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[1]Ray LB.PKA-activation mechanism revised[J].Science,2017,356(6344):1243-1244.
[2]Czachor A,Failla A,Lockey R,et al.Pivotal role of AKAP121 in mitochondrial physiology[J].Am J Physiol Cell Physiol,2016,310(8):C625-C628.
[3]Merrill RA,Strack S.Mitochondria:a kinase anchoring protein 1,a signaling platform for mitochondrial form and function[J].Int J Biochem Cell Biol,2014,48:92-96.
[4]Huang LJ,Wang L,Ma Y,et al.NH2-Terminal targeting motifs direct dual specificity A-kinase-anchoring protein 1(D-AKAP1)to either mitochondria or endoplasmic reticulum[J].J Cell Biol,1999,145(5):951-959.
[5]Rogne M,Landsverk HB,Van Eynde A,et al.The KH-Tudor domain of a-kinase anchoring protein 149 mediates RNA-dependent self-association[J].Biochemistry,2006,45(50):14980-14989.
[6]Lin RY,Moss SB,Rubin CS.Characterization of S-AKAP84,a novel developmentally regulated A kinase anchor protein of male germ cells[J].J Biol Chem,1995,270(46):27804-27811.
[7]Ma Y,Taylor SS.A molecular switch for targeting between endoplasmic reticulum(ER)and mitochondria:conversion of a mitochondria-targeting element into an ER-targeting signal in DAKAP1[J].J Biol Chem,2008,283(17):11743-11751.
[8]Ma Y,Taylor S.A 15-residue bifunctional element in D-AKAP1 is required for both endoplasmic reticulum and mitochondrial targeting[J].J Biol Chem,2002,277(30):27328-27336.
[9]Affaitati A,Cardone L,de Cristofaro T,et al.Essential role of A-kinase anchor protein 121 for cAMP signaling to mitochondria[J].J Biol Chem,2003,278(6):4286-4294.
[10]Tobio A,Fernandez-Araujo A,Alfonso A,et al.Role of yessotoxin in calcium and cAMP-crosstalks in primary and K-562 human lymphocytes: the effect is mediated by anchor kinase A mitochondrial proteins[J].J Cell Biochem,2012,113(12):3752-3761.
[11]Cardone L,Carlucci A,Affaitati A,et al.Mitochondrial AKAP121 binds and targets protein tyrosine phosphatase D1,a novel positive regulator of src signaling[J].Mol Cell Biol,2004,24(11):4613-4626.
[12]Livigni A,Scorziello A,Agnese S,et al.Mitochondrial AKAP121 links cAMP and src signaling to oxidative metabolism[J].Mol Biol Cell,2006,17(1):263-271.
[13]Scorziello A,Savoia C,Sisalli MJ,et al.NCX3 regulates mitochondrial Ca(2+)handling through the AKAP121-anchored signaling complex and prevents hypoxia-induced neuronal death[J].J Cell Sci,2013,126(Pt 24):5566-5577.
[14]Abrenica B,AlShaaban M,Czubryt MP.The A-kinase anchor protein AKAP121 is a negative regulator of cardiomyocyte hypertrophy[J].J Mol Cell Cardiol,2009,46(5):674-681.
[15]Rinaldi L,Sepe M,Delle Donne R,et al.Mitochondrial AKAP1 supports mTOR pathway and tumor growth[J].Cell Death Dis,2017,8(6):e2842.
[16]Ginsberg MD,Feliciello A,Jones JK,et al.PKA-dependent binding of mRNA to the mitochondrial AKAP121 protein[J].J Mol Biol,2003,327(4):885-897.
[17]Valverde R,Edwards L,Regan L.Structure and function of KH domains[J].FEBS J,2008,275(11):2712-2726.
[18]Grozdanov PN,Stocco DM.Short RNA molecules with high binding affinity to the KH motif of A-kinase anchoring protein 1(AKAP1):implications for the regulation of steroidogenesis[J].Mol Endocrinol,2012,26(12):2104-2117.
[19]Ranganathan G,Phan D,Pokrovskaya ID,et al.The translational regulation of lipoprotein lipase by epinephrine involves an RNA binding complex including the catalytic subunit of protein kinase A[J].J Biol Chem,2002,277(45): 43281-4387.
[20]Schiattarella GG,Cattaneo F,Pironti G,et al.Akap1 Deficiency Promotes Mitochondrial Aberrations and Exacerbates Cardiac Injury Following Permanent Coronary Ligation via Enhanced Mitophagy and Apoptosis[J].PloS one,2016,11(5):e0154076.
[21]Carlucci A,Adornetto A,Scorziello A,et al.Proteolysis of AKAP121 regulates mitochondrial activity during cellular hypoxia and brain ischaemia[J].EMBO J,2008,27(7):1073-1084.
[22]Tsushima K,Bugger H,Wende AR,et al.Mitochondrial Reactive Oxygen Species in Lipotoxic Hearts Induce Post-Translational Modifications of AKAP121,DRP1,and OPA1 That Promote Mitochondrial Fission[J].Circ Res,2018,122(1):58-73.
[23]Berra E,Ginouves A,Pouyssegur J.The hypoxia-inducible-factor hydroxylases bring fresh air into hypoxia signalling[J].EMBO Rep,2006,7(1):41-45.
[24]Papa S.The NDUFS4 nuclear gene of complex I of mitochondria and the cAMP cascade[J].Biochim Biophys Acta,2002,1555(1-3):147-153.
[25]Raha S,Myint AT,Johnstone L,et al.Control of oxygen free radical formation from mitochondrial complex I:roles for protein kinase A and pyruvate dehydrogenase kinase[J].Free Radic Biol Med,2002,32(5): 421-430.
[26]Pagliarini DJ,Dixon JE. Mitochondrial modulation:reversible phosphorylation takes center stage?[J].Trends Biochem Sci,2006,31(1):26-34.
[27]Waxman AB,Kolliputi N.IL-6 protects against hyperoxia-induced mitochondrial damage via Bcl-2-induced Bak interactions with mitofusins[J].Am J Respir Cell Mol Biol,2009,41(4): 385-396.
[28]Youle RJ,van der Bliek AM.Mitochondrial fission,fusion,and stress[J].Science,2012,337(6098):1062-1065.
[29]Kiriyama Y,Nochi H.Intra- and Intercellular Quality Control Mechanisms of Mitochondria[J].Cells,2017,7(1):1-11.
[30]Carlucci A,Lignitto L,Feliciello A.Control of mitochondria dynamics and oxidative metabolism by cAMP,AKAPs and the proteasome[J].Trends Cell Biol,2008,18(12):604-613.
[31]Kim H,Scimia MC,Wilkinson D,et al.Fine-tuning of Drp1/Fis1 availability by AKAP121/Siah2 regulates mitochondrial adaptation to hypoxia[J].Mol Cell,2011,44(4):532-544.
[32]Sena LA,Chandel NS.Physiological roles of mitochondrial reactive oxygen species[J].Mol Cell,2012,48(2):158-167.
[33]Perrino C,Feliciello A,Schiattarella GG,et al.AKAP121 downregulation impairs protective cAMP signals,promotes mitochondrial dysfunction,and increases oxidative stress[J].Cardiovasc Res,2010,88(1):101-110.
[34]Diviani D,Dodge-Kafka KL,Li J,et al.A-kinase anchoring proteins:scaffolding proteins in the heart[J].Am J Physiol Heart Circ Physiol,2011,301(5):H1742-H1753.
[35]Smiljic S.The clinical significance of endocardial endothelial dysfunction[J].Medicina,2017,53(5):295-302.
[36]Schiattarella GG,Cattaneo F,Carrizzo A,et al.Akap1 Regulates Vascular Function and Endothelial Cells Behavior[J].Hypertension,2018,71(3):507-517.
[37]Rip J,Nierman MC,Ross CJ,et al.Lipoprotein lipase S447X:a naturally occurring gain-of-function mutation[J].Arterioscler Thromb Vasc Biol,2006,26(6):1236-1245.
[38]Ranganathan G,Unal R,Pokrovskaya ID,et al.The lipoprotein lipas(LPL)S447X gain of function variant involves increased mRNA translation[J].Atherosclerosis,2012,221(1):143-147.