Expanded circulating hematopoietic stem/ progenitor cells as novel cell source for the treatment of TCIRG1 osteopetrosis
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A. Schulz | C. Carlo-Stella | R. Cusano | M. Serafini | Valentina Capo | A. Villa | P. Uva | E. Draghici | A. Aiuti | D. Moshous | G. Menna | B. Gentner | E. Palagano | C. Sobacchi | M. Barcella | P. Stepensky | I. Merelli | L. Sergi | Serena Scala | F. Ficara | K. Drabko | E. Unal | Z. Kaya | L. Basso-Ricci | S. Locatelli | G. Desantis | L. Crisafulli | E. Zonari | S. Penna | Alper Gezdiric
[1] A. Schambach,et al. Hematopoietic stem cell-targeted neonatal gene therapy with a clinically applicable lentiviral vector corrects osteopetrosis in oc/oc mice. , 2019, Human gene therapy.
[2] A. Annoni,et al. Targeting a Pre-existing Anti-transgene T Cell Response for Effective Gene Therapy of MPS-I in the Mouse Model of the Disease , 2019, Molecular therapy : the journal of the American Society of Gene Therapy.
[3] F. Geissmann,et al. Developmental origin, functional maintenance and genetic rescue of osteoclasts , 2019, Nature.
[4] M. Beer,et al. Stem cell transplantation for osteopetrosis in patients beyond the age of 5 years. , 2019, Blood advances.
[5] Valentina Capo,et al. One Disease, Many Genes: Implications for the Treatment of Osteopetroses , 2019, Front. Endocrinol..
[6] S. Teitelbaum,et al. Congenital disorders of bone and blood. , 2019, Bone.
[7] G. Sauvageau,et al. Single UM171 Expanded Cord Blood Permits Transplantation of Better HLA Matched Cords with Excellent Gvhd Relapse Free Survival , 2018, Blood.
[8] L. Biasco,et al. Dynamics of genetically engineered hematopoietic stem and progenitor cells after autologous transplantation in humans , 2018, Nature Medicine.
[9] S. Mantero,et al. Mesenchymal Stromal Cell‐Seeded Biomimetic Scaffolds as a Factory of Soluble RANKL in Rankl‐Deficient Osteopetrosis , 2018, Stem cells translational medicine.
[10] G. Sauvageau,et al. UM171 Enhances Lentiviral Gene Transfer and Recovery of Primitive Human Hematopoietic Cells , 2018, Molecular therapy. Methods & clinical development.
[11] Shiwei Zheng,et al. Molecular transitions in early progenitors during human cord blood hematopoiesis , 2018, Molecular systems biology.
[12] A. Villa,et al. Genetics of Osteopetrosis , 2018, Current Osteoporosis Reports.
[13] A. Schambach,et al. Targeting NSG Mice Engrafting Cells with a Clinically Applicable Lentiviral Vector Corrects Osteoclasts in Infantile Malignant Osteopetrosis. , 2017, Human gene therapy.
[14] M. Econs,et al. Osteopetroses, emphasizing potential approaches to treatment. , 2017, Bone.
[15] L. Dimeglio,et al. Diagnosis and Management of Osteopetrosis: Consensus Guidelines From the Osteopetrosis Working Group , 2017, The Journal of clinical endocrinology and metabolism.
[16] G. Sauvageau,et al. EPCR expression marks UM171-expanded CD34+ cord blood stem cells. , 2017, Blood.
[17] L. Biasco,et al. Multiparametric Whole Blood Dissection: A one‐shot comprehensive picture of the human hematopoietic system , 2017, Cytometry. Part A : the journal of the International Society for Analytical Cytology.
[18] M. Lidonnici,et al. Efficient Ex Vivo Engineering and Expansion of Highly Purified Human Hematopoietic Stem and Progenitor Cell Populations for Gene Therapy , 2017, Stem cell reports.
[19] A. Schulz,et al. Outcomes after Unrelated Umbilical Cord Blood Transplantation for Children with Osteopetrosis. , 2016, Biology of blood and marrow transplantation : journal of the American Society for Blood and Marrow Transplantation.
[20] P. Wallace,et al. Simultaneous measurement of human hematopoietic stem and progenitor cells in blood using multicolor flow cytometry , 2016, Cytometry. Part B, Clinical cytometry.
[21] M. Karsdal,et al. Regulation and Function of Lentiviral Vector-Mediated TCIRG1 Expression in Osteoclasts from Patients with Infantile Malignant Osteopetrosis: Implications for Gene Therapy , 2016, Calcified Tissue International.
[22] Andrea Calabria,et al. Preclinical Testing of the Safety and Tolerability of Lentiviral Vector-Mediated Above-Normal Alpha-L-Iduronidase Expression in Murine and Human Hematopoietic Cells Using Toxicology and Biodistribution Good Laboratory Practice Studies. , 2016, Human gene therapy.
[23] Raymond Dalgleish,et al. HGVS Recommendations for the Description of Sequence Variants: 2016 Update , 2016, Human mutation.
[24] M. Ferrari,et al. Buried in the Middle but Guilty: Intronic Mutations in the TCIRG1 Gene Cause Human Autosomal Recessive Osteopetrosis , 2015, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[25] M. Rouleau,et al. Roles of osteoclasts in the control of medullary hematopoietic niches. , 2014, Archives of biochemistry and biophysics.
[26] Randy J. Read,et al. Transcriptional diversity during lineage commitment of human blood progenitors , 2014, Science.
[27] G. Sauvageau,et al. Pyrimidoindole derivatives are agonists of human hematopoietic stem cell self-renewal , 2014, Science.
[28] M. Karsdal,et al. Lentiviral gene transfer of TCIRG1 into peripheral blood CD34(+) cells restores osteoclast function in infantile malignant osteopetrosis. , 2013, Bone.
[29] James J Collins,et al. Induction of multipotential hematopoietic progenitors from human pluripotent stem cells via respecification of lineage-restricted precursors. , 2013, Cell stem cell.
[30] A. Schulz,et al. Osteopetrosis: genetics, treatment and new insights into osteoclast function , 2013, Nature Reviews Endocrinology.
[31] C. von Kalle,et al. Lentiviral Hematopoietic Stem Cell Gene Therapy Benefits Metachromatic Leukodystrophy , 2013, Science.
[32] Luca Biasco,et al. Lentiviral Hematopoietic Stem Cell Gene Therapy in Patients with Wiskott-Aldrich Syndrome , 2013, Science.
[33] Jian-Bing Fan,et al. The transcriptional architecture of early human hematopoiesis identifies multilevel control of lymphoid commitment , 2013, Nature Immunology.
[34] Angelo J. Canty,et al. Stem cell gene expression programs influence clinical outcome in human leukemia , 2011, Nature Medicine.
[35] L. Naldini,et al. Gene therapy augments the efficacy of hematopoietic cell transplantation and fully corrects mucopolysaccharidosis type I phenotype in the mouse model. , 2010, Blood.
[36] G. Langenbach,et al. Nonablative neonatal bone marrow transplantation rapidly reverses severe murine osteopetrosis despite low‐level engraftment and lack of selective expansion of the osteoclastic lineage , 2010, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[37] C. Steward. Hematopoietic stem cell transplantation for osteopetrosis. , 2010, Pediatric clinics of North America.
[38] L. Notarangelo,et al. A single‐center experience in 20 patients with infantile malignant osteopetrosis , 2009, American journal of hematology.
[39] J. Richter,et al. Prospects for gene therapy of osteopetrosis. , 2009, Current gene therapy.
[40] S. Karlsson,et al. Hematopoietic stem cell-targeted neonatal gene therapy reverses lethally progressive osteopetrosis in oc/oc mice. , 2007, Blood.
[41] O. Yli-Harja,et al. Global Gene Expression Profile of Human Cord Blood–Derived CD133+ Cells , 2006, Stem cells.
[42] A. Flanagan,et al. High peripheral blood progenitor cell counts enable autologous backup before stem cell transplantation for malignant infantile osteopetrosis. , 2005, Biology of blood and marrow transplantation : journal of the American Society for Blood and Marrow Transplantation.
[43] L. Naldini,et al. Coordinate dual-gene transgenesis by lentiviral vectors carrying synthetic bidirectional promoters , 2005, Nature Biotechnology.
[44] Jeanne Kowalski,et al. Microarray and Serial Analysis of Gene Expression Analyses Identify Known and Novel Transcripts Overexpressed in Hematopoietic Stem Cells , 2004, Cancer Research.
[45] D. Melton,et al. "Stemness": Transcriptional Profiling of Embryonic and Adult Stem Cells , 2002, Science.
[46] Roger E Bumgarner,et al. Differential gene expression profiling of adult murine hematopoietic stem cells. , 2002, Blood.
[47] L. Notarangelo,et al. Defects in TCIRG1 subunit of the vacuolar proton pump are responsible for a subset of human autosomal recessive osteopetrosis , 2000, Nature Genetics.
[48] M. Eapen,et al. Hematopoietic stem cell transplantation for infantile osteopetrosis , 1998, Bone Marrow Transplantation.
[49] F. Coxon. Fluorescence imaging of osteoclasts using confocal microscopy. , 2012, Methods in molecular biology.
[50] Fulvio Mavilio,et al. Gene therapy , 1993, Nature.
[51] E. Fibach,et al. Circulating myeloid and erythroid progenitor cells in malignant osteopetrosis. , 1982, Acta haematologica.