Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Matthew Crispin is active.

Publication


Featured researches published by Matthew Crispin.


Science | 2011

A potent and broad neutralizing antibody recognizes and penetrates the HIV glycan shield.

Robert Pejchal; Katie J. Doores; Laura M. Walker; Reza Khayat; Po-Ssu Huang; Sheng-Kai Wang; Robyn L. Stanfield; Jean-Philippe Julien; Alejandra Ramos; Matthew Crispin; Rafael S. Depetris; Umesh Katpally; Andre J. Marozsan; Albert Cupo; Sebastien Maloveste; Yan Liu; Ryan McBride; Yukishige Ito; Rogier W. Sanders; Cassandra Ogohara; James C. Paulson; Ten Feizi; Christopher N. Scanlan; Chi-Huey Wong; John P. Moore; William C. Olson; Andrew B. Ward; Pascal Poignard; William R. Schief; Dennis R. Burton

An HIV antibody achieves potency and breadth by binding simultaneously to two conserved glycans on the viral envelope protein. The HIV envelope (Env) protein gp120 is protected from antibody recognition by a dense glycan shield. However, several of the recently identified PGT broadly neutralizing antibodies appear to interact directly with the HIV glycan coat. Crystal structures of antigen-binding fragments (Fabs) PGT 127 and 128 with Man9 at 1.65 and 1.29 angstrom resolution, respectively, and glycan binding data delineate a specific high mannose-binding site. Fab PGT 128 complexed with a fully glycosylated gp120 outer domain at 3.25 angstroms reveals that the antibody penetrates the glycan shield and recognizes two conserved glycans as well as a short β-strand segment of the gp120 V3 loop, accounting for its high binding affinity and broad specificify. Furthermore, our data suggest that the high neutralization potency of PGT 127 and 128 immunoglobulin Gs may be mediated by cross-linking Env trimers on the viral surface.


Journal of Clinical Investigation | 2013

Natural variation in Fc glycosylation of HIV-specific antibodies impacts antiviral activity

Margaret E. Ackerman; Matthew Crispin; Xiaojie Yu; Kavitha Baruah; Austin W. Boesch; David J. Harvey; Anne Sophie Dugast; Erin L. Heizen; Altan Ercan; Ickwon Choi; Hendrik Streeck; Peter Nigrovic; Chris Bailey-Kellogg; Chris Scanlan; Galit Alter

While the induction of a neutralizing antibody response against HIV remains a daunting goal, data from both natural infection and vaccine-induced immune responses suggest that it may be possible to induce antibodies with enhanced Fc effector activity and improved antiviral control via vaccination. However, the specific features of naturally induced HIV-specific antibodies that allow for the potent recruitment of antiviral activity and the means by which these functions are regulated are poorly defined. Because antibody effector functions are critically dependent on antibody Fc domain glycosylation, we aimed to define the natural glycoforms associated with robust Fc-mediated antiviral activity. We demonstrate that spontaneous control of HIV and improved antiviral activity are associated with a dramatic shift in the global antibody-glycosylation profile toward agalactosylated glycoforms. HIV-specific antibodies exhibited an even greater frequency of agalactosylated, afucosylated, and asialylated glycans. These glycoforms were associated with enhanced Fc-mediated reduction of viral replication and enhanced Fc receptor binding and were consistent with transcriptional profiling of glycosyltransferases in peripheral B cells. These data suggest that B cell programs tune antibody glycosylation actively in an antigen-specific manner, potentially contributing to antiviral control during HIV infection.


Journal of the American Chemical Society | 2012

An endoglycosidase with alternative glycan specificity allows broadened glycoprotein remodelling.

Jonathan J. Goodfellow; Kavitha Baruah; Keisuke Yamamoto; Camille Bonomelli; Benjamin Krishna; David J. Harvey; Matthew Crispin; Christopher N. Scanlan; Benjamin G. Davis

Protein endoglycosidases are useful for biocatalytic alteration of glycans on protein surfaces, but the currently limited selectivity of endoglycosidases has prevented effective manipulation of certain N-linked glycans widely found in nature. Here we reveal that a bacterial endoglycosidase from Streptococcus pyogenes , EndoS, is complementary to other known endoglycosidases (EndoA, EndoH) used for current protein remodeling. It allows processing of complex-type N-linked glycans +/- core fucosylation but does not process oligomannose- or hybrid-type glycans. This biocatalytic activity now addresses previously refractory antibody glycoforms.


Journal of the American Society for Mass Spectrometry | 2011

Ion Mobility Mass Spectrometry for Extracting Spectra of N-Glycans Directly from Incubation Mixtures Following Glycan Release: Application to Glycans from Engineered Glycoforms of Intact, Folded HIV gp120

David J. Harvey; Frank Sobott; Matthew Crispin; Antoni Wrobel; Camille Bonomelli; Snezana Vasiljevic; Christopher N. Scanlan; Charlotte A. Scarff; Konstantinos Thalassinos; James H. Scrivens

The analysis of glycosylation from native biological sources is often frustrated by the low abundances of available material. Here, ion mobility combined with electrospray ionization mass spectrometry have been used to extract the spectra of N-glycans released with PNGase F from a serial titration of recombinantly expressed envelope glycoprotein, gp120, from the human immunodeficiency virus (HIV). Analysis was also performed on gp120 expressed in the α-mannosidase inhibitor, and in a matched mammalian cell line deficient in GlcNAc transferase I. Without ion mobility separation, ESI spectra frequently contained no observable ions from the glycans whereas ions from other compounds such as detergents and residual buffer salts were abundant. After ion mobility separation on a Waters T-wave ion mobility mass spectrometer, the N-glycans fell into a unique region of the ion mobility/m/z plot allowing their profiles to be extracted with good signal:noise ratios. This method allowed N-glycan profiles to be extracted from crude incubation mixtures with no clean-up even in the presence of surfactants such as NP40. Furthermore, this technique allowed clear profiles to be obtained from sub-microgram amounts of glycoprotein. Glycan profiles were similar to those generated by MALDI-TOF MS although they were more susceptible to double charging and fragmentation. Structural analysis could be accomplished by MS/MS experiments in either positive or negative ion mode but negative ion mode gave the most informative spectra and provided a reliable approach to the analysis of glycans from small amounts of glycoprotein.


Journal of the American Chemical Society | 2012

Chemical and Structural Analysis of an Antibody Folding Intermediate Trapped during Glycan Biosynthesis

Thomas A. Bowden; Kavitha Baruah; Charlotte H. Coles; David J. Harvey; Xiaojie Yu; Byeong Doo Song; David I. Stuart; A. Radu Aricescu; Christopher N. Scanlan; E. Yvonne Jones; Matthew Crispin

Human IgG Fc glycosylation modulates immunological effector functions such as antibody-dependent cellular cytotoxicity and phagocytosis. Engineering of Fc glycans therefore enables fine-tuning of the therapeutic properties of monoclonal antibodies. The N-linked glycans of Fc are typically complex-type, forming a network of noncovalent interactions along the protein surface of the Cγ2 domain. Here, we manipulate the mammalian glycan-processing pathway to trap IgG1 Fc at sequential stages of maturation, from oligomannose- to hybrid- to complex-type glycans, and show that the Fc is structurally stabilized following the transition of glycans from their hybrid- to complex-type state. X-ray crystallographic analysis of this hybrid-type intermediate reveals that N-linked glycans undergo conformational changes upon maturation, including a flip within the trimannosyl core. Our crystal structure of this intermediate reveals a molecular basis for antibody biogenesis and provides a template for the structure-guided engineering of the protein–glycan interface of therapeutic antibodies.


Journal of Molecular Biology | 2012

Selective deactivation of serum IgG: a general strategy for the enhancement of monoclonal antibody receptor interactions

Kavitha Baruah; Thomas A. Bowden; Benjamin Krishna; Raymond A. Dwek; Matthew Crispin; Christopher N. Scanlan

Serum IgG is a potent inhibitor of monoclonal antibody (mAb) binding to the cell-surface Fcγ receptors (FcγRs), which mediate cytotoxic and phagocytic effector functions. Here, we show that this competition can be eliminated, selectively, by the introduction to serum of (i) an enzyme that displaces Fc from FcγRs and (ii) a modification present in the therapeutic mAb that renders it resistant to that enzyme. Specifically, we show that (i) EndoS (endoglycosidase S) cleaves only complex-type glycans of the type found on IgG but (ii) is inactive against an engineered IgG Fc with oligomannose-type glycans. EndoS thus reduces FcγR binding of serum IgG, but not that of engineered mAb. Introduction of both the engineered mAb and endoglycosidase in serum leads to a dramatic increase in FcγR binding compared to the introduction of mAb in serum alone. Antibody receptor refocusing is a general technique for boosting the effector signal of therapeutic antibodies.


Journal of the American Society for Mass Spectrometry | 2012

MALDI-MS/MS with traveling wave ion mobility for the structural analysis of N-linked glycans.

David J. Harvey; Charlotte A. Scarff; Matthew Crispin; Christopher N. Scanlan; Camille Bonomelli; James H. Scrivens

The preference for singly charged ion formation by MALDI makes it a better choice than electrospray ionization for profiling mixtures of N-glycans. For structural analysis, fragmentation of negative ions often yields more informative spectra than fragmentation of positive ones but such ions are more difficult to produce from neutral glycans under MALDI conditions. This work investigates conditions for the formation of both positive and negative ions by MALDI from N-linked glycans released from glycoproteins and their subsequent MS/MS and ion mobility behaviour. 2,4,6-Trihydroxyacetophenone (THAP) doped with ammonium nitrate was found to give optimal ion yields in negative ion mode. Ammonium chloride or phosphate also yielded prominent adducts but anionic carbohydrates such as sulfated N-glycans tended to ionize preferentially. Carbohydrates adducted with all three adducts (phosphate, chloride, and nitrate) produced good negative ion CID spectra but those adducted with iodide and sulfate did not yield fragment ions although they gave stronger signals. Fragmentation paralleled that seen following electrospray ionization providing superior spectra than could be obtained by PSD on MALDI-TOF instruments or with ion traps. In addition, ion mobility drift times of the adducted glycans and the ability of this technique to separate isomers also mirrored those obtained following ESI sample introduction. Ion mobility also allowed profiles to be obtained from samples whose MALDI spectra showed no evidence of such ions allowing the technique to be used in conditions where sample amounts were limiting. The method was applied to N-glycans released from the recombinant human immunodeficiency virus glycoprotein, gp120.


Journal of Virology | 2015

Glycan Microheterogeneity at the PGT135 Antibody Recognition Site on HIV-1 gp120 Reveals a Molecular Mechanism for Neutralization Resistance

Laura K. Pritchard; Daniel Spencer; Louise Royle; Snezana Vasiljevic; Stefanie A. Krumm; Katie J. Doores; Matthew Crispin

ABSTRACT Broadly neutralizing antibodies have been isolated that bind the glycan shield of the HIV-1 envelope spike. One such antibody, PGT135, contacts the intrinsic mannose patch of gp120 at the Asn332, Asn392, and Asn386 glycosylation sites. Here, site-specific glycosylation analysis of recombinant gp120 revealed glycan microheterogeneity sufficient to explain the existence of a minor population of virions resistant to PGT135 neutralization. Target microheterogeneity and antibody glycan specificity are therefore important parameters in HIV-1 vaccine design.


Acta Crystallographica Section F-structural Biology and Crystallization Communications | 2011

Use of the α-mannosidase I inhibitor kifunensine allows the crystallization of apo CTLA-4 homodimer produced in long-term cultures of Chinese hamster ovary cells.

Chao Yu; Matthew Crispin; Andreas F.-P. Sonnen; David J. Harvey; Veronica T. Chang; Edward J. Evans; Christopher N. Scanlan; David I. Stuart; Robert J. C. Gilbert; Simon J. Davis

The α-mannosidase I inhibitor kifunensine inhibited N-glycan processing in long-term cultures of Chinese hamster ovary cells, allowing deglycosylation and crystallization of the homodimeric extracellular region of the inhibitory glycoprotein receptor CTLA-4 (CD152).


Methods of Molecular Biology | 2015

Determination of N -linked Glycosylation in Viral Glycoproteins by Negative Ion Mass Spectrometry and Ion Mobility

David Bitto; David J. Harvey; Steinar Halldorsson; Katie J. Doores; Laura K. Pritchard; Juha T. Huiskonen; Thomas A. Bowden; Matthew Crispin

Glycan analysis of virion-derived glycoproteins is challenging due to the difficulties in glycoprotein isolation and low sample abundance. Here, we describe how ion mobility mass spectrometry can be used to obtain spectra from virion samples. We also describe how negative ion fragmentation of glycans can be used to probe structural features of virion glycans.

Collaboration


Dive into the Matthew Crispin's collaboration.

Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar

Thomas A. Bowden

Wellcome Trust Centre for Human Genetics

View shared research outputs
Top Co-Authors

Avatar

Xiaojie Yu

St. Michael's Hospital

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Researchain Logo
Decentralizing Knowledge