• Title/Summary/Keyword: Cardiac myoblast

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The Effects of Gamigunshimtang on the Ischemic Heart Disease & Heart cell in Rats (허혈성심장(虛血性心臟) 및 심장세포(心臟細胞)에 대(對)한 가미건심탕(加味健心湯)의 실험적(實驗的) 연구(硏究))

  • Park, Jung-Mi;Moon, Sang-Kwan;Go, Chang-Nam;Cho, Gi-Ho;Kim, Kyung-Suk;Bae, Hyung-Sup;Lee, Kyung-Sup
    • The Journal of Korean Medicine
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    • v.19 no.1
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    • pp.251-270
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    • 1998
  • The effects of Gamigunshimtang on the isolated perfused ischemic heart in rats, heart rates, left ventricular pressure, cardiac blood flow and cardiotoxicity were stu.died in H9C2 myoblast cell, myocardial slice culture The results were as follows: 1. The administration of Gamigunshimtang to the rat recovered effectively heart rate, left ventricular pressure and flow rate from the experimental ischemia in perfused rat heart. The release of lactic dehydrogenase after the ischemia also decreased compared to the control group. 2. The administration of Gamigunshimtang to H9C2 myoblast culture enhanced the cell proliferation and protected against doxorubicin and allylamine induced release of the lactic dehydrogenase into the culture medium. It also protected effectively against doxorubicin and allylamine induced decrease of Ca ATPase activity and the increase of NADPH-cytochrome C reductase activity in the microsome. 3. The administration of Gamigunshimtang to the rat myocardial slice culture protected effectively against doxorubicin and allylamine induced decreases of protein synthesis and ATP content, and increases of cvtosolic enzyme, creatin kinase into the medium and lipid peroxidation.

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Immunofluorescent, Immunogold, and Electrophoretic Studies on Cardiac Mvofibrillogenesis of Chick Embryos (계배심근 근원섬유형성에 관한 면역형장, 면역전자현미경 및 전기영동 연구)

  • 하재청;김동수
    • The Korean Journal of Zoology
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    • v.35 no.3
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    • pp.308-321
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    • 1992
  • 심근세포는 골격근 세포와 더불어 세포의 분화기작을 이해하기 위한 좋은 모델이라 할 수 있다. 본 연구에서는 심근세포의 배양중에 일어나는 심근 근원섬유형성과정에 대한 이해를 위하여 SDS- 및 two-dimensional gel electrophoresis와 immunofluorescent 및 immunoelectron microscopy를 수단으로 이를 검토하였다. 배양과정에서 나타나는 주요한 단백질 중에서 SDS-PAGE에 의해 209 kDa와 53 kDa 및 46 kDa band가 각각 막분획 및 세포질 분획 단백질에서 배양과정동안에 가장 현저한 양상을 보였다. 특히 배양 3일과 4일의 양상에서 뚜렷한 변화를 나타내어 이들의 OD 격은 배양 96시간에서의 막분획에서 0.38(209 kDa)와 0.52(53 kDa) 및 배양 72시간에서의 세포질 분획에서 0.34(46 kDa)로 각각 최고치를 나타내었다. 또한 이차원 전기영동상의 양상에서도 세포질 및 막분획 단백질의 전반적인 전개양상이 배양 96시간에서 가장 두드러짐으로써 결국 배양 72시간 및 96시간대에서 심근 모세포의 분화와 관련된 일련의 단백질 합성과정이 가장 활발하다는 것을 알 수 있었다. 배양중에 발현되는 actin에 대한 형광현미경적 분석에 의해, actin은 세포내에서 불균등하게 분포하였고 근원섬유가 형성되는 시기인 배양 96시간에 세포외곽부에서 나타나는 다소 강한 염색성을 관찰할 수 있었다. 심근세포의 근원섬유는 전자현미경 관찰에 의해 primitive forms로 배양 96시간에 출현함을 알 수 있었으며 이 시기의 근원섬유의 형태는 여러 구성대(A, H and M bands)가 미약하나 1대는 비교적 뚜렷하였다. 따라서 심근세포의 T근원섬유형성과정에서 관찰되는 뚜렷한 단백질양상의 변화와 근원섬유의 출현시기 및 구성과정간에는 중요한 관련성이 있으며 이러한 과정에서 actin은 세포질내에서 불균등한 분포를 나타낸다는 것을 알 수 있었다.

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The Role of GADD45 ${\beta}$ in Acute Myocardial Injury (급성 심근 손상에서 GADD45 ${\beta}$의 역할)

  • Cho, Suk-Ki;Hong, Jong-Myeon;Lee, Hak-Mo;Oh, Byong-Chul;Lee, Jae-Woong;Lee, Jeong-Ryul
    • Journal of Chest Surgery
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    • v.41 no.1
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    • pp.25-33
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    • 2008
  • Background: A critical shortage of donor organs has necessitated an investigation of new strategies to increase the availability of additional organs available for human transplantation. We investigated the amount of apoptosis and expression of GADD45 ${\beta}$ in two groups, a GADD45 ${\beta}$-transfected group and untransfected group. Material and Method: The experimental groups consist of a control group (normal H9C2 cell line) and GADD45 ${\beta}$-transfected group. After injury of the each group, we evaluated the expression of GADD45 ${\beta}$ and the level of apoptosis in each group. Result: There was a significant increase in the expression of GADD45 ${\beta}$ in the GADD45 ${\beta}$-transfected group at 1 hour, 2 hours, and 3 hours after stimuli as compared with the control group. The amount of cardiac myoblast cell line apoptosis was significantly lower in the GADD45 ${\beta}$-transfected group as compared with the control group. The concentration of annex in in the GADD45 ${\beta}$-transfected group was significantly lower than that of the control. group after cell. injury. Conclusion: Transfection of a rat myoblast cell line with the GADD45 ${\beta}$ gene results in. decreased susceptibility to cell injury of human serum.

Identification and Characterization of Secreted Phosphoprotein 2 as a Novel Bioactive Protein for Myocardial Differentiation (심근세포로의 분화에 관여하는 새로운 생리활성 단백질 SPP2의 발굴)

  • Sejin Jeon
    • Journal of Life Science
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    • v.33 no.1
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    • pp.64-72
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    • 2023
  • Despite several advances in identification of cardiac transcription factors, there are still needs to find new bioactive molecules that promote cardiomyogenesis from stem cells to highly efficient myocardial differentiation. We analyzed Illumina expression microarray data of mouse embryonic stem cells (mESCs)-derived cardiomyocytes. 276 genes were upregulated (≥ 4fold) in mESCs-derived cardiomyocytes compared undifferentiated ESCs. Secreted phosphoprotein 2 (Spp2) is one of candidates and is known to inhibit bone morphogenetic protein 2 (BMP2) signal transduction as a pseudoreceptor for BMP2. However, its function in cardiomyogenesis is unknown. We confirmed that Spp2 expression increased during the differentiation into functional cardiomyocytes using mESCs, TC-1/Kh2 and E14. Interestingly, Spp2 secretion transiently increased 3 days after formation of embryoid bodies (EBs), indicating that the extracellular secretion of Spp2 is involved in the differentiation of ESCs into cardiomyocytes. To characterize Spp2, we performed experiments using the C2C12 mouse myoblast cell line, which has the property of shifting the differentiation pathway from myoblastic to osteoblastic by treatment with BMP2. Similar to the differentiation of ESCs, transcription of Spp2 increased as C2C12 myoblasts differentiated into myotubes. In particular, Spp2 secretion increased dramatically in the early stage of differentiation. Furthermore, treatment with Spp2-Flag recombinant protein promoted the differentiation of C2C12 myoblasts into myotubes. Taken together, we suggest a novel bioactive protein Spp2 that differentiates ESCs into cardiomyocytes. This may be useful for understanding the molecular pathways of cardiomyogenesis and for experimental or clinical promotion of stem cell therapy for ischemic heart diseases.