• 제목/요약/키워드: antimycin A

검색결과 28건 처리시간 0.022초

Functional Expression of the Internal Rotenone-Insensitive NADH-Quinone Oxidoreductase (NDI1) Gene of Saccharomyces cerevisiae in Human HeLa Cells

  • Seo, Byoung-Boo
    • 한국수정란이식학회지
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    • 제25권1호
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    • pp.35-42
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    • 2010
  • Many studies propose that dysfunction of mitochondrial proton-translocating NADH-ubiquinone oxidoreductase (complex I) is associated with neurodegenerative disorders, such as Parkinson's disease and Huntington's disease. Mammalian mitochondrial proton-translocating NADH-quinone oxidoreductase (complex I) consists of at least 46 different subunits. In contrast, the NDI1 gene of Saccharomyces cerevisiae is a single subunit rotenone-insensitive NADH-quinone oxidoreductase that is located on the matrix side of the inner mitochondrial membrane. With a recombinant adeno-associated virus vector carrying the NDI1 gene (rAAV-NDI1) as the gene delivery method, we were able to attain high transduction efficiencies even in the human epithelial cervical cancer cells that are difficult to transfect by lipofection or calcium phosphate precipitation methods. Using a rAAV-NDI1, we demonstrated that the Ndi1 enzyme is successfully expressed in HeLa cells. The expressed Ndi1 enzyme was recognized to be localized in mitochondria by confocal immunofluorescence microscopic analyses and immunoblotting. Using digitonin-permeabilized cells, it was shown that the NADH oxidase activity of the NDI1-transduced HeLa cells were not affected by rotenone which is inhibitor of complex I, but was inhibited by flavone and antimycin A. The NDI1-transduced cells were able to grow in media containing rotenone. In contrast, control cells that did not receive the NDI1 gene failed to survive. In particular, in the NDI1-transduced cells, the yeast enzyme becomes integrated into the human respiratory chain. It is concluded that the NDI1 gene provides a potentially useful tool for gene therapy of mitochondrial diseases caused by complex I deficiency.

Functional Expression of Saccharomyces cerevisiae NADH-quinone Oxidoreductase (NDI1) Gene in the AML12 Mouse Liver Hepatocytes for the Applying Embryonic Stem Cell

  • Seo, Byoung-Boo;Park, Hum-Dai
    • Reproductive and Developmental Biology
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    • 제35권4호
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    • pp.427-434
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    • 2011
  • Mitochondria diseases have been reported to involve structural and functional defects of complex I-V. Especially, many of these diseases are known to be related to dysfunction of mitochondrial proton-translocating NADH-ubiquinone oxidoreductase (complex I). The dysfunction of mitochondria complex I is associated with neurodegenerative disorders, such as Parkinson's disease, Huntington's disease, and Leber's hereditary optic neuropathy (LHON). Mammalian mitochondrial proton-translocating NADH-quinone oxidoreductase (complex I) is largest and consists of at least 46 different subunits. In contrast, the NDI1 gene of Saccharomyces cerevisiae is a single subunit rotenone-insensitive NADH-quinone oxidoreductase that is located on the matrix side of the inner mitochondrial membrane. The Saccharomyces cerevisiae NDI1 gene using a recombinant adeno-associated virus vector (rAAV-NDI1) was successfully expressed in AML12 mouse liver hepatocytes and the NDI1-transduced cells were able to grow in media containing rotenone. In contrast, control cells that did not receive the NDI1 gene failed to survive. The expressed Ndi1 enzyme was recognized to be localized in mitochondria by confocal immunofluorescence microscopic analyses and immunoblotting. Using digitonin-permeabilized cells, it was shown that the NADH oxidase activity of the NDI1-transduced cells was not affected by rotenone which is inhibitor of complex I, but was inhibited by antimycin A. Furthermore, these results indicate that Ndi1 can be functionally expressed in the AML12 mouse liver hepatocytes. It is conceivable that the NDI1 gene is powerful tool for gene therapy of mitochondrial diseases caused by complex I deficiency. In the future, we will attempt to functionally express the NDI1 gene in mouse embryonic stem (mES) cell.

호도약침(胡桃藥鍼)이 인간(人間)의 신경교종 세포(細胞)에 유발된 저산소증(低酸素症)에 대한 방어효과(防禦效果) (Effect of Juglans sinensis Dode extract on chemical hypoxia-induced cell injury in human glioma cells)

  • 윤현민;허재영;안창범
    • Journal of Acupuncture Research
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    • 제20권2호
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    • pp.173-183
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    • 2003
  • 이 논문(論文)은 활성 산소(ROS)의 작용(作用)을 규명하고 호도약침액(胡桃藥鍼液)이 인간의 신경교종 세포인 A172에서 화학적(化學的) 저산소증(低酸素症)으로 유발된 세포 사멸에 대해 효능이 있는지를 연구(硏究)한 것이다. 화학적(化學的) 저산소증(低酸素症)은 세포내 미토콘드리아의 전자 수송을 방해하는 antimycin A를 가진 배양세포에 의해 유발(誘發)하였다. 화학적(化學的) 저산소증(低酸素症)에 노출된 세포(細胞)는 시간과 그 양에 따라서 세포 사멸의 결과(結果)가 다르게 나타난다. 화학적 저산소증에 의해서 ROS의 생산이 증가하는데 이것은 $H_2O_2$ 소거(消去) Catalase(과산화수소를 물과 산소로 분해하는 효소)에 의해 방지(防止)된다. Catalase는 화학적 저산소증에 의해 유발(誘發)된 세포 사멸을 방지하는데 비해 DMTU는 효과적이지 않다. 지질(脂質)에 녹는 산화방지제 DPPD와 물에 녹는 산화방지제 Trolox는 세포사멸을 방지하는데 효과(效果)가 없다. 호도약침액(胡桃藥鍼液)은 그 양(量)에 의존적으로 저산소증에 의해 유발된 세포 사멸을 방지하는 효과가 있다. 즉 화학적 저산소증으로 유도된 ROS의 발생을 막고, $H_2O_2$로 유도된 세포사멸을 방지하는데 이것은 화학적 저산소증과 $H_2O_2$의해 유도된 세포사멸에 대해 호도약침액(胡桃藥鍼液)이 방지효과(防止效果)가 있다는 것을 의미한다. 이러한 결과(結果)들은 $H_2O_2$가 지질 과산화와는 무관한 메카니즘으로 저산소증(低酸素症)으로 유발(誘發)된 세포사멸을 중재하고, 따라서 호도약침액(胡桃藥鍼液)은 지질막의 과산화를 방지하기 보다는 ROS를 직접적으로 소거(消去)함으로써 방지 효과가 있다는 것을 의미한다. 더구나 화학적(化學的) 저산소증(低酸素症)은 caspase와 무관한 메카니즘으로 apoptosis를 유발(誘發)한다.

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Mitochondrial dysfunction reduces the activity of KIR2.1 K+ channel in myoblasts via impaired oxidative phosphorylation

  • Woo, JooHan;Kim, Hyun Jong;Nam, Yu Ran;Kim, Yung Kyu;Lee, Eun Ju;Choi, Inho;Kim, Sung Joon;Lee, Wan;Nam, Joo Hyun
    • The Korean Journal of Physiology and Pharmacology
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    • 제22권6호
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    • pp.697-703
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    • 2018
  • Myoblast fusion depends on mitochondrial integrity and intracellular $Ca^{2+}$ signaling regulated by various ion channels. In this study, we investigated the ionic currents associated with $[Ca^{2+}]_i$ regulation in normal and mitochondrial DNA-depleted(${\rho}0$) L6 myoblasts. The ${\rho}0$ myoblasts showed impaired myotube formation. The inwardly rectifying $K^+$ current ($I_{Kir}$) was largely decreased with reduced expression of KIR2.1, whereas the voltage-operated $Ca^{2+}$ channel and $Ca^{2+}$-activated $K^+$ channel currents were intact. Sustained inhibition of mitochondrial electron transport by antimycin A treatment (24 h) also decreased the $I_{Kir}$. The ${\rho}0$ myoblasts showed depolarized resting membrane potential and higher basal $[Ca^{2+}]_i$. Our results demonstrated the specific downregulation of $I_{Kir}$ by dysfunctional mitochondria. The resultant depolarization and altered $Ca^{2+}$ signaling might be associated with impaired myoblast fusion in ${\rho}0$ myoblasts.

Identification of ATP-sensitive $K^+$ Conductances in Male Rat Major Pelvic Ganglion Neurons

  • Park, Kyu-Sang;Cha, Seung-Kyu;Lee, Keon-Il;Jun, Jae-Yeoul;Jeong, Seong-Woo;Kong, In-Deok;Lee, Joong-Woo
    • The Korean Journal of Physiology and Pharmacology
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    • 제6권5호
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    • pp.247-253
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    • 2002
  • Major pelvic ganglia (MPG) neurons are classified into sympathetic and parasympathetic neurons according to the electrophysiological properties; membrane capacitance (Cm), expression of T-type $Ca^{2+}$ channels, and the firing patterns during depolarization. In the present study, function and molecular expression of ATP-sensitive $K^+\;(K_{ATP})$ channels was investigated in MPG neurons of male rats. Only in parasympathetic MPG neurons showing phasic firing patterns, hyperpolarizing changes were elicited by the application of diazoxide, an activator of $K_{ATP}$ channels. Glibenclamide $(10{\mu}M),$ a $K_{ATP}$ channel blocker, completely abolished the diazoxide-induced hyperpolarization. Diazoxide increased inward currents at high $K^+$ (90 mM) external solution, which was also blocked by glibenclamide. The metabolic inhibition by the treatment with mitochondrial respiratory chain inhibitors (rotenone and antimycin) hyperpolarized the resting membrane potential of parasympathetic neurons, which was not observed in sympathetic neurons. The hyperpolarizing response to metabolic inhibition was partially blocked by glibenclamide. RT-PCR analysis revealed that MPG neurons mainly expressed the $K_{ATP}$ channel subunits of Kir6.2 and SUR1. Our results suggest that MPG neurons have $K_{ATP}$ channels, mainly formed by Kir6.2 and SUR1, with phenotype-specificity, and that the conductance through this channel in parasympathetic neurons may contribute to the changes in excitability during hypoxia and/or metabolic inhibition.

와송약침액이 Oxidant에 의한 신장세포손상에 미치는 영향 (Beneficial effect of Orostachys japonicus A. berger herbal acupuncture on oxidant-induced cell injury in renal epithelial cell)

  • 박상원;김철홍;윤현민;장경전;안창범;송춘호
    • Korean Journal of Acupuncture
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    • 제24권1호
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    • pp.171-187
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    • 2007
  • Objectives : This study was performed to determine if Orostachys japonicus A. Berger herbal acupuncture (OjB) provides the protective effect against the loss of cell viability and DNA damage induced by oxidant in renal proximal tubular cells. Methods : The cell viability was evaluated by a MTT reduction assay and DNA damage was estimated by measuring double stranded DNA breaks in opossum kidney (OK) cells, an established proximal tubular cell line. Lipid peroxidation was determined by measuring malondialdehyde (MDA), a product of lipid peroxidation. Results : H2O2 increased the loss of cell viability in a time-dependent manner, which were prevented by 0.1% OjB. The protective effect of OjB was dose-dependent over concentration range of 0.05-0.5%. H2O2 caused ATP depletion and DNA damage, which were prevented by OjB and the hydrogen peroxide scavenger catalase. The loss of cell viability by H2O2 was not affected by the antioxidant DPPD, but lipid peroxidation by the oxidant was completely inhibited by DPPD. Generation of superoxide and H2O2 in neutrophils activated by phorbol-12,13-dibutyrate was inhibited by OjB in a dose-dependent manner. OjB inhibited generation of H2O2 in OK cells treated with antimycin A and exerted a direct H2O2 scavenging effect. Exposure of OK cells to 1 mM tBHP caused a significant depletion of glutathione which was prevented by OjB. OjB accelerated the recovery in cells cultured for 20 hr in normal medium without oxidant following oxidative stress. Conclusions : These results suggest that OjB exerts the protective effect against oxidant-induced cell injury and its protective effect was resulted from radical scavenging and antioxidant activities.

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광합성세균 Rhodopseudomonas gelatinosa 의 시토크롬 c 산화효소의 정제 및 특성 (Purification and Characterization of Cytochrome c Oxidase from Photosynthetic Bacterium, Rhodopseudomonas gelatinosa)

  • 강대길;최원기
    • 미생물학회지
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    • 제30권2호
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    • pp.101-107
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    • 1992
  • 화학 영양성으로 배양한 Rps. gelatinosa 에서 2회의 시토크롬 c 친화성 크로마토그래피와 DEAE-Sephacel 이온 교환 크로마토그래피 등 3 단계의 크로마토그래피를 수행하여 시토로콤 c 산화효소를 정제하였다. 정제된 시토크롬 c 산화효소는 Sephacryl S-300 에 의한 분자걍이 약 110,000 Da 이고 SDS-gel 전기영동에 의한 분자량이 약 52.000 Da 으로써 이량체일 것으로 보인다. 전제된 시토크롬 c 산화효소는 온도데 매우 불안정하고 말 심장 시토크롬 c 를 기질로 사용했을때 Km 값은 $20\mu$M, Vmax 값은 44unit/mg prot. 이며 pH 6.4 의 효소방응 최적 pH 와 25.deg.C 의 최적 온도를 보였다. 환원된 시토크롬 c 산화효소는 554, 523, 421 nm 에서 .alpha., .betha. soret 흡수대를 보였고 chromatophore 에서와 마찬가지로 KCN 과 $NaN_{3}$ 에 의해서는 효소 활성도가 저해를 받았지만 CO 와 antimycin A, myxothiazol 에 의해서는 효소 활성도가 저해를 받지 않았다. 빛을 에너지원으로 배양하거나 또는 화학영양성으로 배양하든지 모두 시토크롬 c-551 이 생성되었고 환원된 시토크롬 c-551 은 시토크롬 c 산화효소에 의해 산화되었다. 시토크롬 c-551 을 기질고 이용하였을 때 시토크롬 c 산화효소의 Km 값은 $26\mu$M 이었고 Vmax 값은 31.unit./mg prot. 로써 말심장의 시토크롬 c 를 기질로 이용할때 보다 오히려 낮았다. 이와 같은 결과로 보아 화학 영양성은 배양한 Rhodopseudomonas gelatinosa 에서 호흡에 의한 전자전달은 시토크롬 c-551 이 시토크롬 $bc_{1}$ 복합체로 부터 전자를 받아 b-형 시토크롬 c 산화효소에 전자를 전달해 주고 최정적으로 산소를 환원시킬 것으로 생각된다.

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Retinoid X Receptor α Overexpression Alleviates Mitochondrial Dysfunction-induced Insulin Resistance through Transcriptional Regulation of Insulin Receptor Substrate 1

  • Lee, Seung Eun;Koo, Young Do;Lee, Ji Seon;Kwak, Soo Heon;Jung, Hye Seung;Cho, Young Min;Park, Young Joo;Chung, Sung Soo;Park, Kyong Soo
    • Molecules and Cells
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    • 제38권4호
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    • pp.356-361
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    • 2015
  • Mitochondrial dysfunction is associated with insulin resistance and diabetes. We previously showed that retinoid X receptor ${\alpha}$ ($RXR{\alpha}$) played an important role in transcriptional regulation of oxidative phosphorylation (OXPHOS) genes in cells with mitochondrial dysfunction caused by mitochondrial DNA mutation. In this study, we investigated whether mitochondrial dysfunction induced by incubation with OXPHOS inhibitors affects insulin receptor substrate 1 (IRS1) mRNA and protein levels and whether $RXR{\alpha}$ activation or overexpression can restore IRS1 expression. Both IRS1 and $RXR{\alpha}$ protein levels were significantly reduced when C2C12 myotubes were treated with the OXPHOS complex inhibitors, rotenone and antimycin A. The addition of $RXR{\alpha}$ agonists, 9-cis retinoic acid (9cRA) and LG1506, increased IRS1 transcription and protein levels and restored mitochondrial function, which ultimately improved insulin signaling. $RXR{\alpha}$ overexpression also increased IRS1 transcription and mitochondrial function. Because $RXR{\alpha}$ overexpression, knock-down, or activation by LG1506 regulated IRS1 transcription mostly independently of mitochondrial function, it is likely that $RXR{\alpha}$ directly regulates IRS1 transcription. Consistent with the hypothesis, we showed that $RXR{\alpha}$ bound to the IRS1 promoter as a heterodimer with peroxisome proliferator-activated receptor ${\delta}$ ($PPAR{\delta}$). These results suggest that $RXR{\alpha}$ overexpression or activation alleviates insulin resistance by increasing IRS1 expression.