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  • Huvec細胞


    Huvec細胞:  Huvec細胞(固定),用SiR-actin染色,共聚焦顯微鏡成像。
    大鼠海馬神經元 大鼠海馬神經元: 用SiR-actin染色培養大鼠海馬神經元的STED圖像。肌動蛋白環(條紋)周期性為180nm。
    MCF10A Cells MCF10A Cells (3D培養) 用SiR -actin(紅色)染色的MCF10A細胞在基質膠中表達H2B-GFP(藍色)的。 LSM 倒置顯微鏡觀測圖
    MCF10A Cells MCF10A Cells (3D培養) 用SiR -actin(紅色)染色的mcf10a細胞在基質膠中表達H2B-GFP(藍色)的。 LSM 倒置顯微鏡觀測圖
    金魚視網膜雙極細胞 金魚視網膜雙極細胞: 用SiR-tubulin染色的單個分離金魚視網膜雙極細胞的三維投影。顏色光譜代表深度。可見微管從樹突的頂端(頂部)伸入軸突,向下伸入巨大的突觸末端(底部)。
    金魚星形膠質細胞 金魚星形膠質細胞: 用SiR-tubulin染色的單個分離的金魚星形膠質細胞的三維投影。

          G-LISA 活化檢測試劑盒:

     

    產品名稱 貨號
    RhoA G-LISA 活化檢測生化試劑盒(比色法)  (Cat. # BK124)
    RhoA G-LISA 活化檢測生化試劑盒(熒光法)  (Cat. # BK121)

          Actin生化試劑盒:  

     

    產品名稱 貨號
    肌動蛋白結合蛋白 Spin-Down生化檢測試劑盒(兔骨骼肌actin) (Cat. # BK001)
    肌動蛋白結合蛋白 Spin-Down生化檢測試劑盒(人血小板actin) (Cat. # BK013)
    Actin聚合生化檢測試劑盒(熒光法:兔骨骼肌actin) (Cat. # BK003)
    G-Actin/F-actin In Vivo生化檢測試劑盒 (Cat. # BK037)

          Tubulin生化試劑盒:

     

    產品名稱 貨號
    Tubulin聚合生化檢測試劑盒(比色法) (Cat. # BK006P)
    Tubulin聚合生化檢測試劑盒(熒光法) (Cat. # BK011P)
    微管結合蛋白 Spin-Down生化檢測試劑盒 (Cat. # BK029)
    微管/Tubulin In Vivo生化檢測試劑盒 (Cat. # BK038)

     

           iRegene的人源干細胞株及配套培養試劑盒:  

    產品名稱 貨號
    NouvNe u?人源神經干細胞(hNSC)細胞株 RJC02006
    NouvNeu!" hNSC 神經干細胞培養試劑盒 RJM02000
    NouvNeu?hNeuron神經元定向分化細胞培養試劑盒

    RJM03000

     

          StressMarq的活性α突觸蛋白和Tau蛋白,便于快速構建神經疾病動物模型:  

     

    產品名稱 活性 應用類型 貨號 適用物種
    重組人α-突觸核蛋白單體(對照) 重組人α-突觸核蛋白聚合體PFFs(對照)  Inactive WB、SDS-PAGE、in vivo/vitro SPR-316B SPR-317B
    重組人α-突觸核蛋白單體 重組人α-突觸核蛋白聚合體PFFs Active WB、SDS-PAGE、in vivo/vitro SPR-321B SPR-322B
    重組小鼠α-突觸核蛋白單體 重組小鼠α-突觸核蛋白聚合體PFFs Active WB、SDS-PAGE、in vivo/vitro SPR-323B SPR-324B
    小鼠抗小鼠α-突觸核蛋白單抗 小鼠抗小鼠α-突觸核蛋白單抗 小鼠抗小鼠α-突觸核蛋白單抗
    WB、ICC/IF WB、IHC、ICC/IF WB、IHC、ICC/IF SMC-531DSMC-532DSMC-533D 人、小鼠、大鼠 人、小鼠、大鼠 人、小鼠、大鼠
    小鼠抗人α-突觸核蛋白單抗 兔抗人α-突觸核蛋白多抗
    WB、ICC/IF WB SMC-530DSPC-800D 人、小鼠、大鼠
    α-突觸核蛋白 (磷酸化Ser129) 抗體 α-突觸核蛋白 (磷酸化Tyr136) 抗體
    WB、ICC/IF WB SPC-742DSPC-1435D 人、小鼠 人、小鼠、大鼠
    重組Tau 2N4R P301S蛋白單體 重組Tau 2N4R P301S蛋白PFFs Active WB、SDS-PAGE、in vivo/vitro SPR-327B SPR-329B
    重組Tau K18/P301L蛋白單體 重組Tau K18/P301L蛋白PFFs Active WB、SDS-PAGE、in vivo/vitro SPR-328B SPR-330B

     

          參考文獻:

    1. Neurological disease models made clear. Med.(Editorial, published September 2015). 21, 964.

    2. Schlachetzki J.C. et al. 2013. Studying neurodegenerative diseases in culture models.  Bras. Psiquiatr.35, S92-100.

    3. Hughes P. et al. 2018. The costs of using unauthenticated, over-passaged cell lines: how much more data do we need? Biotechniques43, 575, 577-578, 581-582

    4. Verstraelen P. et al. 2018. Image-based profiling of synaptic connectivity in primary neuronal cell culture.  Neurosci12, 389.

    5. Hoover B.R. et al. 2010. Tau mislocalization to dendritic spines mediates synaptic dysfunction independently of neurodegeneration. Neuron68, 1067-1081

    6. Spires-Jones T.L. and Hyman B.T. 2014. The intersection of amyloid beta and tau at synapses in Alzheimer’s disease. Neuron82, 756-771.

    7. Bayer T.A. and Wirths O. 2010. Intracellular accumulation of amyloid-beta – a predictor for synaptic dysfunction and neuron loss in Alzheimer’s disease. Front. Aging Neurosci2, 8

    8. Unternaehrer J.J. and Daley G.Q. 2011. Induced pluripotent stem cells for modelling human diseases.  Trans. R. Soc. B.366, 2274-2285.

    9. Munoz S.S. et al. 2018. The serine protease HtrA1 contributes to the formation of an extracellular 25-kDa apolipoprotein E fragment that stimulates neuritogenesis.  Biol. Chem293, 4071-4084

    10. Jin M. et al. 2018. An in vitro paradigm to assess potential anti-Aβ antibodies for Alzheimer’s disease.  Commun.9, 2676.

    11. Hong W. et al. 2018. Diffusible, highly bioactive oligomers represent a critical minority of soluble Aβ in Alzheimer’s disease brain. Acta Neuropathol.136, 10-40

    12. Di Primio C. et al. 2017. The distance between N and C termini of tau and of FTDP-17 mutants is modulated by microtubule interactions in living cells.  Neurosci.10, 210.

    13. White M.D. et al. 2018. In vivo imaging of single mammalian cells in development and disease. Trends Mol. Med.24, 278-293.

    14. Wrasidlo W. et al. 2016. A de novo compound targeting alpha-synuclein improves deficits in models of Parkinson’s disease. 139, 3217-3236.

    15. Falkner S. et al. 2016. Transplanted embryonic neurons integrate into adult neocortical circuits. Nature539, 248-253.

    16. Peron S. et al. 2017. A delay between motor cortex lesions and neuronal transplantation enhances graft integration and improves repair and recovery.  Neurosci.37, 1820-1834.

    17. Wang C. et al. 2016. Infiltrating cells from host brain restore the microglial population in grafted cortical tissue.  Rep.6, 33080.

    18. Guo L. et al. 2015. Dynamic rewiring of neural circuits in the motor cortex in mouse models of Parkinson’s disease.  Neurosci.18, 1299-1309.

    19. Shin H.Y. et al. 2018. Using automated live cell imaging to reveal early changes during human motor neuron degeneration. eNeuro. doi: 10.1523/ENEURO.0001-18.2018.


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