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    Date Issued2006 (1)2004 (1)AuthorStern, Lawrence J. (2)
    Wiley, Don C. (2)
    Bandaranayake, Rajintha M. (1)De Wall, Stephen J. (1)DeDecker, Brian S. (1)View MoreUMass Chan AffiliationDepartment of Pathology (2)Department of Biochemistry and Molecular Pharmacology (1)Graduate School of Biomedical Sciences (1)Document TypeJournal Article (2)KeywordLife Sciences (2)Medicine and Health Sciences (2)Allosteric Site; Animals; Antigen Presentation; Autoimmune Diseases; CD4-Positive T-Lymphocytes; Chromatography, Gel; Cisplatin; Dose-Response Relationship, Drug; Drosophila melanogaster; Enzyme-Linked Immunosorbent Assay; Gold Sodium Thiomalate; Histocompatibility Antigens Class II; Humans; Kinetics; Major Histocompatibility Complex; Models, Statistical; Molecular Conformation; Peptides; Protein Binding; Sodium Hypochlorite; Time Factors (1)Amino Acid Sequence (1)Catalysis (1)View MoreJournalJournal of immunology (Baltimore, Md. : 1950) (1)Nature chemical biology (1)

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    Noble metals strip peptides from class II MHC proteins

    De Wall, Stephen J.; Painter, Corrie A.; Stone, Jennifer D.; Bandaranayake, Rajintha M.; Wiley, Don C.; Mitchison, Timothy J.; Stern, Lawrence J.; DeDecker, Brian S. (2006-03-01)
    Class II major histocompatibility complex (MHC) proteins are essential for normal immune system function but also drive many autoimmune responses. They bind peptide antigens in endosomes and present them on the cell surface for recognition by CD4(+) T cells. A small molecule could potentially block an autoimmune response by disrupting MHC-peptide interactions, but this has proven difficult because peptides bind tightly and dissociate slowly from MHC proteins. Using a high-throughput screening assay we discovered a class of noble metal complexes that strip peptides from human class II MHC proteins by an allosteric mechanism. Biochemical experiments indicate the metal-bound MHC protein adopts a 'peptide-empty' conformation that resembles the transition state of peptide loading. Furthermore, these metal inhibitors block the ability of antigen-presenting cells to activate T cells. This previously unknown allosteric mechanism may help resolve how gold(I) drugs affect the progress of rheumatoid arthritis and may provide a basis for developing a new class of anti-autoimmune drugs.
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    Enhanced catalytic action of HLA-DM on the exchange of peptides lacking backbone hydrogen bonds between their N-terminal region and the MHC class II alpha-chain

    Stratikos, Efstratios; Wiley, Don C.; Stern, Lawrence J. (2004-01-07)
    The class II MHC homolog HLA-DM catalyzes exchange of peptides bound to class II MHC proteins, and is an important component of the Ag presentation machinery. The mechanism of HLA-DM-mediated catalysis is largely obscure. HLA-DM catalyzes exchange of peptides of varying sequence, suggesting that a peptide sequence-independent component of the MHC-peptide interaction could be involved in the catalytic process. Twelve conserved hydrogen bonds between the peptide backbone and the MHC are a prominent sequence-independent feature of the MHC-peptide interaction. To evaluate the relative importance of these hydrogen bonds toward HLA-DM action, we prepared peptide variants that lacked the ability to form one or more of the hydrogen bonds as a result of backbone amide N-methylation or truncation, and tested their ability to be exchanged by HLA-DM. We found that disruption of hydrogen bonds involving HLA-DR1 residues alpha51-53, a short extended segment at the N terminus of the alpha subunit helical region, led to heightened HLA-DM catalytic efficacy. We propose that those bonds are disrupted in the MHC conformation recognized by HLA-DM to allow structural transitions in that area during DM-assisted peptide release. These results suggest that peptides or compounds that bind MHC but cannot form these interactions would be preferentially edited out by HLA-DM.
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