AMPK Methods and Protocols

(Rick Simeone) #1

  1. Hunter Roger W, Foretz M, Bultot L, Full-
    erton Morgan D, Deak M, Ross Fiona A, Haw-
    ley Simon A, Shpiro N, Viollet B, Barron D,
    Kemp Bruce E, Steinberg Gregory R, Hardie
    DG, Sakamoto K (2014) Mechanism of action
    of compound-13: anα1-selective small mole-
    cule activator of AMPK. Chem Biol 21
    (7):866–879. https://doi.org/10.1016/j.
    chembiol.2014.05.014

  2. Woods A, Azzout-Marniche D, Foretz M,
    Stein SC, Lemarchand P, Ferre ́P, Foufelle F,
    Carling D (2000) Characterization of the role
    of AMP-activated protein kinase in the regula-
    tion of glucose-activated gene expression using
    constitutively active and dominant negative
    forms of the kinase. Mol Cell Biol 20
    (18):6704–6711

  3. Leclerc I, Woltersdorf WW, da Silva Xavier G,
    Rowe RL, Cross SE, Korbutt GS, Rajotte RV,
    Smith R, Rutter GA (2004) Metformin, but
    not leptin, regulates AMP-activated protein
    kinase in pancreatic islets: impact on glucose-
    stimulated insulin secretion. Am J Physiol
    Endocrinol Metab 286(6):E1023–E1031.
    https://doi.org/10.1152/ajpendo.00532.
    2003

  4. Davies SP, Carling D, Hardie DG (1989) Tis-
    sue distribution of the AMP-activated protein
    kinase, and lack of activation by cyclic-AMP-
    dependent protein kinase, studied using a spe-
    cific and sensitive peptide assay. Eur J Biochem
    186(1–2):123–128

  5. da Silva Xavier G, Leclerc I, Salt IP, Doiron B,
    Hardie DG, Kahn A, Rutter GA (2000) Role of
    AMP-activated protein kinase in the regulation
    by glucose of islet beta cell gene expression.
    Proc Natl Acad Sci U S A 97(8):4023–4028

  6. Scott JW, Norman DG, Hawley SA,
    Kontogiannis L, Hardie DG (2002) Protein
    kinase substrate recognition studied using the
    recombinant catalytic domain of
    AMP-activated protein kinase and a model sub-
    strate. J Mol Biol 317(2):309–323.https://
    doi.org/10.1006/jmbi.2001.5316

  7. Hardie DG, Ross FA, Hawley SA (2012)
    AMP-activated protein kinase: a target for
    drugs both ancient and modern. Chem Biol
    19(10):1222–1236. https://doi.org/10.
    1016/j.chembiol.2012.08.019

  8. Mihaylova MM, Shaw RJ (2011) The AMPK
    signalling pathway coordinates cell growth,
    autophagy and metabolism. Nat Cell Biol 13
    (9):1016–1023. https://doi.org/10.1038/
    ncb2329
    30. Carling D, Zammit VA, Hardie DG (1987) A
    common bicyclic protein kinase cascade inacti-
    vates the regulatory enzymes of fatty acid and
    cholesterol biosynthesis. FEBS Lett 223
    (2):217–222
    31. Gwinn DM, Shackelford DB, Egan DF, Mihay-
    lova MM, Mery A, Vasquez DS, Turk BE, Shaw
    RJ (2008) AMPK phosphorylation of raptor
    mediates a metabolic checkpoint. Mol Cell 30
    (2):214–226. https://doi.org/10.1016/j.
    molcel.2008.03.003
    32. Meares GP, Hughes KJ, Naatz A, Papa FR,
    Urano F, Hansen PA, Benveniste EN, Corbett
    JA (2011) IRE1-dependent activation of
    AMPK in response to nitric oxide. Mol Cell
    Biol 31(21):4286–4297.https://doi.org/10.
    1128/MCB.05668-11
    33. Mahmood T, Yang PC (2012) Western blot:
    technique, theory, and trouble shooting. N Am
    J Med Sci 4(9):429–434.https://doi.org/10.
    4103/1947-2714.100998
    34. Degorce F, Card A, Soh S, Trinquet E, Knapik
    GP, Xie B (2009) HTRF: a technology tailored
    for drug discovery - a review of theoretical
    aspects and recent applications. Curr Chem
    Genomics 3:22–32. https://doi.org/10.
    2174/1875397300903010022
    35. Vasir B, Aiello LP, Yoon KH, Quickel RR,
    Bonner-Weir S, Weir GC (1998) Hypoxia
    induces vascular endothelial growth factor
    gene and protein expression in cultured rat
    islet cells. Diabetes 47(12):1894–1903
    36. Kemp BE, Mitchelhill KI, Stapleton D, Michell
    BJ, Chen ZP, Witters LA (1999) Dealing with
    energy demand: the AMP-activated protein
    kinase. Trends Biochem Sci 24(1):22–25
    37. Diraison F, Parton L, Ferre ́P, Foufelle F, Bris-
    coe CP, Leclerc I, Rutter GA (2004) Over-
    expression of sterol-regulatory-element-bind-
    ing protein-1c (SREBP1c) in rat pancreatic
    islets induces lipogenesis and decreases
    glucose-stimulated insulin release: modulation
    by 5-aminoimidazole-4-carboxamide ribonu-
    cleoside (AICAR). Biochem J 378
    (Pt 3):769–778. https://doi.org/10.1042/
    BJ20031277
    38. Chennell G, Willows RJ, Warren SC,
    Carling D, French PM, Dunsby C, Sardini A
    (2016) Imaging of metabolic status in 3D cul-
    tures with an improved AMPK FRET biosen-
    sor for FLIM. Sensors (Basel) 16(8).https://
    doi.org/10.3390/s16081312


Manipulation and Measurement in Islets 431
Free download pdf