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1
article
|
인용수 30
·
2018
Effect of heterochromatin stability on intestinal stem cell aging in Drosophila
Hojun Jeon, Young-Shin Kim, Joong‐Gook Kim, Kyu Heo, Jung-Hoon Pyo, Masamitsu Yamaguchi, Joung‐Sun Park, Mi‐Ae Yoo
IF 3.603 (2018)
Mechanisms of Ageing and Development
https://doi.org/10.1016/j.mad.2018.04.001
Heterochromatin
Biology
Heterochromatin protein 1
EZH2
Cell biology
Chromatin
Genome instability
Senescence
Histone
Genetics
2
article
|
인용수 68
·
2017
Folic acid is necessary for proliferation and differentiation of C2C12 myoblasts
Seong Yeon Hwang, Yong J. Kang, Bokyung Sung, Jung Yun Jang, Na Lam Hwang, Hye Jwa Oh, Yu Ra Ahn, Hong J. Kim, Jin‐Hong Shin, Mi‐Ae Yoo, Cheol M. Kim, Hae Young Chung, Nam Deuk Kim
Journal of Cellular Physiology
Folic acid, a water soluble B vitamin, plays an important role in cellular metabolic activities, such as functioning as a cofactor in one-carbon metabolism for DNA and RNA synthesis as well as nucleotide and amino acid biosynthesis in the body. A lack of dietary folic acid can lead to folic acid deficiency and result in several health problems, including macrocytic anemia, elevated plasma homocysteine, cardiovascular disease, birth defects, carcinogenesis, muscle weakness, and walking difficulty. However, the effect of folic acid deficiency on skeletal muscle development and its molecular mechanisms are unknown. We, therefore, investigated the effect of folic acid deficiency on myogenesis in skeletal muscle cells and found that folic acid deficiency induced proliferation inhibition and cell cycle breaking as well as cellular senescence in C2C12 myoblasts, implying that folic acid deficiency influences skeletal muscle development. Folic acid deficiency also inhibited differentiation of C2C12 myoblasts and induced deregulation of the cell cycle exit and many cell cycle regulatory genes. It inhibited expression of muscle-specific marker MyHC as well as myogenic regulatory factor (myogenin). Moreover, immunocytochemistry and Western blot analyses revealed that DNA damage was more increased in folic acid-deficient medium-treated differentiating C2C12 cells. Furthermore, we found that folic acid resupplementation reverses the effect on the cell cycle and senescence in folic acid-deficient C2C12 myoblasts but does not reverse the differentiation of C2C12 cells. Altogether, the study results suggest that folic acid is necessary for normal development of skeletal muscle cells.
https://doi.org/10.1002/jcp.25989
C2C12
Myogenesis
Myocyte
Skeletal muscle
Biology
Myogenin
MYF5
Internal medicine
Endocrinology
Biochemistry
3
article
|
gold
·
인용수 0
·
2017
DNA DAMAGE RESPONSE IS ESSENTIAL FOR THE MAINTENANCE OF INTESTINAL HOMEOSTASIS WITH AGE
P. JoungSun, Jung-Hoon Pyo, Hojun Jeon, Y. Kim, Mi‐Ae Yoo
Innovation in Aging
The stem cell genomic stability forms the basis for robust tissue homeostasis, particularly in high-turnover tissues. For the genomic stability, DNA damage response (DDR) is essential. This study was focused on role of the MRN complex (Mre11, Rad50, and Nbs1), two major DDR-related factors, ataxia telangiectasia-mutated (ATM) and ATM- and RAD3-related (ATR) kinases, and two transducer, Chk1 and Chk2 in the maintenance of intestinal stem cells in the adult Drosophila midgut. We explored the role of DNA damage response-related factors, utilizing immunostaining with an anti-pS/TQ antibody as an indicator of ATM/ATR activation, γ-irradiation as a DNA damage inducer, and the UAS/GAL4 system for cell type-specific knockdown of DNA damage response-related factors, or both during adulthood. Here we show that DDR is activated in the intestinal stem cells and enterocytes by DNA damage. ISCs or ECs-specific knockdown of DDR factors caused ISC or EC cell death. and induced intestinal stem cell proliferation. The results showed that the pS/TQ signals got stronger with age and after oxidative stress. The pS/TQ signals were found to be more dependent on ATR rather than on ATM in ISCs/enteroblasts. Furthermore, an ISC/EB-specific knockdown of DNA damage response-related factors decreased the number of ISCs and oxidative stress-induced ISC proliferation. EC-specific knockdown of DNA damage response-related factors increased ISC proliferation and centrosome amplification. These results indicate that DNA damage response-related factor is essential for the maintenance of intestinal homeostasis with age.
https://doi.org/10.1093/geroni/igx004.551
DNA damage
Gene knockdown
Stem cell
Cell biology
Biology
DNA repair
CHEK1
Checkpoint Kinase 2
Cell
Kinase

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