Prestabilization of the scaffold mitigates the stability-function trade-off commonly associated with evolving a protein domain toward biological activity. Here, we aimed to examine if the FN3Con monobody could take on antibody-like binding to therapeutic targets, while retaining its extreme stability. We targeted the first of the Adnectin derivative of monobodies to reach clinical trials, which was engineered by directed evolution for binding to the therapeutic target VEGFR2; however, this function was gained at the expense of large losses in thermostability and increased oligomerization. In order to mitigate these losses, we grafted the binding loops from Adnectin-anti-VEGFR2 (CT-322) onto the prestabilized FN3Con scaffold to produce a domain that successfully bound with high affinity to the therapeutic target VEGFR2. This FN3Con-anti-VEGFR2 construct also maintains high thermostability, including remarkable long-term stability, retaining binding activity after 2 years of storage at 36 °C. Further investigations into buffer excipients doubled the presence of monomeric monobody in accelerated stability trials. These data suggest that loop grafting onto a prestabilized scaffold is a viable strategy for the development of monobody domains with desirable biophysical characteristics and that FN3Con is therefore well-suited to applications such as the evolution of multiple paratopes or shelf-stable diagnostics and therapeutics.


Subject(s)
Antibodies/metabolism , Fibronectin Type III Domain/genetics , Antibodies/immunology , Fibronectin Type III Domain/immunology , Fibronectins/genetics , Fibronectins/immunology , Fibronectins/metabolism , Genetic Engineering/methods , Humans , Matrix Attachment Regions , Mutation , Peptide Fragments/genetics , Peptide Fragments/immunology , Peptide Fragments/metabolism , Protein Binding/genetics , Protein Binding/immunology , Vascular Endothelial Growth Factor Receptor-2/immunology , Vascular Endothelial Growth Factor Receptor-2/metabolism
2.
Biochemistry ; 58(21): 2524-2533, 2019 05 28.
Article in English | MEDLINE | ID: mdl-31058493

ABSTRACT

Sunflower trypsin inhibitor (SFTI-1) is a 14 amino acid serine protease inhibitor. The dual antiparallel ß-sheet arrangement of SFTI-1 is stabilized by an N-terminal-C-terminal backbone cyclization and a further disulfide bridge to form a final bicyclic structure. This constrained structure is further rigidified by an extensive network of internal hydrogen bonds. Thus, the structure of SFTI-1 in solution resembles the protease-bound structure, reducing the entropic penalty upon protease binding. When cleaved at the scissile bond, it is thought that the rigidifying features of SFTI-1 maintain its structure, allowing the scissile bond to be reformed. The lack of structural plasticity for SFTI-1 is proposed to favor initial protease binding and continued occupancy in the protease active site, resulting in an equilibrium between the cleaved and uncleaved inhibitor in the presence of a protease. We have determined, at 1.15 Å resolution, the X-ray crystal structures of complexes between human kallikrein-related peptidase 4 (KLK4) and SFTI-FCQR(Asn14) and between KLK4 and an acyclic form of the same inhibitor, SFTI-FCQR(Asn14)[1,14], with the latter displaying a cleaved scissile bond. Structural analysis and MD simulations together reveal the roles of the altered contact sequence, intramolecular hydrogen bonding network, and backbone cyclization in altering the state of SFTI's scissile bond ligation at the protease active site. Taken together, the data presented reveal insights into the role of dynamics in the standard-mechanism inhibition and suggest that modifications on the non-contact strand may be a useful, underexplored approach for generating further potent or selective SFTI-based inhibitors against members of the serine protease family.


Subject(s)
Kallikreins/chemistry , Peptides, Cyclic/chemistry , Plant Proteins/chemistry , Serine Proteinase Inhibitors/chemistry , Animals , Catalytic Domain , Crystallography, X-Ray , Cyclization , Escherichia coli/metabolism , Humans , Hydrogen Bonding , Kallikreins/antagonists & inhibitors , Kallikreins/metabolism , Models, Molecular , Molecular Dynamics Simulation , Peptides, Cyclic/metabolism , Peptides, Cyclic/pharmacology , Plant Proteins/pharmacology , Protein Binding , Protein Conformation, beta-Strand , Serine Proteinase Inhibitors/pharmacology , Spodoptera/cytology , Spodoptera/metabolism , Transfection
3.
Horm Metab Res ; 50(12): 908-921, 2018 Dec.
Article in English | MEDLINE | ID: mdl-30360003

ABSTRACT

Human thyroid peroxidase (TPO), is an important enzyme responsible for the biosynthesis of thyroid hormones and is a major autoantigen in autoimmune thyroid diseases (AITDs) such as the destructive Hashimoto's thyroiditis. Although the structure of TPO has yet to be determined, its extracellular domain consists of three regions that exhibit a high degree of sequence similarity to domains of known three-dimensional structure: the myeloperoxidase (MPO)-like domain, complement control protein (CCP)-like domain, and epidermal growth factor (EGF)-like domain. Homology models of TPO can therefore be constructed, providing some structural context to its known function, as well as facilitating the mapping of regions that are responsible for its autoantigenicity. In this review, we highlight recent progress in this area, in particular how a molecular modelling approach has advanced the visualisation and interpretation of epitope mapping studies for TPO, facilitating the dissection of the interplay between TPO protein structure, function, and autoantigenticity.


Subject(s)
Autoantigens/chemistry , Autoantigens/metabolism , Hashimoto Disease/enzymology , Hashimoto Disease/immunology , Iodide Peroxidase/chemistry , Iodide Peroxidase/metabolism , Amino Acid Sequence , Animals , Epitopes/metabolism , Humans , Protein Engineering , Structural Homology, Protein
4.
Angew Chem Int Ed Engl ; 57(52): 17130-17134, 2018 12 21.
Article in English | MEDLINE | ID: mdl-30370963

ABSTRACT

Homochiral metal-organic frameworks (MOFs) have gained much attention because of their chiral properties and disposition for chiral separation. However, the fabrication of high-quality homochiral MOF membranes remains challenging because of the difficulty in controlling growth of MOF membranes with chiral functionalities. A homochiral zeolitic imidazolate framework-8 (ZIF-8) membrane is reported for efficient chiral separation. The membrane is synthesized by incorporating a natural amino acid, l-histidine (l-His), into the framework of ZIF-8. The homochiral l-His-ZIF-8 membrane exhibits a good selectivity for the R-enantiomer of 1-phenylethanol over the S-enantiomer, showing a high enantiomeric excess value up to 76 %.

5.
Proc Natl Acad Sci U S A ; 111(25): E2524-9, 2014 Jun 24.
Article in English | MEDLINE | ID: mdl-24927554

ABSTRACT

The human neuroendocrine enzyme glutamate decarboxylase (GAD) catalyses the synthesis of the inhibitory neurotransmitter gamma-aminobutyric acid (GABA) using pyridoxal 5'-phosphate as a cofactor. GAD exists as two isoforms named according to their respective molecular weights: GAD65 and GAD67. Although cytosolic GAD67 is typically saturated with the cofactor (holoGAD67) and constitutively active to produce basal levels of GABA, the membrane-associated GAD65 exists mainly as the inactive apo form. GAD65, but not GAD67, is a prevalent autoantigen, with autoantibodies to GAD65 being detected at high frequency in patients with autoimmune (type 1) diabetes and certain other autoimmune disorders. The significance of GAD65 autoinactivation into the apo form for regulation of neurotransmitter levels and autoantibody reactivity is not understood. We have used computational and experimental approaches to decipher the nature of the holo → apo conversion in GAD65 and thus, its mechanism of autoinactivation. Molecular dynamics simulations of GAD65 reveal coupling between the C-terminal domain, catalytic loop, and pyridoxal 5'-phosphate-binding domain that drives structural rearrangement, dimer opening, and autoinactivation, consistent with limited proteolysis fragmentation patterns. Together with small-angle X-ray scattering and fluorescence spectroscopy data, our findings are consistent with apoGAD65 existing as an ensemble of conformations. Antibody-binding kinetics suggest a mechanism of mutually induced conformational changes, implicating the flexibility of apoGAD65 in its autoantigenicity. Although conformational diversity may provide a mechanism for cofactor-controlled regulation of neurotransmitter biosynthesis, it may also come at a cost of insufficient development of immune self-tolerance that favors the production of GAD65 autoantibodies.


Subject(s)
Autoimmunity , Glutamate Decarboxylase , Homeostasis/immunology , Molecular Dynamics Simulation , Neurotransmitter Agents , gamma-Aminobutyric Acid , Autoantibodies/immunology , Diabetes Mellitus, Type 1/immunology , Glutamate Decarboxylase/chemistry , Glutamate Decarboxylase/genetics , Glutamate Decarboxylase/immunology , Humans , Neurotransmitter Agents/chemistry , Neurotransmitter Agents/genetics , Neurotransmitter Agents/immunology , Protein Multimerization , Structure-Activity Relationship , gamma-Aminobutyric Acid/chemistry , gamma-Aminobutyric Acid/genetics , gamma-Aminobutyric Acid/immunology
6.
Infect Immun ; 81(10): 3872-9, 2013 Oct.
Article in English | MEDLINE | ID: mdl-23918777

ABSTRACT

Leptospirosis is a worldwide zoonosis caused by spirochetes of the genus Leptospira. While understanding of pathogenesis remains limited, the development of mutagenesis in Leptospira has provided a powerful tool for identifying novel virulence factors. LruA is a lipoprotein that has been implicated in leptospiral uveitis as a target of the immune response. In this study, two lruA mutants, M754 and M765, generated by transposon mutagenesis from Leptospira interrogans serovar Manilae, were characterized. In M754, the transposon inserted in the middle of lruA, resulting in no detectable expression of LruA. In M765, the transposon inserted toward the 3' end of the gene, resulting in expression of a truncated protein. LruA was demonstrated to be on the cell surface in M765 and the wild type (WT). M754, but not M765, was attenuated in a hamster model of acute infection. A search for differential binding to human serum proteins identified a serum protein of around 30 kDa bound to the wild type and the LruA deletion mutant (M754), but not to the LruA truncation mutant (M765). Two-dimensional separation of proteins from leptospiral cells incubated with guinea pig serum identified the 28-kDa apolipoprotein A-I (ApoA-I) as a major mammalian serum protein that binds Leptospira in vitro. Interestingly, M754 (with no detectable LruA) bound more ApoA-I than did the LruA-expressing strains Manilae wild type and M765. Our data thus identify LruA as a surface-exposed leptospiral virulence factor that contributes to leptospiral pathogenesis, possibly by modulating cellular interactions with serum protein ApoA-I.


Subject(s)
Apolipoprotein A-I/metabolism , Leptospira/metabolism , Leptospira/pathogenicity , Leptospirosis/microbiology , Animals , Bacterial Proteins , Chick Embryo , Cricetinae , Genome, Bacterial , Guinea Pigs , Mutation , Protein Binding , Virulence
7.
J Infect Dis ; 203(6): 870-9, 2011 Mar 15.
Article in English | MEDLINE | ID: mdl-21220775

ABSTRACT

BACKGROUND: Leptospira species cause leptospirosis, a zoonotic disease found worldwide. Current vaccines against leptospirosis provide protection only against closely related serovars. METHODS: We evaluated an attenuated transposon mutant of Leptospira interrogans serovar Manilae (M1352, defective in lipopolysaccharide biosynthesis) as a live vaccine against leptospirosis. Hamsters received a single dose of vaccine and were challenged with the homologous serovar (Manilae) and a serologically unrelated heterologous serovar (Pomona). Comparisons were made with killed vaccines. Potential cross-protective antigens against leptospirosis were investigated. RESULTS: Live M1352 vaccine induced superior protection in hamsters against homologous challenge. The live vaccine also stimulated cross-protection against heterologous challenge, with 100% survival (live M1352) versus 40% survival (killed vaccine). Hamsters receiving either vaccine responded to the dominant membrane proteins LipL32 and LipL41. Hamsters receiving the live vaccine additionally recognized LA3961/OmpL36 (unknown function), Loa22 (OmpA family protein, recognized virulence factor), LA2372 (general secretory protein G), and LA1939 (hypothetical protein). Manilae LigA was recognized by M1352 vaccinates, whereas LipL36 was detected in Pomona. CONCLUSION: This study demonstrated that a live, attenuated vaccine can stimulate cross-protective immunity to L. interrogans and has identified antigens that potentially confer cross-protection against leptospirosis.


Subject(s)
Bacterial Vaccines/immunology , Leptospira interrogans/immunology , Leptospirosis/prevention & control , Animals , Antibodies, Bacterial/biosynthesis , Antibodies, Bacterial/blood , Antigens, Bacterial/immunology , Cricetinae , Cross Reactions , Cytokines/biosynthesis , Cytokines/blood , Cytokines/genetics , Electrophoresis, Gel, Two-Dimensional , Gene Expression , Leptospira interrogans/genetics , Mesocricetus , Mutation , Vaccines, Attenuated/immunology
8.
Endocrinology ; 161(2)2020 02 01.
Article in English | MEDLINE | ID: mdl-32022847

ABSTRACT

Thyroid peroxidase (TPO) is a critical membrane-bound enzyme involved in the biosynthesis of multiple thyroid hormones, and is a major autoantigen in autoimmune thyroid diseases such as destructive (Hashimoto) thyroiditis. Here we report the biophysical and structural characterization of a novel TPO construct containing only the ectodomain of TPO and lacking the propeptide. The construct was enzymatically active and able to bind the patient-derived TR1.9 autoantibody. Analytical ultracentrifugation data suggest that TPO can exist as both a monomer and a dimer. Combined with negative stain electron microscopy and molecular dynamics simulations, these data show that the TR1.9 autoantibody preferentially binds the TPO monomer, revealing conformational changes that bring together previously disparate residues into a continuous epitope. In addition to providing plausible structural models of a TPO-autoantibody complex, this study provides validated TPO constructs that will facilitate further characterization, and advances our understanding of the structural, functional, and antigenic characteristics of TPO, an autoantigen implicated in some of the most common autoimmune diseases.


Subject(s)
Autoantibodies/metabolism , Iodide Peroxidase/metabolism , Thyroiditis, Autoimmune/enzymology , Dimerization , HEK293 Cells , Humans , Iodide Peroxidase/chemistry , Iodide Peroxidase/isolation & purification , Iodide Peroxidase/ultrastructure , Protein Multimerization , Protein Structure, Quaternary
9.
Infect Immun ; 77(3): 952-8, 2009 Mar.
Article in English | MEDLINE | ID: mdl-19103763

ABSTRACT

Leptospira interrogans is responsible for leptospirosis, a zoonosis of worldwide distribution. LipL32 is the major outer membrane protein of pathogenic leptospires, accounting for up to 75% of total outer membrane protein. In recent times LipL32 has become the focus of intense study because of its surface location, dominance in the host immune response, and conservation among pathogenic species. In this study, an lipL32 mutant was constructed in L. interrogans using transposon mutagenesis. The lipL32 mutant had normal morphology and growth rate compared to the wild type and was equally adherent to extracellular matrix. Protein composition of the cell membranes was found to be largely unaffected by the loss of LipL32, with no obvious compensatory increase in other proteins. Microarray studies found no obvious stress response or upregulation of genes that may compensate for the loss of LipL32 but did suggest an association between LipL32 and the synthesis of heme and vitamin B(12). When hamsters were inoculated by systemic and mucosal routes, the mutant caused acute severe disease manifestations that were indistinguishable from wild-type L. interrogans infection. In the rat model of chronic infection, the LipL32 mutant colonized the renal tubules as efficiently as the wild-type strain. In conclusion, this study showed that LipL32 does not play a role in either the acute or chronic models of infection. Considering the abundance and conservation of LipL32 among all pathogenic Leptospira spp. and its absence in saprophytic Leptospira, this finding is remarkable. The role of this protein in leptospiral biology and pathogenesis thus remains elusive.


Subject(s)
Bacterial Outer Membrane Proteins/metabolism , Leptospira interrogans/pathogenicity , Leptospirosis/metabolism , Lipoproteins/metabolism , Animals , Bacterial Outer Membrane Proteins/genetics , Blotting, Western , Cricetinae , Leptospira interrogans/genetics , Leptospira interrogans/metabolism , Leptospirosis/genetics , Leptospirosis/pathology , Lipoproteins/genetics , Mesocricetus , Oligonucleotide Array Sequence Analysis , Polymerase Chain Reaction , Rats , Rats, Wistar
10.
Acta Crystallogr F Struct Biol Commun ; 75(Pt 8): 543-546, 2019 Aug 01.
Article in English | MEDLINE | ID: mdl-31397325

ABSTRACT

Kallikrein 4 (KLK4) is a serine protease that is predominantly expressed in the prostate and is overexpressed in prostate cancer. As such, it has gained attention as an attractive target for prostate cancer therapeutics. Currently, only liganded structures of KLK4 exist in the Protein Data Bank. Until now, inferences about the subtle structural changes in KLK4 upon ligand binding have been made by comparison to other liganded forms, rather than to an apo form. In this study, an inhibitor-free form of KLK4 was crystallized. The crystals obtained belonged to space group P1, contained four molecules in the asymmetric unit and diffracted to 1.64 Šresolution. Interestingly, a nonstandard rotamer of the specificity-determining residue Asp189 was observed in all chains. This model will provide a useful unliganded structure for the future structure-guided design of KLK4 inhibitors.


Subject(s)
Crystallography, X-Ray/methods , Kallikreins/chemistry , Kallikreins/metabolism , Humans , Models, Molecular , Protein Conformation , Substrate Specificity
11.
Sci Rep ; 9(1): 3870, 2019 03 07.
Article in English | MEDLINE | ID: mdl-30846766

ABSTRACT

Serine proteinase inhibitors (serpins), typically fold to a metastable native state and undergo a major conformational change in order to inhibit target proteases. However, conformational lability of the native serpin fold renders them susceptible to misfolding and aggregation, and underlies misfolding diseases such as α1-antitrypsin deficiency. Serpin specificity towards its protease target is dictated by its flexible and solvent exposed reactive centre loop (RCL), which forms the initial interaction with the target protease during inhibition. Previous studies have attempted to alter the specificity by mutating the RCL to that of a target serpin, but the rules governing specificity are not understood well enough yet to enable specificity to be engineered at will. In this paper, we use conserpin, a synthetic, thermostable serpin, as a model protein with which to investigate the determinants of serpin specificity by engineering its RCL. Replacing the RCL sequence with that from α1-antitrypsin fails to restore specificity against trypsin or human neutrophil elastase. Structural determination of the RCL-engineered conserpin and molecular dynamics simulations indicate that, although the RCL sequence may partially dictate specificity, local electrostatics and RCL dynamics may dictate the rate of insertion during protease inhibition, and thus whether it behaves as an inhibitor or a substrate. Engineering serpin specificity is therefore substantially more complex than solely manipulating the RCL sequence, and will require a more thorough understanding of how conformational dynamics achieves the delicate balance between stability, folding and function required by the exquisite serpin mechanism of action.


Subject(s)
Serpins/metabolism , Amino Acid Sequence , Escherichia coli , Humans , Leukocyte Elastase/metabolism , Molecular Dynamics Simulation , Peptide Hydrolases/chemistry , Peptide Hydrolases/metabolism , Protein Binding , Protein Conformation , Protein Engineering , Protein Folding , Serpins/chemistry , Serpins/genetics , Static Electricity , Trypsin/metabolism
12.
PLoS One ; 14(1): e0210842, 2019.
Article in English | MEDLINE | ID: mdl-30668585

ABSTRACT

Engagement of an extended ß-sheet is a common substrate/inhibitor interaction at the active site of serine proteases and is an important feature of Laskowski mechanism inhibitors that present a substrate-like loop to a target protease. This loop is cleaved but subsequently relegated forming a stable inhibitor/protease complex. Laskowski inhibitors are ubiquitous in nature and are used extensively in serine protease inhibitor design. However, most studies concentrate on introducing new sidechain interactions rather than the direct contributions of the substrate-like ß-sheet to enzyme inhibition. Here we report the crystal structure of an simplified ß-sheet inhibitory motif within the Sunflower Trypsin Inhibitor (SFTI) in complex with trypsin. We show that the intramolecular hydrogen bond network of this SFTI variant (SFTI-TCTR) engages the inhibitor sidechains that would normally interact with a target protease, giving mainchain interactions a more prominent role in complex formation. Despite having reduced sidechain interactions, this SFTI variant is remarkably potent and inhibits a diverse range of serine proteases. Crystal structural analysis and molecular modelling of SFTI-TCTR complexes again indicates an interface dominated by ß-sheet interactions, highlighting the importance of this motif and the adaptability of SFTI as a scaffold for inhibitor design.


Subject(s)
Serine Proteinase Inhibitors/chemistry , Serine Proteinase Inhibitors/pharmacology , Trypsin/chemistry , Amino Acid Motifs , Animals , Cattle , Crystallography, X-Ray , Helianthus/chemistry , Hydrogen Bonding , Models, Molecular , Molecular Dynamics Simulation , Peptides, Cyclic/chemistry , Peptides, Cyclic/pharmacology , Plant Proteins/chemistry , Plant Proteins/pharmacology , Protein Conformation, beta-Strand , Protein Interaction Domains and Motifs , Static Electricity , Trypsin Inhibitors/chemistry , Trypsin Inhibitors/pharmacology
13.
Infect Immun ; 76(5): 2063-9, 2008 May.
Article in English | MEDLINE | ID: mdl-18285490

ABSTRACT

LipL32 is the major outer membrane protein in pathogenic Leptospira. It is highly conserved throughout pathogenic species and is expressed in vivo during human infection. While these data suggest a role in pathogenesis, a function for LipL32 has not been defined. Outer membrane proteins of gram-negative bacteria are the first line of molecular interaction with the host, and many have been shown to bind host extracellular matrix (ECM). A search for leptospiral ECM-interacting proteins identified the major outer membrane protein, LipL32. To verify this finding, recombinant LipL32 was expressed in Escherichia coli and was found to bind Matrigel ECM and individual components of ECM, including laminin, collagen I, and collagen V. Likewise, an orthologous protein found in the genome of Pseudoalteromonas tunicata strain D2 was expressed and found to be functionally similar and immunologically cross-reactive. Lastly, binding activity was mapped to the C-terminal 72 amino acids. These studies show that LipL32 and an orthologous protein in P. tunicata are immunologically cross-reactive and function as ECM-interacting proteins via a conserved C-terminal region.


Subject(s)
Bacterial Outer Membrane Proteins/metabolism , Extracellular Matrix/metabolism , Extracellular Matrix/microbiology , Leptospira/metabolism , Lipoproteins/metabolism , Pseudoalteromonas/metabolism , Amino Acid Sequence , Bacterial Outer Membrane Proteins/immunology , Collagen/metabolism , Collagen Type I/metabolism , Collagen Type V/metabolism , Cross Reactions , Drug Combinations , Escherichia coli/genetics , Humans , Laminin/metabolism , Lipoproteins/immunology , Molecular Sequence Data , Protein Binding , Protein Interaction Mapping , Proteoglycans/metabolism , Recombinant Proteins/genetics , Recombinant Proteins/metabolism , Sequence Alignment
14.
Protein Eng Des Sel ; 29(11): 541-550, 2016 Nov 01.
Article in English | MEDLINE | ID: mdl-27578887

ABSTRACT

The favorable biophysical attributes of non-antibody scaffolds make them attractive alternatives to monoclonal antibodies. However, due to the well-known stability-function trade-off, these gains tend to be marginal after functional selection. A notable example is the fibronectin Type III (FN3) domain, FNfn10, which has been previously evolved to bind lysozyme with 1 pM affinity (FNfn10-α-lys), but suffers from poor thermodynamic and kinetic stability. To explore this stability-function compromise further, we grafted the lysozyme-binding loops from FNfn10-α-lys onto our previously engineered, ultra-stable FN3 scaffold, FN3con. The resulting variant (FN3con-α-lys) bound lysozyme with a markedly reduced affinity, but retained high levels of thermal stability. The crystal structure of FNfn10-α-lys in complex with lysozyme revealed unanticipated interactions at the protein-protein interface involving framework residues of FNfn10-α-lys, thus explaining the failure to transfer binding via loop grafting. Utilizing this structural information, we redesigned FN3con-α-lys and restored picomolar binding affinity to lysozyme, while maintaining thermodynamic stability (with a thermal melting temperature 2-fold higher than that of FNfn10-α-lys). FN3con therefore provides an exceptional window of stability to tolerate deleterious mutations, resulting in a substantial advantage for functional design. This study emphasizes the utility of consensus design for the generation of highly stable scaffolds for downstream protein engineering studies.

15.
Sci Rep ; 6: 35385, 2016 10 21.
Article in English | MEDLINE | ID: mdl-27767076

ABSTRACT

The kallikrein-related peptidase (KLK) family of proteases is involved in many aspects of human health and disease. One member of this family, KLK4, has been implicated in cancer development and metastasis. Understanding mechanisms of inactivation are critical to developing selective KLK4 inhibitors. We have determined the X-ray crystal structures of KLK4 in complex with both sunflower trypsin inhibitor-1 (SFTI-1) and a rationally designed SFTI-1 derivative to atomic (~1 Å) resolution, as well as with bound nickel. These structures offer a structural rationalization for the potency and selectivity of these inhibitors, and together with MD simulation and computational analysis, reveal a dynamic pathway between the metal binding exosite and the active site, providing key details of a previously proposed allosteric mode of inhibition. Collectively, this work provides insight into both direct and indirect mechanisms of inhibition for KLK4 that have broad implications for the enzymology of the serine protease superfamily, and may potentially be exploited for the design of therapeutic inhibitors.


Subject(s)
Kallikreins/antagonists & inhibitors , Binding Sites , Catalytic Domain , Crystallography, X-Ray , Gene Expression Regulation , Helianthus , Humans , Hydrogen Bonding , Metals/chemistry , Molecular Dynamics Simulation , Nickel/chemistry , Peptides, Cyclic/chemistry , Protein Binding , Protein Conformation , Protein Folding , Serine Proteases/chemistry , Trypsin/chemistry
16.
Sci Rep ; 6: 33958, 2016 Sep 26.
Article in English | MEDLINE | ID: mdl-27667094

ABSTRACT

The rugged folding landscapes of functional proteins puts them at risk of misfolding and aggregation. Serine protease inhibitors, or serpins, are paradigms for this delicate balance between function and misfolding. Serpins exist in a metastable state that undergoes a major conformational change in order to inhibit proteases. However, conformational labiality of the native serpin fold renders them susceptible to misfolding, which underlies misfolding diseases such as α1-antitrypsin deficiency. To investigate how serpins balance function and folding, we used consensus design to create conserpin, a synthetic serpin that folds reversibly, is functional, thermostable, and polymerization resistant. Characterization of its structure, folding and dynamics suggest that consensus design has remodeled the folding landscape to reconcile competing requirements for stability and function. This approach may offer general benefits for engineering functional proteins that have risky folding landscapes, including the removal of aggregation-prone intermediates, and modifying scaffolds for use as protein therapeutics.

17.
FEBS J ; 272(21): 5544-57, 2005 Nov.
Article in English | MEDLINE | ID: mdl-16262694

ABSTRACT

The gamma-secretase complex mediates the final proteolytic event in Alzheimer's disease amyloid-beta biogenesis. This membrane complex of presenilin, anterior pharynx defective, nicastrin, and presenilin enhancer-2 cleaves the C-terminal 99-amino acid fragment of the amyloid precursor protein intramembranously at gamma-sites to form C-terminally heterogeneous amyloid-beta and cleaves at an epsilon-site to release the intracellular domain or epsilon-C-terminal fragment. In this work, two novel in vitro gamma-secretase assays are developed to further explore the biochemical characteristics of gamma-secretase activity. During development of a bacterial expression system for a substrate based on the amyloid precursor protein C-terminal 99-amino acid sequence, fragments similar to amyloid-beta and an epsilon-C-terminal fragment were observed. Upon purification this substrate was used in parallel with a transfected source of substrate to measure gamma-secretase activity from detergent extracted membranes. With these systems, it was determined that recovery of size-fractionated cellular and tissue-derived gamma-secretase activity is dependent upon detergent concentration and that activity correlates to a subset of high molecular mass presenilin complexes. We also show that by changing the solvent environment with dimethyl sulfoxide, detection of epsilon-C-terminal fragments can be elevated. Lastly, we show that zinc causes an increase in the apparent molecular mass of an amyloid precursor protein gamma-secretase substrate and inhibits its cleavage. These studies further refine our knowledge of the complexes and biochemical factors needed for gamma-secretase activity and suggest a mechanism by which zinc dysregulation may contribute to Alzheimer's disease pathogenesis.


Subject(s)
Amyloid beta-Protein Precursor/metabolism , Endopeptidases/metabolism , Membrane Proteins/metabolism , Multiprotein Complexes/metabolism , Protein Processing, Post-Translational/drug effects , Zinc/pharmacology , Amyloid Precursor Protein Secretases , Animals , Brain/metabolism , COS Cells , Cell Membrane/genetics , Cell Membrane/metabolism , Chlorocebus aethiops , Chromatography, Gel , Dimethyl Sulfoxide/pharmacology , Endopeptidases/genetics , Endopeptidases/isolation & purification , Escherichia coli/genetics , Escherichia coli/metabolism , Gene Expression , Guinea Pigs , Membranes/metabolism , Molecular Weight , Protein Binding/drug effects , Substrate Specificity
18.
Protein Eng Des Sel ; 28(3): 67-78, 2015 Mar.
Article in English | MEDLINE | ID: mdl-25691761

ABSTRACT

Consensus protein design is a rapid and reliable technique for the improvement of protein stability, which relies on the use of homologous protein sequences. To enhance the stability of a fibronectin type III (FN3) domain, consensus design was employed using an alignment of 2123 sequences. The resulting FN3 domain, FN3con, has unprecedented stability, with a melting temperature >100°C, a ΔG(D-N) of 15.5 kcal mol(-1) and a greatly reduced unfolding rate compared with wild-type. To determine the underlying molecular basis for stability, an X-ray crystal structure of FN3con was determined to 2.0 Å and compared with other FN3 domains of varying stabilities. The structure of FN3con reveals significantly increased salt bridge interactions that are cooperatively networked, and a highly optimized hydrophobic core. Molecular dynamics simulations of FN3con and comparison structures show the cooperative power of electrostatic and hydrophobic networks in improving FN3con stability. Taken together, our data reveal that FN3con stability does not result from a single mechanism, but rather the combination of several features and the removal of non-conserved, unfavorable interactions. The large number of sequences employed in this study has most likely enhanced the robustness of the consensus design, which is now possible due to the increased sequence availability in the post-genomic era. These studies increase our knowledge of the molecular mechanisms that govern stability and demonstrate the rising potential for enhancing stability via the consensus method.


Subject(s)
Fibronectins/chemistry , Protein Engineering/methods , Crystallography, X-Ray , Humans , Hydrophobic and Hydrophilic Interactions , Models, Molecular , Molecular Dynamics Simulation , Protein Denaturation , Protein Structure, Tertiary , Static Electricity , Temperature , Thermodynamics
19.
PLoS One ; 10(12): e0142615, 2015.
Article in English | MEDLINE | ID: mdl-26623656

ABSTRACT

Thyroid peroxidase (TPO) catalyses the biosynthesis of thyroid hormones and is a major autoantigen in Hashimoto's disease--the most common organ-specific autoimmune disease. Epitope mapping studies have shown that the autoimmune response to TPO is directed mainly at two surface regions on the molecule: immunodominant regions A and B (IDR-A, and IDR-B). TPO has been a major target for structural studies for over 20 years; however, to date, the structure of TPO remains to be determined. We have used a molecular modelling approach to investigate plausible modes of TPO structure and dimer organisation. Sequence features of the C-terminus are consistent with a coiled-coil dimerization motif that most likely anchors the TPO dimer in the apical membrane of thyroid follicular cells. Two contrasting models of TPO were produced, differing in the orientation and exposure of their active sites relative to the membrane. Both models are equally plausible based upon the known enzymatic function of TPO. The "trans" model places IDR-B on the membrane-facing side of the myeloperoxidase (MPO)-like domain, potentially hindering access of autoantibodies, necessitating considerable conformational change, and perhaps even dissociation of the dimer into monomers. IDR-A spans MPO- and CCP-like domains and is relatively fragmented compared to IDR-B, therefore most likely requiring domain rearrangements in order to coalesce into one compact epitope. Less epitope fragmentation and higher solvent accessibility of the "cis" model favours it slightly over the "trans" model. Here, IDR-B clusters towards the surface of the MPO-like domain facing the thyroid follicular lumen preventing steric hindrance of autoantibodies. However, conformational rearrangements may still be necessary to allow full engagement with autoantibodies, with IDR-B on both models being close to the dimer interface. Taken together, the modelling highlights the need to consider the oligomeric state of TPO, its conformational properties, and its proximity to the membrane, when interpreting epitope-mapping data.


Subject(s)
Autoantigens/immunology , Autoantigens/metabolism , Iodide Peroxidase/immunology , Iodide Peroxidase/metabolism , Iron-Binding Proteins/immunology , Iron-Binding Proteins/metabolism , Molecular Dynamics Simulation , Amino Acid Sequence , Autoantigens/chemistry , Cell Membrane/enzymology , Enzyme Stability , Extracellular Space/enzymology , Humans , Iodide Peroxidase/chemistry , Iron-Binding Proteins/chemistry , Molecular Sequence Data , Protein Multimerization , Protein Structure, Quaternary , Protein Structure, Tertiary , Thermodynamics
20.
J Negat Results Biomed ; 2: 1, 2003 Feb 25.
Article in English | MEDLINE | ID: mdl-12659638

ABSTRACT

Despite extensive progress in determining structures within heparin and heparan sulfate (Hp/HS) and the discovery of numerous proteinaceous binding partners for Hp/HS so far; the only detailed characterization of a specific protein-glycosaminoglycan interaction is antithrombin III (ATIII) binding to a Hp pentasaccharide containing a unique 3-O-sulfated glucosamine residue. Previously, it was reported from our laboratories that a 16 amino acid synthetic peptide derived from the C-terminus of human HIP/RPL29 (HIP peptide-1) enriched for ATIII-dependent anticoagulant activity, presumably by specifically binding the ATIII pentasaccharide. Herein, we demonstrate that HIP peptide-1 cannot enrich ATIII-dependent anticoagulant activity from a starting pool of porcine intestinal mucosa Hp through a bio-specific interaction. However, a HIP peptide-1 column can be used to enrich for anticoagulantly active Hp from a diverse pool of glycosaminoglycans known as Hp byproducts by a mechanism of nonspecific charge interactions. Thus, HIP peptide-1 cannot recognize Hp via bio-specific interactions but binds glycosaminoglycans by non-specific charge interactions.


Subject(s)
Anticoagulants/pharmacology , Blood Coagulation Factors/metabolism , Heparin/classification , Animals , Antithrombin III , Binding Sites , Blood Coagulation Factors/chemistry , Blood Coagulation Factors/isolation & purification , Chromatography, Affinity , Chromatography, Ion Exchange , Glycosaminoglycans/metabolism , Heparin/isolation & purification , Heparin/metabolism , Humans , Intestinal Mucosa , Peptide Fragments/chemistry , Peptide Fragments/isolation & purification , Peptide Fragments/metabolism , RNA-Binding Proteins , Ribosomal Proteins , Swine
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