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Dive into the research topics where Craig S. Clements is active.

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Featured researches published by Craig S. Clements.


Journal of Experimental Medicine | 2003

A Naturally Selected Dimorphism within the HLA-B44 Supertype Alters Class I Structure, Peptide Repertoire, and T Cell Recognition

Whitney A. Macdonald; Anthony W. Purcell; Nicole A. Mifsud; Lauren K. Ely; David S. Williams; Linus Chang; Jeffrey J. Gorman; Craig S. Clements; Lars Kjer-Nielsen; David M. Koelle; Scott R. Burrows; Brian D. Tait; Rhonda Holdsworth; Andrew G. Brooks; George O. Lovrecz; Louis Lu; Jamie Rossjohn; James McCluskey

HLA-B*4402 and B*4403 are naturally occurring MHC class I alleles that are both found at a high frequency in all human populations, and yet they only differ by one residue on the α2 helix (B*4402 Asp156→B*4403 Leu156). CTLs discriminate between HLA-B*4402 and B*4403, and these allotypes stimulate strong mutual allogeneic responses reflecting their known barrier to hemopoeitic stem cell transplantation. Although HLA-B*4402 and B*4403 share >95% of their peptide repertoire, B*4403 presents more unique peptides than B*4402, consistent with the stronger T cell alloreactivity observed toward B*4403 compared with B*4402. Crystal structures of B*4402 and B*4403 show how the polymorphism at position 156 is completely buried and yet alters both the peptide and the heavy chain conformation, relaxing ligand selection by B*4403 compared with B*4402. Thus, the polymorphism between HLA-B*4402 and B*4403 modifies both peptide repertoire and T cell recognition, and is reflected in the paradoxically powerful alloreactivity that occurs across this “minimal” mismatch. The findings suggest that these closely related class I genes are maintained in diverse human populations through their differential impact on the selection of peptide ligands and the T cell repertoire.


Immunity | 2009

T cell allorecognition via molecular mimicry.

Whitney A. Macdonald; Zhenjun Chen; Stephanie Gras; Julia K. Archbold; Fleur E. Tynan; Craig S. Clements; Mandvi Bharadwaj; Lars Kjer-Nielsen; Philippa M. Saunders; Matthew C. J. Wilce; Fran Crawford; Brian Stadinsky; David C. Jackson; Andrew G. Brooks; Anthony W. Purcell; John W. Kappler; Scott R. Burrows; Jamie Rossjohn; James McCluskey

T cells often alloreact with foreign human leukocyte antigens (HLA). Here we showed the LC13 T cell receptor (TCR), selected for recognition on self-HLA-B( *)0801 bound to a viral peptide, alloreacts with B44 allotypes (HLA-B( *)4402 and HLA-B( *)4405) bound to two different allopeptides. Despite extensive polymorphism between HLA-B( *)0801, HLA-B( *)4402, and HLA-B( *)4405 and the disparate sequences of the viral and allopeptides, the LC13 TCR engaged these peptide-HLA (pHLA) complexes identically, accommodating mimicry of the viral peptide by the allopeptide. The viral and allopeptides adopted similar conformations only after TCR ligation, revealing an induced-fit mechanism of molecular mimicry. The LC13 T cells did not alloreact against HLA-B( *)4403, and the single residue polymorphism between HLA-B( *)4402 and HLA-B( *)4403 affected the plasticity of the allopeptide, revealing that molecular mimicry was associated with TCR specificity. Accordingly, molecular mimicry that is HLA and peptide dependent is a mechanism for human T cell alloreactivity between disparate cognate and allogeneic pHLA complexes.


Nature | 2011

Killer cell immunoglobulin-like receptor 3DL1-mediated recognition of human leukocyte antigen B

Julian P. Vivian; Renee C Duncan; Richard M. Berry; Geraldine M. O'Connor; Hugh H. Reid; Travis Beddoe; Stephanie Gras; Philippa M. Saunders; Maya A Olshina; Jacqueline M. L. Widjaja; Christopher M. Harpur; Jie Lin; Sebastien Maloveste; David A. Price; Bernard A. P. Lafont; Daniel W. McVicar; Craig S. Clements; Andrew G. Brooks; Jamie Rossjohn

Members of the killer cell immunoglobulin-like receptor (KIR) family, a large group of polymorphic receptors expressed on natural killer (NK) cells, recognize particular peptide-laden human leukocyte antigen (pHLA) class I molecules and have a pivotal role in innate immune responses. Allelic variation and extensive polymorphism within the three-domain KIR family (KIR3D, domains D0–D1–D2) affects pHLA binding specificity and is linked to the control of viral replication and the treatment outcome of certain haematological malignancies. Here we describe the structure of a human KIR3DL1 receptor bound to HLA-B*5701 complexed with a self-peptide. KIR3DL1 clamped around the carboxy-terminal end of the HLA-B*5701 antigen-binding cleft, resulting in two discontinuous footprints on the pHLA. First, the D0 domain, a distinguishing feature of the KIR3D family, extended towards β2-microglobulin and abutted a region of the HLA molecule with limited polymorphism, thereby acting as an ‘innate HLA sensor’ domain. Second, whereas the D2–HLA-B*5701 interface exhibited a high degree of complementarity, the D1–pHLA-B*5701 contacts were suboptimal and accommodated a degree of sequence variation both within the peptide and the polymorphic region of the HLA molecule. Although the two-domain KIR (KIR2D) and KIR3DL1 docked similarly onto HLA-C and HLA-B respectively, the corresponding D1-mediated interactions differed markedly, thereby providing insight into the specificity of KIR3DL1 for discrete HLA-A and HLA-B allotypes. Collectively, in association with extensive mutagenesis studies at the KIR3DL1–pHLA-B*5701 interface, we provide a framework for understanding the intricate interplay between peptide variability, KIR3D and HLA polymorphism in determining the specificity requirements of this essential innate interaction that is conserved across primate species.


Journal of Experimental Medicine | 2008

CD94-NKG2A recognition of human leukocyte antigen (HLA)-E bound to an HLA class I leader sequence

Emma J. Petrie; Craig S. Clements; Jie Lin; Lucy C. Sullivan; Darryl Johnson; Trevor Huyton; Annie Heroux; Hilary Linda Hoare; Travis Beddoe; Hugh H. Reid; Matthew C. J. Wilce; Andrew G. Brooks; Jamie Rossjohn

The recognition of human leukocyte antigen (HLA)-E by the heterodimeric CD94-NKG2 natural killer (NK) receptor family is a central innate mechanism by which NK cells monitor the expression of other HLA molecules, yet the structural basis of this highly specific interaction is unclear. Here, we describe the crystal structure of CD94-NKG2A in complex with HLA-E bound to a peptide derived from the leader sequence of HLA-G. The CD94 subunit dominated the interaction with HLA-E, whereas the NKG2A subunit was more peripheral to the interface. Moreover, the invariant CD94 subunit dominated the peptide-mediated contacts, albeit with poor surface and chemical complementarity. This unusual binding mode was consistent with mutagenesis data at the CD94-NKG2A–HLA-E interface. There were few conformational changes in either CD94-NKG2A or HLA-E upon ligation, and such a “lock and key” interaction is typical of innate receptor–ligand interactions. Nevertheless, the structure also provided insight into how this interaction can be modulated by subtle changes in the peptide ligand or by the pairing of CD94 with other members of the NKG2 family. Differences in the docking strategies used by the NKG2D and CD94-NKG2A receptors provided a basis for understanding the promiscuous nature of ligand recognition by NKG2D compared with the fidelity of the CD94-NKG2 receptors.


Proceedings of the National Academy of Sciences of the United States of America | 2003

The crystal structure of myelin oligodendrocyte glycoprotein, a key autoantigen in multiple sclerosis

Craig S. Clements; Hugh H. Reid; Travis Beddoe; Fleur E. Tynan; Matthew A. Perugini; Terrance G. Johns; Claude C.A. Bernard; Jamie Rossjohn

Myelin oligodendrocyte glycoprotein (MOG) is a key CNS-specific autoantigen for primary demyelination in multiple sclerosis. Although the disease-inducing role of MOG has been established, its precise function in the CNS remains obscure. To gain new insights into the physiological and immunopathological role of MOG, we determined the 1.8-Å crystal structure of the MOG extracellular domain (MOGED). MOGED adopts a classical Ig (Ig variable domain) fold that was observed to form an antiparallel head-to-tail dimer. A dimeric form of native MOG was observed, and MOGED was also shown to dimerize in solution, consistent with the view of MOG acting as a homophilic adhesion receptor. The MOG35-55 peptide, a major encephalitogenic determinant recognized by both T cells and demyelinating autoantibodies, is partly occluded within the dimer interface. The structure of this key autoantigen suggests a relationship between the dimeric form of MOG within the myelin sheath and a breakdown of immunological tolerance to MOG that is observed in multiple sclerosis.


Journal of Experimental Medicine | 2006

A structural basis for selection and cross-species reactivity of the semi-invariant NKT cell receptor in CD1d/glycolipid recognition

Lars Kjer-Nielsen; Natalie A. Borg; Daniel G. Pellicci; Travis Beddoe; Lyudmila Kostenko; Craig S. Clements; Nicholas A. Williamson; Mark J. Smyth; Gurdyal S. Besra; Hugh H. Reid; Mandvi Bharadwaj; Dale I. Godfrey; Jamie Rossjohn; James McCluskey

Little is known regarding the basis for selection of the semi-invariant αβ T cell receptor (TCR) expressed by natural killer T (NKT) cells or how this mediates recognition of CD1d–glycolipid complexes. We have determined the structures of two human NKT TCRs that differ in their CDR3β composition and length. Both TCRs contain a conserved, positively charged pocket at the ligand interface that is lined by residues from the invariant TCR α- and semi-invariant β-chains. The cavity is centrally located and ideally suited to interact with the exposed glycosyl head group of glycolipid antigens. Sequences common to mouse and human invariant NKT TCRs reveal a contiguous conserved “hot spot” that provides a basis for the reactivity of NKT cells across species. Structural and functional data suggest that the CDR3β loop provides a plasticity mechanism that accommodates recognition of a variety of glycolipid antigens presented by CD1d. We propose a model of NKT TCR–CD1d–glycolipid interaction in which the invariant CDR3α loop is predicted to play a major role in determining the inherent bias toward CD1d. The findings define a structural basis for the selection of the semi-invariant αβ TCR and the unique antigen specificity of NKT cells.


Proceedings of the National Academy of Sciences of the United States of America | 2010

Hard wiring of T cell receptor specificity for the major histocompatibility complex is underpinned by TCR adaptability.

Scott R. Burrows; Zhenjun Chen; Julia K. Archbold; Fleur E. Tynan; Travis Beddoe; Lars Kjer-Nielsen; John J. Miles; Rajiv Khanna; Denis J. Moss; Yu Chih Liu; Stephanie Gras; Lyudmila Kostenko; Rebekah M. Brennan; Craig S. Clements; Andrew G. Brooks; Anthony W. Purcell; James McCluskey; Jamie Rossjohn

αβ T cell receptors (TCRs) are genetically restricted to corecognize peptide antigens bound to self-major histocompatibility complex (pMHC) molecules; however, the basis for this MHC specificity remains unclear. Despite the current dogma, evaluation of the TCR–pMHC-I structural database shows that the nongermline-encoded complementarity-determining region (CDR)-3 loops often contact the MHC-I, and the germline-encoded CDR1 and -2 loops frequently participate in peptide-mediated interactions. Nevertheless, different TCRs adopt a roughly conserved docking mode over the pMHC-I, in which three MHC-I residues (65, 69, and 155) are invariably contacted by the TCR in one way or another. Nonetheless, the impact of mutations at these three positions, either individually or together, was not uniformly detrimental to TCR recognition of pHLA-B*0801 or pHLA-B*3508. Moreover, when TCR–pMHC-I recognition was impaired, this could be partially restored by expression of the CD8 coreceptor. The structure of a TCR–pMHC-I complex in which these three (65, 69, and 155) MHC-I positions were all mutated resulted in shifting of the TCR footprint relative to the cognate complex and formation of compensatory interactions. Collectively, our findings reveal the inherent adaptability of the TCR in maintaining peptide recognition while accommodating changes to the central docking site on the pMHC-I.


Tissue Antigens | 2008

The major histocompatibility complex class Ib molecule HLA-E at the interface between innate and adaptive immunity.

Lucy C. Sullivan; Craig S. Clements; Jamie Rossjohn; Andrew G. Brooks

The non-classical major histocompatibility complex (MHC) class I molecule human leucocyte antigen (HLA)-E is the least polymorphic of all the MHC class I molecules and acts as a ligand for receptors of both the innate and the adaptive immune systems. The recognition of self-peptides complexed to HLA-E by the CD94-NKG2A receptor expressed by natural killer (NK) cells represents a crucial checkpoint for immune surveillance by NK cells. However, HLA-E can also be recognised by the T-cell receptor expressed by alphabeta CD8 T cells and therefore can play a role in the adaptive immune response to invading pathogens. The recent resolution of HLA-E in complex with both innate and adaptive ligands has provided insight into the dual role of this molecule in immunity.


Journal of Experimental Medicine | 2009

Natural micropolymorphism in human leukocyte antigens provides a basis for genetic control of antigen recognition

Julia K. Archbold; Whitney A. Macdonald; Stephanie Gras; Lauren K. Ely; John J. Miles; Melissa J. Bell; Rebekah M. Brennan; Travis Beddoe; Matthew C. J. Wilce; Craig S. Clements; Anthony W. Purcell; James McCluskey; Scott R. Burrows; Jamie Rossjohn

Human leukocyte antigen (HLA) gene polymorphism plays a critical role in protective immunity, disease susceptibility, autoimmunity, and drug hypersensitivity, yet the basis of how HLA polymorphism influences T cell receptor (TCR) recognition is unclear. We examined how a natural micropolymorphism in HLA-B44, an important and large HLA allelic family, affected antigen recognition. T cell–mediated immunity to an Epstein-Barr virus determinant (EENLLDFVRF) is enhanced when HLA-B*4405 was the presenting allotype compared with HLA-B*4402 or HLA-B*4403, each of which differ by just one amino acid. The micropolymorphism in these HLA-B44 allotypes altered the mode of binding and dynamics of the bound viral epitope. The structure of the TCR–HLA-B*4405EENLLDFVRF complex revealed that peptide flexibility was a critical parameter in enabling preferential engagement with HLA-B*4405 in comparison to HLA-B*4402/03. Accordingly, major histocompatibility complex (MHC) polymorphism can alter the dynamics of the peptide-MHC landscape, resulting in fine-tuning of T cell responses between closely related allotypes.


Immunity | 2009

Antigen Ligation Triggers a Conformational Change within the Constant Domain of the αβ T Cell Receptor

Travis Beddoe; Zhenjun Chen; Craig S. Clements; Lauren K. Ely; Simon Robert Bushell; Julian P. Vivian; Lars Kjer-Nielsen; Siew Siew Pang; Michelle Anne Dunstone; Yu Chih Liu; Whitney A. Macdonald; Matthew A. Perugini; Matthew C. J. Wilce; Scott R. Burrows; Anthony W. Purcell; Tony Tiganis; Stephen P. Bottomley; James McCluskey; Jamie Rossjohn

Ligation of the alphabeta T cell receptor (TCR) by a specific peptide-loaded major histocompatibility complex (pMHC) molecule initiates T cell signaling via the CD3 complex. However, the initial events that link antigen recognition to T cell signal transduction remain unclear. Here we show, via fluorescence-based experiments and structural analyses, that MHC-restricted antigen recognition by the alphabeta TCR results in a specific conformational change confined to the A-B loop within the alpha chain of the constant domain (Calpha). The apparent affinity constant of this A-B loop movement mirrored that of alphabeta TCR-pMHC ligation and was observed in two alphabeta TCRs with distinct pMHC specificities. The Ag-induced A-B loop conformational change could be inhibited by fixing the juxtapositioning of the constant domains and was shown to be reversible upon pMHC disassociation. Notably, the loop movement within the Calpha domain, although specific for an agonist pMHC ligand, was not observed with a pMHC antagonist. Moreover, mutagenesis of residues within the A-B loop impaired T cell signaling in an in vitro system of antigen-specific TCR stimulation. Collectively, our findings provide a basis for the earliest molecular events that underlie Ag-induced T cell triggering.

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Scott R. Burrows

QIMR Berghofer Medical Research Institute

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