CD1 explained

CD1a molecule
Hgncid:1634
Symbol:CD1A
Altsymbols:CD1
Entrezgene:909
Omim:188370
Refseq:NM_001763
Uniprot:P06126
Chromosome:1
Arm:q
Band:22
Locussupplementarydata:-q23
CD1b molecule
Hgncid:1635
Symbol:CD1B
Altsymbols:CD1
Entrezgene:910
Omim:188360
Refseq:NM_001764
Uniprot:P29016
Chromosome:1
Arm:q
Band:22
Locussupplementarydata:-q23
CD1c molecule
Hgncid:1636
Symbol:CD1C
Altsymbols:CD1
Entrezgene:911
Omim:188340
Refseq:NM_001765
Uniprot:P29017
Chromosome:1
Arm:q
Band:22
Locussupplementarydata:-q23
CD1d molecule
Hgncid:1637
Symbol:CD1D
Entrezgene:912
Omim:188410
Refseq:NM_001766
Uniprot:P15813
Chromosome:1
Arm:q
Band:22
Locussupplementarydata:-q23
CD1e molecule
Hgncid:1638
Symbol:CD1E
Entrezgene:913
Omim:188411
Refseq:NM_030893
Uniprot:P15812
Chromosome:1
Arm:q
Band:22
Locussupplementarydata:-q23

CD1 (cluster of differentiation 1) is a family of glycoproteins expressed on the surface of various human antigen-presenting cells. CD1 glycoproteins are structurally related to the class I MHC molecules, however, in contrast to MHC class 1 proteins, they present lipids, glycolipids and small molecules antigens, from both endogenous and pathogenic proteins, to T cells and activate an immune response. Both αβ and γδ T cells recognise CD1 molecules.[1] [2]

The human CD1 gene cluster is located on chromosome 1. Genes of the CD1 family were first cloned in 1986, by Franco Calabi and C. Milstein, whereas the first known lipid antigen for CD1 was discovered in 1994, during studies of Mycobacterium tuberculosis.[3] The first antigen that was discovered to be able to bind CD1 and then be recognised by TCR is C80 mycolic acid. Even though their precise function is unknown, The CD1 system of lipid antigen recognition by TCR offers the prospect of discovering new approaches to therapy and developing immunomodulatory agents.[4] [5]

Types

CD1 glycoproteins can be classified primarily into two groups of CD1 isoforms which differ in their lipid anchoring, as well as their expression patterns of the CD1 genes (CD1d is constitutively expressed, whereas the group 1 CD1 genes are inducible and coordinately regulated by myeloid cells).[6]

CD1e is an intermediate form, a soluble lipid transfer protein that is expressed intracellularly. It does not present lipid antigens to T cells, rather plays a role in the processing of lipid antigens and loading them onto other CD1 molecules.[9] [10]

In humans

Group 1

Group 1 CD1 molecules have been shown to present foreign lipid antigens, and specifically a number of mycobacterial cell wall components, to CD1-specific T cells.

Group 2

The natural antigens of group 2 CD1 are not well characterized, but a synthetic glycolipid, alpha-galactosylceramide (α-GalCer), originally isolated from a compound found in a marine sponge, has strong biologic activity.

Group 2 CD1 molecules activate a group of T cells, known as Natural killer T cells because of their expression of NK surface markers such as CD161. Natural Killer T (NKT) cells are activated by CD1d-presented antigens, and rapidly produce Th1 and Th2 cytokines, typically represented by interferon-gamma and IL-4 production.

The group 2 (CD1d) ligand α-GalCer is currently in phase I clinical trials for the treatment of advanced non-hematologic cancers.

Structure

CD1 proteins consist of a heavy chain with α1, α2, and α3 domains and a transmembrane domain which anchors it to the cell membrane. Much like the MHC molecules, the CD1 heavy chain associates with β2-microglobulin and its binding groove consists of two antiparallel α-helices, placed atop a β-sheet platform. The antigen-binding cleft architecture of CD1 proteins consists of A’, C’, F’ and T’ binding pockets and C’ and D’/E’ accessory portals, which act to accommodate the aliphatic hydrocarbon chains present in lipid, glycolipid, phospholipid, or lipopeptide antigens. CD1 antigen binding clefts are defined by locations of named portals where antigens protrude.[11]

The main difference in structure between MHC and CD1 proteins is that in MHC proteins, the contact region for TCR show lateral symmetry, whereas human CD1 proteins show left-right asymmetry. Another difference between MHC and CD1 proteins is that the antigen display platform of CD1 molecules is smaller than the antigen display groove of MHC molecules.

CD1-lipid TCR interactions

Human CD1 cells can recognise and bind a large number of lipids, from monoacylated lipids or lipopeptides to tetra-acylated lipids. However, not all of the lipid ligands can be considered antigens for T-cells. Free fatty acids sphingolipids, phospholipids, sulfolipids, lysophospholipids, amphipathic small molecules and some oils function as natural antigens for T cells.

10% of all αβ T lymphocytes in human peripheral blood are CD1-restricted T cells, out of which, the most abundant are the T cells specific for CD1c. Three models of CD1 recognition by TCR have been described: “head group recognition” model, “absence of interference” model and “altered CD1” model. The “head group recognition” model is considered to be a classical mode of CD1-antigen recognition, whereas the other two are only “emerging” CD1-antigen recognition models which predict that TCR contacts CD1 and not lipid.

Diagnostic relevance

CD1 antigens are expressed on cortical thymocytes, but not on mature T cells. This often remains true in neoplastic cells from these populations, so that the presence of CD1 antigens can be used in diagnostic immunohistochemistry to identify some thymomas and malignancies arising from T cell precursors. CD1a, in particular, is a specific marker for Langerhans cells, and can therefore also be used in the diagnosis of Langerhans cell histiocytosis. Other conditions that may show CD1 positivity include myeloid leukaemia and some B cell lymphomas.[12]

In cows and mice

Mice lack the group 1 CD1 molecules, and instead have 2 copies of CD1d. Thus, mice have been used extensively to characterize the role of CD1d and CD1d-dependent NKT cells in a variety of disease models.

It has recently been shown that cows lack the group 2 CD1 molecules, and have an expanded set of group 1 CD1 molecules.[13] Because of this and the fact that cows are a natural host of Mycobacterium bovis, a pathogen in humans as well, it is hoped that studying cows will yield insights into the group 1 CD1 antigen-presenting system.

External links

Notes and References

  1. Layre E, de Jong A, Moody DB . Human T cells use CD1 and MR1 to recognize lipids and small molecules . Current Opinion in Chemical Biology . 23 . 31–38 . December 2014 . 25271021 . 10.1016/j.cbpa.2014.09.007 . Molecular immunology .
  2. Tang . Yajie . Ma . Shengming . Lin . Sen . Wu . Yinrong . Chen . Siyang . Liu . Gang . Ma . Lisong . Wang . Zaihua . Jiang . Lele . Wang . Yao . 2023-03-01 . Cell-free protein synthesis of CD1E and B2M protein and in vitro interaction . Protein Expression and Purification . 203 . 106209 . 10.1016/j.pep.2022.106209 . 36460227 . 254180046 . 1046-5928.
  3. Van Rhijn I, Godfrey DI, Rossjohn J, Moody DB . Lipid and small-molecule display by CD1 and MR1 . Nature Reviews. Immunology . 15 . 10 . 643–654 . October 2015 . 26388332 . 6944187 . 10.1038/nri3889 .
  4. Porcelli S, Brenner MB, Greenstein JL, Balk SP, Terhorst C, Bleicher PA . Recognition of cluster of differentiation 1 antigens by human CD4-CD8-cytolytic T lymphocytes . Nature . 341 . 6241 . 447–450 . October 1989 . 2477705 . 10.1038/341447a0 . 4264602 . 1989Natur.341..447P .
  5. Moody DB, Suliman S . CD1: From Molecules to Diseases . F1000Research . 6 . 1909 . 2017-10-30 . 29152228 . 5664979 . 10.12688/f1000research.12178.1 . free .
  6. Book: Zajonc DM, Wilson IA . Architecture of CD1 Proteins . T Cell Activation by CD1 and Lipid Antigens . 314 . 27–50 . 2007 . 17593656 . 10.1007/978-3-540-69511-0_2 . 978-3-540-69510-3 . Current Topics in Microbiology and Immunology .
  7. Sköld M, Behar SM . The role of group 1 and group 2 CD1-restricted T cells in microbial immunity . Microbes and Infection . 7 . 3 . 544–551 . March 2005 . 15777730 . 10.1016/j.micinf.2004.12.012 . free .
  8. Mori . Lucia . Lepore . Marco . De Libero . Gennaro . 2016-05-20 . The Immunology of CD1- and MR1-Restricted T Cells . Annual Review of Immunology . en . 34 . 1 . 479–510 . 10.1146/annurev-immunol-032414-112008 . 26927205 . 0732-0582.
  9. Zajonc . Dirk M. . August 2016 . The CD1 family: serving lipid antigens to T cells since the Mesozoic era . Immunogenetics . en . 68 . 8 . 561–576 . 10.1007/s00251-016-0931-0 . 0093-7711 . 5087154 . 27368414.
  10. Angenieux C, Salamero J, Fricker D, Cazenave JP, Goud B, Hanau D, de La Salle H . Characterization of CD1e, a third type of CD1 molecule expressed in dendritic cells . The Journal of Biological Chemistry . 275 . 48 . 37757–37764 . December 2000 . 10948205 . 10.1074/jbc.M007082200 . free .
  11. Moody . D Branch . Cotton . Rachel N . 2017-06-01 . Four pathways of CD1 antigen presentation to T cells . Current Opinion in Immunology . Antigen processing * Special section: Metabolism of T cells . en . 46 . 127–133 . 10.1016/j.coi.2017.07.013 . 0952-7915 . 5599164 . 28756303.
  12. Book: Kumarasen C, Anthony S-Y L . Manual of diagnostic antibodies for immunohistology . Greenwich Medical Media . London . 2003 . 59–60 . 1-84110-100-1 .
  13. Van Rhijn I, Koets AP, Im JS, Piebes D, Reddington F, Besra GS, Porcelli SA, van Eden W, Rutten VP . 6 . The bovine CD1 family contains group 1 CD1 proteins, but no functional CD1d . Journal of Immunology . 176 . 8 . 4888–4893 . April 2006 . 16585584 . 10.4049/jimmunol.176.8.4888 . free .