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  4. The distinct biological implications of Asxl1 mutation and its roles in leukemogenesis revealed by a knock-in mouse model
 
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The distinct biological implications of Asxl1 mutation and its roles in leukemogenesis revealed by a knock-in mouse model

Journal
Journal of Hematology and Oncology
Journal Volume
10
Journal Issue
1
Date Issued
2017
Author(s)
Hsu Y.-C.
Chiu Y.-C.
CHIEN-CHIN LIN  
Kuo Y.-Y.
HSIN-AN HOU  
Tzeng Y.-S.
Kao C.-J.
Chuang P.-H.
Tseng M.-H.
Hsiao T.-H.
WEN-CHIEN CHOU  
HWEI-FANG TIEN  
DOI
10.1186/s13045-017-0508-x
URI
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85023199591&doi=10.1186%2fs13045-017-0508-x&partnerID=40&md5=438dcda9b9a7585474ed1778c12325e9
https://scholars.lib.ntu.edu.tw/handle/123456789/537397
Abstract
Background: Additional sex combs-like 1 (ASXL1) is frequently mutated in myeloid malignancies. Recent studies showed that hematopoietic-specific deletion of Asxl1 or overexpression of mutant ASXL1 resulted in myelodysplasia-like disease in mice. However, actual effects of a "physiological" dose of mutant ASXL1 remain unexplored. Methods: We established a knock-in mouse model bearing the most frequent Asxl1 mutation and studied its pathophysiological effects on mouse hematopoietic system. Results: Heterozygotes (Asxl1 tm/+ ) marrow cells had higher in vitro proliferation capacities as shown by more colonies in cobblestone-area forming assays and by serial re-plating assays. On the other hand, donor hematopoietic cells from Asxl1 tm/+ mice declined faster in recipients during transplantation assays, suggesting compromised long-term in vivo repopulation abilities. There were no obvious blood diseases in mutant mice throughout their life-span, indicating Asxl1 mutation alone was not sufficient for leukemogenesis. However, this mutation facilitated engraftment of bone marrow cell overexpressing MN1. Analyses of global gene expression profiles of ASXL1-mutated versus wild-type human leukemia cells as well as heterozygote versus wild-type mouse marrow precursor cells, with or without MN1 overexpression, highlighted the association of in vivo Asxl1 mutation to the expression of hypoxia, multipotent progenitors, hematopoietic stem cells, KRAS, and MEK gene sets. ChIP-Seq analysis revealed global patterns of Asxl1 mutation-modulated H3K27 tri-methylation in hematopoietic precursors. Conclusions: We proposed the first Asxl1 mutation knock-in mouse model and showed mutated Asxl1 lowered the threshold of MN1-driven engraftment and exhibited distinct biological functions on physiological and malignant hematopoiesis, although it was insufficient to lead to blood malignancies. ? 2017 The Author(s).
SDGs

[SDGs]SDG3

Other Subjects
animal cell; animal experiment; animal model; Article; Asxl1 gene; bone marrow cell; cell proliferation; controlled study; gene expression; gene mutation; hematopoietic cell; heterozygote; in vitro study; leukemia cell; leukemogenesis; lifespan; male; mouse; nonhuman; tumor gene; animal; C57BL mouse; disease model; gene expression regulation; gene targeting; genetics; hematopoiesis; hematopoietic stem cell; human; leukemia; metabolism; mutation; myelodysplastic syndrome; pathology; tumor cell line; Asxl1 protein, mouse; Mn1 protein, mouse; oncoprotein; repressor protein; Animals; Bone Marrow Cells; Cell Line, Tumor; Cell Proliferation; Disease Models, Animal; Gene Expression Regulation, Neoplastic; Gene Knock-In Techniques; Hematopoiesis; Hematopoietic Stem Cells; Humans; Leukemia; Male; Mice; Mice, Inbred C57BL; Mutation; Myelodysplastic Syndromes; Oncogene Proteins; Repressor Proteins
Publisher
BioMed Central Ltd.
Type
journal article

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