• 제목/요약/키워드: ATP production

검색결과 240건 처리시간 0.026초

Glucose Deprivation and Immunostimulation Induced Death in Rat Primary Astrocytes is Mediated by Their Synergistic Effect on the Decrease in Cellular ATP Level

  • Choi, Ji-Woong;Yoo, Byoung-Kwon;Yoon, Seo-Young;Jeon, Mi-Jin;Ko, Kwang-Ho
    • Biomolecules & Therapeutics
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    • 제12권1호
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    • pp.25-33
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    • 2004
  • In this study we investigated whether ATP loss was involved in the potentiated death of immunostimulated rat primary astrocytes in glucose-deprived condition. Rat primary astrocytes immunostimulated with LPS plus IFN-${\gamma}$ for 48 h underwent death upon glucose deprivation, which dependent on the production of peroxynitrite. Intracellular ATP level synergistically decreased by glucose deprivation in immunostimulated astrocytes but not in control cells, and the loss of ATP occurred well ahead of the LDH release. The synergistic cell death and ATP loss by immunostimulation and glucose deprivation were inhibited by iNOS inhibitor (L-NAME and L-NNA) or peroxynitrite decomposition catalyst (also a superoxide anion scavenger), Mn(III)tetrakis(N-methyl-4'-pyridyl)porphyrin (MnTMPyP). Exogenous addition of peroxynitrite generator, SIN-l timedependently induced ATP loss and cell death in the glucose-deprived astrocytes. Depletion of intracellular glutathione (GSH) and dis겨ption of mitochondrial transmembrane potential (MTP) were also observed under same conditions. Supply cellular ATP by the addition of exogenous adenosine or ATP during glucose deprivation inhibited ATP depletion, GSH depletion, MTP disruption and cell death in SIN-l treated or immunostimulated astrocytes. This study showed that perturbation in the regulation of intracellular ATP level in immunostimulated astrocytes might make them more vulnerable to energy challenging stimuli.

재조합 대장균과 효모의 고정화 혼합세포계에 의한 ${\gamma}$-Glutamylcysteine 생산 (Production of ${\gamma}$-Glutamylcysteine by Immobilized Mixed Microbial System of Recombinant E. coli and Yeast)

  • 김원근;구윤모
    • KSBB Journal
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    • 제10권3호
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    • pp.249-256
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    • 1995
  • ${\gamma}$-Glutamylcysteine 생산에 있어서 재조합 대장 균 HB101/pGH501만을 이용한 단일세포반응계가 재조합 대장균과 효모를 이용한 흔합서l포반응계보다 반응시간이 짧고 생산농도가 높은 것으로 나타났다. 그러나 생산경제성 측면에서 ATP 재생공정을 위하 여 훈합세포반응계를 사용하였다. 재조합 대장균과 효모를 이용한 혼합세포반응계에서 대장균과 효모의 비율은 1:4가 적합함을 보였고, ATP 재생공정에 사용되는 glucose는 O.5M의 농도에서 가장 효율적 으로 나타났다. 재조합 대장균과 효모를 alginate를 이용하여 고정화하여 반응계로 사용하였을 경우 반 응에 필요한 시간이 걸어지고 생산놓도도 감소되냐 반응계의 안정성은 10% 정도 증가됨을 알 수 있었다. 실험결과 alginate로 고정화된 흔합세포반응계 를 사용하여 ${\gamma}$-glutamylcysteine를 연속 생산할 수 있음을 확인하였다.

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배양된 흰쥐 대뇌 피질 astrocytes의 세포기능에 대한 화학적 무산소증 유도물의 효과 (Effects of Chemical Anoxia Inducers on Cellular Functions of Cultured Rat Cortical Astrocytes)

  • 이선애;박우규;성연희
    • 약학회지
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    • 제43권6호
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    • pp.851-860
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    • 1999
  • The effects of antimycin A(AA), dodium azide ($NaN_3$) and 2,4-dinitrophenol (DNP), which inhibit mitochondrial ATP production, on cellular functions of cultured astrocytes were studied. High concentrations of AA $(50{\;}\mu\textrm{g}/ml),{\;}NaN_3$ (100mM) and DNP (20mM) significantly decreased 3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyl tetrazolium bromide (MTT) reduction, which was known to be related to mitochondrial function and then cel viability. AA ($50{\;}\mu\textrm{g}/ml$) increased lactate dehydrogenase (LDH) release and decreased [$^3H$] glutamate uptake, suggesting severe damage of cellular function by the concentrations of the compounds. Meanwhile, low concentrations of AA $(\leq{;\}10{\;}\mu\textrm{g}/ml),{\;}NaN_3{;\}(\leq{\;}50mM)$ and DNP ($\leq{\;}5mM$) significantly increased MTT reduction, the effect of which was specific to astrocytes. AA (5 and $10{\;}\mu\textrm{g}/ml$) did not affect LDH release and [$^3H$] glutamate uptake, indicating that these compounds increased MTT reduction at the low concentrations without cellular membrane damage. However, the low concentrations of AA produced significant decrease of MTT reduction in a glucose-free medium. Low concentrations of AA (1 and $5{\;}\mu\textrm{g}/ml$) did not change ATP production of astrocytes in the medium containing 10 mM glucose, but completely inhibited in a glucose-free medium, suggesting marked increase of cytosolic ATP production by the blockade of mitochondrial ATP production with low concentrations of AA. These results suggest that astrocytes have ability to enhance neuronal function or survival under conditions of incomplete ischemia or early by enhancement of glycolysis, and that cellular reduction of MTT occurs not only mitochondrially but also extramitchondrially.

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Enhanced Production of Adenosine Triphosphate by Pharmacological Activation of Adenosine Monophosphate-Activated Protein Kinase Ameliorates Acetaminophen-Induced Liver Injury

  • Hwang, Jung Hwan;Kim, Yong-Hoon;Noh, Jung-Ran;Choi, Dong-Hee;Kim, Kyoung-Shim;Lee, Chul-Ho
    • Molecules and Cells
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    • 제38권10호
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    • pp.843-850
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    • 2015
  • The1hepatic cell death induced by acetaminophen (APAP) is closely related to cellular adenosine triphosphate (ATP) depletion, which is mainly caused by mitochondrial dysfunction. Adenosine monophosphate (AMP)-activated protein kinase (AMPK) is a key sensor of low energy status. AMPK regulates metabolic homeostasis by stimulating catabolic metabolism and suppressing anabolic pathways to increase cellular energy levels. We found that the decrease in active phosphorylation of AMPK in response to APAP correlates with decreased ATP levels, in vivo. Therefore, we hypothesized that the enhanced production of ATP via AMPK stimulation can lead to amelioration of APAP-induced liver failure. A769662, an allosteric activator of AMPK, produced a strong synergistic effect on AMPK Thr172 phosphorylation with APAP in primary hepatocytes and liver tissue. Interestingly, activation of AMPK by A769662 ameliorated the APAP-induced hepatotoxicity in C57BL/6N mice treated with APAP at a dose of 400 mg/kg intraperitoneally. However, mice treated with APAP alone developed massive centrilobular necrosis, and APAP increased their serum alanine aminotransferase and aspartate aminotransferase levels. Furthermore, A769662 administration prevented the loss of intracellular ATP without interfering with the APAP-mediated reduction of mitochondrial dysfunction. In contrast, inhibition of glycolysis by 2-deoxy-glucose eliminated the beneficial effects of A769662 on APAP-mediated liver injury. In conclusion, A769662 can effectively protect mice against APAP-induced liver injury through ATP synthesis by anaerobic glycolysis. Furthermore, stimulation of AMPK may have potential therapeutic application for APAP overdose.

Wheat phytase potentially protects HT-29 cells from inflammatory nucleotides-induced cytotoxicity

  • Jeongmin An;Jaiesoon Cho
    • Animal Bioscience
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    • 제36권10호
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    • pp.1604-1611
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    • 2023
  • Objective: The aim of this study was to investigate the protective effect of wheat phytase as a structural decomposer of inflammatory nucleotides, extracellular adenosine triphosphate (ATP), and uridine diphosphate (UDP) on HT-29 cells. Methods: Phosphatase activities of wheat phytase against ATP and UDP was investigated in the presence or absence of inhibitors such as L-phenylalanine and L-homoarginine using a Pi Color Lock gold phosphate detection kit. Viability of HT-29 cells exposed to intact- or dephosphorylated-nucleotides was analyzed with an EZ-CYTOX kit. Secretion levels of pro-inflammatory cytokines (IL-6 and IL-8) in HT-29 cells exposed to substrate treated with or without wheat phytase were measured with enzyme-linked immunosorbent assay kits. Activation of caspase-3 in HT-29 cells treated with intact ATP or dephosphorylated-ATP was investigated using a colorimetric assay kit. Results: Wheat phytase dephosphorylated both nucleotides, ATP and UDP, in a dose-dependent manner. Regardless of the presence or absence of enzyme inhibitors (L-phenylalanine and L-homoarginine), wheat phytase dephosphorylated UDP. Only L-phenylalanine inhibited the dephosphorylation of ATP by wheat phytase. However, the level of inhibition was less than 10%. Wheat phytase significantly enhanced the viability of HT-29 cells against ATP- and UDP-induced cytotoxicity. Interleukin (IL)-8 released from HT-29 cells with nucleotides dephosphorylated by wheat phytase was higher than that released from HT-29 cells with intact nucleotides. Moreover, the release of IL-6 was strongly induced from HT-29 cells with UDP dephosphorylated by wheat phytase. HT-29 cells with ATP degraded by wheat phytase showed significantly (13%) lower activity of caspase-3 than HT-29 cells with intact ATP. Conclusion: Wheat phytase can be a candidate for veterinary medicine to prevent cell death in animals. In this context, wheat phytase beyond its nutritional aspects might be a novel and promising tool for promoting growth and function of intestinal epithelial cells under luminal ATP and UDP surge in the gut.

운동 시 대사적 산성화에 관한 고찰 (The Review of Metabolic Acidosis During Exercise)

  • 윤병곤
    • 한국응용과학기술학회지
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    • 제35권4호
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    • pp.1433-1441
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    • 2018
  • 고강도 운동 시 산성화의 과정은 수소이온의 방출과 젖산 나트륨염을 형성하는 젖산의 생산 증가에 따른 것이라 설명되어져 왔다. 이 설명에 의하면, 젖산의 생산 비율이 세포내의 수소이온 완충능력을 초과하였을 때 세포의 수소이온 농도는 증가한다고 한다. 이러한 생화학적 과정을 젖산의 산성화라 한다. 이 이론에 따라 고강도 운동 시 젖산의 생산이 대사적 산성화와 피로의 원인이 되는 것으로 해석되어져 왔다. 그러나, 본 고찰에서는 젖산의 생산이 산성화와 피로의 원인이라는 어떠한 생화학적 근거가 없음을 명확히 제시하고 있다. 오히려 젖산의 생산은 해당과정에서 필요한 $NAD^+$의 지속적인 공급을 위해 필수적이며 수소이온을 소비하는 대사과정이다. 젖산의 축적은 세포와 혈중의 수소이온 농도의 증가를 알려주는 좋은 지표가 될 수는 있지만 그것이 산성화의 직접적인 원인은 아니다.

The importance of post-thaw subculture for standardizing cellular activity of fresh or cryopreserved mouse embryonic stem cells

  • Ko, Dong Woo;Yoon, Jung Ki;Ahn, Jong il;Lee, Myungook;Yang, Woo Sub;Ahn, Ji Yeon;Lim, Jeong Mook
    • Asian-Australasian Journal of Animal Sciences
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    • 제31권3호
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    • pp.335-343
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    • 2018
  • Objective: Remarkable difference in cellular activity was found between early and late subpassaged embryonic stem cell (ESCs) lines, which can be created by subtle changes in cell manipulation protocol. This study subsequently examined whether post-thaw subculture of early subpassaged ESC lines could further affect the activity of the ESCs. Methods: Fresh (as a control treatment) or cryopreserved F1 hybrid (B6CBAF1) early ESC lines (C57BL/6xCBA) of the 4 (P4) or the 19 passage (P19) were subcultured once, twice or six times under the same condition. The post-thaw survival of the ESCs was monitored after the post-treatment subculture and the ability of cell proliferation, reactive oxygen species (ROS) generation, apoptosis and mitochondrial ATP synthesis was subsequently examined. Results: Regardless of the subculture number, P19 ESCs showed better (p<0.05) doubling time and less ATP production than P4 ESCs and such difference was not influenced by fresh or cryopreservation. The difference between P4 and P19 ESC lines became decreased as the post-treatment subculture was increased and the six times subculture eliminated such difference. Similarly, transient but prominent difference in ROS production and apoptotic cell number was detected between P4 and P19 ESCs only at the 1st subculture after treatment, but no statistical differences between two ESC lines was detected in other observations. Conclusion: The results of this study suggest that post-thaw subculture of ESCs under the same environment is recommended for standardizing their cellular activity. The activity of cell proliferation ability and ATP synthesis can be used as parameters for quality control of ESCs.

Cancer Energy Metabolism: Shutting Power off Cancer Factory

  • Kim, Soo-Youl
    • Biomolecules & Therapeutics
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    • 제26권1호
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    • pp.39-44
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    • 2018
  • In 1923, Dr. Warburg had observed that tumors acidified the Ringer solution when 13 mM glucose was added, which was identified as being due to lactate. When glucose is the only source of nutrient, it can serve for both biosynthesis and energy production. However, a series of studies revealed that the cancer cell consumes glucose for biosynthesis through fermentation, not for energy supply, under physiological conditions. Recently, a new observation was made that there is a metabolic symbiosis in which glycolytic and oxidative tumor cells mutually regulate their energy metabolism. Hypoxic cancer cells use glucose for glycolytic metabolism and release lactate which is used by oxygenated cancer cells. This study challenged the Warburg effect, because Warburg claimed that fermentation by irreversible damaging of mitochondria is a fundamental cause of cancer. However, recent studies revealed that mitochondria in cancer cell show active function of oxidative phosphorylation although TCA cycle is stalled. It was also shown that blocking cytosolic NADH production by aldehyde dehydrogenase inhibition, combined with oxidative phosphorylation inhibition, resulted in up to 80% decrease of ATP production, which resulted in a significant regression of tumor growth in the NSCLC model. This suggests a new theory that NADH production in the cytosol plays a key role of ATP production through the mitochondrial electron transport chain in cancer cells, while NADH production is mostly occupied inside mitochondria in normal cells.

RAW 264.7 Cell에서 납에 의한 NO 생성의 조절에 미치는 Glutathione의 효과 (Effect of Glutathione on Lead Induced Modulation of NO Synthesis in RAW 264.7 Cell)

  • 오경재;권근상;윤욱희;신새론
    • Journal of Preventive Medicine and Public Health
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    • 제35권4호
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    • pp.269-274
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    • 2002
  • Balb/c 마우스의 복강내에 Abelson leukemia virus (A-MuLV)를 주입하여 발생시킨 대식세포주 RAW 264.7 세포의 배양조건에 납과 NAC및 BSO를 첨가하여 세포생존율과 NO 및 ATP 생성량의 변화를 관찰한 결과, 납을 처리한 기본배양조건에서 RAW 264.7 세포의 생존율은 각 농도에서 차이가 없었으며 NO의 생성량은 $0.5{\mu}M$의 납농도에서부터 용량 의존적으로 감소하였으나 ATP의 생성량은 각 농도군에서 차이가 없었다. NAC을 전처리하고 납을 처리한 배양조건에서의 NO 및 ATP의 생성량은 대조군과 차이가 없었다. BSO를 전처리하고 납을 처리한 배양조건에서의 NO의 생성량은 납만 처리했을 때와 달리 각각의 농도군에서 대조군과 차이가 있었다. ATP생성량은 역시 차이가 없었다. 이상의 결과에서 납의 농도가 증가함에 따라 ATP의 생성량은 변화가 없으면서 NO가 감소하는 것을 볼 때, 납에 의한 대식세포에서 NO생성의 억제기전은 수은 및 카드뮴 등과 같이 미토콘드리아에 영향을 미쳐 ATP생성이 억제됨으로 L-arginine-NO경로에서 ATP를 필요로 하는 iNOS가 작용을 못하여 NO 생성이 저하되는 기전과는 다른 기전이 있음을 보여준다. 또한 iNOS의 조효소인 세포내 GSH를 증가시키는 NAC을 전처리했을 때 NO의 생성량이 대조군 수준으로 회복되고 세포내 GSH를 감소시키는 BSO를 전처리했을 때는 오히려 NO의 생성량에 영향을 미치지 않는 납의 농도에서조차 NO 생성의 감소가 일어난 것으로 볼 때 GSH는 대식세포에서 NO생성을 저하시키는 납의 독성에 보호작용이 있음을 확인할 수 있었다.

수은 및 카드뮴의 세포독성에 대한 Glutathione의 역할에 관한 연구 (A Study on the Protective Effects of Glutathione on Cytotoxicity of Mercury and Cadmium)

  • 정재호;김준연;고대하
    • Journal of Preventive Medicine and Public Health
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    • 제32권2호
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    • pp.170-176
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    • 1999
  • 본 연구는 EMT-6 세포를 이용하여 무기수은, 유기수은 및 카드뮴의 세포독성에 대한 glutathione(GSH)의 방어효과를 알아보고자 하였다. 무기수은, 유기수은 및 카드뮴을 첨가한 배양조건에서 EMT-6 세포의 세포생존율, ${NO_2}^-$ 및 ATP 생성량은 첨가한 중금속의 농도가 증가할수록 용량의존적으로 감소하였다. GSH, OTC 및 BSO를 단독 첨가한 배양조건은 세포의 세포생존율과 NO2- 및 ${NO_2}^-$ 생성량에 영향을 주지 않았다. 수은화합물 및 카드뮴과 GSH를 동시 첨가한 배양조건에서는 세포생존율이 90% 이상 유지되었고, ${NO_2}^-$ 및 ATP 생성량은 기본배양조건과 비슷한 수준으로 나타났다. $16{\mu}M$의 무기 및 유기수은과 $160{\mu}M$의 카드뮴을 첨가한 실험조건에 GSH를 동시 첨가했을 경우 방어효과는 GSH의 농도에 따라 용량의존적으로 증가하였다. 세포내에서 수은 및 카드뮴의 세포독성에 대한 GSH역할을 알아보고자 GSH, OTC, BSO 전처리 실험을 한 결과, GSH의 전처리는 이들이 세포막을 통과하지 못하기 때문에 대조군과 비슷한 양상으로 나타난 반면에 BSO를 전처리한 군에서는 세포내 GSH 농도의 감소로 수은의 세포 독성이 증가하여 대조군에 비하여 ${NO_2}^-$와 ATP 생성량이 현저히 감소하였다. 또한 세포내 GSH의 농도를 증가시키는 OTC를 전처리한 결과 수은의 독성에 대한 방어효과가 시간 및 용량 의존적으로 현저하게 증가하였다. 이러한 실험결과는 수은의 세포독성에 대한 GSH의 방어효과가 GSH 세포내 농도와 밀접한 관련이 있음을 간접적으로 보여주고 있다. 본 연구의 결과는 수은 및 카드뮴의 독성에 대한 GSH의 방어작용이 단순히 -SH기와 중금속의 결합에 의한 결과가 아니라 세포내에서 GSH 분자가 갖는 고유의 기능으로 판단되며, 특히 중금속에 의한 에너지대사의 장애를 GSH가 회복시킬 수 있음을 보여준다.

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