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3WS6

H2-Db binding "YAIENYLEL" at 1.98Å resolution

Data provenance

Structure downloaded from PDB Europe using the Coordinate Server. Aligned to residues 1-180 of 1HHK2 using the CEALIGN3 function of PyMol4. Chain assigment using a Levenshtein distance5 method using data from the PDBe REST API6. Organism data from PDBe REST API. Data for both of these operations from the Molecules endpoint. Structure visualised with 3DMol7.

Information sections


Complex type

Class i with peptide

1. Beta 2 microglobulin
['D', 'C']
2. Class I alpha
H2-Db
['A', 'B']
3. Peptide
YAIENYLEL
['E', 'F']

Species


Locus / Allele group


Publication

Compensatory mechanisms allow undersized anchor-deficient class I MHC ligands to mediate pathogenic autoreactive T cell responses.

Lamont D, Mukherjee G, Kumar PR, Samanta D, McPhee CG, Kay TW, Almo SC, DiLorenzo TP, Serreze DV
J. Immunol. (2014) 193, 2135-46 [doi:10.4049/jimmunol.1400997]  [pubmed:25063871

Self-reactive T cells must escape thymic negative selection to mediate pathogenic autoimmunity. In the NOD mouse model of autoimmune diabetes, several β cell-cytotoxic CD8 T cell populations are known, with the most aggressive of these represented by AI4, a T cell clone with promiscuous Ag-recognition characteristics. We identified a long-elusive β cell-specific ligand for AI4 as an unusually short H-2D(b)-binding 7-mer peptide lacking a C-terminal anchor residue and derived from the insulin A chain (InsA14-20). Crystallography reveals that compensatory mechanisms permit peptides lacking a C-terminal anchor to bind sufficiently to the MHC to enable destructive T cell responses, yet allow cognate T cells to avoid negative selection. InsA14-20 shares two solvent-exposed residues with previously identified AI4 ligands, providing a structural explanation for AI4's promiscuity. Detection of AI4-like T cells, using mimotopes of InsA14-20 with improved H-2D(b)-binding characteristics, establishes the AI4-like T cell population as a consistent feature of the islet infiltrates of NOD mice. Our work establishes undersized peptides as previously unrecognized targets of autoreactive CD8 T cells and presents a strategy for their further exploration as Ags in autoimmune disease.

Structure deposition and release

Deposited: 2014-02-28
Released: 2014-03-26
Revised: 2018-02-07

Data provenance

Publication data retrieved from PDBe REST API8 and PMCe REST API9

Other structures from this publication


Peptide details

Length: Nonamer (9 amino acids)

Sequence: YAIENYLEL

Interactive view
Cutaway side view (static)
Surface top view (static - coloured by atom property)
Cutaway top view (static)

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 TYR

TYR31
TRP191
TYR195
PHE57
ARG86
TYR183
TYR83
LYS90
GLU187
GLU87
MET29
P2 ALA

TYR183
LYS90
GLU87
TYR69
TYR31
P3 ILE

LEU138
TYR183
LYS90
TYR180
GLU33
TYR31
SER123
GLN121
GLN94
P4 GLU

HIS179
TYR180
GLN94
LYS90
P5 ASN

HIS179
TRP97
TYR180
PHE98
GLN121
GLN94
PHE140
P6 TYR

GLY175
SER174
ALA176
HIS179
TRP97
TYR180
P7 LEU

SER174
LYS170
TRP171
TYR180
TRP97
P8 GLU

LYS170
TRP171
SER101
TRP97
THR167
ASN104
VAL100
P9 LEU

LEU119
TRP97
THR167
TYR108
SER101
LYS170
TRP171
LEU105
PHE140
TYR147
ILE148
ASN104

Colour key

Aromatic Hydrophobic Acidic Basic Neutral/polar

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]


Binding cleft pockets


Peptide sidechain binding pockets (static)
Peptide terminii and backbone binding residues (static)
A Pocket

LEU159
CYS163
LEU167
LEU171
ARG5
TRP59
THR63
ALA66
PHE7
B Pocket

VAL24
ARG34
GLU45
THR63
ALA66
LYS67
PHE7
GLU70
THR9
GLY99
C Pocket

GLU70
PHE73
ARG74
THR9
MET97
D Pocket

GLN114
TYR155
LYS156
LEU159
GLU160
GLY99
E Pocket

GLN114
GLU147
ALA152
LYS156
MET97
F Pocket

ALA116
ILE123
ARG143
TRP146
GLU147
LEU77
LEU80
LEU81
TYR84
GLN95

Colour key

Binds N-terminus Binds P1 backbone Binds P2 backbone Binds PC-1 backbone Binds C-terminus

Data provenance

N-/C-terminus and peptide backbone binding residues are assigned according to previously published information and pockets are assigned according to an adaptation of a previously published set of residues. All numbering is currently that of the 'canonical' structures of human and mouse MHC Class I molecules.

Chain sequences

1. Beta 2 microglobulin
Beta 2 microglobulin
        10        20        30        40        50        60
MIQKTPQIQVYSRHPPENGKPNILNCYVTQFHPPHIEIQMLKNGKKIPKVEMSDMSFSKD
        70        80        90
WSFYILAHTEFTPTETDTYACRVKHDSMAEPKTVYWDRDM

2. Class I alpha
H2-Db
        10        20        30        40        50        60
PHSMRYFETAVSRPGLEEPRYISVGYVDNKEFVRFDSDAENPRYEPRAPWMEQEGPEYWE
        70        80        90       100       110       120
RETQKAKGQEQWFRVSLRNLLGYYNQSAGGSHTLQQMSGCDLGSDWRLLRGYLQFAYEGR
       130       140       150       160       170       180
DYIALNEDLKTWTAADMAAQITRRKWEQSGAAEHYKAYLEGECVEWLHRYLKNGNATLLR
       190       200       210       220       230       240
TDSPKAHVTHHPRSKGEVTLRCWALGFYPADITLTWQLNGEELTQDMELVETRPAGDGTF
       250       260       270
QKWASVVVPLGKEQNYTCRVYHEGLPEPLTLRWEP

3. Peptide
YAIENYLEL


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

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or in the case of JSON formatted files to retrieve it and use it as part of notebooks such as Jupyter or GoogleColab.
Please take note of the data license. Using data from this site assumes that you have read and will comply with the license.

Complete structures

Aligned structures [cif]
  1. 3WS6 assembly 1  
  2. 3WS6 assembly 2  

Components

MHC Class I alpha chain [cif]
  1. 3WS6 assembly 1  
  2. 3WS6 assembly 2  
MHC Class I antigen binding domain (alpha1/alpha2) [cif]
  1. 3WS6 assembly 1  
  2. 3WS6 assembly 2  
Peptide only [cif]
  1. 3WS6 assembly 1  
  2. 3WS6 assembly 2  

Derived data

Data for this page [json]
https://api.histo.fyi/v1/structures/3ws6

Data license

The data above is made available under a Creative Commons CC-BY 4.0 license. This means you can copy, remix, transform, build upon and redistribute the material, but you must give appropriate credit, provide a link to the license, and indicate if changes were made.
If you use any data downloaded from this site in a publication, please cite 'https://www.histo.fyi/'. A preprint is in preparation.

Footnotes