• 제목/요약/키워드: Endoplasmic stress

검색결과 221건 처리시간 0.023초

비타민 C 및 E의 첨가 급여가 육계의 소포체 스트레스와 지방 및 포도당 대사 연관 유전자의 발현에 미치는 영향 (The Effects of Dietary Supplementation of Vitamin C or E on the Expressions of Endoplasmic Reticulum Stress, Lipid and Glucose Metabolism Associated Genes in Broiler Chickens)

  • 박정근;안영숙;손시환;장인석;문양수
    • 한국가금학회지
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    • 제40권2호
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    • pp.147-155
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    • 2013
  • 본 연구는 육계에서 비타민 C와 E의 첨가 급여가 소포체(ER) 스트레스 및 지방 및 포도당대사 연관 유전자들의 발현에 미치는 영향을 살펴보고자 실시하였다. 육계에 비타민 첨가 급여 후 5주령에 닭의 간을 취하여 유전자들의 발현을 real-time PCR로 비교 분석하였다. 육계의 비타민 C 및 E 첨가 급여는 HSP70, HSP90 및 HMGCR 스트레스 마커 유전자들의 발현을 감소시켰다. ER 스트레스 관련 유전자들 또한 스트레스 마커 유전자들과 마찬가지로 비타민 처리에 의하여 대조구에 비하여 낮은 발현 양상을 보여줌으로서, 대표적 스트레스 마커 유전자들과 더불어 세포 내 ER stress도 영향을 받을 수 있음을 보여 주었다. 육계의 비타민 첨가 급여는 대조구에 비하여 지방대사 연관 유전자들의 발현이 비타민 첨가구에서 감소함에 따라 지방대사에도 영향을 미치고 있음을 보여주었다. 비타민의 첨가 유무와 관계없이 간세포 내부로 포도당을 운반하는 운반체인 GLUT 단백질들의 발현에는 큰 영향을 주지 못하였다. 본 연구의 결과는 육계에 사료 내 비타민 C 또는 E의 첨가급여가 닭의 스트레스 정도를 완화시킬 수 있으며, 또한 지방합성 대사에도 영향을 미칠 수 있음을 세포 수준의 관련 유전자들의 분석을 이용하여 검증할 수 있음을 보여 주었다.

Characterization of the cellular localization of C4orf34 as a novel endoplasmic reticulum resident protein

  • Jun, Mi-Hee;Jun, Young-Wu;Kim, Kun-Hyung;Lee, Jin-A;Jang, Deok-Jin
    • BMB Reports
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    • 제47권10호
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    • pp.563-568
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    • 2014
  • Human genome projects have enabled whole genome mapping and improved our understanding of the genes in humans. However, many unknown genes remain to be functionally characterized. In this study, we characterized human chromosome 4 open reading frame 34 gene (hC4orf34). hC4orf34 was highly conserved from invertebrate to mammalian cells and ubiquitously expressed in the organs of mice, including the heart and brain. Interestingly, hC4orf34 is a novel ER-resident, type I transmembrane protein. Mutant analysis showed that the transmembrane domain (TMD) of hC4orf34 was involved in ER retention. Overall, our results indicate that hC4orf34 is an ER-resident type I transmembrane protein, and might play a role in ER functions including $Ca^{2+}$ homeostasis and ER stress.

Grp78/BiP과 Grp94의 생화학적 분석 (Biochemical Characterization of Glucose-Regulated Proteins, Grp94 and Grp78/BiP)

  • 강호성;김정락
    • 한국동물학회지
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    • 제38권2호
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    • pp.167-176
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    • 1995
  • Glucose-regulated proteins (grp's), srp94 3nd grp78/BiP, are a group of stress proteins which are highly synthesized in cells exposed to a variety of stressful agents including tunicamycin 3nd Ca2+ ionophore. Grp78/BiP is hon to function as a molecular chaperone which regulates the folding and assembly of secretory or membrane proteins, but the biological function of grp941 remains to be elucidated. In this study, we have examined the intracellular distribution of grV's and the function of srp94. Grp's are resident in the endoplasmic reticulum (ERI 3nd a specific sequence (Lys-Asp-Glu-Leu) at their C-terminus is known to be responsible for their retention within the ER. However, it has been unclear whether upon disturbance of cellular Caa+ homeostasis by the Ca2+ ionophore, grp94 is retained within the ER or secreted into the medium. In this study, we showed that in the presence of C3a+ ionophore, grp94 and gif78/BiP are present in the cells, mainly within the ER. We have also investigated whether grp94 might function as a molecular chaperone. Here we showed that in the immunoglobulin (Ig)-secreting hvbridom3 cells, grp94 transientlY interacts with fully glycosylated Is heavy chain, suggesting that grpg94 may be involved in facilitating the folding and assembly of Ig heavy chains.

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A Nudix Hydrolase Protein, Ysa1, Regulates Oxidative Stress Response and Antifungal Drug Susceptibility in Cryptococcus neoformans

  • Lee, Kyung-Tae;Kwon, Hyojeong;Lee, Dohyun;Bahn, Yong-Sun
    • Mycobiology
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    • 제42권1호
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    • pp.52-58
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    • 2014
  • A nucleoside diphosphate-linked moiety X (Nudix) hydrolase-like gene, YSA1, has been identified as one of the gromwell plant extract-responsive genes in Cryptococcus neoformans. Ysa1 is known to control intracellular concentrations of ADP-ribose or O-acetyl-ADP-ribose, and has diverse biological functions, including the response to oxidative stress in the ascomycete yeast, Saccharomyces cerevisiae. In this study, we characterized the role of YSA1 in the stress response and adaptation of the basidiomycete yeast, C. neoformans. We constructed three independent deletion mutants for YSA1, and analyzed their mutant phenotypes. We found that ysa1 mutants did not show increased sensitivity to reactive oxygen species-producing oxidative damage agents, such as hydrogen peroxide and menadione, but exhibited increased sensitivity to diamide, which is a thiol-specific oxidant. Ysa1 was dispensable for the response to most environmental stresses, such as genotoxic, osmotic, and endoplasmic reticulum stress. In conclusion, modulation of YSA1 may regulate the cellular response and adaptation of C. neoformans to certain oxidative stresses and contribute to the evolution of antifungal drug resistance.

Involvement of Endoplasmic Reticulum Stress in Palmitate-induced Apoptosis in HepG2 Cells

  • Cho, Hyang-Ki;Lee, Jin-Young;Jang, Yu-Mi;Kwon, Young-Hye
    • Toxicological Research
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    • 제24권2호
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    • pp.129-135
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    • 2008
  • The results of recent studies indicate that high levels of free fatty acids(FFAs) and adipokines may be the main causes of non-alcoholic liver disease; however, the molecular mechanism that links FFAs to lipotoxicity remains unclear. In the present study, we treated HepG2 cells with FFA(either palmitate or oleate) to investigate the mechanisms involved in lipotoxicity in the liver cells. We also treated cells with palmitate in the presence of a chemical chaperone, 4-phenylbutyric acid(PBA), to confirm the involvement of ER stress in lipotoxicity. Palmitate significantly induced cytotoxicity in dose- and time-dependent manners. Apoptosis was also significantly induced by palmitate as measured by caspase-3 activity and DAPI staining. Palmitate led to increased expressions of the spliced form of X-box-protein(Xbp)-1 mRNA and C/EBP homologous transcription factor(CHOP) protein, suggesting activation of the unfolded-protein response. PBA co-incubation significantly attenuated apoptosis induced by palmitate. The above data demonstrate that high levels of palmitate induce apoptosis via the mediation of ER stress in the liver cells and that chemical chaperones act to modulate ER stress and accompanying apoptosis.

Caffeine Induces the Stress Response and Up-Regulates Heat Shock Proteins in Caenorhabditis elegans

  • Al-Amin, Mohammad;Kawasaki, Ichiro;Gong, Joomi;Shim, Yhong-Hee
    • Molecules and Cells
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    • 제39권2호
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    • pp.163-168
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    • 2016
  • Caffeine has both positive and negative effects on physiological functions in a dose-dependent manner. C. elegans has been used as an animal model to investigate the effects of caffeine on development. Caffeine treatment at a high dose (30 mM) showed detrimental effects and caused early larval arrest. We performed a comparative proteomic analysis to investigate the mode of action of high-dose caffeine treatment in C. elegans and found that the stress response proteins, heat shock protein (HSP)-4 (endoplasmic reticulum [ER] chaperone), HSP-6 (mitochondrial chaperone), and HSP-16 (cytosolic chaperone), were induced and their expression was regulated at the transcriptional level. These findings suggest that high-dose caffeine intake causes a strong stress response and activates all three stress-response pathways in the worms, including the ER-, mitochondrial-, and cytosolic pathways. RNA interference of each hsp gene or in triple combination retarded growth. In addition, caffeine treatment stimulated a food-avoidance behavior (aversion phenotype), which was enhanced by RNAi depletion of the hsp-4 gene. Therefore, up-regulation of hsp genes after caffeine treatment appeared to be the major responses to alleviate stress and protect against developmental arrest.

Hepatitis C Virus Non-structural Protein NS4B Can Modulate an Unfolded Protein Response

  • Zheng Yi;Gao Bo;Ye Li;Kong Lingbao;Jing Wei;Yang Xiaojun;Wu Zhenghui;Ye Linbai
    • Journal of Microbiology
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    • 제43권6호
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    • pp.529-536
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    • 2005
  • Viral infection causes stress to the endoplasmic reticulum (ER). The response to endoplasmic reticulum stress, known as the unfolded protein response (UPR), is designed to eliminate misfolded proteins and allow the cell to recover. The role of hepatitis C virus (HCV) non-structural protein NS4B, a component of the HCV replicons that induce UPR, is incompletely understood. We demonstrate that HCV NS4B could induce activating transcription factor (ATF6) and inositol-requiring enzyme 1 (IRE1), to favor the HCV subreplicon and HCV viral replication. HCV NS4B activated the IRE1 pathway, as indicated by splicing of X box-binding protein (Xbp-1) mRNA. However, transcriptional activation of the XBP-1 target gene, EDEM (ER degradation-enhancing $\alpha-mannosidase-like$ protein, a protein degradation factor), was inhibited. These results imply that NS4B might induce UPR through ATF6 and IRE1-XBP1 pathways, but might also modify the outcome to benefit HCV or HCV subreplicon replication.