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A human iPSC model of Ligase IV deficiency reveals an important role for NHEJ-mediated-DSB repair in the survival and genomic stability of induced pluripotent stem cells and emerging haematopoietic progenitors
by
Stojkovic, M
, Yung, S
, Jeggo, P
, Tilgner, K
, Singhapol, C
, Burks, D
, Saretzki, G
, Armstrong, L
, Moreno-Gimeno, I
, Lako, M
, Evans, J
, Gorbunova, V
, Gennery, A
, Przyborski, S
, Neganova, I
, AL-Aama, J Y
in
631/1647/767
/ 631/337/1427/2191
/ 631/532/2064/2158
/ Apoptosis
/ Apoptosis - physiology
/ Biochemistry
/ Biomedical and Life Sciences
/ Bone marrow
/ Cell Biology
/ Cell Cycle Analysis
/ Cell death
/ Cell Line
/ Cell Survival - physiology
/ Cells, Cultured
/ DNA damage
/ DNA End-Joining Repair - physiology
/ DNA Ligase ATP
/ DNA Ligases - deficiency
/ DNA Ligases - physiology
/ DNA repair
/ Genomic Instability - physiology
/ Hematopoietic Stem Cells - cytology
/ Hematopoietic Stem Cells - physiology
/ Humans
/ Induced Pluripotent Stem Cells - cytology
/ Induced Pluripotent Stem Cells - physiology
/ Leukemia
/ Life Sciences
/ Microcephaly
/ Mutation
/ Original Paper
/ Phenotype
/ Radiation
/ Stem Cells
/ Tumor Suppressor Protein p53 - physiology
/ Up-Regulation - physiology
/ Yeast
2013
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A human iPSC model of Ligase IV deficiency reveals an important role for NHEJ-mediated-DSB repair in the survival and genomic stability of induced pluripotent stem cells and emerging haematopoietic progenitors
by
Stojkovic, M
, Yung, S
, Jeggo, P
, Tilgner, K
, Singhapol, C
, Burks, D
, Saretzki, G
, Armstrong, L
, Moreno-Gimeno, I
, Lako, M
, Evans, J
, Gorbunova, V
, Gennery, A
, Przyborski, S
, Neganova, I
, AL-Aama, J Y
in
631/1647/767
/ 631/337/1427/2191
/ 631/532/2064/2158
/ Apoptosis
/ Apoptosis - physiology
/ Biochemistry
/ Biomedical and Life Sciences
/ Bone marrow
/ Cell Biology
/ Cell Cycle Analysis
/ Cell death
/ Cell Line
/ Cell Survival - physiology
/ Cells, Cultured
/ DNA damage
/ DNA End-Joining Repair - physiology
/ DNA Ligase ATP
/ DNA Ligases - deficiency
/ DNA Ligases - physiology
/ DNA repair
/ Genomic Instability - physiology
/ Hematopoietic Stem Cells - cytology
/ Hematopoietic Stem Cells - physiology
/ Humans
/ Induced Pluripotent Stem Cells - cytology
/ Induced Pluripotent Stem Cells - physiology
/ Leukemia
/ Life Sciences
/ Microcephaly
/ Mutation
/ Original Paper
/ Phenotype
/ Radiation
/ Stem Cells
/ Tumor Suppressor Protein p53 - physiology
/ Up-Regulation - physiology
/ Yeast
2013
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A human iPSC model of Ligase IV deficiency reveals an important role for NHEJ-mediated-DSB repair in the survival and genomic stability of induced pluripotent stem cells and emerging haematopoietic progenitors
by
Stojkovic, M
, Yung, S
, Jeggo, P
, Tilgner, K
, Singhapol, C
, Burks, D
, Saretzki, G
, Armstrong, L
, Moreno-Gimeno, I
, Lako, M
, Evans, J
, Gorbunova, V
, Gennery, A
, Przyborski, S
, Neganova, I
, AL-Aama, J Y
in
631/1647/767
/ 631/337/1427/2191
/ 631/532/2064/2158
/ Apoptosis
/ Apoptosis - physiology
/ Biochemistry
/ Biomedical and Life Sciences
/ Bone marrow
/ Cell Biology
/ Cell Cycle Analysis
/ Cell death
/ Cell Line
/ Cell Survival - physiology
/ Cells, Cultured
/ DNA damage
/ DNA End-Joining Repair - physiology
/ DNA Ligase ATP
/ DNA Ligases - deficiency
/ DNA Ligases - physiology
/ DNA repair
/ Genomic Instability - physiology
/ Hematopoietic Stem Cells - cytology
/ Hematopoietic Stem Cells - physiology
/ Humans
/ Induced Pluripotent Stem Cells - cytology
/ Induced Pluripotent Stem Cells - physiology
/ Leukemia
/ Life Sciences
/ Microcephaly
/ Mutation
/ Original Paper
/ Phenotype
/ Radiation
/ Stem Cells
/ Tumor Suppressor Protein p53 - physiology
/ Up-Regulation - physiology
/ Yeast
2013
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A human iPSC model of Ligase IV deficiency reveals an important role for NHEJ-mediated-DSB repair in the survival and genomic stability of induced pluripotent stem cells and emerging haematopoietic progenitors
Journal Article
A human iPSC model of Ligase IV deficiency reveals an important role for NHEJ-mediated-DSB repair in the survival and genomic stability of induced pluripotent stem cells and emerging haematopoietic progenitors
2013
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Overview
DNA double strand breaks (DSBs) are the most common form of DNA damage and are repaired by non-homologous-end-joining (NHEJ) or homologous recombination (HR). Several protein components function in NHEJ, and of these, DNA Ligase IV is essential for performing the final ‘end-joining’ step. Mutations in
DNA Ligase IV
result in LIG4 syndrome, which is characterised by growth defects, microcephaly, reduced number of blood cells, increased predisposition to leukaemia and variable degrees of immunodeficiency. In this manuscript, we report the creation of a human induced pluripotent stem cell (iPSC) model of LIG4 deficiency, which accurately replicates the DSB repair phenotype of LIG4 patients. Our findings demonstrate that impairment of NHEJ-mediated-DSB repair in human iPSC results in accumulation of DSBs and enhanced apoptosis, thus providing new insights into likely mechanisms used by pluripotent stem cells to maintain their genomic integrity. Defects in NHEJ-mediated-DSB repair also led to a significant decrease in reprogramming efficiency of human cells and accumulation of chromosomal abnormalities, suggesting a key role for NHEJ in somatic cell reprogramming and providing insights for future cell based therapies for applications of LIG4-iPSCs. Although haematopoietic specification of LIG4-iPSC is not affected
per se
, the emerging haematopoietic progenitors show a high accumulation of DSBs and enhanced apoptosis, resulting in reduced numbers of mature haematopoietic cells. Together our findings provide new insights into the role of NHEJ-mediated-DSB repair in the survival and differentiation of progenitor cells, which likely underlies the developmental abnormalities observed in many DNA damage disorders. In addition, our findings are important for understanding how genomic instability arises in pluripotent stem cells and for defining appropriate culture conditions that restrict DNA damage and result in
ex vivo
expansion of stem cells with intact genomes.
Publisher
Nature Publishing Group UK,Nature Publishing Group
Subject
/ Biomedical and Life Sciences
/ DNA End-Joining Repair - physiology
/ Genomic Instability - physiology
/ Hematopoietic Stem Cells - cytology
/ Hematopoietic Stem Cells - physiology
/ Humans
/ Induced Pluripotent Stem Cells - cytology
/ Induced Pluripotent Stem Cells - physiology
/ Leukemia
/ Mutation
/ Tumor Suppressor Protein p53 - physiology
/ Yeast
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