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Featured researches published by Adam J. Reid.


Nucleic Acids Research | 2007

The CATH domain structure database: new protocols and classification levels give a more comprehensive resource for exploring evolution

Lesley H. Greene; Tony E. Lewis; Sarah Addou; Alison L. Cuff; Timothy Dallman; Mark Dibley; Oliver Redfern; Frances M. G. Pearl; Rekha Nambudiry; Adam J. Reid; Ian Sillitoe; Corin Yeats; Janet M. Thornton; Christine A. Orengo

We report the latest release (version 3.0) of the CATH protein domain database (). There has been a 20% increase in the number of structural domains classified in CATH, up to 86 151 domains. Release 3.0 comprises 1110 fold groups and 2147 homologous superfamilies. To cope with the increases in diverse structural homologues being determined by the structural genomics initiatives, more sensitive methods have been developed for identifying boundaries in multi-domain proteins and for recognising homologues. The CATH classification update is now being driven by an integrated pipeline that links these automated procedures with validation steps, that have been made easier by the provision of information rich web pages summarising comparison scores and relevant links to external sites for each domain being classified. An analysis of the population of domains in the CATH hierarchy and several domain characteristics are presented for version 3.0. We also report an update of the CATH Dictionary of homologous structures (CATH-DHS) which now contains multiple structural alignments, consensus information and functional annotations for 1459 well populated superfamilies in CATH. CATH is directly linked to the Gene3D database which is a projection of CATH structural data onto ∼2 million sequences in completed genomes and UniProt.


PLOS Pathogens | 2011

Genomic insights into the origin of parasitism in the emerging plant pathogen Bursaphelenchus xylophilus.

Taisei Kikuchi; James A. Cotton; Jonathan J. Dalzell; Koichi Hasegawa; Natsumi Kanzaki; Paul McVeigh; Takuma Takanashi; Isheng J. Tsai; Samuel A. Assefa; Peter J. A. Cock; Thomas D. Otto; Martin Hunt; Adam J. Reid; Alejandro Sanchez-Flores; Kazuko Tsuchihara; Toshiro Yokoi; Mattias C. Larsson; Johji Miwa; Aaron G. Maule; Norio Sahashi; John T. Jones; Matthew Berriman

Bursaphelenchus xylophilus is the nematode responsible for a devastating epidemic of pine wilt disease in Asia and Europe, and represents a recent, independent origin of plant parasitism in nematodes, ecologically and taxonomically distinct from other nematodes for which genomic data is available. As well as being an important pathogen, the B. xylophilus genome thus provides a unique opportunity to study the evolution and mechanism of plant parasitism. Here, we present a high-quality draft genome sequence from an inbred line of B. xylophilus, and use this to investigate the biological basis of its complex ecology which combines fungal feeding, plant parasitic and insect-associated stages. We focus particularly on putative parasitism genes as well as those linked to other key biological processes and demonstrate that B. xylophilus is well endowed with RNA interference effectors, peptidergic neurotransmitters (including the first description of ins genes in a parasite) stress response and developmental genes and has a contracted set of chemosensory receptors. B. xylophilus has the largest number of digestive proteases known for any nematode and displays expanded families of lysosome pathway genes, ABC transporters and cytochrome P450 pathway genes. This expansion in digestive and detoxification proteins may reflect the unusual diversity in foods it exploits and environments it encounters during its life cycle. In addition, B. xylophilus possesses a unique complement of plant cell wall modifying proteins acquired by horizontal gene transfer, underscoring the impact of this process on the evolution of plant parasitism by nematodes. Together with the lack of proteins homologous to effectors from other plant parasitic nematodes, this confirms the distinctive molecular basis of plant parasitism in the Bursaphelenchus lineage. The genome sequence of B. xylophilus adds to the diversity of genomic data for nematodes, and will be an important resource in understanding the biology of this unusual parasite.


Genome Biology | 2013

The genome and transcriptome of Haemonchus contortus, a key model parasite for drug and vaccine discovery

Roz Laing; Taisei Kikuchi; Axel Martinelli; Isheng J. Tsai; Robin N. Beech; Elizabeth Redman; Nancy Holroyd; David J. Bartley; Helen Beasley; Collette Britton; David M. Curran; Eileen Devaney; Aude Gilabert; Martin Hunt; Frank Jackson; Stephanie L Johnston; Ivan Kryukov; Keyu Li; Alison A. Morrison; Adam J. Reid; Neil Sargison; Gary Ian Saunders; James D. Wasmuth; Adrian J. Wolstenholme; Matthew Berriman; John S. Gilleard; James A. Cotton

BackgroundThe small ruminant parasite Haemonchus contortus is the most widely used parasitic nematode in drug discovery, vaccine development and anthelmintic resistance research. Its remarkable propensity to develop resistance threatens the viability of the sheep industry in many regions of the world and provides a cautionary example of the effect of mass drug administration to control parasitic nematodes. Its phylogenetic position makes it particularly well placed for comparison with the free-living nematode Caenorhabditis elegans and the most economically important parasites of livestock and humans.ResultsHere we report the detailed analysis of a draft genome assembly and extensive transcriptomic dataset for H. contortus. This represents the first genome to be published for a strongylid nematode and the most extensive transcriptomic dataset for any parasitic nematode reported to date. We show a general pattern of conservation of genome structure and gene content between H. contortus and C. elegans, but also a dramatic expansion of important parasite gene families. We identify genes involved in parasite-specific pathways such as blood feeding, neurological function, and drug metabolism. In particular, we describe complete gene repertoires for known drug target families, providing the most comprehensive understanding yet of the action of several important anthelmintics. Also, we identify a set of genes enriched in the parasitic stages of the lifecycle and the parasite gut that provide a rich source of vaccine and drug target candidates.ConclusionsThe H. contortus genome and transcriptome provide an essential platform for postgenomic research in this and other important strongylid parasites.


PLOS Pathogens | 2012

Comparative Genomics of the Apicomplexan Parasites Toxoplasma gondii and Neospora caninum: Coccidia Differing in Host Range and Transmission Strategy

Adam J. Reid; Sarah J. Vermont; James A. Cotton; David Harris; Grant A. Hill-Cawthorne; Stephanie Könen-Waisman; Sophia M. Latham; Tobias Mourier; Rebecca Norton; Michael A. Quail; Mandy Sanders; Dhanasekaran Shanmugam; Amandeep Sohal; James D. Wasmuth; Brian P. Brunk; Michael E. Grigg; Jonathan C. Howard; John Parkinson; David S. Roos; Alexander J. Trees; Matthew Berriman; Arnab Pain; Jonathan M. Wastling

Toxoplasma gondii is a zoonotic protozoan parasite which infects nearly one third of the human population and is found in an extraordinary range of vertebrate hosts. Its epidemiology depends heavily on horizontal transmission, especially between rodents and its definitive host, the cat. Neospora caninum is a recently discovered close relative of Toxoplasma, whose definitive host is the dog. Both species are tissue-dwelling Coccidia and members of the phylum Apicomplexa; they share many common features, but Neospora neither infects humans nor shares the same wide host range as Toxoplasma, rather it shows a striking preference for highly efficient vertical transmission in cattle. These species therefore provide a remarkable opportunity to investigate mechanisms of host restriction, transmission strategies, virulence and zoonotic potential. We sequenced the genome of N. caninum and transcriptomes of the invasive stage of both species, undertaking an extensive comparative genomics and transcriptomics analysis. We estimate that these organisms diverged from their common ancestor around 28 million years ago and find that both genomes and gene expression are remarkably conserved. However, in N. caninum we identified an unexpected expansion of surface antigen gene families and the divergence of secreted virulence factors, including rhoptry kinases. Specifically we show that the rhoptry kinase ROP18 is pseudogenised in N. caninum and that, as a possible consequence, Neospora is unable to phosphorylate host immunity-related GTPases, as Toxoplasma does. This defense strategy is thought to be key to virulence in Toxoplasma. We conclude that the ecological niches occupied by these species are influenced by a relatively small number of gene products which operate at the host-parasite interface and that the dominance of vertical transmission in N. caninum may be associated with the evolution of reduced virulence in this species.


Genome Biology | 2014

The genome and life-stage specific transcriptomes of Globodera pallida elucidate key aspects of plant parasitism by a cyst nematode

James A. Cotton; Catherine J. Lilley; Laura M. Jones; Taisei Kikuchi; Adam J. Reid; Peter Thorpe; Isheng J. Tsai; Helen Beasley; Vivian C. Blok; Peter J. A. Cock; Sebastian Eves-van den Akker; Nancy Holroyd; Martin Hunt; Sophie Mantelin; Hardeep Naghra; Arnab Pain; Juan E. Palomares-Rius; Magdalena Zarowiecki; Matthew Berriman; John T. Jones; Peter E. Urwin

BackgroundGlobodera pallida is a devastating pathogen of potato crops, making it one of the most economically important plant parasitic nematodes. It is also an important model for the biology of cyst nematodes. Cyst nematodes and root-knot nematodes are the two most important plant parasitic nematode groups and together represent a global threat to food security.ResultsWe present the complete genome sequence of G. pallida, together with transcriptomic data from most of the nematode life cycle, particularly focusing on the life cycle stages involved in root invasion and establishment of the biotrophic feeding site. Despite the relatively close phylogenetic relationship with root-knot nematodes, we describe a very different gene family content between the two groups and in particular extensive differences in the repertoire of effectors, including an enormous expansion of the SPRY domain protein family in G. pallida, which includes the SPRYSEC family of effectors. This highlights the distinct biology of cyst nematodes compared to the root-knot nematodes that were, until now, the only sedentary plant parasitic nematodes for which genome information was available. We also present in-depth descriptions of the repertoires of other genes likely to be important in understanding the unique biology of cyst nematodes and of potential drug targets and other targets for their control.ConclusionsThe data and analyses we present will be central in exploiting post-genomic approaches in the development of much-needed novel strategies for the control of G. pallida and related pathogens.


Nature | 2013

Vector transmission regulates immune control of Plasmodium virulence

Philip J Spence; William Jarra; Prisca Lévy; Adam J. Reid; Lia Chappell; Thibaut Brugat; Mandy Sanders; Matthew Berriman; Jean Langhorne

Defining mechanisms by which Plasmodium virulence is regulated is central to understanding the pathogenesis of human malaria. Serial blood passage of Plasmodium through rodents, primates or humans increases parasite virulence, suggesting that vector transmission regulates Plasmodium virulence within the mammalian host. In agreement, disease severity can be modified by vector transmission, which is assumed to ‘reset’ Plasmodium to its original character. However, direct evidence that vector transmission regulates Plasmodium virulence is lacking. Here we use mosquito transmission of serially blood passaged (SBP) Plasmodium chabaudi chabaudi to interrogate regulation of parasite virulence. Analysis of SBP P. c. chabaudi before and after mosquito transmission demonstrates that vector transmission intrinsically modifies the asexual blood-stage parasite, which in turn modifies the elicited mammalian immune response, which in turn attenuates parasite growth and associated pathology. Attenuated parasite virulence associates with modified expression of the pir multi-gene family. Vector transmission of Plasmodium therefore regulates gene expression of probable variant antigens in the erythrocytic cycle, modifies the elicited mammalian immune response, and thus regulates parasite virulence. These results place the mosquito at the centre of our efforts to dissect mechanisms of protective immunity to malaria for the development of an effective vaccine.


Genome Research | 2014

Genomic analysis of the causative agents of coccidiosis in domestic chickens

Adam J. Reid; Damer P. Blake; Hifzur Rahman Ansari; Karen J. Billington; Hilary P. Browne; Josephine M. Bryant; Matthew Dunn; Stacy S. Hung; Fumiya Kawahara; Diego Miranda-Saavedra; Tareq M. Malas; Tobias Mourier; Hardeep Naghra; Mridul Nair; Thomas D. Otto; Neil D. Rawlings; Pierre Rivailler; Alejandro Sanchez-Flores; Mandy Sanders; Chandra Subramaniam; Yea-Ling Tay; Yong Woo; Xikun Wu; Bart Barrell; Paul H. Dear; Christian Doerig; Arthur Gruber; Alasdair Ivens; John Parkinson; Marie-Adele Rajandream

Global production of chickens has trebled in the past two decades and they are now the most important source of dietary animal protein worldwide. Chickens are subject to many infectious diseases that reduce their performance and productivity. Coccidiosis, caused by apicomplexan protozoa of the genus Eimeria, is one of the most important poultry diseases. Understanding the biology of Eimeria parasites underpins development of new drugs and vaccines needed to improve global food security. We have produced annotated genome sequences of all seven species of Eimeria that infect domestic chickens, which reveal the full extent of previously described repeat-rich and repeat-poor regions and show that these parasites possess the most repeat-rich proteomes ever described. Furthermore, while no other apicomplexan has been found to possess retrotransposons, Eimeria is home to a family of chromoviruses. Analysis of Eimeria genes involved in basic biology and host-parasite interaction highlights adaptations to a relatively simple developmental life cycle and a complex array of co-expressed surface proteins involved in host cell binding.


Nature Genetics | 2014

Whipworm genome and dual-species transcriptome analyses provide molecular insights into an intimate host-parasite interaction

Bernardo J. Foth; Isheng J. Tsai; Adam J. Reid; Allison J. Bancroft; Sarah Nichol; Alan Tracey; Nancy Holroyd; James A. Cotton; Eleanor Stanley; Magdalena Zarowiecki; Jimmy Z. Liu; Thomas Huckvale; Philip J Cooper; Richard K. Grencis; Matthew Berriman

Whipworms are common soil-transmitted helminths that cause debilitating chronic infections in man. These nematodes are only distantly related to Caenorhabditis elegans and have evolved to occupy an unusual niche, tunneling through epithelial cells of the large intestine. We report here the whole-genome sequences of the human-infective Trichuris trichiura and the mouse laboratory model Trichuris muris. On the basis of whole-transcriptome analyses, we identify many genes that are expressed in a sex- or life stage–specific manner and characterize the transcriptional landscape of a morphological region with unique biological adaptations, namely, bacillary band and stichosome, found only in whipworms and related parasites. Using RNA sequencing data from whipworm-infected mice, we describe the regulated T helper 1 (TH1)-like immune response of the chronically infected cecum in unprecedented detail. In silico screening identified numerous new potential drug targets against trichuriasis. Together, these genomes and associated functional data elucidate key aspects of the molecular host-parasite interactions that define chronic whipworm infection.


Nature Genetics | 2016

The genomic basis of parasitism in the Strongyloides clade of nematodes

Vicky L. Hunt; Isheng J. Tsai; Avril Coghlan; Adam J. Reid; Nancy Holroyd; Bernardo J. Foth; Alan Tracey; James A. Cotton; Eleanor Stanley; Helen Beasley; Hayley M. Bennett; Karen Brooks; Bhavana Harsha; Rei Kajitani; Arpita Kulkarni; Dorothee Harbecke; Eiji Nagayasu; Sarah Nichol; Yoshitoshi Ogura; Michael A. Quail; Nadine P. Randle; Dong Xia; Norbert W. Brattig; Hanns Soblik; Diogo M Ribeiro; Alejandro Sanchez-Flores; Tetsuya Hayashi; Takehiko Itoh; Dee R. Denver; Warwick N. Grant

Soil-transmitted nematodes, including the Strongyloides genus, cause one of the most prevalent neglected tropical diseases. Here we compare the genomes of four Strongyloides species, including the human pathogen Strongyloides stercoralis, and their close relatives that are facultatively parasitic (Parastrongyloides trichosuri) and free-living (Rhabditophanes sp. KR3021). A significant paralogous expansion of key gene families—families encoding astacin-like and SCP/TAPS proteins—is associated with the evolution of parasitism in this clade. Exploiting the unique Strongyloides life cycle, we compare the transcriptomes of the parasitic and free-living stages and find that these same gene families are upregulated in the parasitic stages, underscoring their role in nematode parasitism.


Structure | 2009

The CATH Hierarchy Revisited—Structural Divergence in Domain Superfamilies and the Continuity of Fold Space

Alison L. Cuff; Oliver Redfern; Lesley H. Greene; Ian Sillitoe; Tony E. Lewis; Mark Dibley; Adam J. Reid; Frances M. G. Pearl; Tim Dallman; Annabel E. Todd; Richard C. Garratt; Janet M. Thornton; Christine A. Orengo

Summary This paper explores the structural continuum in CATH and the extent to which superfamilies adopt distinct folds. Although most superfamilies are structurally conserved, in some of the most highly populated superfamilies (4% of all superfamilies) there is considerable structural divergence. While relatives share a similar fold in the evolutionary conserved core, diverse elaborations to this core can result in significant differences in the global structures. Applying similar protocols to examine the extent to which structural overlaps occur between different fold groups, it appears this effect is confined to just a few architectures and is largely due to small, recurring super-secondary motifs (e.g., αβ-motifs, α-hairpins). Although 24% of superfamilies overlap with superfamilies having different folds, only 14% of nonredundant structures in CATH are involved in overlaps. Nevertheless, the existence of these overlaps suggests that, in some regions of structure space, the fold universe should be seen as more continuous.

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Matthew Berriman

Wellcome Trust Sanger Institute

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Mandy Sanders

Wellcome Trust Sanger Institute

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James A. Cotton

Wellcome Trust Sanger Institute

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Corin Yeats

University College London

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Nancy Holroyd

Wellcome Trust Sanger Institute

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