• 제목/요약/키워드: Mitochondrial

검색결과 2,795건 처리시간 0.026초

Effect of cation on solute permeability of mitochondrial membrane (미토콘드리아막의 용질투과성에 미치는 양이온의 영향)

  • 이영녹;이종삼
    • Korean Journal of Microbiology
    • /
    • 제9권4호
    • /
    • pp.145-148
    • /
    • 1971
  • Mitochondria were isolated from Chlorella cells effects of cation on solute permeability of mitochondrial membrane were investigated using P$^{32}$ as a tracer. It was strikingly increased uptake of phosphate for NaCl, KCl, while evidently decreased phosphate uptake of mitochondrial membrane for $MgCl_2$, $CaCl_2$. This consider that uptake of monovalent cation were increased, but uptake of divalentcation were decreased for permeability of mitochondrial membrane as if the permeability of protoplasmic membrane.

  • PDF

Mitophagy: Therapeutic Potentials for Liver Disease and Beyond

  • Lee, Sooyeon;Kim, Jae-Sung
    • Toxicological Research
    • /
    • 제30권4호
    • /
    • pp.243-250
    • /
    • 2014
  • Mitochondrial integrity is critical for maintaining proper cellular functions. A key aspect of regulating mitochondrial homeostasis is removing damaged mitochondria through autophagy, a process called mitophagy. Autophagy dysfunction in various disease states can inactivate mitophagy and cause cell death, and defects in mitophagy are becoming increasingly recognized in a wide range of diseases from liver injuries to neurodegenerative diseases. Here we highlight our current knowledge on the mechanisms of mitophagy, and discuss how alterations in mitophagy contribute to disease pathogenesis. We also discuss mitochondrial dynamics and potential interactions between mitochondrial fusion, fission and mitophagy.

Proposed Mechanisms of Photobiomodulation (PBM) Mediated via the Stimulation of Mitochondrial Activity in Peripheral Nerve Injuries

  • Choi, Ji Eun
    • Medical Lasers
    • /
    • 제10권4호
    • /
    • pp.195-200
    • /
    • 2021
  • Evidence shows that nerve injury triggers mitochondrial dysfunction during axonal degeneration. Mitochondria play a pivotal role in axonal regeneration. Therefore, normalizing mitochondrial energy metabolism may represent an elective therapeutic strategy contributing to nerve recovery after damage. Photobiomodulation (PBM) induces a photobiological effect by stimulating mitochondrial activity. An increasing body of evidence demonstrates that PBM improves ATP generation and modulates many of the secondary mediators [reactive oxygen species (ROS), nitric oxide (NO), cyclic adenosine monophosphate (cAMP), and calcium ions (Ca2+)], which in turn activate multiple pathways involved in axonal regeneration.

Alterations in Mitochondrial DNA Copy Numbers and Mitochondrial Oxidative Phosphorylation (OXPHOS) Protein Levels in Gastric Cancer Tissues and Cell Lines (위암 조직과 세포주에서 mDNA와 OXPHOS 단백질 분석)

  • Siregar, Adrian;Hah, Young-Sool;Moon, Dong Kyu;Woo, Dong Kyun
    • Journal of Life Science
    • /
    • 제31권12호
    • /
    • pp.1057-1065
    • /
    • 2021
  • Alterations in mitochondrial DNA (mtDNA) copy numbers have been reported in patients with stomach cancer and suggested to play a role in gastric carcinogenesis or gastric cancer progression. However, changes in the levels of mitochondrial proteins or mtDNA-encoded oxidative phosphorylation (OXPHOS) proteins in gastric cancer remain unclear. In this study, we investigated mtDNA contents, mitochondrial protein levels, and mtDNA-encoded OXPHOS protein levels in gastric cancer tissues and cell lines. We correlated mtDNA copy numbers with clinicopathologic features of the gastric cancer samples used in this study and used quantitative PCR to analyze the mtDNA copy numbers of the gastric cancer tissues and cell lines. Western blot analysis was used for assessing the amounts of mitochondrial proteins and mtDNA-encoded OXPHOS proteins. Among the 27 gastric cancer samples, 22 showed a reduction in mtDNA copy numbers. The mtDNA content was increased in the other five samples relative to that in normal matched gastric tissues. Mitochondrial protein and OXPHOS protein levels were reduced in some gastric cancer tissues. However, mitochondrial protein and OXPHOS protein levels in gastric cancer cell lines were not always in line with their mtDNA contents. The mtDNA copy numbers were reduced in five gastric cancer cell lines tested in this study. In summary, this study reports a common reduction in mtDNA contents in gastric carcinoma tissues and cell lines, pointing to the possible involvement of mtDNA content alterations in tumorigenesis of the stomach.

Genetic Relationships of Korean Treefrogs (Amphibia; Hylidae) Based on Mitochondrial Cytochrome b and 12S rRNA Genes

  • Jung Eun Lee;Dong Eun Yang;Yu Ri Kim;Hyuk Lee;Hyun Ick Lee;Suh-Yung Yang;Hei Yung Lee
    • Animal cells and systems
    • /
    • 제3권3호
    • /
    • pp.295-301
    • /
    • 1999
  • The nucleotide sequence of a 447 base pair fragment in the mitochondrial cytochrome b gene and the complete sequence of the mitochondrial 12S ribosomal RNA gene, 938 bp, were analyzed to infer inter- and intraspecific genetic relationships of Hyla japonica and H. suweonensis from Korea and H, japonica from Japan. In the mitochondrial cytochrome b gene, genetic differentiation among H. japonica populations were 9.62% and 15.66% between H. japonica and H. suweonensis. Based on the Tamura-Nei distance, the level of sequence divergence ranged from 0.45% to 2.75% within Korean H. japonica, while 8.31%-8.87% between Korean and Japanese H. japonica and 11.51%-12.46% between H. japonica and H. suweonensis. In the neigh-bor-joining tree, Korean populations of H. japonica were clustered first at 2.22% and followed by Japanese H. japonica and H. suweonensis at 8.51% and 12.29%, respectively. In mitochondrial 12S rRNA gene, genetic differentiation between H. japonica and H. suweonensis nras 7.17% (68 bp) including 7 gaps. Based on Tamura-Nei distance, the level of sequence divergence ranged 3.53% between Korean and Japanese H. japonica and from 4.93% to 5.41% between H. japonica and H. suweonensis. Phenogram pattern of the 12S rRNA gene sequence corresponded with that of the mitochondrial cytochrome b gene.

  • PDF

Control Mechanism of AMPK and Autophagy for Mitochondrial Biogenesis (AMPK와 자식작용의 미토콘드리아 생합성 조절 기전)

  • Jeon, Byeong-Hwan
    • The Journal of the Korea Contents Association
    • /
    • 제9권4호
    • /
    • pp.355-363
    • /
    • 2009
  • Increased oxidative stress by abnormal mitochondrial function can damage cell signal transduction and gene expression, and induce insulin resistance or diabetes. Autophagy, however, improve insulin resistance by clearance of malfunctioning mitochondria. Exercise also recovers the muscle dysfunction and degeneration by activating mitochondrial biogenesis. As it seems that exercise and autophagy might act as an orchestrated network to induce mitochondrial biogenesis, we investigated whether autophagy is involved in AMPK signal pathway stimulated by exercise or AICAR to increase mitochondrial biogenesis. And it showed that PGC-1 and mtTFA, but not autophagy marker LC3 mRNA expression were significantly increased by 6 hr of acute exercise. On the other hand, PGC-1 and mtTFA mRNA expression were upregulated by AICAR treatment to C2C12 myotube. However these genes were not inhibited by LC3 siRNA transfection. These results provide the evidence that autopahgy affects on mitochondrial biogenesis through different signal pathway from AMPK signal transduction.

Tissue Microarrays in Biomedical Research

  • Chung, Joon-Yong;Kim, Nari;Joo, Hyun;Youm, Jae-Boum;Park, Won-Sun;Lee, Sang-Kyoung;Warda, Mohamad;Han, Jin
    • Bioinformatics and Biosystems
    • /
    • 제1권1호
    • /
    • pp.28-37
    • /
    • 2006
  • Recent studies in molecular biology and proteomics have identified a significant number of novel diagnostic, prognostic, and therapeutic disease markers. However, validation of these markers in clinical specimens with traditional histopathological techniques involves low throughput and is time consuming and labor intensive. Tissue microarrays (TMAs) offer a means of combining tens to hundreds of specimens of tissue onto a single slide for simultaneous analysis. This capability is particularly pertinent in the field of cancer for target verification of data obtained from cDNA micro arrays and protein expression profiling of tissues, as well as in epidemiology-based investigations using histochemical/immunohistochemical staining or in situ hybridization. In combination with automated image analysis, TMA technology can be used in the global cellular network analysis of tissues. In particular, this potential has generated much excitement in cardiovascular disease research. The following review discusses recent advances in the construction and application of TMAs and the opportunity for developing novel, highly sensitive diagnostic tools for the early detection of cardiovascular disease.

  • PDF

Mitochondrial dysfunction suppresses p53 expression via calcium-mediated nuclear factor-κB signaling in HCT116 human colorectal carcinoma cells

  • Lee, Young-Kyoung;Yi, Eui-Yeun;Park, Shi-Young;Jang, Won-Jun;Han, Yu-Seon;Jegal, Myeong-Eun;Kim, Yung-Jin
    • BMB Reports
    • /
    • 제51권6호
    • /
    • pp.296-301
    • /
    • 2018
  • Mitochondrial DNA (mtDNA) mutations are often observed in various cancer types. Although the correlation between mitochondrial dysfunction and cancer malignancy has been demonstrated by several studies, further research is required to elucidate the molecular mechanisms underlying accelerated tumor development and progression due to mitochondrial mutations. We generated an mtDNA-depleted cell line, ${\rho}^0$, via long-term ethidium bromide treatment to define the molecular mechanisms of tumor malignancy induced by mitochondrial dysfunction. Mitochondrial dysfunction in ${\rho}^0$ cells reduced drug-induced cell death and decreased the expression of pro-apoptotic proteins including p53. The p53 expression was reduced by activation of nuclear $factor-{\kappa}B$ that depended on elevated levels of free calcium in $HCT116/{\rho}^0$ cells. Overall, these data provide a novel mechanism for tumor development and drug resistance due to mitochondrial dysfunction.

Effects of Eicosapentaenoic Acid and Docosahexaenoic Acid on Mitochondrial DNA Replication and PGC-1α Gene Expression in C2C12 Muscle Cells

  • Lee, Mak-Soon;Shin, Yoonjin;Moon, Sohee;Kim, Seunghae;Kim, Yangha
    • Preventive Nutrition and Food Science
    • /
    • 제21권4호
    • /
    • pp.317-322
    • /
    • 2016
  • Mitochondrial biogenesis is a complex process requiring coordinated expression of nuclear and mitochondrial genomes. The peroxisome proliferator-activated receptor gamma co-activator 1-alpha (PGC-$1{\alpha}$) is a key regulator of mitochondrial biogenesis, and it controls mitochondrial DNA (mtDNA) replication within diverse tissues, including muscle tissue. The aim of this study was to investigate the effects of eicosapentaenoic acid (EPA) and docosahexaenoic acid (DHA) on mtDNA copy number and PGC-$1{\alpha}$ promoter activity in $C_2C_{12}$ muscle cells. mtDNA copy number and mRNA levels of genes related to mitochondrial biogenesis such as PGC-$1{\alpha}$, nuclear respiratory factor 1 (NRF1) and mitochondrial transcription factor A (Tfam) were assayed by quantitative real-time PCR. The PGC-$1{\alpha}$ promoter from -970 to +412 bp was subcloned into the pGL3-basic vector, which includes a luciferase reporter gene. Both EPA and DHA significantly increased mtDNA copy number, dose and time dependently, and up-regulated mRNA levels of PGC-$1{\alpha}$, NRF1, and Tfam. Furthermore, EPA and DHA stimulated PGC-$1{\alpha}$ promoter activity in a dose-dependent manner. These results suggest that EPA and DHA may modulate mitochondrial biogenesis, which was partially associated with increased mtDNA replication and PGC-$1{\alpha}$ gene expression in $C_2C_{12}$ muscle cells.

P53 transcription-independent activity mediates selenite-induced acute promyelocytic leukemia NB4 cell apoptosis

  • Guan, Liying;Huang, Fang;Li, Zhushi;Han, Bingshe;Jiang, Qian;Ren, Yun;Yang, Yang;Xu, Caimin
    • BMB Reports
    • /
    • 제41권10호
    • /
    • pp.745-750
    • /
    • 2008
  • Selenium, an essential trace element possessing anti-carcinogenic properties, can induce apoptosis in cancer cells. We have previously shown that sodium selenite can induce apoptosis by activating the mitochondrial apoptosis pathway in NB4 cells. However, the detailed mechanism remains unclear. Presently, we demonstrate that p53 contributes to apoptosis by directing signaling at the mitochondria. Immunofluorescent and Western blot procedures revealed selenite-induced p53 translocation to mitochondria. Inhibition of p53 blocked accumulation of reactive oxygen species (ROS) and loss of mitochondrial membrane potential, suggesting that mitochondrial p53 acts as an upstream signal of ROS and activates the mitochondrial apoptosis pathway. Selenite also disrupted cellular calcium ion homeostasis in a ROS-dependent manner and increased mitochondrial calcium ion concentration. p38 kinase mediated phosphorylation and mitochondrial translocation of p53. Taken together, these results indicate that p53 involves selenite-induced NB4 cell apoptosis by translocation to mitochondria and activation mitochondrial apoptosis pathway in a transcription-independent manner.