Literature DB >> 19004781

The crystal structure of avian CD1 reveals a smaller, more primordial antigen-binding pocket compared to mammalian CD1.

Dirk M Zajonc1, Harald Striegl, Christopher C Dascher, Ian A Wilson.   

Abstract

The molecular details of glycolipid presentation by CD1 antigen-presenting molecules are well studied in mammalian systems. However, little is known about how these non-classical MHC class I (MHCI) molecules diverged from the MHC locus to create a more complex, hydrophobic binding groove that binds lipids rather than peptides. To address this fundamental question, we have determined the crystal structure of an avian CD1 (chCD1-2) that shares common ancestry with mammalian CD1 from approximately 310 million years ago. The chCD1-2 antigen-binding site consists of a compact, narrow, central hydrophobic groove or pore rather than the more open, 2-pocket architecture observed in mammalian CD1s. Potential antigens then would be restricted in size to single-chain lipids or glycolipids. An endogenous ligand, possibly palmitic acid, serves to illuminate the mode and mechanism of ligand interaction with chCD1-2. The palmitate alkyl chain is inserted into the relatively shallow hydrophobic pore; its carboxyl group emerges at the receptor surface and is stabilized by electrostatic and hydrogen bond interactions with an arginine residue that is conserved in all known CD1 proteins. In addition, other novel features, such as an A' loop that interrupts and segments the normally long, continuous alpha1 helix, are unique to chCD1-2 and contribute to the unusually narrow binding groove, thereby limiting its size. Because birds and mammals share a common ancestor, but the rate of evolution is slower in birds than in mammals, the chCD1-2-binding groove probably represents a more primordial CD1-binding groove.

Entities:  

Mesh:

Substances:

Year:  2008        PMID: 19004781      PMCID: PMC2584731          DOI: 10.1073/pnas.0809814105

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  50 in total

Review 1.  MHC class I molecules, structure and function.

Authors:  K Natarajan; H Li; R A Mariuzza; D H Margulies
Journal:  Rev Immunogenet       Date:  1999

2.  Electrostatics of nanosystems: application to microtubules and the ribosome.

Authors:  N A Baker; D Sept; S Joseph; M J Holst; J A McCammon
Journal:  Proc Natl Acad Sci U S A       Date:  2001-08-21       Impact factor: 11.205

Review 3.  Evolutionary constraints on CD1 structure: insights from comparative genomic analysis.

Authors:  Christopher C Dascher; Michael B Brenner
Journal:  Trends Immunol       Date:  2003-08       Impact factor: 16.687

4.  Crystal structure of mouse CD1d bound to the self ligand phosphatidylcholine: a molecular basis for NKT cell activation.

Authors:  Barbara Giabbai; Stèphane Sidobre; M D Max Crispin; Yovan Sanchez-Ruìz; Angela Bachi; Mitchell Kronenberg; Ian A Wilson; Massimo Degano
Journal:  J Immunol       Date:  2005-07-15       Impact factor: 5.422

5.  A mitogenomic timescale for birds detects variable phylogenetic rates of molecular evolution and refutes the standard molecular clock.

Authors:  Sergio L Pereira; Allan J Baker
Journal:  Mol Biol Evol       Date:  2006-06-14       Impact factor: 16.240

6.  Molecular mechanism of lipopeptide presentation by CD1a.

Authors:  Dirk M Zajonc; M D Max Crispin; Thomas A Bowden; David C Young; Tan-Yun Cheng; Jingdan Hu; Catherine E Costello; Pauline M Rudd; Raymond A Dwek; Marvin J Miller; Michael B Brenner; D Branch Moody; Ian A Wilson
Journal:  Immunity       Date:  2005-02       Impact factor: 31.745

7.  Two classes of CD1 genes.

Authors:  F Calabi; J M Jarvis; L Martin; C Milstein
Journal:  Eur J Immunol       Date:  1989-02       Impact factor: 5.532

8.  Multiple dimeric forms of human CD69 result from differential addition of N-glycans to typical (Asn-X-Ser/Thr) and atypical (Asn-X-cys) glycosylation motifs.

Authors:  B A Vance; W Wu; R K Ribaudo; D M Segal; K P Kearse
Journal:  J Biol Chem       Date:  1997-09-12       Impact factor: 5.157

9.  Lipid length controls antigen entry into endosomal and nonendosomal pathways for CD1b presentation.

Authors:  D Branch Moody; Volker Briken; Tan-Yun Cheng; Carme Roura-Mir; Mark R Guy; David H Geho; Mark L Tykocinski; Gurdyal S Besra; Steven A Porcelli
Journal:  Nat Immunol       Date:  2002-04-08       Impact factor: 25.606

10.  Design of natural killer T cell activators: structure and function of a microbial glycosphingolipid bound to mouse CD1d.

Authors:  Douglass Wu; Dirk M Zajonc; Masakazu Fujio; Barbara A Sullivan; Yuki Kinjo; Mitchell Kronenberg; Ian A Wilson; Chi-Huey Wong
Journal:  Proc Natl Acad Sci U S A       Date:  2006-03-06       Impact factor: 11.205

View more
  22 in total

1.  Insights into substrate specificity of geranylgeranyl reductases revealed by the structure of digeranylgeranylglycerophospholipid reductase, an essential enzyme in the biosynthesis of archaeal membrane lipids.

Authors:  Qingping Xu; Tadashi Eguchi; Irimpan I Mathews; Christopher L Rife; Hsiu-Ju Chiu; Carol L Farr; Julie Feuerhelm; Lukasz Jaroszewski; Heath E Klock; Mark W Knuth; Mitchell D Miller; Dana Weekes; Marc-André Elsliger; Ashley M Deacon; Adam Godzik; Scott A Lesley; Ian A Wilson
Journal:  J Mol Biol       Date:  2010-10-01       Impact factor: 5.469

2.  Expression, purification and preliminary X-ray crystallographic analysis of the chicken MHC class I molecule YF1*7.1.

Authors:  Chee Seng Hee; Song Gao; Marcia M Miller; Ronald M Goto; Andreas Ziegler; Oliver Daumke; Barbara Uchanska-Ziegler
Journal:  Acta Crystallogr Sect F Struct Biol Cryst Commun       Date:  2009-03-26

3.  Conservation of sequence motifs suggests that the nonclassical MHC class I lineages CD1/PROCR and UT were established before the emergence of tetrapod species.

Authors:  Johannes M Dijkstra; Takuya Yamaguchi; Unni Grimholt
Journal:  Immunogenetics       Date:  2017-12-21       Impact factor: 2.846

4.  Surface Glycoproteomic Analysis Reveals That Both Unique and Differential Expression of Surface Glycoproteins Determine the Cell Type.

Authors:  Suttipong Suttapitugsakul; Lindsey D Ulmer; Chendi Jiang; Fangxu Sun; Ronghu Wu
Journal:  Anal Chem       Date:  2019-05-03       Impact factor: 6.986

5.  Analysis of the reptile CD1 genes: evolutionary implications.

Authors:  Zhi Yang; Chunyan Wang; Tao Wang; Jianhui Bai; Yu Zhao; Xuhan Liu; Qingwei Ma; Xiaobing Wu; Ying Guo; Yaofeng Zhao; Liming Ren
Journal:  Immunogenetics       Date:  2015-04-29       Impact factor: 2.846

6.  Dynamics of free versus complexed β2-microglobulin and the evolution of interfaces in MHC class I molecules.

Authors:  Chee-Seng Hee; Monika Beerbaum; Bernhard Loll; Martin Ballaschk; Peter Schmieder; Barbara Uchanska-Ziegler; Andreas Ziegler
Journal:  Immunogenetics       Date:  2012-12-11       Impact factor: 2.846

Review 7.  Coevolution of T-cell receptors with MHC and non-MHC ligands.

Authors:  Caitlin D Castro; Adrienne M Luoma; Erin J Adams
Journal:  Immunol Rev       Date:  2015-09       Impact factor: 12.988

8.  Dynamics of the antigen-binding grooves in CD1 proteins: reversible hydrophobic collapse in the lipid-free state.

Authors:  Diana Garzón; Claudio Anselmi; Peter J Bond; José D Faraldo-Gómez
Journal:  J Biol Chem       Date:  2013-05-15       Impact factor: 5.157

Review 9.  Molecular basis of lipid antigen presentation by CD1d and recognition by natural killer T cells.

Authors:  Enrico Girardi; Dirk M Zajonc
Journal:  Immunol Rev       Date:  2012-11       Impact factor: 12.988

Review 10.  The CD1 family: serving lipid antigens to T cells since the Mesozoic era.

Authors:  Dirk M Zajonc
Journal:  Immunogenetics       Date:  2016-07-02       Impact factor: 2.846

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.