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1.
Leukemia ; 27(12): 2272-9, 2013 Dec.
Article in English | MEDLINE | ID: mdl-23812420

ABSTRACT

Oncogenic mutations in components of the JAK/STAT pathway, including those in cytokine receptors and JAKs, lead to increased activity of downstream signaling and are frequently found in leukemia and other hematological disorders. Thus, small-molecule inhibitors of this pathway have been the focus of targeted therapy in these hematological diseases. We previously showed that t(8;21) fusion protein acute myeloid leukemia (AML)1-ETO and its alternatively spliced variant AML1-ETO9a (AE9a) enhance the JAK/STAT pathway via downregulation of CD45, a negative regulator of this pathway. To investigate the therapeutic potential of targeting JAK/STAT in t(8;21) leukemia, we examined the effects of a JAK2-selective inhibitor TG101209 and a JAK1/2-selective inhibitor INCB18424 on t(8;21) leukemia cells. TG101209 and INCB18424 inhibited proliferation and promoted apoptosis of these cells. Furthermore, TG101209 treatment in AE9a leukemia mice reduced tumor burden and significantly prolonged survival. TG101209 also significantly impaired the leukemia-initiating potential of AE9a leukemia cells in secondary recipient mice. These results demonstrate the potential therapeutic efficacy of JAK inhibitors in treating t(8;21) AML.


Subject(s)
Chromosomes, Human, Pair 21 , Chromosomes, Human, Pair 8 , Janus Kinases/antagonists & inhibitors , Leukemia/genetics , Protein Kinase Inhibitors/pharmacology , Translocation, Genetic , Animals , Apoptosis , Base Sequence , Cells, Cultured , DNA Primers , Flow Cytometry , Humans , Leukemia/pathology , Leukemia/prevention & control , Mice , Mice, Inbred C57BL
2.
Proc Natl Acad Sci U S A ; 104(9): 3055-60, 2007 Feb 27.
Article in English | MEDLINE | ID: mdl-17360608

ABSTRACT

Efficient incorporation of novel DNA sequences into a specific site in the genome of living human cells remains a challenge despite its potential utility to genetic medicine, biotechnology, and basic research. We find that a precisely placed double-strand break induced by engineered zinc finger nucleases (ZFNs) can stimulate integration of long DNA stretches into a predetermined genomic location, resulting in high-efficiency site-specific gene addition. Using an extrachromosomal DNA donor carrying a 12-bp tag, a 900-bp ORF, or a 1.5-kb promoter-transcription unit flanked by locus-specific homology arms, we find targeted integration frequencies of 15%, 6%, and 5%, respectively, within 72 h of treatment, and with no selection for the desired event. Importantly, we find that the integration event occurs in a homology-directed manner and leads to the accurate reconstruction of the donor-specified genotype at the endogenous chromosomal locus, and hence presumably results from synthesis-dependent strand annealing repair of the break using the donor DNA as a template. This site-specific gene addition occurs with no measurable increase in the rate of random integration. Remarkably, we also find that ZFNs can drive the addition of an 8-kb sequence carrying three distinct promoter-transcription units into an endogenous locus at a frequency of 6%, also in the absence of any selection. These data reveal the surprising versatility of the specialized polymerase machinery involved in double-strand break repair, illuminate a powerful approach to mammalian cell engineering, and open the possibility of ZFN-driven gene addition therapy for human genetic disease.


Subject(s)
Deoxyribonucleases/genetics , Gene Targeting/methods , Gene Transfer Techniques , Genetic Engineering/methods , Genome, Human/genetics , Zinc Fingers/genetics , Base Sequence , Evaluation Studies as Topic , Humans , Molecular Sequence Data
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