메뉴 건너뛰기




Volumn 30, Issue 8, 2013, Pages 394-402

Location and membrane sources for autophagosome formation-from ER-mitochondria contact sites to Golgi-endosome-derived carriers

Author keywords

Autophagosome; Autophagy; Endosome; ER mitochondria contact sites; Golgi

Indexed keywords

AUTOPHAGY PROTEIN 5; BECLIN 1; CLATHRIN; CYTOCHROME B5; HYDROXYMETHYLGLUTARYL COENZYME A REDUCTASE KINASE; MEMBRANE PROTEIN; MITOFUSIN 2; PHOSPHATIDYLINOSITOL 3 PHOSPHATE; SNARE PROTEIN; VOLTAGE DEPENDENT ANION CHANNEL 1;

EID: 84888627184     PISSN: 09687688     EISSN: 14645203     Source Type: Journal    
DOI: 10.3109/09687688.2013.850178     Document Type: Article
Times cited : (38)

References (72)
  • 1
    • 50249084987 scopus 로고    scopus 로고
    • Autophagosome formation from membrane compartments enriched in phosphatidylinositol 3-phosphate and dynamically connected to the endoplasmic reticulum
    • Axe EL, Walker SA, Manifava M, Chandra P, Roderick HL, Habermann A, et al. 2008. Autophagosome formation from membrane compartments enriched in phosphatidylinositol 3-phosphate and dynamically connected to the endoplasmic reticulum. J Cell Biol 182:685-701.
    • (2008) J Cell Biol , vol.182 , pp. 685-701
    • Axe, E.L.1    Walker, S.A.2    Manifava, M.3    Chandra, P.4    Roderick, H.L.5    Habermann, A.6
  • 2
    • 84866100323 scopus 로고    scopus 로고
    • Atg11: A Rab-dependent, coi-led-coil membrane protein that acts as a tether for autophagy
    • Backues SK, Klionsky DJ. 2012. Atg11: A Rab-dependent, coi-led-coil membrane protein that acts as a tether for autophagy. Autophagy 8:1275-1278.
    • (2012) Autophagy , vol.8 , pp. 1275-1278
    • Backues, S.K.1    Klionsky, D.J.2
  • 3
    • 78149471570 scopus 로고    scopus 로고
    • Autophagy in neurode-generative disorders: Pathogenic roles and therapeutic implications
    • Banerjee R, Beal MF, Thomas B. 2010. Autophagy in neurode-generative disorders: Pathogenic roles and therapeutic implications. Trends Neurosci 33:541-549.
    • (2010) Trends Neurosci , vol.33 , pp. 541-549
    • Banerjee, R.1    Beal, M.F.2    Thomas, B.3
  • 4
    • 10144220633 scopus 로고    scopus 로고
    • The organization of endoplasmic reticulum export complexes
    • DOI 10.1083/jcb.135.1.19
    • Bannykh SI, Rowe T, Balch WE. 1996. The organization of endoplasmic reticulum export complexes. J Cell Biol 135:19-35. (Pubitemid 26337734)
    • (1996) Journal of Cell Biology , vol.135 , Issue.1 , pp. 19-35
    • Bannykh, S.I.1    Rowe, T.2    Balch, W.E.3
  • 5
    • 77957790021 scopus 로고    scopus 로고
    • Rab32 modulates apoptosis onset and mitochondria-associated membrane (MAM) properties
    • Bui M, Gilady SY, Fitzsimmons REB, Benson MD, Lynes EM, Gesson K, et al. 2010. Rab32 modulates apoptosis onset and mitochondria-associated membrane (MAM) properties. J Biol Chem 285:31590-31602.
    • (2010) J Biol Chem , vol.285 , pp. 31590-31602
    • Bui, M.1    Gilady, S.Y.2    Reb, F.3    Benson, M.D.4    Lynes, E.M.5    Gesson, K.6
  • 6
    • 85046983921 scopus 로고    scopus 로고
    • Cell type-specific Rab32 and Rab38 cooperate with the ubiquitous lysosome biogenesis machinery to synthesize specialized lysosome-related organelles
    • Bultema JJ, Di Pietro SM. 2013. Cell type-specific Rab32 and Rab38 cooperate with the ubiquitous lysosome biogenesis machinery to synthesize specialized lysosome-related organelles. Small GTPases 4:16-21.
    • (2013) Small GTPases , vol.4 , pp. 16-21
    • Bultema, J.J.1    Di Pietro, S.M.2
  • 7
    • 84858328465 scopus 로고    scopus 로고
    • Reticulophagy and ribo-phagy: Regulated degradation of protein production factories
    • Cebollero E, Reggiori F, Kraft C. 2012. Reticulophagy and ribo-phagy: Regulated degradation of protein production factories. Int J Cell Biol 2012:182834.
    • (2012) Int J Cell Biol , vol.2012 , pp. 182834
    • Cebollero, E.1    Reggiori, F.2    Kraft, C.3
  • 8
    • 67549084381 scopus 로고    scopus 로고
    • Superoxide is the major reactive oxygen species regulating autophagy
    • Chen Y, Azad MB, Gibson SB. 2009. Superoxide is the major reactive oxygen species regulating autophagy. Cell Death Differ 16:1040-1052.
    • (2009) Cell Death Differ , vol.16 , pp. 1040-1052
    • Chen, Y.1    Azad, M.B.2    Gibson, S.B.3
  • 9
    • 39449108917 scopus 로고    scopus 로고
    • The Atg1 kinase complex is involved in the regulation of protein recruitment to initiate sequestering vesicle formation for nonspecific autophagy in Saccharomyces cerevisiae
    • DOI 10.1091/mbc.E07-08-0826
    • Cheong H, Nair U, Geng J, Klionsky DJ. 2008. The Atg1 kinase complex is involved in the regulation of protein recruitment to initiate sequestering vesicle formation for nonspecific autophagy in Saccharomyces cerevisiae. Mol Biol Cell 19:668-681. (Pubitemid 351272154)
    • (2008) Molecular Biology of the Cell , vol.19 , Issue.2 , pp. 668-681
    • Cheong, H.1    Nair, U.2    Geng, J.3    Klionsky, D.J.4
  • 10
    • 57349100367 scopus 로고    scopus 로고
    • Mitofusin 2 tethers endoplasmic reticulum to mitochondria
    • de Brito OM, Scorrano L. 2008. Mitofusin 2 tethers endoplasmic reticulum to mitochondria. Nature 456:605-610.
    • (2008) Nature , vol.456 , pp. 605-610
    • De Brito, O.M.1    Scorrano, L.2
  • 11
    • 84867773087 scopus 로고    scopus 로고
    • Mitophagy: Mechanisms, pathophysi-ological roles, and analysis
    • Ding WX, Yin XM. 2012. Mitophagy: Mechanisms, pathophysi-ological roles, and analysis. Biol Chem 393:547-564.
    • (2012) Biol Chem , vol.393 , pp. 547-564
    • Ding, W.X.1    Yin, X.M.2
  • 12
    • 43949143804 scopus 로고    scopus 로고
    • The Atg16L complex specifies the site of LC3 lipidation for membrane biogenesis inautophagy
    • Fujita N, Itoh T, Omori H, Fukuda M, NodaT, YoshimoriT.2008. The Atg16L complex specifies the site of LC3 lipidation for membrane biogenesis inautophagy. Mol Biol Cell 19:2092-2100.
    • (2008) Mol Biol Cell , vol.19 , pp. 2092-2100
    • Fujita, N.1    Itoh, T.2    Omori, H.3    Fukuda, M.4    Nodat, YoshimoriT.5
  • 13
    • 84883128633 scopus 로고    scopus 로고
    • Autophagy-an emerging anti-aging mechanism
    • Gelino S, Hansen M. 2012. Autophagy-an emerging anti-aging mechanism. J Clin Experim Pathol Suppl 4.
    • (2012) J Clin Experim Pathol , Issue.SUPPL. 4
    • Gelino, S.1    Hansen, M.2
  • 16
    • 77950462712 scopus 로고    scopus 로고
    • Where do they comefrom? Insights into autophagosome formation
    • Hamasaki M, Yoshimori T. 2010. Where do they comefrom? Insights into autophagosome formation. FEBS Lett 584: 1296-1301.
    • (2010) FEBS Lett , vol.584 , pp. 1296-1301
    • Hamasaki, M.1    Yoshimori, T.2
  • 17
    • 0035890255 scopus 로고    scopus 로고
    • SNARE complex structure and function
    • DOI 10.1006/excr.2001.5368
    • Hay JC. 2001. SNARE complex structure and function. Exp Cell Res 271:10-21. (Pubitemid 33070988)
    • (2001) Experimental Cell Research , vol.271 , Issue.1 , pp. 10-21
    • Hay, J.C.1
  • 19
    • 33845692364 scopus 로고    scopus 로고
    • Recruitment of Atg9 to the preautophagosomal structure by Atg11 is essential for selective autophagy in budding yeast
    • DOI 10.1083/jcb.200606084
    • HeC, Song H, Yorimitsu T, Monastyrska I, Yen WL, Legakis JE, et al. 2006. Recruitment of Atg9 to the preautophagosomal structure by Atg11 is essential for selective autophagy in budding yeast. J Cell Biol 175:925-935. (Pubitemid 44969198)
    • (2006) Journal of Cell Biology , vol.175 , Issue.6 , pp. 925-935
    • He, C.1    Song, H.2    Yorimitsu, T.3    Monastyrska, I.4    Yen, W.-L.5    Legakis, J.E.6    Klionsky, D.J.7
  • 20
    • 68949214328 scopus 로고    scopus 로고
    • A small GTPase, human Rab32, is required for the formation of autophagic vacuoles under basal conditions
    • Hirota Y, Tanaka Y. 2009. A small GTPase, human Rab32, is required for the formation of autophagic vacuoles under basal conditions. Cell Mol Life Sci 66:2913-2932.
    • (2009) Cell Mol Life Sci , vol.66 , pp. 2913-2932
    • Hirota, Y.1    Tanaka, Y.2
  • 21
    • 84870880174 scopus 로고    scopus 로고
    • The hairpin-type tail-anchored SNARE syntaxin 17 targets to autophago-somes for fusion with endosomes/lysosomes
    • Itakura E, Kishi-Itakura C, Mizushima N. 2012. The hairpin-type tail-anchored SNARE syntaxin 17 targets to autophago-somes for fusion with endosomes/lysosomes. Cell 151:1256-1269.
    • (2012) Cell , vol.151 , pp. 1256-1269
    • Itakura, E.1    Kishi-Itakura, C.2    Mizushima, N.3
  • 22
    • 0028820010 scopus 로고
    • The Ypt1 GTPase is essential for the first two steps of the yeast secretory pathway
    • Jedd G, Richardson C, Litt R, Segev N. 1995. The Ypt1 GTPase is essential for the first two steps of the yeast secretory pathway. J Cell Biol 131:583-590.
    • (1995) J Cell Biol , vol.131 , pp. 583-590
    • Jedd, G.1    Richardson, C.2    Litt, R.3    Segev, N.4
  • 23
    • 84859763961 scopus 로고    scopus 로고
    • Alternative macroautophagic pathways
    • Juenemann K, Reits EA. 2012. Alternative macroautophagic pathways. Int J Cell Biol 2012:189794.
    • (2012) Int J Cell Biol , vol.2012 , pp. 189794
    • Juenemann, K.1    Reits, E.A.2
  • 24
    • 84871811752 scopus 로고    scopus 로고
    • Atg9 vesicles recruit vesicle-tethering proteins Trs85 and Ypt1 to the autophagosome formation site
    • Kakuta S, Yamamoto H, Negishi L, Kondo-Kakuta C, Hayashi N, Ohsumi Y. 2012. Atg9 vesicles recruit vesicle-tethering proteins Trs85 and Ypt1 to the autophagosome formation site. J Biol Chem 287:44261-44269.
    • (2012) J Biol Chem , vol.287 , pp. 44261-44269
    • Kakuta, S.1    Yamamoto, H.2    Negishi, L.3    Kondo-Kakuta, C.4    Hayashi, N.5    Ohsumi, Y.6
  • 25
    • 84864318195 scopus 로고    scopus 로고
    • Chaperone-mediated autophagy: A unique way to enter the lysosome world
    • Kaushik S, Cuervo AM. 2012. Chaperone-mediated autophagy: A unique way to enter the lysosome world. Trends Cell Biol 22:407-417.
    • (2012) Trends Cell Biol , vol.22 , pp. 407-417
    • Kaushik, S.1    Cuervo, A.M.2
  • 26
    • 84884416449 scopus 로고    scopus 로고
    • An overview of autophagy: Morphology, mechanism and regulation
    • Klionsky D. 2013. An overview of autophagy: Morphology, mechanism and regulation. Antioxid Redox Signal.
    • (2013) Antioxid Redox Signal
    • Klionsky, D.1
  • 28
    • 84866426794 scopus 로고    scopus 로고
    • Binding of the Atg1/ULK1 kinase to the ubiquitin-like protein Atg8 regulates autophagy
    • Kraft C, Kijanska M, Kalie E, Siergiejuk E, Lee SS, Semplicio G, et al. 2012. Binding of the Atg1/ULK1 kinase to the ubiquitin-like protein Atg8 regulates autophagy. EMBO J 31:3691-3703.
    • (2012) EMBO J , vol.31 , pp. 3691-3703
    • Kraft, C.1    Kijanska, M.2    Kalie, E.3    Siergiejuk, E.4    Lee, S.S.5    Semplicio, G.6
  • 30
    • 84867602835 scopus 로고    scopus 로고
    • Starvation-induced autophagy is regulated by mitochondrial reactive oxygen species leading to AMPK activation
    • Li L, Chen Y, Gibson SB. 2013. Starvation-induced autophagy is regulated by mitochondrial reactive oxygen species leading to AMPK activation. Cell Signal 25:50-65.
    • (2013) Cell Signal , vol.25 , pp. 50-65
    • Li, L.1    Chen, Y.2    Gibson, S.B.3
  • 31
    • 84859161154 scopus 로고    scopus 로고
    • Microautophagy: Lesser-known self-eating
    • Li WW, Li J, Bao JK. 2012. Microautophagy: Lesser-known self-eating. Cell Mol Life Sci 69:1125-1136.
    • (2012) Cell Mol Life Sci , vol.69 , pp. 1125-1136
    • Li, W.W.1    Li, J.2    Bao, J.K.3
  • 33
    • 84866097107 scopus 로고    scopus 로고
    • A Ypt/Rab GTPase module makes a PAS
    • Lipatova Z, Segev N. 2012. A Ypt/Rab GTPase module makes a PAS. Autophagy 8:1271-1272.
    • (2012) Autophagy , vol.8 , pp. 1271-1272
    • Lipatova, Z.1    Segev, N.2
  • 36
    • 77957198526 scopus 로고    scopus 로고
    • An Atg9-containing compartment that functions in the early steps of autophagosome biogenesis
    • Mari M, Griffith J, Rieter E, Krishnappa L, Klionsky DJ, Reggiori F. 2010. An Atg9-containing compartment that functions in the early steps of autophagosome biogenesis. J Cell Biol 190:1005-1022.
    • (2010) J Cell Biol , vol.190 , pp. 1005-1022
    • Mari, M.1    Griffith, J.2    Rieter, E.3    Krishnappa, L.4    Klionsky, D.J.5    Reggiori, F.6
  • 37
    • 77955895424 scopus 로고    scopus 로고
    • Autophagy requires endoplasmic reticulum targeting of the PI3-kinase complex via Atg14L
    • Matsunaga K, Morita E, Saitoh T, Akira S, Ktistakis NT, Izumi T, et al. 2010. Autophagy requires endoplasmic reticulum targeting of the PI3-kinase complex via Atg14L. J Cell Biol 190:511-521.
    • (2010) J Cell Biol , vol.190 , pp. 511-521
    • Matsunaga, K.1    Morita, E.2    Saitoh, T.3    Akira, S.4    Ktistakis, N.T.5    Izumi, T.6
  • 38
    • 79959340062 scopus 로고    scopus 로고
    • Syntaxin 17 cycles between the ER and ERGIC and is required to maintain the architecture of ERGIC and Golgi
    • Muppirala M, Gupta V, Swarup G. 2011. Syntaxin 17 cycles between the ER and ERGIC and is required to maintain the architecture of ERGIC and Golgi. Biol Cell 103:333-350.
    • (2011) Biol Cell , vol.103 , pp. 333-350
    • Muppirala, M.1    Gupta, V.2    Swarup, G.3
  • 40
    • 43949133015 scopus 로고    scopus 로고
    • The Ubi brothers reunited
    • Noda T, Fujita N, Yoshimori T. 2008. The Ubi brothers reunited. Autophagy 4:540-541. (Pubitemid 351705158)
    • (2008) Autophagy , vol.4 , Issue.4 , pp. 540-541
    • Noda, T.1    Fujita, N.2    Yoshimori, T.3
  • 41
    • 78649682788 scopus 로고    scopus 로고
    • Membrane delivery to the yeast autop-hagosome from the Golgi-endosomal system
    • Ohashi Y, Munro S. 2010. Membrane delivery to the yeast autop-hagosome from the Golgi-endosomal system. Mol Biol Cell 21:3998-4008.
    • (2010) Mol Biol Cell , vol.21 , pp. 3998-4008
    • Ohashi, Y.1    Munro, S.2
  • 42
    • 84861158462 scopus 로고    scopus 로고
    • Dynamic and transient interactions of Atg9 with autophagosomes, but not membrane integration, are required for autophagy
    • Orsi A, Razi M, Dooley HC, Robinson D, Weston AE, Collinson LM, et al. 2012. Dynamic and transient interactions of Atg9 with autophagosomes, but not membrane integration, are required for autophagy. Mol Biol Cell 23:1860-1873.
    • (2012) Mol Biol Cell , vol.23 , pp. 1860-1873
    • Orsi, A.1    Razi, M.2    Dooley, H.C.3    Robinson, D.4    Weston, A.E.5    Collinson, L.M.6
  • 43
    • 84876891097 scopus 로고    scopus 로고
    • Autophagy in obesity and atherosclerosis: Interrelationships between cholesterol homeostasis, lipoprotein metabolism and autophagy in macrophages and other systems
    • Ouimet M. 2013. Autophagy in obesity and atherosclerosis: Interrelationships between cholesterol homeostasis, lipoprotein metabolism and autophagy in macrophages and other systems. Biochim Biophys Acta 1831:1124-1133.
    • (2013) Biochim Biophys Acta , vol.1831 , pp. 1124-1133
    • Ouimet, M.1
  • 44
    • 77953726483 scopus 로고    scopus 로고
    • Mammalian Atg18 (WIPI2) localizes to omegasome-anchored phagophores and positively regulates LC3 lipidation
    • Polson HEJ, de Lartigue J, Rigden DJ, Reedijk M, Urbé S, Clague MJ, et al. 2010. Mammalian Atg18 (WIPI2) localizes to omegasome-anchored phagophores and positively regulates LC3 lipidation. Autophagy 6:506-522.
    • (2010) Autophagy , vol.6 , pp. 506-522
    • Hej, P.1    De Lartigue, J.2    Rigden, D.J.3    Reedijk, M.4    Urbé, S.5    Clague, M.J.6
  • 45
    • 84884220705 scopus 로고    scopus 로고
    • Diverse autophagosome membrane sources coalesce in recycling endosomes
    • Puri C, Renna M, Bento CF, Moreau K, Rubinsztein DC. 2013. Diverse autophagosome membrane sources coalesce in recycling endosomes. Cell 154:1285-1299.
    • (2013) Cell , vol.154 , pp. 1285-1299
    • Puri, C.1    Renna, M.2    Bento, C.F.3    Moreau, K.4    Rubinsztein, D.C.5
  • 46
    • 84871726622 scopus 로고    scopus 로고
    • Where the endoplasmic reticulum and the mitochondrion tie the knot: The mitochondria-associated membrane (MAM)
    • Raturi A, Simmen T. 2013. Where the endoplasmic reticulum and the mitochondrion tie the knot: The mitochondria-associated membrane (MAM). Biochim Biophys Acta 1833:213-224.
    • (2013) Biochim Biophys Acta , vol.1833 , pp. 213-224
    • Raturi, A.1    Simmen, T.2
  • 47
    • 77955131007 scopus 로고    scopus 로고
    • Plasma membrane contributes to the formation of pre-autopha-gosomal structures
    • Ravikumar B, Moreau K, Jahreiss L, Puri C, Rubinsztein DC. 2010. Plasma membrane contributes to the formation of pre-autopha-gosomal structures. Nat Cell Biol 12:747-757.
    • (2010) Nat Cell Biol , vol.12 , pp. 747-757
    • Ravikumar, B.1    Moreau, K.2    Jahreiss, L.3    Puri, C.4    Rubinsztein, D.C.5
  • 48
    • 0036463736 scopus 로고    scopus 로고
    • Autophagy in the eukaryotic cell
    • DOI 10.1128/EC.01.1.11-21.2002
    • Reggiori F, Klionsky DJ. 2002. Autophagy in the eukaryotic cell. Eukaryot Cell 1:11-21. (Pubitemid 36562345)
    • (2002) Eukaryotic Cell , vol.1 , Issue.1 , pp. 11-21
    • Reggiori, F.1    Klionsky, D.J.2
  • 49
    • 27644544004 scopus 로고    scopus 로고
    • Atg9 cycles between mitochondria and the pre-autophagosomal structure in yeasts
    • Reggiori F, Shintani T, Nair U, Klionsky DJ. 2005. Atg9 cycles between mitochondria and the pre-autophagosomal structure in yeasts. Autophagy 1:101-109.
    • (2005) Autophagy , vol.1 , pp. 101-109
    • Reggiori, F.1    Shintani, T.2    Nair, U.3    Klionsky, D.J.4
  • 50
    • 0346503885 scopus 로고    scopus 로고
    • The Atg1-Atg13 complex regulates Atg9 and Atg23 retrieval transport from the pre-autophagosomal structure
    • DOI 10.1016/S1534-5807(03)00402-7, PII S1534580703004027
    • Reggiori F, Tucker KA, Stromhaug PE, Klionsky DJ. 2004. The Atg1-Atg13 complex regulates Atg9 and Atg23 retrieval transport from the pre-autophagosomal structure. Dev Cell 6:79-90. (Pubitemid 38089207)
    • (2004) Developmental Cell , vol.6 , Issue.1 , pp. 79-90
    • Reggiori, F.1    Tucker, K.A.2    Stromhaug, P.E.3    Klionsky, D.J.4
  • 52
    • 84866728707 scopus 로고    scopus 로고
    • Endoplasmic reticulum-mitochon-dria contacts: Function of the junction
    • Rowland AA, Voeltz GK. 2012. Endoplasmic reticulum-mitochon-dria contacts: Function of the junction. Nat Rev Mol Cell Biol 13:607-625.
    • (2012) Nat Rev Mol Cell Biol , vol.13 , pp. 607-625
    • Rowland, A.A.1    Voeltz, G.K.2
  • 54
    • 84880331368 scopus 로고    scopus 로고
    • ULK1 induces autophagy by phosphorylating Beclin-1 and activating VPS34 lipid kinase
    • Russell RC, Tian Y, Yuan H, Park HW, Chang YY, Kim J, et al. 2013. ULK1 induces autophagy by phosphorylating Beclin-1 and activating VPS34 lipid kinase. Nat Cell Biol 15:741-750.
    • (2013) Nat Cell Biol , vol.15 , pp. 741-750
    • Russell, R.C.1    Tian, Y.2    Yuan, H.3    Park, H.W.4    Chang, Y.Y.5    Kim, J.6
  • 55
    • 65449186232 scopus 로고    scopus 로고
    • Atg17 recruits Atg9 to organize the pre-autophagosomal structure
    • Sekito T, Kawamata T, Ichikawa R, Suzuki K, Ohsumi Y. 2009. Atg17 recruits Atg9 to organize the pre-autophagosomal structure. Genes Cells 14:525-538.
    • (2009) Genes Cells , vol.14 , pp. 525-538
    • Sekito, T.1    Kawamata, T.2    Ichikawa, R.3    Suzuki, K.4    Ohsumi, Y.5
  • 56
    • 70349919804 scopus 로고    scopus 로고
    • Coordination of membrane events during autophagy by multiple class III PI3-kinase complexes
    • Simonsen A, Tooze SA. 2009. Coordination of membrane events during autophagy by multiple class III PI3-kinase complexes. J Cell Biol 186:773-782.
    • (2009) J Cell Biol , vol.186 , pp. 773-782
    • Simonsen, A.1    Tooze, S.A.2
  • 57
    • 0032532323 scopus 로고    scopus 로고
    • Purification and characterization of autophagosomes from rat hepatocytes
    • Strømhaug PE, Berg TO, Fengsrud M, Seglen PO. 1998. Purification and characterization of autophagosomes from rat hepa-tocytes. Biochem J 335(Pt 2):217-224. (Pubitemid 28491054)
    • (1998) Biochemical Journal , vol.335 , Issue.2 , pp. 217-224
    • Stromhaug, P.E.1    Berg, T.O.2    Fengsrud, M.3    Seglen, P.O.4
  • 58
    • 67549096696 scopus 로고    scopus 로고
    • Bif-1/endophilin B1: A candidate for crescent driving force in autophagy
    • Takahashi Y, Meyerkord CL, Wang HG. 2009. Bif-1/endophilin B1: A candidate for crescent driving force in autophagy. Cell Death Differ 16:947-955.
    • (2009) Cell Death Differ , vol.16 , pp. 947-955
    • Takahashi, Y.1    Meyerkord, C.L.2    Wang, H.G.3
  • 59
    • 79956095420 scopus 로고    scopus 로고
    • Autophagosome formation and molecular mechanism of autophagy
    • Tanida I. 2011. Autophagosome formation and molecular mechanism of autophagy. Antioxid Redox Signal 14:2201-2214.
    • (2011) Antioxid Redox Signal , vol.14 , pp. 2201-2214
    • Tanida, I.1
  • 61
    • 77956414236 scopus 로고    scopus 로고
    • The origin of the autophagosomal membrane
    • Tooze SA, Yoshimori T. 2010. The origin of the autophagosomal membrane. Nat Cell Biol 12:831-835.
    • (2010) Nat Cell Biol , vol.12 , pp. 831-835
    • Tooze, S.A.1    Yoshimori, T.2
  • 62
    • 58149097286 scopus 로고    scopus 로고
    • Making autophagosomes: Localized synthesis of phosphati-dylinositol 3-phosphate holds the clue
    • Walker S, Chandra P, Manifava M, Axe E, Ktistakis NT. 2008. Making autophagosomes: Localized synthesis of phosphati-dylinositol 3-phosphate holds the clue. Autophagy 4:1093-1096.
    • (2008) Autophagy , vol.4 , pp. 1093-1096
    • Walker, S.1    Chandra, P.2    Manifava, M.3    Axe, E.4    Ktistakis, N.T.5
  • 63
    • 84863157590 scopus 로고    scopus 로고
    • Rab32 is important for autophagy and lipid storage in Drosophila
    • Wang C, Liu Z, Huang X. 2012. Rab32 is important for autophagy and lipid storage in Drosophila. PLoS ONE 7:e32086.
    • (2012) PLoS ONE , vol.7
    • Wang, C.1    Liu, Z.2    Huang, X.3
  • 64
    • 84873675067 scopus 로고    scopus 로고
    • The ULK1 complex: Sensing nutrient signals for autophagy activation
    • Wong PM, Puente C, Ganley IG, Jiang X. 2013. The ULK1 complex: Sensing nutrient signals for autophagy activation. Autophagy 9:124-137.
    • (2013) Autophagy , vol.9 , pp. 124-137
    • Wong, P.M.1    Puente, C.2    Ganley, I.G.3    Jiang, X.4
  • 65
    • 84864991509 scopus 로고    scopus 로고
    • Atg9 vesicles are an important membrane source during early steps of autophagosome formation
    • Yamamoto H, Kakuta S, Watanabe TM, Kitamura A, Sekito T, Kondo-Kakuta C, et al. 2012. Atg9 vesicles are an important membrane source during early steps of autophagosome formation. J Cell Biol 198:219-233.
    • (2012) J Cell Biol , vol.198 , pp. 219-233
    • Yamamoto, H.1    Kakuta, S.2    Watanabe, T.M.3    Kitamura, A.4    Sekito, T.5    Kondo-Kakuta, C.6
  • 66
    • 77956404377 scopus 로고    scopus 로고
    • Eaten alive: A history of macroauto-phagy
    • Yang Z, Klionsky DJ. 2010a. Eaten alive: A history of macroauto-phagy. Nat Cell Biol 12:814-822.
    • (2010) Nat Cell Biol , vol.12 , pp. 814-822
    • Yang, Z.1    Klionsky, D.J.2
  • 67
    • 77951214016 scopus 로고    scopus 로고
    • Mammalian autophagy: Core molecular machinery and signaling regulation
    • Yang Z, Klionsky DJ. 2010b. Mammalian autophagy: Core molecular machinery and signaling regulation. Curr Opin Cell Biol 22:124-131.
    • (2010) Curr Opin Cell Biol , vol.22 , pp. 124-131
    • Yang, Z.1    Klionsky, D.J.2
  • 68
    • 33846807374 scopus 로고    scopus 로고
    • Atg27isrequired for autophagy-dependent cycling of Atg9
    • Yen WL, Legakis JE, NairU, Klionsky DJ. 2007. Atg27isrequired for autophagy-dependent cycling of Atg9. Mol Biol Cell 18:581-593.
    • (2007) Mol Biol Cell , vol.18 , pp. 581-593
    • Yen, W.L.1    Legakis, J.E.2    Nairu Klionsky, D.J.3
  • 69
    • 71649112895 scopus 로고    scopus 로고
    • 3D tomography reveals connections between the phagophore and endoplasmic reticulum
    • Ylä-Anttila P, Vihinen H, Jokitalo E, Eskelinen EL. 2009. 3D tomography reveals connections between the phagophore and endoplasmic reticulum. Autophagy 5:1180-1185.
    • (2009) Autophagy , vol.5 , pp. 1180-1185
    • Ylä-Anttila, P.1    Vihinen, H.2    Jokitalo, E.3    Eskelinen, E.L.4
  • 71
    • 84873469666 scopus 로고    scopus 로고
    • Nutrient sensing, metabolism, and cell growth control
    • Yuan HX, Xiong Y, Guan KL. 2013. Nutrient sensing, metabolism, and cell growth control. Mol Cell 49:379-387.
    • (2013) Mol Cell , vol.49 , pp. 379-387
    • Yuan, H.X.1    Xiong, Y.2    Guan, K.L.3
  • 72
    • 78650510609 scopus 로고    scopus 로고
    • MTOR: From growth signal integration to cancer, diabetes and ageing
    • Zoncu R, Efeyan A, Sabatini DM. 2011. mTOR: From growth signal integration to cancer, diabetes and ageing. Nat Rev Mol Cell Biol 12:21-35.
    • (2011) Nat Rev Mol Cell Biol , vol.12 , pp. 21-35
    • Zoncu, R.1    Efeyan, A.2    Sabatini, D.M.3


* 이 정보는 Elsevier사의 SCOPUS DB에서 KISTI가 분석하여 추출한 것입니다.