• 제목/요약/키워드: mouse brain

검색결과 602건 처리시간 0.03초

Purification and Characterization of Membrane-Bound Phosphatidylinositol 4-Kinase from Mouse Brain

  • Lee, Sang-Min;Son, Hyeog-Gin;Lee, Young-Seek;Lee, Kang-Suk;Rhee, Sue-Goo;Cho, Key-Seung
    • BMB Reports
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    • 제29권6호
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    • pp.555-563
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    • 1996
  • A membrane-bound phosphatidylinositol 4-kinase (PI 4-kinase) was separated in a sucrose gradient and solubilized with 1% Triton X-100 from mouse brain. The enzyme was purified 2,952-fold by various chromatographic techniques including DEAE-cellulose, PI-Sepharose and Sephacryl S-200 gel filtration. The molecular weight of PI 4-kinase was approximately 76 kDa by gel filtration and 70.8 kDa by SDS-polyacrylamide gel electrophoresis. The purified enzyme exhibited specific activity of 11.2 nmol/min/mg protein and pi value of 4.7. Kinetic analysis of the PI 4-kinase indicated apparent $K_m$, values of 190 ${\mu}M$ and 120 ${\mu}M$ for phosphatidylinositol and ATP, respectively. The maximal activity of this purified enzyme was observed at pH 7.4 at an incubation temperature of $37^{\circ}C$. The enzyme activity was significantly activated by $Mg^{2+}$, $Mn^{2+}$ and $Fe^{2+}$, and inhibited severely by $Ca^{2+}$. PI 4-kinase was proved to be pure in its immunoblot test by polyclonal antibody prepared from immunized rabbit sera. By this test, we were able to detect the existence of the same type of PI 4-kinase from other mouse organ tissues, such as liver, heart, kidney and spleen. Furthermore, similar immunoblot analysis with the same antisera recognized the different epitopes of PI 4-kinase proteins from various organs of rabbit, chinese hamster and rat.

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Neuroprotective Effects of Protein Tyrosine Phosphatase 1B Inhibition against ER Stress-Induced Toxicity

  • Jeon, Yu-Mi;Lee, Shinrye;Kim, Seyeon;Kwon, Younghwi;Kim, Kiyoung;Chung, Chang Geon;Lee, Seongsoo;Lee, Sung Bae;Kim, Hyung-Jun
    • Molecules and Cells
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    • 제40권4호
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    • pp.280-290
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    • 2017
  • Several lines of evidence suggest that endoplasmic reticulum (ER) stress plays a critical role in the pathogenesis of many neurodegenerative diseases such as Alzheimer's disease, Parkinson's disease, and amyotrophic lateral sclerosis. Protein tyrosine phosphatase 1B (PTP1B) is known to regulate the ER stress signaling pathway, but its role in neuronal systems in terms of ER stress remains largely unknown. Here, we showed that rotenone-induced toxicity in human neuroblastoma cell lines and mouse primary cortical neurons was ameliorated by PTP1B inhibition. Moreover, the increase in the level of ER stress markers ($eIF2{\alpha}$ phosphorylation and PERK phosphorylation) induced by rotenone treatment was obviously suppressed by concomitant PTP1B inhibition. However, the rotenone-induced production of reactive oxygen species (ROS) was not affected by PTP1B inhibition, suggesting that the neuroprotective effect of the PTP1B inhibitor is not associated with ROS production. Moreover, we found that MG132-induced toxicity involving proteasome inhibition was also ameliorated by PTP1B inhibition in a human neuroblastoma cell line and mouse primary cortical neurons. Consistently, downregulation of the PTP1B homologue gene in Drosophila mitigated rotenone- and MG132-induced toxicity. Taken together, these findings indicate that PTP1B inhibition may represent a novel therapeutic approach for ER stress-mediated neurodegenerative diseases.

쥐의 Brain-associated ${\theta}$ Antigen과 임파조직(淋巴組織)의 ${\theta}$ 항원(抗原) 분포(分布) (Rat Brain-associated ${\theta}$ Antigen and Distribution of ${\theta}$ Antigen in Rat Lymphoid Cells)

  • 하대유
    • 대한미생물학회지
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    • 제11권1호
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    • pp.13-18
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    • 1976
  • 가토(家兎)를 DA rat 뇌(腦)로 면역(免疫)하며 anti-rat brain assoriated ${\theta}(RBA{\theta})$ 혈청(血淸)을 만들어 rat 임파조직(淋巴組織)에 대(對)하여 세포독성(細胞毒性), 간접형광항체염색(間接螢光抗體染色) 및 GVH 반응억제능력(反應脚制能力) 등(等)을 검사(檢査)하였다. 이 $RBA{\theta}$ 혈청(血淸)은 강력(强力)한 항(抗)${\theta}$양혈청(樣血淸)이었으며 $RBA{\theta}$ 항원(抗原)은 mouse의 흉선세포(胸線細胞)와 뇌항원(腦抗原)과 교차반응(交叉反應)을 나타내었다. 이 $RBA{\theta}$ 혈청(血淸)을 사용(使用)하여 rat 임파조직(淋巴組織)의 ${\theta}$ 항원(抗原) 양성임파구(陽性淋巴球)를 검사(檢査)하였든 바 흉선임파구(胸線淋巴球)의 약(約) 98%, 임파절임파구(淋巴節淋巴球)의 $70{\sim}76%$, 말초혈액임파구(末梢血液淋巴球)의 72%, 비장임파구(脾臟淋巴球)의 $36{\sim}44%$ 및 골수(骨髓)의 4%가 ${\theta}$ 항원(抗原)을 가지고 있었다.

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Effect of Jaeumgeonbigagamtang (JGT) on Restraint-induced Oxidative Stress in Mouse Brain

  • Yoon, Jung-Hun;An, Joung-Jo;Jo, Hyun-Kyung;Son, Chang-Gue;Kim, Yoon-Sik;Seol, In-Chan;Yoo, Ho-Rhyong
    • 대한한의학회지
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    • 제32권6호
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    • pp.41-53
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    • 2011
  • Objectives: This study was performed to investigate the effect of Jaeumgeonbigagamtang (JGT) onrestraint-induced oxidative stress in the mouse brain. Methods: After treatment with JGT, CBC, ROS, MDA, TAC, SOD, activity of catalase, and total GSH content were analyzed. Results: JGT had a strong antioxidant activity by in vitro assay as presented GEAC. JGT treatment significantly ameliorated decrease of blood WBC and increase of platelet count. JGT (50mg/kg) treatment significantly ameliorated increase of MDA and GSH content level in brain tissue. JGT (100mg/kg) treatment significantly ameliorated increase of MDA and activity of TAC level in brain tissue. JGT (200mg/kg) treatment significantly ameliorated increase of ROS, MDA, activity of TAC level and depletion of catalase level in brain tissue. Conclusion: The present study demonstrated antioxidant activity in brain tissue. This result would be consistent with the long clinical efficacy of JGT, and this finding may provide a strong possibility of JGT as a drug candidate for brain-specific multiple disorders and symptoms.

Kaempferol이 LPS로 유도된 생쥐 중추신경계 염증에 미치는 영향 (Effects of Kaempferol on Lippolysaccharide-induced Inflammation in Mouse Brain)

  • 이흥기;김도훈;김연섭
    • 대한본초학회지
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    • 제30권1호
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    • pp.77-84
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    • 2015
  • Objectives : Brain inflammation early activates the microglia and activated microglia secrete a variety of pro-inflammatory cytokines. Kaempferol, which is a flavonoid in Cuscutae Semen, shows a wide range of physiological activities, including neurons protection and anti-inflammatory actions through inhibition of pro-inflammatory mediators. The present study examined the modulatory effect of kaempferol on cytokines [tumor necrosis factor- alpha ($TNF-{\alpha}$), interleukin-1beta ($IL-1{\beta}$) and interleukin-6 (IL-6)] and cyclooxygenase-2 (COX-2) mRNA expression and microglia activation in the brain tissue of the mouse. Methods : Kaempferol was administered orally three doses of 10, 20 and 30 mg/kg respectively, once 1 hour before the lippolysaccharide(LPS) (3 mg/kg, i.p.) injection. Brain tissue was removed at 4 hours after LPS injection. Cytokines and COX-2 mRNA expression in the brain tissue was measured by the quantitative real-time polymerase chain reaction (PCR) method. Iba1 expression was calculated by western blotting method. Microglia was observed with immunohistochemistry. Immunohistochemistry stained microglia was analyzed by using ImageJ software. Results : Kaempferol 20 and 30 mg/kg was significantly attenuated the expression of $TNF-{\alpha}$, $IL-1{\beta}$ and IL-6 mRNA. Kaempfrol 10, 20 and 30 mg/kg significantly attenuated COX-2 mRNA expression in the brain tissue. Kaempferol 30 mg/kg significantly suppressed the increase of Iba1 protein expression by LPS. Kaempferol 30 mg/kg significantly decreased the number of microglia in the cerebral cortex and the number and cell size of microglia in the hypothalamic region and the area percentage of ionized calcium binding adaptor molecule 1(Iba1)-expressed microglia in the hippocampus. Conclusions : This results indicate that kaempferol plays an anti-inflammatory role in the brain.

Immune Cells Are Differentially Affected by SARS-CoV-2 Viral Loads in K18-hACE2 Mice

  • Jung Ah Kim;Sung-Hee Kim;Jeong Jin Kim;Hyuna Noh;Su-bin Lee;Haengdueng Jeong;Jiseon Kim;Donghun Jeon;Jung Seon Seo;Dain On;Suhyeon Yoon;Sang Gyu Lee;Youn Woo Lee;Hui Jeong Jang;In Ho Park;Jooyeon Oh;Sang-Hyuk Seok;Yu Jin Lee;Seung-Min Hong;Se-Hee An;Joon-Yong Bae;Jung-ah Choi;Seo Yeon Kim;Young Been Kim;Ji-Yeon Hwang;Hyo-Jung Lee;Hong Bin Kim;Dae Gwin Jeong;Daesub Song;Manki Song;Man-Seong Park;Kang-Seuk Choi;Jun Won Park;Jun-Won Yun;Jeon-Soo Shin;Ho-Young Lee;Ho-Keun Kwon;Jun-Young Seo;Ki Taek Nam;Heon Yung Gee;Je Kyung Seong
    • IMMUNE NETWORK
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    • 제24권2호
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    • pp.7.1-7.19
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    • 2024
  • Viral load and the duration of viral shedding of severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) are important determinants of the transmission of coronavirus disease 2019. In this study, we examined the effects of viral doses on the lung and spleen of K18-hACE2 transgenic mice by temporal histological and transcriptional analyses. Approximately, 1×105 plaque-forming units (PFU) of SARS-CoV-2 induced strong host responses in the lungs from 2 days post inoculation (dpi) which did not recover until the mice died, whereas responses to the virus were obvious at 5 days, recovering to the basal state by 14 dpi at 1×102 PFU. Further, flow cytometry showed that number of CD8+ T cells continuously increased in 1×102 PFU-virus-infected lungs from 2 dpi, but not in 1×105 PFU-virus-infected lungs. In spleens, responses to the virus were prominent from 2 dpi, and number of B cells was significantly decreased at 1×105 PFU; however, 1×12 PFU of virus induced very weak responses from 2 dpi which recovered by 10 dpi. Although the defense responses returned to normal and the mice survived, lung histology showed evidence of fibrosis, suggesting sequelae of SARS-CoV-2 infection. Our findings indicate that specific effectors of the immune response in the lung and spleen were either increased or depleted in response to doses of SARS-CoV-2. This study demonstrated that the response of local and systemic immune effectors to a viral infection varies with viral dose, which either exacerbates the severity of the infection or accelerates its elimination.

항 대사물질 6-aminonicotinamide가 생쥐 뇌의 탄수화물, 뉴클레오티드 및 카테콜라민 대사에 미치는 영향 (Effects of an Antimetabolite 6-aminonicotinamide on Carbohydrate, Nucleotide and Catecholamine Metabolism in Mouse Brain)

  • Jung, Heon-Keun;Park, In-Kook
    • 한국동물학회지
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    • 제35권1호
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    • pp.23-28
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    • 1992
  • The effects of an antimetabolite, 6-aminonicotinamide (6-AU) on the levels of glucose, glycogen, catechoamines and mucleotides in mice brain were investigated. The level of glucose in the blood starts increasing from 3 h after administration of 6-AU while those in the brain tissue start increasing from 9 h after administration of 6-AN. The concentration of brain glvcogen remained unchanged at all time points except 11h. The level of epinephrine in the brain was found to reach maximum value at initial 3 h following 6-AU administration, after urhich it started dec$\ulcorner$easing si역서cantle. The Brvel of brain norepinephrine remained virtually unchanged before 24 h time point at which it starts decreasing significantly. ATP, CTP, UMP and UTP levels were significantly reduced but AMP and CMP levels urere not affected.

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Acid sphingomyelinase-mediated blood-brain barrier disruption in aging

  • Park, Min Hee;Jin, Hee Kyung;Bae, Jae-sung
    • BMB Reports
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    • 제52권2호
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    • pp.111-112
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    • 2019
  • Although many studies have reported that the breakdown of the blood-brain barrier (BBB) represents one of the major pathological changes in aging, the mechanism underlying this process remains relatively unexplored. In this study, we described that acid sphingomyelinase (ASM) derived from endothelial cells plays a critical role in BBB disruption in aging. ASM levels were elevated in the brain endothelium and plasma of aged humans and mice, resulting in BBB leakage through an increase in caveolae-mediated transcytosis. Moreover, ASM caused damage to the caveolae-cytoskeleton via protein phosphatase 1-mediated ezrin/radixin/moesin dephosphorylation in primary mouse brain endothelial cells. Mice overexpressing brain endothelial cell-specific ASM exhibited acceleration of BBB impairment and neuronal dysfunction. However, genetic inhibition and endothelial specific knock-down of ASM in mice improved BBB disruption and neurocognitive impairment during aging. Results of this study revealed a novel role of ASM in the regulation of BBB integrity and neuronal function in aging, thus highlighting the potential of ASM as a new therapeutic target for anti-aging.