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J C Solheim

Publications and source records attributed to J C Solheim.

24 records · Page 2Linked to original sources

Conformational changes induced in the MHC class I molecule by peptide and beta 2-microglobulin.

Assembly of the class I MHC molecule is inextricably linked to the antigen presentation function of the class I molecule. Association of the class I MHC molecule with beta 2-microglobulin (beta 2m) is a prerequisite for association with the heterodimeric protein TAP, and once peptide is acquired, the class I molecule folds and begins its sojourn to the cell surface. To maintain its folded conformation, class I MHC requires peptide but not beta 2m, and the sequence of the peptide bound exercises a subtle influence on the structure of the class I molecule that is likely to be a factor in T cell receptor discrimination of MHC/peptide complexes.

Animals↗

Characterization of class I MHC folding intermediates and their disparate interactions with peptide and beta 2-microglobulin.

Newly synthesized class I heavy chains achieve domain structure using disulfide bonds, assemble with beta-2 microglobulin (beta 2m), and bind peptide ligand to complete the trimeric complex. Although each of these initial events is thought to be critical for class I folding, their sequential order and effect on class I structure are unknown. Using mAb specific for distinct conformations of H-2Ld and Lq, we have defined folding intermediates of class I molecules. We show here that non-peptide-associated forms of Ld or Lq, detected by mAb 64-3-7 and designated L alt, lack numerous conformational epitopes surrounding their ligand binding sites. These results support the notion that L alt molecules have an open conformation. Interestingly, a significant proportion of L alt molecules were detected in association with beta 2m and these L alt/beta 2m heterodimers were preferentially folded by peptide in cell lysates. These findings indicate that class I heavy chain/beta 2m association can precede ligand binding and that peptide is probably the limiting factor for completion of the Ld/beta 2m/peptide trimeric complex in vivo. The characteristics of L alt molecules were investigated further by ascertaining the disulfide bond status of these molecules and their association with beta 2m and peptide. Treatment of cells with dithiothreitol (DTT), a membrane-permeable reducing agent, demonstrated that L alt molecules constitute a heterogeneous population including reduced, partially reduced and native class I molecules. Furthermore, partially reduced Ld alt molecules, in a cell line expressing a mutant Ld molecule lacking the alpha 2 domain disulfide bond, accumulated intracellularly, were not beta 2m-associated and displayed marginal peptide-induced folding in vitro. In accordance with this latter finding, peptide was found to preferentially convert fully disulfide-bonded forms of Ld alt to conformed Ld. Thus, we propose that intrachain disulfide bond formation precedes the association of class I heavy chain with beta 2m and peptide, and that disulfide bond formation is required for efficient assembly, ligand binding and folding of the class I heavy chain.

Animals↗

Binding of peptides lacking consensus anchor residue alters H-2Ld serologic recognition.

CTL recognize class I MHC/peptide complexes on the surface of target cells. Crystallographic and serologic data have indicated that peptide ligands can influence the conformation of class I molecules and hence T cell recognition. How the binding of peptides with disparate sequence motifs affects the conformation of distinct regions within a class I molecule remains unknown. A series of site-directed mutants of the murine class I molecule H-2Ld was studied to address this question. These mutants were generated by in vitro mutagenesis and used to map the serologic epitopes recognized by a panel of Ld-reactive mAb. The influence of six different ligands on serologic recognition by these mAb was then examined. Of 12 mAb tested, only one, B22/249, was found to be significantly influenced by the bound peptide. Peptide discrimination by B22/249 was observed at the cell surface and in immunoprecipitates of Ld after incubation with two of the six ligands. The two peptides that caused suboptimal B22/249 recognition of Ld/peptide lack a proline at position 2, which is present in the other four peptides and has previously been defined as an anchor residue for Ld ligands. The epitope on Ld detected by mAb B22/249 includes residues 63 to 70 on the alpha 1 domain helix. Two of these residues are in pocket B, which computer modeling predicts to be in contact with the second residue of Ld-binding peptides. Therefore, these data imply that a mAb to a class I molecule can distinguish peptides with different motifs, possibly reflecting peptide-dependent conformational changes in the class I molecule.

Amino Acid Sequence↗

Biased T cell receptor usage by Ld-restricted, tum- peptide-specific cytotoxic T lymphocyte clones.

We have investigated the TCR gene usage in a panel of H-2Ld-restricted, tum- peptide-specific CTL clones. These clones possess identical MHC restriction and peptide specificity, yet they vary dramatically in the amount of peptide required to sensitize targets for recognition. We previously demonstrated a precise quantitative correlation between the determinant density requirement of a given clone and the CD8 dependency. In this study we sequenced polymerase chain reaction copies of the TCR mRNA used by these clones, not only to correlate TCR structure with recognition of a specific class I/peptide complex, but also to determine if the functional affinity differences between these clones is reflected in the TCR gene products used. The number of TCR V beta, V alpha, and J alpha region gene segments expressed by these clones is very limited. Twelve of 17 clones express V beta 8 at comparable levels on the cell surface. Using PCR amplification of cDNA templates, cloning, and dideoxy sequencing, we have obtained the nucleotide sequence of the TCR V-(D)-J regions in seven of the V beta 8+ clones. Two of the clones use V beta 8.2 and identical J alpha gene segments. Three of the five V beta 8.3+ clones express identical V alpha and J alpha gene products and the other two use similar V alpha chains and J alpha chains with a shared motif in the predicted CDR3 region. Although no clear correlation between TCR gene usage and CD8 dependency was seen, the range of TCR gene usage in the tum- peptide-specific, Ld-restricted immune response is strikingly narrow and suggests a coselection of the alpha- and beta- chains for recognition of the class I/peptide complex.

Amino Acid Sequence↗

The H-2Kkml mutation: a single nucleotide substitution is responsible for multiple functional differences in a class I MHC molecule.

Nucleotide sequence analysis of mRNA from the H-2K locus of the CBA.M523 mouse, which has the class I murine MHC mutation H-2Kkml, has established the only alteration to be at the codon for amino acid position 152 as compared to the sequence of standard Kk from both the AKR and CBA inbred mouse lines. Complete sequence information for the nucleotides coding for amino acids 1-292, which includes all of the extracellular protein domains, demonstrated an A----C alteration in the codon for amino acid 152 as compared to the standard Kk sequence, changing Asp (GAT) in Kkml. The GCT codon occurring in Kkml may be the result of a gene conversion in Kkml. The GCT codon occurring in Kkml may be the result of a gene conversion event because a potential donor gene, the pH-2III pseudogene of H-2k, is transcribed in the CBA.M523 mouse and has a GCT codon at amino acid position 152. This sequence information obtained for Kkml also demonstrates that Kk gene transcripts from two genetically distinct inbred mouse lines, CBA and AKR, are completely identical. Finally, several other murine and human class I MHC variants have similar alterations at amino acid position 152 which result in altered biological functions. This information suggests that amino acid 152 is an important part of a T-cell-recognized antigenic determinant on MHC class I antigens.

Animals↗

The H-2Kkml mutation: nucleotide sequence and comparative analysis.

Nucleotide sequence analysis of mRNA from the class I murine MHC mutant H-2Kkml has established a site of mutation to be at the codon for amino acid position 152. Complete sequence information for the nucleotides coding for amino acids 136-163 demonstrates an A----C alteration at the codon for amino acid 152, changing Asp (GAT) in Kk to Ala (GCT) in Kkml. Several other murine and human class I MHC variants have similar alterations at amino acid position 152, resulting in altered biological activity. Finally, the pH-2III pseudogene of the H-2k haplotype has a GCT codon at amino acid position 152, suggesting that the GCT codon occurring in Kkml is the result of a gene conversion event.

Animals↗