• 제목/요약/키워드: oxidative phosphorylation

검색결과 287건 처리시간 0.027초

Impact of glucose and pyruvate on adenosine triphosphate production and sperm motility in goats

  • Rangga Setiawan;Raden Febrianto Christi;Ken Ratu Gharizah Alhuur;Rini Widyastuti;Nurcholidah Solihati;Siti Darodjah Rasad;Kundrat Hidajat;Duy Ngoc Do
    • Animal Bioscience
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    • 제37권4호
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    • pp.631-639
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    • 2024
  • Objective: This study evaluates goat sperm motility in response to metabolic substrates and various inhibitors, aiming to assess the relative contribution of glycolysis and mitochondrial oxidation for sperm movement and adenosine triphosphate (ATP) production. Methods: In the present study, two main metabolic substrates; 0 to 0.5 mM glucose and 0 to 30 mM pyruvate were used to evaluate their contribution to sperm movements of goats. Using a 3-chloro-1,2-propanediol (3-MCPD), a specific inhibitor for glycolysis, and carbonyl cyanide 3-chlorophenylhydrazone as an inhibitor for oxidative phosphorylation, cellular mechanisms into ATP-generating pathways in relation to sperm movements and ATP production were observed. Data were analysed using one-way analysis of variance for multiple comparisons. Results: Sperm motility analysis showed that either glucose or pyruvate supported sperm movement during 0 to 30 min incubation. However, the supporting effects were abolished by the addition of a glycolysis inhibitor or mitochondrial uncoupler, concomitant with a significant decrease in ATP production. Although oxidative phosphorylation produces larger ATP concentrations than those from glycolysis, sperm progressivity in relation to these two metabolic pathways is comparable. Conclusion: Based on the present study, we suggest that goat sperm use glucose and pyruvate to generate cellular energy through glycolysis and mitochondrial respiration pathways to maintain sperm movement.

과산화수소에 의한 산화스트레스가 영아형 바텐병에서 neurogranin의 인산화에 미치는 영향 (Effect of Neurogranin Phosphorylation on Oxidative Stress by Hydrogen Peroxide in Early Onset of Batten Disease)

  • 윤동호;김한복;박주훈;김성조
    • 생명과학회지
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    • 제19권4호
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    • pp.520-525
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    • 2009
  • 영아형 바텐병은 PPT1 결핍 및 기능장애로 인해 발병하며, 12,500명 당 1명의 발병률을 가진 신경 퇴행 질환이다. 전 세계적으로 수많은 연구가 진행 중 이지만, 아직 명확하게 밝혀진 발병원인 및 치료방법에 대해서는 알려지고 있지 않다. 본 연구에서는 뇌에서 풍부하게 발현되는 neurogranin의 발현수준이 WT과 EBD KO 쥐에서 어떤 변화를 보이는지 확인하기 위해 mRNA, 단백질, 배양된 neurospheres를 이용하여 실험을 수행하였다. real-time PCR을 통한 neurogranin의 발현수준 비교 결과 WT에서는 노화와 무관하게neurogranin mRNA 수준에 차이가 없었으나, EBD KO 쥐에서는 노화가 진행됨에 따라 neurogranin mRNA 발현수준이 감소하였으며, 뇌에서 추출된 단백질을 이용한 western blot 분석에서도 real-time PCR과 동일한 결과를 확인할 수 있었다. 또한 WT, EBD KO 쥐의 태아로 부터 neural stem cell 인 neurospheres를 배양하여 western blot 분석을 수행한 결과 PPT1 결핍에 의해 neurogranin의 정상적인 인산화에 문제가 발생함을 확인하였다. 이러한 결과들을 바탕으로 neurospheres에 산화스트레스 유발물질인 $H_2O_2$를 처리하였고, 24시간 경과 후 항산화제인 NAC을 처리하자 $H_2O_2$를 처리한 시료에서는 mock control인 인산화된 neurogranin에 비해 그 수준이 증가하였으며, $H_2O_2$ 처리 후 NAC을 투여한 시료의 인산화 수준은 mock control 보다는 높았지만 $H_2O_2$만을 처리한 시료 수준보다 neurogranin의 인산화 정도가 감소하는 결과를 확인하였다. 이러한 결과들을 통해 PPT1 결핍으로 인해 신경세포 내에 과다하게 인산화된 neurogranin이 존재하며, neurogranin 인산화 정도는 세포가 지닌 산화스트레스 정도에 의해 변화함을 알 수 있었다. 또한 항산화제를 사용하여 세포의 산화스트레스 수준을 감소시킬 경우 neurogranin의 기능을 정상적으로 회복시킬 수 있는 가능성을 확인하였다.

Phloroglucinol Enhances Anagen Signaling and Alleviates H2O2-Induced Oxidative Stress in Human Dermal Papilla Cells

  • Seokmuk Park;Ye Jin Lim;Hee Su Kim;Hee-Jae Shin;Ji-Seon Kim;Jae Nam Lee;Jae Ho Lee;Seunghee Bae
    • Journal of Microbiology and Biotechnology
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    • 제34권4호
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    • pp.812-827
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    • 2024
  • Phloroglucinol (PG) is one of the abundant isomeric benzenetriols in brown algae. Due to its polyphenolic structure, PG exhibits various biological activities. However, the impact of PG on anagen signaling and oxidative stress in human dermal papilla cells (HDPCs) is unknown. In this study, we investigated the therapeutic potential of PG for improving hair loss. A non-cytotoxic concentration of PG increased anagen-inductive genes and transcriptional activities of β-Catenin. Since several anagen-inductive genes are regulated by β-Catenin, further experiments were performed to elucidate the molecular mechanism by which PG upregulates anagen signaling. Various biochemical analyses revealed that PG upregulated β-Catenin signaling without affecting the expression of Wnt. In particular, PG elevated the phosphorylation of protein kinase B (AKT), leading to an increase in the inhibitory phosphorylation of glycogen synthase kinase 3 beta (GSK3β) at serine 9. Treatment with the selective phosphoinositide 3-kinase/AKT inhibitor, LY294002, restored the increased AKT/GSK3β/β-Catenin signaling and anagen-inductive proteins induced by PG. Moreover, conditioned medium from PG-treated HDPCs promoted the proliferation and migration of human epidermal keratinocytes via the AKT signaling pathway. Subsequently, we assessed the antioxidant activities of PG. PG ameliorated the elevated oxidative stress markers and improved the decreased anagen signaling in hydrogen peroxide (H2O2)-induced HDPCs. The senescence-associated β-galactosidase staining assay also demonstrated that the antioxidant abilities of PG effectively mitigated H2O2-induced senescence. Overall, these results indicate that PG potentially enhances anagen signaling and improves oxidative stress-induced cellular damage in HDPCs. Therefore, PG can be employed as a novel therapeutic component to ameliorate hair loss symptoms.

산화적 스트레스에 대한 석결명의 세포 보호 효과 (Cellular-protective effects of Nardotidis seu Sulculii Concha Extract against oxidative stress)

  • 김광연;이승진;지선영;배수진;송유림;윤언정;박선빈;송종국;손태진;손재동;김우현;양주혜;박선동;김상찬;김영우;박광일
    • 대한한의학방제학회지
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    • 제29권2호
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    • pp.71-80
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    • 2021
  • Objectives : This study investigated cellular-protective effects of Nardotidis seu Sulculii Concha water extract (NSCE) against oxidative stress induced by arachidonic acid (AA)+iron or tert-butylhydroperoxide (tBHP). Methods : In vitro, MTT assay was assessed for cell viability, and immunoblotting analysis was performed to detect expression of AMP-activated kinase (AMPK) signaling pathway and autophagy related proteins. In vivo, mice were orally administrated with the aqueous extract of NSCE of 500 mg/kg for 3 days, and then injected with CCl4 0.5 mg/kg body weight to induce acute damage. The level of liver damage was measured by serum aspartate aminotransferase (AST), alanine aminotransferase (ALT) and lactate dehydrogenase (LDH) analysis. Results : Treatment with NSCE inhibited cell death induced by AA+iron and tBHP. NSCE induced the phosphorylation of AMPK, and this compound also induced the phosphorylation of LKB1, an upstream kinase of AMPK, and Acetyl-CoA carboxylase (ACC), a primary downstream target of AMPK. NSCE increased the protein levels of autophagic markers (LC3II and beclin-1) and decreased the phosphorylation of mammalian target of rapamycin (mTOR) and simultaneously increased the phosphorylation of unc-51-like kinase-1 (ULK-1) in time-dependent manner. Conclusions : NSCE has the ability 1) to protect cells against oxidative stress induced by AA+iron or tBHP. NSCE 2) to activate AMP-activated protein kinase (AMPK), and 3) to regulate autophagy, an important regulator in cell survival.

Integration of virtual screening and proteomics reveals potential targets and pathways for ginsenoside Rg1 against myocardial ischemia

  • Rongfang Xie;Chenlu Li;Chenhui Zhong;Zuan Lin;Shaoguang Li;Bing Chen;Youjia Wu;Fen Hu;Peiying Shi;Hong Yao
    • Journal of Ginseng Research
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    • 제48권4호
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    • pp.395-404
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    • 2024
  • Background: Ginsenoside Rg1 (Rg1) is one of the main active components in Chinese medicines, Panax ginseng and Panax notoginseng. Research has shown that Rg1 has a protective effect on the cardiovascular system, including anti-myocardial ischemia-reperfusion injury, anti-apoptosis, and promotion of myocardial angiogenesis, suggesting it a potential cardiovascular agent. However, the protective mechanism involved is still not fully understood. Methods: Based on network pharmacology, ligand-based protein docking, proteomics, Western blot, protein recombination and spectroscopic analysis (UV-Vis and fluorescence spectra) techniques, potential targets and pathways for Rg1 against myocardial ischemia (MI) were screened and explored. Results: An important target set containing 19 proteins was constructed. Two target proteins with more favorable binding activity for Rg1 against MI were further identified by molecular docking, including mitogen-activated protein kinase 1 (MAPK1) and adenosine kinase (ADK). Meanwhile, Rg1 intervention on H9c2 cells injured by H2O2 showed an inhibitory oxidative phosphorylation (OXPHOS) pathway. The inhibition of Rg1 on MAPK1 and OXPHOS pathway was confirmed by Western blot assay. By protein recombination and spectroscopic analysis, the binding reaction between ADK and Rg1 was also evaluated. Conclusion: Rg1 can effectively alleviate cardiomyocytes oxidative stress injury via targeting MAPK1 and ADK, and inhibiting oxidative phosphorylation (OXPHOS) pathway. The present study provides scientific basis for the clinical application of the natural active ingredient, Rg1, and also gives rise to a methodological reference to the searching of action targets and pathways of other natural active ingredients.

HepG2 세포에서 AMPK 활성화를 통한 호나복(胡蘿蔔) 에탄올 추출물의 간 세포 보호 효과 (Hepato-protective Effects of Daucus carota L. Root Ethanol Extract through Activation of AMPK in HepG2 Cells)

  • 김도연;박상미;변성희;박정아;조일제;김상찬
    • 대한한의학방제학회지
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    • 제26권4호
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    • pp.329-340
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    • 2018
  • Objectives : In Traditional Korean medicine, Daucus carota L. has been used for treating dyspepsia, diarrhea, dysentery and cough. Recent pharmacognosic evidence showed D. carota has anti-oxidant, anti-cancer, anti-fungal, and hypotensive effects. Present study investigated hepato-protective effect of D. carota ethanol extract (DCE) against oxidative stress in HepG2 cells. Methods : After HepG2 cells were pretreated with different concentrations of DCE, the cells were exposed to tert-butyl hydroperoxide (tBHP) for inducing oxidative stress. Cell viability, hydrogen peroxide production, glutathione concentration, and mitochondrial membrane potentials were measured to explore hepato-protective effect of DCE. Phosphorylation of AMP-activated protein kinase (AMPK) and effect of compound C on cell viability were determined to investigate the role of AMPK on DCE-mediated cytoprotection. Results : DCE significantly decreased the tBHP-mediated cytotoxicity in a concentration dependent manner and reduced the changes on apoptosis-related proteins by tBHP in HepG2 cells. In addition, DCE significantly prevented hydrogen peroxide production, glutathione depletion, and mitochondrial membrane impairment induced by tBHP. Treatment with DCE increased phosphorylation of AMPK, and the DCE-mediated cytoprotection was abolished by pretreatment with compound C. Conclusions : These results demonstrate that DCE can protect hepatocytes from oxidative stress through activation of AMPK.

Phosphoproteomic Analysis of the Brain of Ovariectomized Adult Rat

  • Santos, Ilyn Lyzette;Kim, Kil-Soo;Kim, Jong-Sang;Lim, Jin-Kyu
    • Journal of Applied Biological Chemistry
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    • 제54권2호
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    • pp.101-107
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    • 2011
  • Aging in females is associated with a reduced metabolic function, increased incidence of neurodegenerative diseases, and cognitive dysfunction, as a result of loss in gonadal function. The change can alter the states of phosphorylation on the proteins, which cause dramatic changes in the cellular location or activity of the proteins. In this study, the differential phosphorylation of the proteins responsible for the functions related to cognition was studied using the ovariectomized adult rats. Phosphoproteomic analysis using the cerebral and hippocampal tissues could identify 51 differentially phosphorylated proteins including 12 proteins for energy metabolism, 8 cytoskeletal proteins, 6 signaling proteins, and other functional proteins in the ovariectomized rats. Further, anti-oxidative enzymes, superoxide dismutase and peroxiredoxin-2, which are known to be inactivated by phosphorylation, were found to be differentially phosphorylated in the cerebellum and hippocampus of the ovariectomized rats, respectively. Many of the deactivated proteins by differential phosphorylation identified in this study were overlapped to those of Alzheimer's disease cases. These results will provide information for neurodegenerative learning and memory impairments in women as brought about by menopause.

암특이적 대사에 대한 한의학적 연구의 현황 및 전망 (Current state and prospective of the Korean medical research on the cancer metabolism)

  • 정태욱;김은영;최희진;최희정;하기태
    • 대한암한의학회지
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    • 제20권1호
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    • pp.81-88
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    • 2015
  • Generally, normal cells synthesize adenosine triphosphate (ATP) through oxidative phosphorylation in the mitochondria. However, they produce ATP through lactic acid fermentation on hypoxic condition. Interestingly, many cancer cells rely on aerobic glycolysis for ATP generation instead of mitochondrial oxidative phosphorylation, which is termed as "Warburg effect". According to results from recent researches on differences of cancer cell metabolism from normal cell metabolism and because chemotherapy to suppress rapidly growing cells, as a side effect of cancer treatment, can still target healthy cells, there is merit in the development of small-molecule inhibitors targeting metabolic enzymes such as pyruvate dehydrogenase kinase (PDHK), lactate dehydrogenase (LDH) and monocarboxylate transporter (MCT). For new anticancer therapy, in this review, we show recent advances in study on cancer cell metabolism and molecules targeting metabolic enzymes which are importantly associated with cancer metabolism for cancer therapy. Furthermore, we would also like to emphasize the necessity of development of molecules targeting metabolic enzymes using herbal medicines and their constituents for anticancer drugs.

Differential Effects of Typical and Atypical Neuroleptics on Mitochondrial Function In Vitro

  • Josephine, S.;Napolitano, Modica;Lagace, Christopher-J.;Brennan, William-A.;Aprille, June-R.
    • Archives of Pharmacal Research
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    • 제26권11호
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    • pp.951-959
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    • 2003
  • A series of typical (chlorpromazine, haloperidol and thioridazine) and atypical (risperidone, quetiapine, clozapine and olanzapine) antipsychotics were tested for effects on integrated bioenergetic functions of isolated rat liver mitochondria. Polarographic measurement of oxygen consumption in freshly isolated mitochondria showed that electron transfer activity at respiratory complex I is inhibited by chlorpromazine, haloperidol, risperidone, and quetiapine, but not by clozapine, olanzapine, or thioridazine. Chlorpromazine and thioridazine act as modest uncouplers of oxidative phosphorylation. The typical neuroleptics inhibited NADH-coenzyme Q reductase in freeze-thawed mitochondria, which is a direct measure of complex I enzyme activity. The inhibition of NADH-coenzyme Q reductase activity by the atypicals risperidone and quetiapine was 2-4 fold less than that for the typical neuroleptics. Clozapine and olanzapine had only slight effects on NADH-coenzyme Q reductase activity, even at 200 $\mu$ M. The relative potencies of these neuroleptic drugs as inhibitors of mitochondrial bioenergetic function is similar to their relative potencies as risk factors in the reported incidence of extrapyramidal symptoms, including tardive dyskinesia (TD). This suggests that compromised bioenergetic function may be involved in the cellular pathology underlying TD.

Iron Homeostasis and Energy Metabolism in Obesity

  • Se Lin Kim;Sunhye Shin;Soo Jin Yang
    • Clinical Nutrition Research
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    • 제11권4호
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    • pp.316-330
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    • 2022
  • Iron plays a role in energy metabolism as a component of vital enzymes and electron transport chains (ETCs) for adenosine triphosphate (ATP) synthesis. The tricarboxylic acid (TCA) cycle and oxidative phosphorylation are crucial in generating ATP in mitochondria. At the mitochondria matrix, heme and iron-sulfur clusters are synthesized. Iron-sulfur cluster is a part of the aconitase in the TCA cycle and a functional or structural component of electron transfer proteins. Heme is the prosthetic group for cytochrome c, a principal component of the respiratory ETC. Regarding fat metabolism, iron regulates mitochondrial fat oxidation and affects the thermogenesis of brown adipose tissue (BAT). Thermogenesis is a process that increases energy expenditure, and BAT is a tissue that generates heat via mitochondrial fuel oxidation. Iron deficiency may impair mitochondrial fuel oxidation by inhibiting iron-containing molecules, leading to decreased energy expenditure. Although it is expected that impaired mitochondrial fuel oxidation may be restored by iron supplementation, its underlying mechanisms have not been clearly identified. Therefore, this review summarizes the current evidence on how iron regulates energy metabolism considering the TCA cycle, oxidative phosphorylation, and thermogenesis. Additionally, we relate iron-mediated metabolic regulation to obesity and obesity-related complications.