Network


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

Hotspot


Dive into the research topics where Jeanne Estabel is active.

Publication


Featured researches published by Jeanne Estabel.


Cell | 2013

Genome-wide Generation and Systematic Phenotyping of Knockout Mice Reveals New Roles for Many Genes

Jacqueline K. White; Anna-Karin Gerdin; Natasha A. Karp; Edward Ryder; Marija Buljan; James Bussell; Jennifer Salisbury; Simon Clare; Neil J. Ingham; Christine Podrini; Richard Houghton; Jeanne Estabel; Joanna Bottomley; David Melvin; David Sunter; Niels C. Adams; David Tannahill; Darren W. Logan; Daniel G. MacArthur; Jonathan Flint; Vinit B. Mahajan; Stephen H. Tsang; Ian Smyth; Fiona M. Watt; William C. Skarnes; Gordon Dougan; David J. Adams; Ramiro Ramirez-Solis; Allan Bradley; Karen P. Steel

Summary Mutations in whole organisms are powerful ways of interrogating gene function in a realistic context. We describe a program, the Sanger Institute Mouse Genetics Project, that provides a step toward the aim of knocking out all genes and screening each line for a broad range of traits. We found that hitherto unpublished genes were as likely to reveal phenotypes as known genes, suggesting that novel genes represent a rich resource for investigating the molecular basis of disease. We found many unexpected phenotypes detected only because we screened for them, emphasizing the value of screening all mutants for a wide range of traits. Haploinsufficiency and pleiotropy were both surprisingly common. Forty-two percent of genes were essential for viability, and these were less likely to have a paralog and more likely to contribute to a protein complex than other genes. Phenotypic data and more than 900 mutants are openly available for further analysis. PaperClip


Genome Biology | 2013

A comparative phenotypic and genomic analysis of C57BL/6J and C57BL/6N mouse strains

Michelle Simon; Simon Greenaway; Jacqueline K. White; Helmut Fuchs; Valérie Gailus-Durner; Sara Wells; Tania Sorg; Kim Wong; Elodie Bedu; Elizabeth J. Cartwright; Romain Dacquin; Sophia Djebali; Jeanne Estabel; Jochen Graw; Neil Ingham; Ian J. Jackson; Andreas Lengeling; Silvia Mandillo; Jacqueline Marvel; Hamid Meziane; Frédéric Preitner; Oliver Puk; Michel J. Roux; David J. Adams; Sarah Atkins; Abdel Ayadi; Lore Becker; Andrew Blake; Debra Brooker; Heather Cater

BackgroundThe mouse inbred line C57BL/6J is widely used in mouse genetics and its genome has been incorporated into many genetic reference populations. More recently large initiatives such as the International Knockout Mouse Consortium (IKMC) are using the C57BL/6N mouse strain to generate null alleles for all mouse genes. Hence both strains are now widely used in mouse genetics studies. Here we perform a comprehensive genomic and phenotypic analysis of the two strains to identify differences that may influence their underlying genetic mechanisms.ResultsWe undertake genome sequence comparisons of C57BL/6J and C57BL/6N to identify SNPs, indels and structural variants, with a focus on identifying all coding variants. We annotate 34 SNPs and 2 indels that distinguish C57BL/6J and C57BL/6N coding sequences, as well as 15 structural variants that overlap a gene. In parallel we assess the comparative phenotypes of the two inbred lines utilizing the EMPReSSslim phenotyping pipeline, a broad based assessment encompassing diverse biological systems. We perform additional secondary phenotyping assessments to explore other phenotype domains and to elaborate phenotype differences identified in the primary assessment. We uncover significant phenotypic differences between the two lines, replicated across multiple centers, in a number of physiological, biochemical and behavioral systems.ConclusionsComparison of C57BL/6J and C57BL/6N demonstrates a range of phenotypic differences that have the potential to impact upon penetrance and expressivity of mutational effects in these strains. Moreover, the sequence variants we identify provide a set of candidate genes for the phenotypic differences observed between the two strains.


Journal of Immunology | 2012

The Role of Sphingosine-1-Phosphate Transporter Spns2 in Immune System Function

Anastasia Nijnik; Simon Clare; Christine Hale; Jing Chen; Claire Raisen; Lynda Mottram; Mark Lucas; Jeanne Estabel; Edward Ryder; Hibret Adissu; Niels C. Adams; Ramiro Ramirez-Solis; Jacqueline K. White; Karen P. Steel; Gordon Dougan; Robert E. W. Hancock

Sphingosine-1-phosphate (S1P) is lipid messenger involved in the regulation of embryonic development, immune system functions, and many other physiological processes. However, the mechanisms of S1P transport across cellular membranes remain poorly understood, with several ATP-binding cassette family members and the spinster 2 (Spns2) member of the major facilitator superfamily known to mediate S1P transport in cell culture. Spns2 was also shown to control S1P activities in zebrafish in vivo and to play a critical role in zebrafish cardiovascular development. However, the in vivo roles of Spns2 in mammals and its involvement in the different S1P-dependent physiological processes have not been investigated. In this study, we characterized Spns2-null mouse line carrying the Spns2tm1a(KOMP)Wtsi allele (Spns2tm1a). The Spns2tm1a/tm1a animals were viable, indicating a divergence in Spns2 function from its zebrafish ortholog. However, the immunological phenotype of the Spns2tm1a/tm1a mice closely mimicked the phenotypes of partial S1P deficiency and impaired S1P-dependent lymphocyte trafficking, with a depletion of lymphocytes in circulation, an increase in mature single-positive T cells in the thymus, and a selective reduction in mature B cells in the spleen and bone marrow. Spns2 activity in the nonhematopoietic cells was critical for normal lymphocyte development and localization. Overall, Spns2tm1a/tm1a resulted in impaired humoral immune responses to immunization. This study thus demonstrated a physiological role for Spns2 in mammalian immune system functions but not in cardiovascular development. Other components of the S1P signaling network are investigated as drug targets for immunosuppressive therapy, but the selective action of Spns2 may present an advantage in this regard.


Blood | 2012

The critical role of histone H2A-deubiquitinase Mysm1 in hematopoiesis and lymphocyte differentiation

Anastasia Nijnik; Simon Clare; Christine Hale; Claire Raisen; Rebecca E McIntyre; Kosuke Yusa; Aaron R. Everitt; Lynda Mottram; Christine Podrini; Mark Lucas; Jeanne Estabel; David Goulding; Sanger Mouse Genetics; Niels C. Adams; Ramiro Ramirez-Solis; Jacqui White; David J. Adams; Robert E. W. Hancock; Gordon Dougan

Stem cell differentiation and lineage specification depend on coordinated programs of gene expression, but our knowledge of the chromatin-modifying factors regulating these events remains incomplete. Ubiquitination of histone H2A (H2A-K119u) is a common chromatin modification associated with gene silencing, and controlled by the ubiquitin-ligase polycomb repressor complex 1 (PRC1) and H2A-deubiquitinating enzymes (H2A-DUBs). The roles of H2A-DUBs in mammalian development, stem cells, and hematopoiesis have not been addressed. Here we characterized an H2A-DUB targeted mouse line Mysm1(tm1a/tm1a) and demonstrated defects in BM hematopoiesis, resulting in lymphopenia, anemia, and thrombocytosis. Development of lymphocytes was impaired from the earliest stages of their differentiation, and there was also a depletion of erythroid cells and a defect in erythroid progenitor function. These phenotypes resulted from a cell-intrinsic requirement for Mysm1 in the BM. Importantly, Mysm1(tm1a/tm1a) HSCs were functionally impaired, and this was associated with elevated levels of reactive oxygen species, γH2AX DNA damage marker, and p53 protein in the hematopoietic progenitors. Overall, these data establish a role for Mysm1 in the maintenance of BM stem cell function, in the control of oxidative stress and genetic stability in hematopoietic progenitors, and in the development of lymphoid and erythroid lineages.


American Journal of Human Genetics | 2012

Deficiency for the Ubiquitin Ligase UBE3B in a Blepharophimosis-Ptosis-Intellectual-Disability Syndrome

Lina Basel-Vanagaite; Bruno Dallapiccola; Ramiro Ramirez-Solis; Alexandra Segref; Holger Thiele; Andrew Edwards; Mark J. Arends; Xavier Miró; Jacqueline K. White; Julie Désir; Marc Abramowicz; Maria Lisa Dentici; Francesca Lepri; Kay Hofmann; Adi Har-Zahav; Edward Ryder; Natasha A. Karp; Jeanne Estabel; Anna Karin B Gerdin; Christine Podrini; Neil Ingham; Janine Altmüller; Gudrun Nürnberg; Peter Frommolt; Sonia Abdelhak; Metsada Pasmanik-Chor; Osnat Konen; Richard I. Kelley; Mordechai Shohat; Peter Nürnberg

Ubiquitination plays a crucial role in neurodevelopment as exemplified by Angelman syndrome, which is caused by genetic alterations of the ubiquitin ligase-encoding UBE3A gene. Although the function of UBE3A has been widely studied, little is known about its paralog UBE3B. By using exome and capillary sequencing, we here identify biallelic UBE3B mutations in four patients from three unrelated families presenting an autosomal-recessive blepharophimosis-ptosis-intellectual-disability syndrome characterized by developmental delay, growth retardation with a small head circumference, facial dysmorphisms, and low cholesterol levels. UBE3B encodes an uncharacterized E3 ubiquitin ligase. The identified UBE3B variants include one frameshift and two splice-site mutations as well as a missense substitution affecting the highly conserved HECT domain. Disruption of mouse Ube3b leads to reduced viability and recapitulates key aspects of the human disorder, such as reduced weight and brain size and a downregulation of cholesterol synthesis. We establish that the probable Caenorhabditis elegans ortholog of UBE3B, oxi-1, functions in the ubiquitin/proteasome system in vivo and is especially required under oxidative stress conditions. Our data reveal the pleiotropic effects of UBE3B deficiency and reinforce the physiological importance of ubiquitination in neuronal development and function in mammals.


Blood | 2014

Gray platelet syndrome: proinflammatory megakaryocytes and α-granule loss cause myelofibrosis and confer metastasis resistance in mice.

Jose A. Guerrero; Cavan Bennett; L van der Weyden; H. Mckinney; M. Chin; Paquita Nurden; Zoe McIntyre; Emma L. Cambridge; Jeanne Estabel; Hannah Wardle-Jones; Anneliese O. Speak; Wendy N. Erber; Augusto Rendon; Willem H. Ouwehand; Cedric Ghevaert

NBEAL2 encodes a multidomain scaffolding protein with a putative role in granule ontogeny in human platelets. Mutations in NBEAL2 underlie gray platelet syndrome (GPS), a rare inherited bleeding disorder characterized by a lack of α-granules within blood platelets and progressive bone marrow fibrosis. We present here a novel Nbeal2(-/-) murine model of GPS and demonstrate that the lack of α-granules is due to their loss from platelets/mature megakaryocytes (MKs), and not by initial impaired formation. We show that the lack of Nbeal2 confers a proinflammatory phenotype to the bone marrow MKs, which in combination with the loss of proteins from α-granules drives the development of bone marrow fibrosis. In addition, we demonstrate that α-granule deficiency impairs platelet function beyond their purely hemostatic role and that Nbeal2 deficiency has a protective effect against cancer metastasis.


PLOS Genetics | 2012

Disruption of Mouse Cenpj, a Regulator of Centriole Biogenesis, Phenocopies Seckel Syndrome

Rebecca E McIntyre; Pavithra L. Chavali; Ozama Ismail; Damian M. Carragher; Gabriela Sánchez-Andrade; Josep V. Forment; Beiyuan Fu; Martin Del Castillo Velasco-Herrera; Andrew Edwards; Louise van der Weyden; Fengtang Yang; Sanger Mouse Genetics; Ramiro Ramirez-Solis; Jeanne Estabel; Ferdia A. Gallagher; Darren W. Logan; Mark J. Arends; Stephen H. Tsang; Vinit B. Mahajan; Cheryl L. Scudamore; Jacqueline K. White; Fanni Gergely; David J. Adams

Disruption of the centromere protein J gene, CENPJ (CPAP, MCPH6, SCKL4), which is a highly conserved and ubiquitiously expressed centrosomal protein, has been associated with primary microcephaly and the microcephalic primordial dwarfism disorder Seckel syndrome. The mechanism by which disruption of CENPJ causes the proportionate, primordial growth failure that is characteristic of Seckel syndrome is unknown. By generating a hypomorphic allele of Cenpj, we have developed a mouse (Cenpjtm/tm) that recapitulates many of the clinical features of Seckel syndrome, including intrauterine dwarfism, microcephaly with memory impairment, ossification defects, and ocular and skeletal abnormalities, thus providing clear confirmation that specific mutations of CENPJ can cause Seckel syndrome. Immunohistochemistry revealed increased levels of DNA damage and apoptosis throughout Cenpjtm/tm embryos and adult mice showed an elevated frequency of micronucleus induction, suggesting that Cenpj-deficiency results in genomic instability. Notably, however, genomic instability was not the result of defective ATR-dependent DNA damage signaling, as is the case for the majority of genes associated with Seckel syndrome. Instead, Cenpjtm/tm embryonic fibroblasts exhibited irregular centriole and centrosome numbers and mono- and multipolar spindles, and many were near-tetraploid with numerical and structural chromosomal abnormalities when compared to passage-matched wild-type cells. Increased cell death due to mitotic failure during embryonic development is likely to contribute to the proportionate dwarfism that is associated with CENPJ-Seckel syndrome.


Disease Models & Mechanisms | 2014

Histopathology reveals correlative and unique phenotypes in a high-throughput mouse phenotyping screen

Hibret Adissu; Jeanne Estabel; David Sunter; Elizabeth Tuck; Yvette Hooks; Damian M. Carragher; Kay Clarke; Natasha A. Karp; Sanger Mouse Genetics; Susan Newbigging; Nora Jones; Lily Morikawa; Jacqueline K. White; Colin McKerlie

The Mouse Genetics Project (MGP) at the Wellcome Trust Sanger Institute aims to generate and phenotype over 800 genetically modified mouse lines over the next 5 years to gain a better understanding of mammalian gene function and provide an invaluable resource to the scientific community for follow-up studies. Phenotyping includes the generation of a standardized biobank of paraffin-embedded tissues for each mouse line, but histopathology is not routinely performed. In collaboration with the Pathology Core of the Centre for Modeling Human Disease (CMHD) we report the utility of histopathology in a high-throughput primary phenotyping screen. Histopathology was assessed in an unbiased selection of 50 mouse lines with (n=30) or without (n=20) clinical phenotypes detected by the standard MGP primary phenotyping screen. Our findings revealed that histopathology added correlating morphological data in 19 of 30 lines (63.3%) in which the primary screen detected a phenotype. In addition, seven of the 50 lines (14%) presented significant histopathology findings that were not associated with or predicted by the standard primary screen. Three of these seven lines had no clinical phenotype detected by the standard primary screen. Incidental and strain-associated background lesions were present in all mutant lines with good concordance to wild-type controls. These findings demonstrate the complementary and unique contribution of histopathology to high-throughput primary phenotyping of mutant mice.


Nature Communications | 2014

Novel skin phenotypes revealed by a genome-wide mouse reverse genetic screen

Kifayathullah Liakath-Ali; Valerie E. Vancollie; Emma Heath; Damian Smedley; Jeanne Estabel; David Sunter; Tia DiTommaso; Jacqueline K. White; Ramiro Ramirez-Solis; Ian Smyth; Karen P. Steel; Fiona M. Watt

Permanent stop-and-shop large-scale mouse mutant resources provide an excellent platform to decipher tissue phenogenomics. Here we analyse skin from 538 knockout mouse mutants generated by the Sanger Institute Mouse Genetics Project. We optimize immunolabelling of tail epidermal wholemounts to allow systematic annotation of hair follicle, sebaceous gland and interfollicular epidermal abnormalities using ontology terms from the Mammalian Phenotype Ontology. Of the 50 mutants with an epidermal phenotype, 9 map to human genetic conditions with skin abnormalities. Some mutant genes are expressed in the skin, whereas others are not, indicating systemic effects. One phenotype is affected by diet and several are incompletely penetrant. In-depth analysis of three mutants, Krt76, Myo5a (a model of human Griscelli syndrome) and Mysm1, provides validation of the screen. Our study is the first large-scale genome-wide tissue phenotype screen from the International Knockout Mouse Consortium and provides an open access resource for the scientific community.


PLOS ONE | 2014

Targeting of Slc25a21 Is Associated with Orofacial Defects and Otitis Media Due to Disrupted Expression of a Neighbouring Gene

Simon Maguire; Jeanne Estabel; Neil Ingham; Selina Pearson; Edward Ryder; Damian M. Carragher; Nicolas Walker; James Bussell; Wai-In Chan; Thomas M. Keane; David J. Adams; Cheryl L. Scudamore; Christopher J. Lelliott; Ramiro Ramirez-Solis; Natasha A. Karp; Karen P. Steel; Jacqueline K. White; Anna-Karin Gerdin

Homozygosity for Slc25a21tm1a(KOMP)Wtsi results in mice exhibiting orofacial abnormalities, alterations in carpal and rugae structures, hearing impairment and inflammation in the middle ear. In humans it has been hypothesised that the 2-oxoadipate mitochondrial carrier coded by SLC25A21 may be involved in the disease 2-oxoadipate acidaemia. Unexpectedly, no 2-oxoadipate acidaemia-like symptoms were observed in animals homozygous for Slc25a21tm1a(KOMP)Wtsi despite confirmation that this allele reduces Slc25a21 expression by 71.3%. To study the complete knockout, an allelic series was generated using the loxP and FRT sites typical of a Knockout Mouse Project allele. After removal of the critical exon and neomycin selection cassette, Slc25a21 knockout mice homozygous for the Slc25a21tm1b(KOMP)Wtsi and Slc25a21tm1d(KOMP)Wtsi alleles were phenotypically indistinguishable from wild-type. This led us to explore the genomic environment of Slc25a21 and to discover that expression of Pax9, located 3′ of the target gene, was reduced in homozygous Slc25a21tm1a(KOMP)Wtsi mice. We hypothesize that the presence of the selection cassette is the cause of the down regulation of Pax9 observed. The phenotypes we observed in homozygous Slc25a21tm1a(KOMP)Wtsi mice were broadly consistent with a hypomorphic Pax9 allele with the exception of otitis media and hearing impairment which may be a novel consequence of Pax9 down regulation. We explore the ramifications associated with this particular targeted mutation and emphasise the need to interpret phenotypes taking into consideration all potential underlying genetic mechanisms.

Collaboration


Dive into the Jeanne Estabel's collaboration.

Top Co-Authors

Avatar

Jacqueline K. White

Wellcome Trust Sanger Institute

View shared research outputs
Top Co-Authors

Avatar

Ramiro Ramirez-Solis

Wellcome Trust Sanger Institute

View shared research outputs
Top Co-Authors

Avatar

Christine Podrini

Wellcome Trust Sanger Institute

View shared research outputs
Top Co-Authors

Avatar

David J. Adams

Wellcome Trust Sanger Institute

View shared research outputs
Top Co-Authors

Avatar

Natasha A. Karp

Wellcome Trust Sanger Institute

View shared research outputs
Top Co-Authors

Avatar

Damian M. Carragher

Wellcome Trust Sanger Institute

View shared research outputs
Top Co-Authors

Avatar

Edward Ryder

Wellcome Trust Sanger Institute

View shared research outputs
Top Co-Authors

Avatar

Niels C. Adams

Wellcome Trust Sanger Institute

View shared research outputs
Top Co-Authors

Avatar

Simon Clare

Wellcome Trust Sanger Institute

View shared research outputs
Top Co-Authors

Avatar
Researchain Logo
Decentralizing Knowledge