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Dive into the research topics where Emma Hilton is active.

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Featured researches published by Emma Hilton.


Nature Genetics | 2011

Tartrate-resistant acid phosphatase deficiency causes a bone dysplasia with autoimmunity and a type I interferon expression signature

Tracy A. Briggs; Gillian I. Rice; Sarah B. Daly; Jill Urquhart; Hannah Gornall; Brigitte Bader-Meunier; Kannan Baskar; Shankar Baskar; Veronique Baudouin; Michael W. Beresford; Graeme C.M. Black; Rebecca J. Dearman; Francis de Zegher; Emily S. Foster; Camille Frances; Alison R. Hayman; Emma Hilton; Chantal Job-Deslandre; M. L. Kulkarni; Martine Le Merrer; Agnès Linglart; Simon C. Lovell; Kathrin Maurer; L. Musset; Vincent Navarro; Capucine Picard; Anne Puel; Frédéric Rieux-Laucat; Chaim M. Roifman; Sabine Scholl-Bürgi

We studied ten individuals from eight families showing features consistent with the immuno-osseous dysplasia spondyloenchondrodysplasia. Of particular note was the diverse spectrum of autoimmune phenotypes observed in these individuals (cases), including systemic lupus erythematosus, Sjögrens syndrome, hemolytic anemia, thrombocytopenia, hypothyroidism, inflammatory myositis, Raynauds disease and vitiligo. Haplotype data indicated the disease gene to be on chromosome 19p13, and linkage analysis yielded a combined multipoint log10 odds (LOD) score of 3.6. Sequencing of ACP5, encoding tartrate-resistant acid phosphatase, identified biallelic mutations in each of the cases studied, and in vivo testing confirmed a loss of expressed protein. All eight cases assayed showed elevated serum interferon alpha activity, and gene expression profiling in whole blood defined a type I interferon signature. Our findings reveal a previously unrecognized link between tartrate-resistant acid phosphatase activity and interferon metabolism and highlight the importance of type I interferon in the genesis of autoimmunity.


Human Mutation | 2008

Mutations in GDF6 are associated with vertebral segmentation defects in Klippel-Feil syndrome.

May Tassabehji; Zhi Ming Fang; Emma Hilton; Julie McGaughran; Zhongming Zhao; Charles E. de Bock; Emma Howard; Michael Malass; Dian Donnai; Ashish D. Diwan; Forbes D.C. Manson; Dédée F. Murrell; Raymond A. Clarke

Klippel‐Feil syndrome (KFS) is a congenital disorder of spinal segmentation distinguished by the bony fusion of anterior/cervical vertebrae. Scoliosis, mirror movements, otolaryngological, kidney, ocular, cranial, limb, and/or digit anomalies are often associated. Here we report mutations at the GDF6 gene locus in familial and sporadic cases of KFS including the recurrent missense mutation of an extremely conserved residue c.866T>C (p.Leu289Pro) in association with mirror movements and an inversion breakpoint downstream of the gene in association with carpal, tarsal, and vertebral fusions. GDF6 is expressed at the boundaries of the developing carpals, tarsals, and vertebrae and within the adult vertebral disc. GDF6 knockout mice are best distinguished by fusion of carpals and tarsals and GDF6 knockdown in Xenopus results in a high incidence of anterior axial defects consistent with a role for GDF6 in the etiology, diversity, and variability of KFS. Hum Mutat 0,1–11, 2008.


American Journal of Human Genetics | 2009

The Primordial Growth Disorder 3-M Syndrome Connects Ubiquitination to the Cytoskeletal Adaptor OBSL1

Dan Hanson; Philip G. Murray; Amit Sud; Samia A. Temtamy; Mona Aglan; Andrea Superti-Furga; Sue E. Holder; Jill Urquhart; Emma Hilton; Forbes D.C. Manson; Peter J. Scambler; Graeme C.M. Black; Peter Clayton

3-M syndrome is an autosomal-recessive primordial growth disorder characterized by significant intrauterine and postnatal growth restriction. Mutations in the CUL7 gene are known to cause 3-M syndrome. In 3-M syndrome patients that do not carry CUL7 mutations, we performed high-density genome-wide SNP mapping to identify a second locus at 2q35-q36.1. Further haplotype analysis revealed a 1.29 Mb interval in which the underlying gene is located and we subsequently discovered seven distinct null mutations from 10 families within the gene OBSL1. OBSL1 is a putative cytoskeletal adaptor protein that localizes to the nuclear envelope. We were also able to demonstrate that loss of OBSL1 leads to downregulation of CUL7, implying a role for OBSL1 in the maintenance of CUL7 protein levels and suggesting that both proteins are involved within the same molecular pathway.


European Journal of Human Genetics | 2009

BCOR analysis in patients with OFCD and Lenz microphthalmia syndromes, mental retardation with ocular anomalies, and cardiac laterality defects

Emma Hilton; Jennifer J. Johnston; Sandra Whalen; Nobuhiko Okamoto; Yoshikazu Hatsukawa; Juntaro Nishio; Hiroshi Kohara; Yoshiko Hirano; Seiji Mizuno; Chiharu Torii; Kenjiro Kosaki; Sylvie Manouvrier; Odile Boute; Rahat Perveen; Caroline Law; Anthony T. Moore; David Fitzpatrick; Johannes R. Lemke; Florence Fellmann; François-Guillaume Debray; Florence Dastot-Le-Moal; Marion Gerard; Josiane Martin; Pierre Bitoun; Michel Goossens; Alain Verloes; Albert Schinzel; Deborah Bartholdi; Tanya Bardakjian; Beverly N. Hay

Oculofaciocardiodental (OFCD) and Lenz microphthalmia syndromes form part of a spectrum of X-linked microphthalmia disorders characterized by ocular, dental, cardiac and skeletal anomalies and mental retardation. The two syndromes are allelic, caused by mutations in the BCL-6 corepressor gene (BCOR). To extend the series of phenotypes associated with pathogenic mutations in BCOR, we sequenced the BCOR gene in patients with (1) OFCD syndrome, (2) putative X-linked (‘Lenz’) microphthalmia syndrome, (3) isolated ocular defects and (4) laterality phenotypes. We present a new cohort of females with OFCD syndrome and null mutations in BCOR, supporting the hypothesis that BCOR is the sole molecular cause of this syndrome. We identify for the first time mosaic BCOR mutations in two females with OFCD syndrome and one apparently asymptomatic female. We present a female diagnosed with isolated ocular defects and identify minor features of OFCD syndrome, suggesting that OFCD syndrome may be mild and underdiagnosed. We have sequenced a cohort of males diagnosed with putative X-linked microphthalmia and found a mutation, p.P85L, in a single case, suggesting that BCOR mutations are not a major cause of X-linked microphthalmia in males. The absence of BCOR mutations in a panel of patients with non-specific laterality defects suggests that mutations in BCOR are not a major cause of isolated heart and laterality defects. Phenotypic analysis of OFCD and Lenz microphthalmia syndromes shows that in addition to the standard diagnostic criteria of congenital cataract, microphthalmia and radiculomegaly, patients should be examined for skeletal defects, particularly radioulnar synostosis, and cardiac/laterality defects.


American Journal of Human Genetics | 2011

Identification and Characterization of an Inborn Error of Metabolism Caused by Dihydrofolate Reductase Deficiency

Siddharth Banka; Henk J. Blom; John H. Walter; Majid Aziz; Jill Urquhart; Christopher M. Clouthier; Gillian I. Rice; Arjan P.M. de Brouwer; Emma Hilton; Grace Vassallo; Andrew Will; Desirée E.C. Smith; Yvo M. Smulders; Ron A. Wevers; Robert Steinfeld; Simon Heales; Yanick J. Crow; Joelle N. Pelletier; Simon A. Jones; William G. Newman

Dihydrofolate reductase (DHFR) is a critical enzyme in folate metabolism and an important target of antineoplastic, antimicrobial, and antiinflammatory drugs. We describe three individuals from two families with a recessive inborn error of metabolism, characterized by megaloblastic anemia and/or pancytopenia, severe cerebral folate deficiency, and cerebral tetrahydrobiopterin deficiency due to a germline missense mutation in DHFR, resulting in profound enzyme deficiency. We show that cerebral folate levels, anemia, and pancytopenia of DHFR deficiency can be corrected by treatment with folinic acid. The characterization of this disorder provides evidence for the link between DHFR and metabolism of cerebral tetrahydrobiopterin, which is required for the formation of dopamine, serotonin, and norepinephrine and for the hydroxylation of aromatic amino acids. Moreover, this relationship provides insight into the role of folates in neurological conditions, including depression, Alzheimer disease, and Parkinson disease.


American Journal of Human Genetics | 2013

LRIG2 Mutations Cause Urofacial Syndrome

Helen M. Stuart; Neil A. Roberts; Berk Burgu; Sarah B. Daly; Jill Urquhart; Sanjeev Bhaskar; Jonathan E. Dickerson; Murat Mermerkaya; Mesrur Selcuk Silay; Malcolm Lewis; M. Beatriz Orive Olondriz; Blanca Gener; Christian Beetz; Rita Eva Varga; Ömer Gülpınar; Evren Süer; Tarkan Soygür; Zeynep Birsin Özçakar; Fatoş Yalçınkaya; Aslı Kavaz; Burcu Bulum; Adnan Gucuk; W.W. Yue; Firat Erdogan; Andrew Berry; Neil A. Hanley; Edward A. McKenzie; Emma Hilton; Adrian S. Woolf; William G. Newman

Urofacial syndrome (UFS) (or Ochoa syndrome) is an autosomal-recessive disease characterized by congenital urinary bladder dysfunction, associated with a significant risk of kidney failure, and an abnormal facial expression upon smiling, laughing, and crying. We report that a subset of UFS-affected individuals have biallelic mutations in LRIG2, encoding leucine-rich repeats and immunoglobulin-like domains 2, a protein implicated in neural cell signaling and tumorigenesis. Importantly, we have demonstrated that rare variants in LRIG2 might be relevant to nonsyndromic bladder disease. We have previously shown that UFS is also caused by mutations in HPSE2, encoding heparanase-2. LRIG2 and heparanase-2 were immunodetected in nerve fascicles growing between muscle bundles within the human fetal bladder, directly implicating both molecules in neural development in the lower urinary tract.


Pediatric Nephrology | 2014

Urofacial syndrome: a genetic and congenital disease of aberrant urinary bladder innervation

Adrian S. Woolf; Helen M. Stuart; Neil A. Roberts; Edward A. McKenzie; Emma Hilton; William G. Newman

The urofacial, or Ochoa, syndrome is characterised by congenital urinary bladder dysfunction together with an abnormal grimace upon smiling, laughing and crying. It can present as fetal megacystis. Postnatal features include urinary incontinence and incomplete bladder emptying due to simultaneous detrusor muscle and bladder outlet contractions. Vesicoureteric reflux is often present, and the condition can be complicated by urosepsis and end-stage renal disease. The syndrome has long been postulated to have neural basis, and it can be familial when it is inherited in an autosomal recessive manner. Most individuals with urofacial syndrome genetically studied to date carry biallelic, postulated functionally null mutations of HPSE2 or, less commonly, of LRIG2. Little is known about the biology of the respective encoded proteins, heparanase 2 and leucine-rich repeats and immunoglobulin-like domains 2. Nevertheless, the observations that heparanase 2 can bind heparan sulphate proteolgycans and inhibit heparanase 1 enzymatic activity and that LRIG2 can modulate receptor tyrosine kinase growth factor signalling each point to biological roles relevant to tissue differentiation. Moreover, both heparanase 2 and LRIG2 proteins are detected in autonomic nerves growing into fetal bladders. The collective evidence is consistent with the hypothesis that urofacial syndrome genes code for proteins which work in a common pathway to facilitate neural growth into, and/or function within, the bladder. This molecular pathway may also have relevance to our understanding of the pathogenesis of other lower tract diseases, including Hinman–Allen syndrome, or non-neurogenic neurogenic bladder, and of the subset of individuals who have primary vesicoureteric reflux accompanied by bladder dysfunction.


Human Molecular Genetics | 2014

Heparanase 2, mutated in urofacial syndrome, mediates peripheral neural development in Xenopus

Neil A. Roberts; Adrian S. Woolf; Helen M. Stuart; Raphaël Thuret; Edward A. McKenzie; William G. Newman; Emma Hilton

Urofacial syndrome (UFS; previously Ochoa syndrome) is an autosomal recessive disease characterized by incomplete bladder emptying during micturition. This is associated with a dyssynergia in which the urethral walls contract at the same time as the detrusor smooth muscle in the body of the bladder. UFS is also characterized by an abnormal facial expression upon smiling, and bilateral weakness in the distribution of the facial nerve has been reported. Biallelic mutations in HPSE2 occur in UFS. This gene encodes heparanase 2, a protein which inhibits the activity of heparanase. Here, we demonstrate, for the first time, an in vivo developmental role for heparanase 2. We identified the Xenopus orthologue of heparanase 2 and showed that the protein is localized to the embryonic ventrolateral neural tube where motor neurons arise. Morpholino-induced loss of heparanase 2 caused embryonic skeletal muscle paralysis, and morphant motor neurons had aberrant morphology including less linear paths and less compactly-bundled axons than normal. Biochemical analyses demonstrated that loss of heparanase 2 led to upregulation of fibroblast growth factor 2/phosphorylated extracellular signal-related kinase signalling and to alterations in levels of transcripts encoding neural- and muscle-associated molecules. Thus, a key role of heparanase 2 is to buffer growth factor signalling in motor neuron development. These results shed light on the pathogenic mechanisms underpinning the clinical features of UFS and support the contention that congenital peripheral neuropathy is a key feature of this disorder.


FEBS Letters | 2011

The cataract-associated protein TMEM114, and TMEM235, are glycosylated transmembrane proteins that are distinct from claudin family members

Geoffrey J. Maher; Emma Hilton; Jill Urquhart; Alice E. Davidson; Helen L. Spencer; Graeme C.M. Black; Forbes D.C. Manson

ZO‐1 and Tmem114 colocalize by fluorescence microscopy (View interaction).


Journal of The American Society of Nephrology | 2015

Urinary Tract Effects of HPSE2 Mutations

Helen M. Stuart; Neil A. Roberts; Emma Hilton; Edward A. McKenzie; Sarah B. Daly; Kristen D. Hadfield; Jeffery S Rahal; Natalie J. Gardiner; Simon W. M. Tanley; Malcolm Lewis; Emily Sites; Brad Angle; Cláudia Alves; Márcia Rodrigues; Angelina Calado; Marta Amado; Nancy Guerreiro; Inês Serras; Christian Beetz; Rita-Eva Varga; Mesrur Selcuk Silay; John M. Darlow; Mark G. Dobson; David E. Barton; Manuela Hunziker; Prem Puri; Sally Feather; Judith A. Goodship; Timothy H.J. Goodship; Heather J Lambert

Urofacial syndrome (UFS) is an autosomal recessive congenital disease featuring grimacing and incomplete bladder emptying. Mutations of HPSE2, encoding heparanase 2, a heparanase 1 inhibitor, occur in UFS, but knowledge about the HPSE2 mutation spectrum is limited. Here, seven UFS kindreds with HPSE2 mutations are presented, including one with deleted asparagine 254, suggesting a role for this amino acid, which is conserved in vertebrate orthologs. HPSE2 mutations were absent in 23 non-neurogenic neurogenic bladder probands and, of 439 families with nonsyndromic vesicoureteric reflux, only one carried a putative pathogenic HPSE2 variant. Homozygous Hpse2 mutant mouse bladders contained urine more often than did wild-type organs, phenocopying human UFS. Pelvic ganglia neural cell bodies contained heparanase 1, heparanase 2, and leucine-rich repeats and immunoglobulin-like domains-2 (LRIG2), which is mutated in certain UFS families. In conclusion, heparanase 2 is an autonomic neural protein implicated in bladder emptying, but HPSE2 variants are uncommon in urinary diseases resembling UFS.

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Helen M. Stuart

Manchester Academic Health Science Centre

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Amit Sud

University of Manchester

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