• 제목/요약/키워드: myoD

검색결과 140건 처리시간 0.029초

소 Adipocyte Differentiation Related Protein (ADRP) 유전자의 Genomic Organization 및 Promoter Region의 특성 규명 (Genomic Organization and Characterization of the Promoter Region of Bovine ADRP (Adipocyte Different Related Protein) Gene)

  • 장요순;윤두학;김태헌;정일정;조진기
    • Journal of Animal Science and Technology
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    • 제45권2호
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    • pp.169-182
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    • 2003
  • ADRP 유전자가 24개월령 한우 등심조직에서 발현량이 급격히 증가하여 30개월령 등심조직에서는 발현량이 다소 감소하는 발현양상 분석결과로부터 이전 연구에서는 ADRP 유전자를 한우 성장단계 특이발현 유전자로 선정하였다. 본 연구에서는 ADRP 유전자의 발현조절 기작을 분석하기 위하여 promoter 영역을 포함하는 ADRP 유전자 전체영역을 cloning하였으며, 구조를 분석하고 promoter의 특성을 조사하였다. 한우 ADRP cDNA 단편을 probe로 합성하여 Southern blot 분석을 실시한 결과로부터 ADRP 유전자가 한우 genome 상에서 single copy로 존재하고 크기는 대략 12 kb에 해당하는 것을 확인하였다. Genomic DNA library screening을 실시하여 promoter 영역을 포함하는 ADRP 전체 유전자에 해당하는 clone을 확보하고 HwADRPg-1으로 명명한 후, 염기서열을 결정하고 분석하였다. 한우 ADRP 유전자, HwADRPg-1은 8개의 exon과 7개의 intron으로 구성되어 있으며 모든 exon-intron 경계는 GT/AG 원칙을 따르고 있었고, coding 영역은 7,633 bp로서 6개의 intron에 의해 7개의 exon으로 나누어져 있었다. HwADRPg-1의 promoter 영역에서는 TATAA box는 발견되지 않았으며, -70 위치에 근육 특이적 transcription activator인 Myo G 서열이 존재하였고, -629 위치에는 지방세포의 분화를 유도하는 것으로 알려진 C/EBP (CCAAT/enhancer binding protein) 서열이 존재하였다. HwADRPg-1의 조절영역에 있는 Myo G factor가 근육조직에서 ADRP 유전자가 발현될 수 있도록 하며, 근육의 발달정도를 신호로써 감지하여 근육조직에서 성장단계에 따른 ADRP 유전자의 발현량을 조절할 것으로 추정되고, 다른 종류의 지방세포 특이적인 전사인자 및 지방세포의 분화정도를 신호로 인식하는 전사단계 조절인자를 조사하기 위하여 promoter 영역의 추가분석이 이루어져야 할 것으로 사료된다.

HDAC11 Inhibits Myoblast Differentiation through Repression of MyoD-Dependent Transcription

  • Byun, Sang Kyung;An, Tae Hyeon;Son, Min Jeong;Lee, Da Som;Kang, Hyun Sup;Lee, Eun-Woo;Han, Baek Soo;Kim, Won Kon;Bae, Kwang-Hee;Oh, Kyoung-Jin;Lee, Sang Chul
    • Molecules and Cells
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    • 제40권9호
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    • pp.667-676
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    • 2017
  • Abnormal differentiation of muscle is closely associated with aging (sarcopenia) and diseases such as cancer and type II diabetes. Thus, understanding the mechanisms that regulate muscle differentiation will be useful in the treatment and prevention of these conditions. Protein lysine acetylation and methylation are major post-translational modification mechanisms that regulate key cellular processes. In this study, to elucidate the relationship between myogenic differentiation and protein lysine acetylation/methylation, we performed a PCR array of enzymes related to protein lysine acetylation/methylation during C2C12 myoblast differentiation. Our results indicated that the expression pattern of HDAC11 was substantially increased during myoblast differentiation. Furthermore, ectopic expression of HDAC11 completely inhibited myoblast differentiation, concomitant with reduced expression of key myogenic transcription factors. However, the catalytically inactive mutant of HDAC11 (H142/143A) did not impede myoblast differentiation. In addition, wild-type HDAC11, but not the inactive HDAC11 mutant, suppressed MyoD-induced promoter activities of MEF2C and MYOG (Myogenin), and reduced histone acetylation near the E-boxes, the MyoD binding site, of the MEF2C and MYOG promoters. Collectively, our results indicate that HDAC11 would suppress myoblast differentiation via regulation of MyoD-dependent transcription. These findings suggest that HDAC11 is a novel critical target for controlling myoblast differentiation.

Growth factors improve the proliferation of Jeju black pig muscle cells by regulating myogenic differentiation 1 and growth-related genes

  • Park, Jinryong;Lee, Jeongeun;Song, Ki-Duk;Kim, Sung-Jo;Kim, Dae Cheol;Lee, Sang Cheol;Son, Young June;Choi, Hyun Woo;Shim, Kwanseob
    • Animal Bioscience
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    • 제34권8호
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    • pp.1392-1402
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    • 2021
  • Objective: The growth rate of pigs is related to differentiation and proliferation of muscle cells, which are regulated by growth factors and expression of growth-related genes. Thus, the objective of this study was to establish optimal culture conditions for Jeju black pig (JBP) muscle cells and determine the relationship of various factors involved in muscle growth with the proliferation of JBP muscle cells. Methods: Muscles were taken from the femur skeletal muscle of JBP embryos. After isolation of the muscle cells, cells were cultured in a 6-well plate under four different culture conditions to optimize culture conditions for JBP muscle cells. To analyze proliferation rate of JBP muscle cells, these muscle cells were seeded into 6-well plates at a density of 1.5×105 cells per well and cultured for 3 days. Western blot and quantitative real-time polymerase chain reaction were applied to verify the myogenic differentiation 1 (MyoD) expression and growth-related gene expression in JBP muscle cells, respectively. Results: We established a muscle cell line from JBP embryos and optimized its culture conditions. These muscle cells were positive for MyoD, but not for paired box 7. The proliferation rate of these muscle cells was significantly higher in a culture medium containing bFGF and epidermal growth factor + basic fibroblast growth factor (EGF+bFGF) than that without a growth factor or containing EGF alone. Treatment with EGF and bFGF significantly induced the expression of MyoD protein, an important transcription factor in muscle cells. Moreover, we checked the changes of expression of growth-related genes in JBP muscle cells by presence or absence of growth factors. Expression level of collagen type XXI alpha 1 gene was changed only when EGF and bFGF were added together to culture media for JBP muscle cells. Conclusion: Concurrent use of EGF and bFGF increased the expression of MyoD protein, thus regulating the proliferation of JBP muscle cells and the expression of growth-related genes.

MiR-183-5p induced by saturated fatty acids regulates the myogenic differentiation by directly targeting FHL1 in C2C12 myoblasts

  • Nguyen, Mai Thi;Min, Kyung-Ho;Lee, Wan
    • BMB Reports
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    • 제53권11호
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    • pp.605-610
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    • 2020
  • Skeletal myogenesis is a complex process that is finely regulated by myogenic transcription factors. Recent studies have shown that saturated fatty acids (SFA) can suppress the activation of myogenic transcription factors and impair the myogenic differentiation of progenitor cells. Despite the increasing evidence of the roles of miRNAs in myogenesis, the targets and myogenic regulatory mechanisms of miRNAs are largely unknown, particularly when myogenesis is dysregulated by SFA deposition. This study examined the implications of SFA-induced miR-183-5p on the myogenic differentiation in C2C12 myoblasts. Long-chain SFA palmitic acid (PA) drastically reduced myogenic transcription factors, such as myoblast determination protein (MyoD), myogenin (MyoG), and myocyte enhancer factor 2C (MEF2C), and inhibited FHL1 expression and myogenic differentiation of C2C12 myoblasts, accompanied by the induction of miR-183-5p. The knockdown of FHL1 by siRNA inhibited myogenic differentiation of myoblasts. Interestingly, miR-183-5p inversely regulated the expression of FHL1, a crucial regulator of skeletal myogenesis, by targeting the 3'UTR of FHL1 mRNA. Furthermore, the transfection of miR-183-5p mimic suppressed the expression of MyoD, MyoG, MEF2C, and MyHC, and impaired the differentiation and myotube formation of myoblasts. Overall, this study highlights the role of miR-183-5p in myogenic differentiation through FHL1 repression and suggests a novel miRNA-mediated mechanism for myogenesis in a background of obesity.

저출력 레이져 자극이 근육세포의 증식 및 유전자 발현에 미치는 효과 (Effect of Low-Energy Laser Irradiation on the Proliferation and Gene Expression of Myoblast Cells)

  • 곽지현;전옥희;강동연;유현희;김경환;정병조;김지현
    • 대한의용생체공학회:의공학회지
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    • 제31권1호
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    • pp.81-86
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    • 2010
  • Laser irradiation is known to affect various tissues such as skin, bone, nerve, and skeletal muscle. Laser irradiation promotes ATP synthesis, facilitates wound healing, and stimulates cell proliferation and angiogenesis. In skeletal muscle, laser irradiation is related to the proliferation of skeletal muscle satellite cells. Normal skeletal muscle contains remodeling capacity from myogenic cells that are derived from mononuclear satellite cells. Their processes are activated by the expression of genes related with myogenesis such as muscle-specific transcription factors (MyoD and Myf5) and VEGF (vascular endothelial growth factor). In this study, we hypothesized that laser irradiation would enhance and regulate muscle cell proliferation and regeneration through modulation of the gene expressions related with the differentiation of skeletal muscle satellite cells. $C_2C_{12}$ myoblastic cells were exposed to continuous/non-continuous laser irradiation (660nm/808nm) for 10 minutes daily for either 1 day or 5 days. After laser irradiation, cell proliferation and gene expression (MyoD, Myf5, VEGF) were quantified. Continuous 660nm laser irradiation significantly increased cell proliferation and gene expression compared to control, continuous 808nm laser irradiation, and non-continuous 660nm laser irradiation groups. These results indicate that continuous 660nm laser irradiation can be applied to the treatment and regeneration of skeletal muscle tissue.

Ginsenoside Rg1 from Panax ginseng enhances myoblast differentiation and myotube growth

  • Go, Ga-Yeon;Lee, Sang-Jin;Jo, Ayoung;Lee, Jaecheol;Seo, Dong-Wan;Kang, Jong-Sun;Kim, Si-Kwan;Kim, Su-Nam;Kim, Yong Kee;Bae, Gyu-Un
    • Journal of Ginseng Research
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    • 제41권4호
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    • pp.608-614
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    • 2017
  • Background: Ginsenoside Rg1 belongs to protopanaxatriol-type ginsenosides and has diverse pharmacological activities. In this report, we investigated whether Rg1 could upregulate muscular stem cell differentiation and muscle growth. Methods: C2C12 myoblasts, MyoD-transfected 10T1/2 embryonic fibroblasts, and HEK293T cells were treated with Rg1 and differentiated for 2 d, subjected to immunoblotting, immunocytochemistry, or immunoprecipitation. Results: Rg1 activated promyogenic kinases, p38MAPK (mitogen-activated protein kinase) and Akt signaling, that in turn promote the heterodimerization with MyoD and E proteins, resulting in enhancing myogenic differentiation. Through the activation of Akt/mammalian target of rapamycin pathway, Rg1 induced myotube growth and prevented dexamethasone-induced myotube atrophy. Furthermore, Rg1 increased MyoD-dependent myogenic conversion of fibroblast. Conclusion: Rg1 upregulates promyogenic kinases, especially Akt, resulting in improvement of myoblast differentiation and myotube growth.

Efficient transgene expression system using a cumate-inducible promoter and Cre-loxP recombination in avian cells

  • Park, Tae Sub;Kim, Si Won;Lee, Jeong Hyo
    • Asian-Australasian Journal of Animal Sciences
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    • 제30권6호
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    • pp.886-892
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    • 2017
  • Objective: Transgenic technology is widely used for industrial applications and basic research. Systems that allow for genetic modification play a crucial role in biotechnology for a number of purposes, including the functional analysis of specific genes and the production of exogenous proteins. In this study, we examined and verified the cumate-inducible transgene expression system in chicken DF1 and quail QM7 cells, as well as loxP element-mediated transgene recombination using Cre recombinase in DF1 cells. Methods: After stable transfer of the transgene with piggyBac transposon and transposase, transgene expression was induced by an appropriate concentration of cumate. Additionally, we showed that the transgene can be replaced with additional transgenes by co-transfection with the Cre recombinase expression vector. Results: In the cumate-GFP DF1 and QM7 cells, green fluorescent protein (GFP) expression was repressed in the off state in the absence of cumate, and the GFP transgene expression was successfully induced in the presence of cumate. In the cumate-MyoD DF1 cells, MyoD transgene expression was induced by cumate, and the genes controlled by MyoD were upregulated according to the number of days in culture. Additionally, for the translocation experiments, a stable enhanced green fluorescent protein (eGFP)-expressing DF1 cell line transfected with the loxP66-eGFP-loxP71 vector was established, and DsRed-positive and eGFP-negative cells were observed after 14 days of co-transfection with the DsRed transgene and Cre recombinase indicating that the eGFP transgene was excised, and the DsRed transgene was replaced by Cre recombination. Conclusion: Transgene induction or replacement cassette systems in avian cells can be applied in functional genomics studies of specific genes and adapted further for efficient generation of transgenic poultry to modulate target gene expression.

D-myo-inositol-1,2,6-trisphosphate를 이용한 neuropeptide Y의 치수혈류 조절기능 연구 (TESTING OF NEUROPEPTIDE Y INVOLVEMENT IN BLOOD FLOW REGULATION IN THE FELINE DENTAL PULP USING D-MYO-INOSITOL-1,2,6-TRISPHOSPHATE)

  • 김성교
    • Restorative Dentistry and Endodontics
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    • 제21권1호
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    • pp.366-374
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    • 1996
  • The purpose of this study was to investigate whether D-myo-inositol-l,2,6-trisphosphate (PP56) can effectively antagonize vasoconstriction caused by neuropeptide Y in the dental pulp, and to understand involvement of neuropeptide Y in the regulation of microcirculation in the dental pulp with the aim of elucidating neurogenic inflammation. Experiments were performed on 7 cats anesthetised with sodium pentobarbital, and neuropeptide Y and a neuropeptide Y antagonist PP56 were injected close intra-arterially into the dental pulp. The probe of laser Doppler flowmeter was placed on the buccal surface of ipsilateral canine teeth to the drug administration and pulpal blood flow was measured. Intra-arterial injection of neuropeptide Y (1.3-$2.0\;{\mu}g$/kg) resulted in pulpal blood flow decrease of $37.73{\pm}5.73%$(mean${\pm}$SEM) (n=9). Intra-arterial injection of PP56(0.3 mg/kg) alone changed pulpal blood flow little by 1.03 % reduction. The effect of neuropeptide Y in the presence of PP56 resulted in significantly less decreases in pulpal blood flow ranging from $27.17{\pm}5.37$ to $16.63{\pm}3.48%$ from control as compared with neuropeptide Y alone(n = 13). In effect, PP56 attenuated pulpal blood flow caused by neuropeptide Y. Results of the present study have provided evidences that a non-peptide PP56 is capable of antagonizing vasoconstriction caused by neuropeptide Y in the feline dental pulp. In addition, they show functional evidences that neuropeptide Y plays an active role in modulating the microcirculation of the dental pulp.

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