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Devlin, C. A.

Publications and source records attributed to Devlin, C. A..

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TAPBPR Promotes Antigen Loading on MHC-I Molecules Using a Peptide Trap

Chaperones tapasin and TAP-binding protein related (TAPBPR) perform the important functions of stabilizing nascent MHC-I molecules (chaperoning) and selecting high affinity peptides in the MHC-I groove (editing). While X-ray and cryo-EM snapshots of MHC-I in complex with TAPBPR and tapasin, respectively, have provided important insights into the peptide-deficient MHC-I groove structure, the molecular mechanism through which these chaperones influence the selection of specific amino acid sequences remains incompletely characterized. Of particular importance is a 16 residue loop in TAPBPR (corresponding to 11 residues in tapasin), which has been proposed to actively compete with incoming peptides by forming direct contacts in the F-pocket of the empty MHC-I groove. Using a deep mutational scanning functional analysis of TAPBPR, we find that important residues for the chaperoning activity are located on the major interaction surfaces with nascent MHC-I molecules, excluding the loop. However, interactions with properly conformed molecules toward peptide editing are influenced by loop mutations, in an MHC-I allele- and peptide-dependent manner. Detailed biophysical characterization by ITC, FP and NMR reveals that the loop does not interact with the peptide-deficient MHC-I groove to compete with incoming peptides, but instead promotes peptide loading by acting as a kinetic trap. Our results suggest that the longer loop of TAPBPR lowers the affinity threshold for peptide selection, to promote loading within subcellular compartments of reduced peptide concentration and to prevent disassembly of high affinity peptide-MHC-I complexes that are transiently interrogated by TAPBPR during editing.

immunology

Molecular determinants of chaperone interactions on MHC-I for folding and antigen repertoire selection

The interplay between a highly polymorphic set of MHC-I alleles and molecular chaperones shapes the repertoire of peptide antigens displayed on the cell surface for T cell surveillance. Here, we demonstrate that the molecular chaperone TAPBPR associates with a broad range of partially folded MHC-I species inside the cell. Bimolecular fluorescence complementation and deep mutational scanning reveal that TAPBPR recognition is polarized towards one side of the peptide-binding groove, and depends on the formation of a conserved MHC-I disulfide epitope in the 2 domain. Conversely, thermodynamic measurements of TAPBPR binding for a representative set of properly conformed, peptide-loaded molecules suggest a narrower MHC-I specificity range. Using solution NMR, we find that the extent of dynamics at \"hotspot\" surfaces confers TAPBPR recognition of a sparsely populated MHC-I state attained through a global conformational change. Consistently, restriction of MHC-I groove plasticity through the introduction of a disulfide bond between the 1/2 helices abrogates TAPBPR binding, both in solution and on a cellular membrane, while intracellular binding is tolerant of many destabilizing MHC-I substitutions. Our data support parallel TAPBPR functions of i) chaperoning unstable MHC-I molecules at early stages of their folding process, akin to a holdase with broad allele-specificity, and ii) editing the peptide cargo of properly conformed MHC-I molecules en route to the surface, which demonstrates a narrower specificity. Our results suggest that TAPBPR exploits localized structural adaptations, both near and distant to the peptide-binding groove, to selectively recognize discrete conformational states sampled by MHC-I alleles, towards editing Sithe repertoire of displayed antigens.\n\nSignificance StatementThe human population contains thousands of MHC-I alleles, showing a range of dependencies on molecular chaperones for loading of their peptide cargo, which are then displayed on the cell surface for T cell surveillance. Using the chaperone TAPBPR as a model, we combine deep mutagenesis with functional and biophysical data, especially solution NMR, to provide a complete view of the molecular determinants of chaperone recognition. Our data provide significant evidence that localized protein motions define the intrinsic ability of MHC-I molecules to interact with chaperones. The importance of MHC-I dynamics unifies all our findings, with broad recognition of conformationally unstable, nascent MHC-I molecules becoming restricted to a smaller set of MHC-I alleles that retain relevant dynamic motions in their folded state.\n\nGraphical Abstract\n\nO_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=196 SRC=\"FIGDIR/small/779777v1_ufig1.gif\" ALT=\"Figure 1\">\nView larger version (66K):\norg.highwire.dtl.DTLVardef@19da2fforg.highwire.dtl.DTLVardef@383607org.highwire.dtl.DTLVardef@63171eorg.highwire.dtl.DTLVardef@182bf14_HPS_FORMAT_FIGEXP M_FIG C_FIG HighlightsO_LIDeep mutagenesis identifies a conformational disulfide-linked epitope as the main requirement for association of nascent MHC-I molecules with the TAPBPR chaperone\nC_LIO_LIAnalysis of s-ms timescale conformational dynamics by methyl NMR reveals allele-specific profiles at the TAPBPR interaction surfaces of peptide-loaded MHC-I molecules\nC_LIO_LIs-ms dynamics dictate the specificity of TAPBPR interactions for different MHC-I alleles through the sampling of a minor, \"excited state\" conformation\nC_LIO_LIRestriction of dynamics though an engineered disulfide bond abrogates interactions with TAPBPR, both in solution and on a cellular membrane\nC_LI

immunology