• 제목/요약/키워드: myoblast

검색결과 157건 처리시간 0.023초

Induction of Myogenic Differentiation in Myoblasts by Electrical Stimulation

  • Je, Hyeon-Jeong;Kim, Min-Gu;Cho, Il-Hoon;Kwon, Hyuck-Joon
    • 대한물리의학회지
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    • 제14권2호
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    • pp.63-70
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    • 2019
  • PURPOSE: While electrical stimulation (ES) is known to be a safe and flexible tool in rehabilitation therapy, it has had limited adoption in muscle regeneration. This study was performed to investigate whether ES can induce myogenic differentiation and to clarify the mechanism underlying the effects of ES on myogenic differentiation. METHODS: This study used rat L6 cell lines as myoblasts for myogenic differentiation. Electric stimulation was applied to the cells using a C-Pace EP culture pacer (IonOptix, Westwood, Ma, USA). The gene expressions of myogenic markers were examined using qPCR and immunochemistry. RESULTS: Our study showed that ES increased the thickness and length of myotubes during myogenic differentiation. It was found that ES increased the expression of myogenic markers, such as MyoD and Myogenin, and also activated the fusion of the myoblast cells. In addition, ES suppressed the expression of small GTPases, which can explain why ES promotes myogenic differentiation. CONCLUSION: We found that ES induced myogenic differentiation by suppressing small GTPases, inhibiting cell division. We suggest that ES-based therapies can contribute to the development of safe and efficient muscle regeneration.

Trans-anethole Suppresses C2C12 Myoblast Differentiation

  • Mi-Ran Lee
    • 대한의생명과학회지
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    • 제29권3호
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    • pp.190-200
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    • 2023
  • Skeletal muscle, essential for metabolism, thermoregulation, and immunity, undergoes myogenic differentiation that results in myotube formation. Trans-anethole (TA), the major constituent in essential oil produced by anise, star anise, and fennel, whose function in skeletal muscle has not yet been elucidated. Therefore, we investigated whether TA influenced muscle differentiation in mouse C2C12 myoblasts. Cells were induced to differentiate using a differentiation medium with or without TA (50 or 200 mg/mL) daily for 5 days. We measured myotube length and diameter after differentiation days 1, 3, and 5 and analyzed the expression of myogenic markers (myoblast determination protein 1, myogenin, myocyte enhancer factor 2, muscle creatine kinase, and myosin heavy chain) and atrophy-related genes (atrogin-1 and muscle ring finger-1 [MuRF-1]) using quantitative real-time PCR. Additionally, we observed the expression of total protein kinase B (Akt) and phosphorylated Akt (p-Akt) using western blotting. Our data showed that TA significantly induced the formation of smaller and thinner myotubes and reduced the myogenic factor expression. Furthermore, the atrogin-1 and MuRF-1 expression markedly increased by TA. Consistent with these findings, TA significantly decreased the expression of total Akt and p-Akt. Taken together, these results indicate that TA inhibits myogenic differentiation of C2C12 cells via reduction of both total Akt and p-Akt. Our findings may provide valuable insights into the impact of PAA on individuals at risk of muscle atrophy.

다슬기 protamex 가수분해물(MPH)의 항당뇨 기작 연구 (Anti-diabetic mechanism of melania snail (Semisulcospira libertina) protamex hydrolysates)

  • 표상은;최재석;김미령
    • 한국식품저장유통학회지
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    • 제24권7호
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    • pp.1007-1016
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    • 2017
  • 다슬기는 예로부터 간염, 간경화, 지방간 등의 치료 및 개선에 이용되어 왔으며, 특히 소변불통, 소갈증(당뇨) 등의 약용으로 이용되어 왔다. 본 연구에서는 이러한 다슬기를 대상으로 항당뇨에 대한 효능을 과학적으로 검증하고 그 기작을 규명하고자 하였다. 먼저 다슬기의 생물학적 기능성을 높이기 위해 효소 가수분해를 실시하였으며, protamex에 의한 가수분해도는 10시간 후 약 43% 수준을 나타내었다. PTP1B는 인슐린 신호전달기전에서 IRS-1의 인산화를 방해하여 인슐린 민감성을 저해시키는 효소이다. protamex를 이용한 다슬기 가수분해물(MPH)의 PTP1B에 대한 저해활성은 $15.42{\pm}1.1{\mu}g/mL$$IC_{50}$ 값을 나타내어 양성대조군 ursolic acid의 $16.7{\mu}g/mL$ 보다 높은 저해활성을 보이면서 강한 항당뇨 활성 소재로서의 가능성을 보였다. 이에 따라 유리지방산을 이용하여 C2C12 myoblast에서 인슐린 저항성을 유도하고, MPH에 의한 포도당 흡수 정도를 확인하였다. 그 결과, 1 mM PA 처리에 의해 약 32% 수준으로 떨어진 포도당 흡수율은 MPH 처리에 의해 약 199% 수준으로 증가하였다. 또한 장기간 고농도의 포도당(30 mM)에 의해 유도된 당독성 조건에서 MPH는 췌장의 베타세포 INS-1 세포의 생존율을 증가시키고, 대조군에 비해 약 160% 인슐린 mRNA 발현량을 증가시켰다. 이러한 결과에서 MPH는 PTP1B 활성을 저해함으로써 인슐린 신호전달 기작을 활성화하고, 인슐린저항성 환경에서 포도당 흡수를 증진시켜 인슐린저항성을 개선하며, 나아가 고농도 포도당에 의해 유도되는 당독성환경에서 췌장 베타세포를 보호하고 인슐린 mRNA발현량을 정상화할 수 있다는 것을 확인할 수 있었다.

강황 열수 추출물의 항산화 활성 및 C2C12 Myoblasts의 산화적 손상에 대한 보호 효과 (Antioxidant Activities and Protective Effects of Hot Water Extract from Curcuma longa L. on Oxidative Stress-Induced C2C12 Myoblasts)

  • 정혜진;김신태;박정진;김기홍;김경미;전우진
    • 한국식품영양과학회지
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    • 제46권11호
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    • pp.1408-1413
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    • 2017
  • 본 연구에서는 강황 열수 추출물의 항산화 활성 및 산화적 스트레스에 대한 보호 효과를 확인하고자 하였다. 항산화 활성을 확인하기 위해 총 페놀성 화합물 함량, 총 플라보노이드 함량 및 라디칼 소거능을 측정하였다. 강황 열수 추출물의 총 페놀성 화합물 및 플라보노이드 함량은 각각 $2,474.4{\pm}31.9mg$ GAE/100 g 및 $892.1{\pm}21.2mg$ CE/100 g으로 나타났다. 강황 열수 추출물의 라디칼 소거능은 DPPH 및 ABTS 라디칼을 이용하여 측정하였다. 실험 결과 DPPH 및 ABTS 라디칼 소거능을 $SC_{50}$ 값으로 계산하였을 때 각각 $188.5{\pm}3.0{\mu}g/mL$$92.0{\pm}0.9{\mu}g/mL$로 나타났다. 이러한 라디칼 소거능에는 강황 열수 추출물에 함유되어 있는 총 페놀성 화합물 및 플라보노이드가 영향을 미쳤을 것이라고 판단된다. C2C12 myoblast에 강황 열수 추출물을 처리하였을 때 $1,000{\mu}g/mL$ 농도까지 세포 독성이 나타나지 않음을 확인하였으며, 안전성이 확인된 $500{\mu}g/mL$ 농도까지 실험을 진행하였다. 강황 열수 추출물의 $H_2O_2$에 대한 보호 효과를 측정한 결과 강황 열수 추출물을 처리하였을 때 농도 의존적으로 보호 효과가 나타나는 것을 확인할 수 있었다. 또한, $H_2O_2$ 처리 후 DCF-DA 방법을 이용하여 세포 내 활성산소종(ROS) 수준을 측정한 결과 강황 열수 추출물을 처리하였을 때 세포 내 ROS 수준이 유의적으로 감소하는 것을 확인하였다. 이상의 결과로부터 강황 열수 추출물은 항산화 활성을 나타냈으며, C2C12 myoblast에 $H_2O_2$로 유도된 산화적 스트레스를 감소시키는 효과를 나타내는 것으로 생각된다.

miR-3074-3p promotes myoblast differentiation by targeting Cav1

  • Lee, Bora;Shin, Yeo Jin;Lee, Seung-Min;Son, Young Hoon;Yang, Yong Ryoul;Lee, Kwang-Pyo
    • BMB Reports
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    • 제53권5호
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    • pp.278-283
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    • 2020
  • Muscle fibers are generally formed as multinucleated fibers that are differentiated from myoblasts. Several reports have identified transcription factors and proteins involved in the process of muscle differentiation, but the roles of microRNAs (miRNAs) in myogenesis remain unclear. Here, comparative analysis of the miRNA expression profiles in mouse myoblasts and gastrocnemius (GA) muscle uncovered miR-3074-3p as a novel miRNA showing markedly reduced expression in fully differentiated adult skeletal muscle. Interestingly, elevating miR-3074-3p promoted myogenesis in C2C12 cells, primary myoblasts, and HSMMs, resulting in increased mRNA expression of myogenic makers such as Myog and MyHC. Using a target prediction program, we identified Caveolin-1 (Cav1) as a target mRNA of miR-3074-3p and verified that miR-3074-3p directly interacts with the 3' untranslated region (UTR) of Cav1 mRNA. Consistent with the findings in miR-3074-3p-overexpressing myoblasts, knockdown of Cav1 promoted myogenesis in C2C12 cells and HSMMs. Taken together, our results suggest that miR-3074-3p acts a positive regulator of myogenic differentiation by targeting Cav1.

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.