HLA-A*02:01 binding "VLHDDLLEA" at 1.95Å resolution
Data provenance
Information sections
- Publication
- Peptide details
- Peptide neighbours
- Binding cleft pockets
- Chain sequences
- Downloadable data
- Data license
- Footnotes
Complex type
HLA-A*02:01
VLHDDLLEA
Species
Locus / Allele group
Steric hindrance and fast dissociation explain the lack of immunogenicity of the minor histocompatibility HA-1Arg Null allele.
The di-allelic HLA-A2 restricted minor histocompatibility Ag HA-1 locus codes for the highly immunogenic HA-1(His) and the nonimmunogenic HA-1(Arg) nonapeptides, differing in one amino acid. The HA-1(His) peptide is currently used for boosting the graft-vs-tumor responses after HLA matched HA-1 mismatched stem cell transplantation; usage of the HA-1(Arg) peptide would significantly enlarge the applicability for this therapy. Our studies on mechanisms causing the HA-1 unidirectional immunogenicity revealed marginal differences in proteasomal digestion, TAP translocation, and binding affinity, whereas both dissociation rates and structural analyses clearly showed marked differences in the stability of these two HLA-A2 bound alleles. These data provide a rationale for the lack of HA-1(Arg) peptide immunogenicity essential for the choice of tumor peptides for stem cell-based immunotherapeutic application.
Structure deposition and release
Data provenance
Publication data retrieved from PDBe REST API8 and PMCe REST API9
Other structures from this publication
![](https://images.histo.fyi/cleft/side/combined/3ft3_1_combined_medium.png)
![](https://images.histo.fyi/cleft/yrb/3ft3_1_yrb_medium.png)
![](https://images.histo.fyi/cleft/top/combined/3ft3_1_combined_medium.png)
Data provenance
MHC:peptide complexes are visualised using PyMol. The peptide is superimposed on a consistent cutaway slice of the MHC binding cleft (displayed as a grey mesh) which best indicates the binding pockets for the P1/P5/PC positions (side view - pockets A, E, F) and for the P2/P3/PC-2 positions (top view - pockets B, C, D). In some cases peptides will use a different pocket for a specific peptide position (atypical anchoring). On some structures the peptide may appear to sterically clash with a pocket. This is an artefact of picking a standardised slice of the cleft and overlaying the peptide.
Peptide neighbours
P1
VAL
TYR171
TYR59
GLU63
LYS66
PHE33
THR163
TYR159
TRP167
TYR7
MET5
|
P2
LEU
TYR159
MET45
TYR7
TYR99
VAL67
HIS70
PHE9
GLU63
LYS66
|
P3
HIS
GLN155
LEU156
TYR159
HIS70
LYS66
TYR99
|
P4
ASP
ARG65
LYS66
|
P5
ASP
GLN155
|
P6
LEU
HIS70
HIS74
ARG97
TYR99
THR73
HIS114
LEU156
|
P7
LEU
TRP147
ARG97
ALA150
THR73
LYS146
VAL152
ASP77
|
P8
GLU
TRP147
THR73
VAL76
LYS146
ASP77
|
P9
ALA
TRP147
THR80
TYR84
LEU81
LYS146
ASP77
TYR116
THR143
TYR123
|
Colour key
Data provenance
Neighbours are calculated by finding residues with atoms within 5Å of each other using BioPython Neighboursearch module. The list of neighbours is then sorted and filtered to inlcude only neighbours where between the peptide and the MHC Class I alpha chain.
Colours selected to match the YRB scheme. [https://www.frontiersin.org/articles/10.3389/fmolb.2015.00056/full]
![](https://images.histo.fyi/cleft/pockets/labelled/3ft3_1_labelled_medium.png)
![](https://images.histo.fyi/cleft/terminii/labelled/3ft3_1_labelled_medium.png)
A Pocket
TYR159
THR163
TRP167
TYR171
MET5
TYR59
GLU63
LYS66
TYR7
|
B Pocket
ALA24
VAL34
MET45
GLU63
LYS66
VAL67
TYR7
HIS70
PHE9
TYR99
|
C Pocket
HIS70
THR73
HIS74
PHE9
ARG97
|
D Pocket
HIS114
GLN155
LEU156
TYR159
LEU160
TYR99
|
E Pocket
HIS114
TRP147
VAL152
LEU156
ARG97
|
F Pocket
TYR116
TYR123
THR143
LYS146
TRP147
ASP77
THR80
LEU81
TYR84
VAL95
|
Colour key
Data provenance
1. Beta 2 microglobulin
Beta 2 microglobulin
|
10 20 30 40 50 60
MIQRTPKIQVYSRHPAENGKSNFLNCYVSGFHPSDIEVDLLKNGERIEKVEHSDLSFSKD 70 80 90 WSFYLLYYTEFTPTEKDEYACRVNHVTLSQPKIVKWDRDM |
2. Class I alpha
HLA-A*02:01
IPD-IMGT/HLA
[ipd-imgt:HLA35266] |
10 20 30 40 50 60
GSHSMRYFFTSVSRPGRGEPRFIAVGYVDDTQFVRFDSDAASQRMEPRAPWIEQEGPEYW 70 80 90 100 110 120 DGETRKVKAHSQTHRVDLGTLRGYYNQSEAGSHTVQRMYGCDVGSDWRFLRGYHQYAYDG 130 140 150 160 170 180 KDYIALKEDLRSWTAADMAAQTTKHKWEAAHVAEQLRAYLEGTCVEWLRRYLENGKETLQ 190 200 210 220 230 240 RTDAPKTHMTHHAVSDHEATLRCWALSFYPAEITLTWQRDGEDQTQDTELVETRPAGDGT 250 260 270 FQKWVAVVVPSGQEQRYTCHVQHEGLPKPLTLRWE |
3. Peptide
|
VLHDDLLEA
|
Data provenance
Sequences are retrieved via the Uniprot method of the RSCB REST API. Sequences are then compared to those derived from the PDB file and matched against sequences retrieved from the IPD-IMGT/HLA database for human sequences, or the IPD-MHC database for other species. Mouse sequences are matched against FASTA files from Uniprot. Sequences for the mature extracellular protein (signal petide and cytoplasmic tail removed) are compared to identical length sequences from the datasources mentioned before using either exact matching or Levenshtein distance based matching.
Downloadable data
Components
Data license
Footnotes
- Protein Data Bank Europe - Coordinate Server
- 1HHK - HLA-A*02:01 binding LLFGYPVYV at 2.5Å resolution - PDB entry for 1HHK
- Protein structure alignment by incremental combinatorial extension (CE) of the optimal path. - PyMol CEALIGN Method - Publication
- PyMol - PyMol.org/pymol
- Levenshtein distance - Wikipedia entry
- Protein Data Bank Europe REST API - Molecules endpoint
- 3Dmol.js: molecular visualization with WebGL - 3DMol.js - Publication
- Protein Data Bank Europe REST API - Publication endpoint
- PubMed Central Europe REST API - Articles endpoint
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This work is licensed under a Creative Commons Attribution 4.0 International License.