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Dive into the research topics where D Iskander is active.

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Featured researches published by D Iskander.


Genome Biology | 2016

Single-cell profiling of human megakaryocyte-erythroid progenitors identifies distinct megakaryocyte and erythroid differentiation pathways

Bethan Psaila; Nikolaos Barkas; D Iskander; Anindita Roy; Stacie M. Anderson; Neil Ashley; Valentina Caputo; Jens Lichtenberg; Sandra Loaiza; David M. Bodine; Anastasios Karadimitris; Adam Mead; Irene Roberts

BackgroundRecent advances in single-cell techniques have provided the opportunity to finely dissect cellular heterogeneity within populations previously defined by “bulk” assays and to uncover rare cell types. In human hematopoiesis, megakaryocytes and erythroid cells differentiate from a shared precursor, the megakaryocyte-erythroid progenitor (MEP), which remains poorly defined.ResultsTo clarify the cellular pathway in erythro-megakaryocyte differentiation, we correlate the surface immunophenotype, transcriptional profile, and differentiation potential of individual MEP cells. Highly purified, single MEP cells were analyzed using index fluorescence-activated cell sorting and parallel targeted transcriptional profiling of the same cells was performed using a specifically designed panel of genes. Differentiation potential was tested in novel, single-cell differentiation assays. Our results demonstrate that immunophenotypic MEP comprise three distinct subpopulations: “Pre-MEP,” enriched for erythroid/megakaryocyte progenitors but with residual myeloid differentiation capacity; “E-MEP,” strongly biased towards erythroid differentiation; and “MK-MEP,” a previously undescribed, rare population of cells that are bipotent but primarily generate megakaryocytic progeny. Therefore, conventionally defined MEP are a mixed population, as a minority give rise to mixed-lineage colonies while the majority of cells are transcriptionally primed to generate exclusively single-lineage output.ConclusionsOur study clarifies the cellular hierarchy in human megakaryocyte/erythroid lineage commitment and highlights the importance of using a combination of single-cell approaches to dissect cellular heterogeneity and identify rare cell types within a population. We present a novel immunophenotyping strategy that enables the prospective identification of specific intermediate progenitor populations in erythro-megakaryopoiesis, allowing for in-depth study of disorders including inherited cytopenias, myeloproliferative disorders, and erythromegakaryocytic leukemias.


British Journal of Haematology | 2013

Target enrichment and high-throughput sequencing of 80 ribosomal protein genes to identify mutations associated with Diamond-Blackfan anaemia

Gareth Gerrard; Mikel Valganon; Hui En Foong; Dalia Kasperaviciute; D Iskander; Michael Müller; Timothy J. Aitman; Irene Roberts; Josu de la Fuente; Letizia Foroni; Anastasios Karadimitris

Diamond‐Blackfan anaemia (DBA) is caused by inactivating mutations in ribosomal protein (RP) genes, with mutations in 13 of the 80 RP genes accounting for 50–60% of cases. The remaining 40–50% cases may harbour mutations in one of the remaining RP genes, but the very low frequencies render conventional genetic screening as challenging. We, therefore, applied custom enrichment technology combined with high‐throughput sequencing to screen all 80 RP genes. Using this approach, we identified and validated inactivating mutations in 15/17 (88%) DBA patients. Target enrichment combined with high‐throughput sequencing is a robust and improved methodology for the genetic diagnosis of DBA.


Blood | 2015

Elucidation of the EP defect in Diamond-Blackfan anemia by characterization and prospective isolation of human EPs.

D Iskander; Bethan Psaila; Gareth Gerrard; Aristeidis Chaidos; H En Foong; Yvonne Harrington; Leena Karnik; Irene Roberts; J de la Fuente; Anastasios Karadimitris

Diamond-Blackfan anemia (DBA) is a disorder characterized by a selective defect in erythropoiesis. Delineation of the precise defect is hampered by a lack of markers that define cells giving rise to erythroid burst- and erythroid colony-forming unit (BFU-E and CFU-E) colonies, the clonogenic assays that quantify early and late erythroid progenitor (EEP and LEP) potential, respectively. By combining flow cytometry, cell-sorting, and single-cell clonogenic assays, we identified Lin(-)CD34(+)CD38(+)CD45RA(-)CD123(-)CD71(+)CD41a(-)CD105(-)CD36(-) bone marrow cells as EEP giving rise to BFU-E, and Lin(-)CD34(+/-)CD38(+)CD45RA(-)CD123(-)CD71(+)CD41a(-)CD105(+)CD36(+) cells as LEP giving rise to CFU-E, in a hierarchical fashion. We then applied these definitions to DBA and identified that, compared with controls, frequency, and clonogenicity of DBA, EEP and LEP are significantly decreased in transfusion-dependent but restored in corticosteroid-responsive patients. Thus, both quantitative and qualitative defects in erythroid progenitor (EP) contribute to defective erythropoiesis in DBA. Prospective isolation of defined EPs will facilitate more incisive study of normal and aberrant erythropoiesis.


Blood | 2014

Transcriptional and epigenetic basis for restoration of G6PD enzymatic activity in human G6PD-deficient cells.

Kalliopi Makarona; Valentina Caputo; Joana R. Costa; B Liu; David F. O'Connor; D Iskander; David Roper; L Robertson; Neha Bhatnagar; Evangelos Terpos; Elisabeth Georgiou; Maria Papaioannou; D M Layton; L Luzzatto; Irene Roberts; Anastasios Karadimitris

HDAC inhibitors (HDACi) increase transcription of some genes through histone hyperacetylation. To test the hypothesis that HDACi-mediated enhanced transcription might be of therapeutic value for inherited enzyme deficiency disorders, we focused on the glycolytic and pentose phosphate pathways (GPPPs). We show that among the 16 genes of the GPPPs, HDACi selectively enhance transcription of glucose 6-phosphate dehydrogenase (G6PD). This requires enhanced recruitment of the generic transcription factor Sp1, with commensurate recruitment of histone acetyltransferases and deacetylases, increased histone acetylation, and polymerase II recruitment to G6PD. These G6PD-selective transcriptional and epigenetic events result in increased G6PD transcription and ultimately restored enzymatic activity in B cells and erythroid precursor cells from patients with G6PD deficiency, a disorder associated with acute or chronic hemolytic anemia. Therefore, restoration of enzymatic activity in G6PD-deficient nucleated cells is feasible through modulation of G6PD transcription. Our findings also suggest that clinical consequences of pathogenic missense mutations in proteins with enzymatic function can be overcome in some cases by enhancement of the transcriptional output of the affected gene.


Blood | 2012

Patients with Diamond Blackfan Anaemia Have Abnormalities of Cellular and Humoral Immunity

D Iskander; Yvonne Harrington; Irene Roberts; Anastasios Karadimitris; Josu de la Fuente


Haematologica | 2017

CLINICAL AND GENETIC DIVERSITY IN DIAMOND-BLACKFAN ANAEMIA: AN UPDATE FROM THE UNITED KINGDOM

D Iskander; C Miller; M Alikian; Yvonne Harrington; Q Al-Oqaily; Irene Roberts; Anastasios Karadimitris; J de la Fuente


Blood | 2017

Molecular and Functional Characterization of Disease-Propagating Stem Cells in Juvenile Myelomonocytic Leukemia

E Louka; B Povinelli; A Rodriguez-Meira; G Buck; A Hamblin; C Booth; Anindita Roy; N Elliott; D Iskander; J de la Fuente; N J Fordham; S I Obyrne; S Inglott; A G Rao; Irene Roberts; A J Mead


Haematologica | 2016

SINGLE-CELL PROFILING OF HUMAN MEGAKARYOCYTE-ERYTHROID PROGENITORS IDENTIFIES DISTINCT MEGAKARYOCYTE AND ERYTHROID DIFFERENTIATION PATHWAYS

Bethan Psaila; Nikolaos Barkas; D Iskander; Anindita Roy; Stacie M. Anderson; Neil Ashley; Valentina Caputo; Jens Lichtenberg; Sandra Loaiza; David M. Bodine; Anastasios Karadimitris; Adam Mead; R Irene


Haematologica | 2015

PROSPECTIVE ISOLATION OF NOVEL POPULATIONS OF MEGAKARYOCYTE-AND ERYTHROID-PRIMED MEGAKARYOCYTE-ERYTHROID PROGENITORS DEMONSTRATES MEGAKARYOCYTE-BIASED LINEAGE COMMITMENT IN PRIMARY MYELOFIBROSIS

Bethan Psaila; D Iskander; Adam Mead; Anindita Roy; Dragana Milojkovic; Aristeidis Chaidos; Sandra Loaiza; Valentina Caputo; Neil Ashley; Anastasios Karadimitris; Irene Roberts


Blood | 2014

Developmental Stage Specific B-Progenitor Expansion in Normal Fetal Bone Marrow Is Absent in Down Syndrome: Implications for Infant ALL

Anindita Roy; Georg Bohn; Katerina Goudevenou; Gillian Cowan; Neha Bhatnagar; David F. O'Connor; Oliver Tunstall; Jerry Chan; Phillip R. Bennett; Sailesh Kumar; D Iskander; Sarah Inglott; Binbin Liu; Philip Ancliff; Anastasios Karadimitris; Irene Roberts

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Anindita Roy

Imperial College London

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