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    KCI등재 SCOPUS SCIE

    Autophagy: A Critical Regulator of Cellular Metabolism and Homeostasis

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    https://www.riss.kr/link?id=A104831456

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    다국어 초록 (Multilingual Abstract) kakao i 다국어 번역

    Autophagy is a dynamic process by which cytosolic mate-rial, including organelles, proteins, and pathogens, are sequestered into membrane vesicles called autopha-gosomes, and then delivered to the lysosome for degra-dation. By recycling cellular components, this process provides a mechanism for adaptation to starvation. The regulation of autophagy by nutrient signals involves a com- plex network of proteins that include mammalian target of rapamycin, the class III phosphatidylinositol-3 kinase/Be-clin 1 complex, and two ubiquitin-like conjugation systems. Additionally, autophagy, which can be induced by multiple forms of chemical and physical stress, including endo-plasmic reticulum stress, and hypoxia, plays an integral role in the mammalian stress response. Recent studies indicate that, in addition to bulk assimilation of cytosol, autophagy may proceed through selective pathways that target distinct cargoes to autophagosomes. The principle homeostatic functions of autophagy include the selective clearance of aggregated protein to preserve proteostasis, and the selective removal of dysfunctional mitochondria (mitophagy). Additionally, autophagy plays a central role in innate and adaptive immunity, with diverse functions such as regulation of inflammatory responses, antigen presen-tation, and pathogen clearance. Autophagy can preserve cellular function in a wide variety of tissue injury and disease states, however, maladaptive or pro-pathogenic outcomes have also been described. Among the many diseases where autophagy may play a role in-clude proteo-pathies which involve aberrant accumulation of proteins (e.g., neurodegenerative disorders), infectious diseases, and metabolic disorders such as diabetes and metabolic syndrome. Targeting the autophagy pathway and its regu-latory components may eventually lead to the develop-ment of therapeutics.
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    Autophagy is a dynamic process by which cytosolic mate-rial, including organelles, proteins, and pathogens, are sequestered into membrane vesicles called autopha-gosomes, and then delivered to the lysosome for degra-dation. By recycling cellular compo...

    Autophagy is a dynamic process by which cytosolic mate-rial, including organelles, proteins, and pathogens, are sequestered into membrane vesicles called autopha-gosomes, and then delivered to the lysosome for degra-dation. By recycling cellular components, this process provides a mechanism for adaptation to starvation. The regulation of autophagy by nutrient signals involves a com- plex network of proteins that include mammalian target of rapamycin, the class III phosphatidylinositol-3 kinase/Be-clin 1 complex, and two ubiquitin-like conjugation systems. Additionally, autophagy, which can be induced by multiple forms of chemical and physical stress, including endo-plasmic reticulum stress, and hypoxia, plays an integral role in the mammalian stress response. Recent studies indicate that, in addition to bulk assimilation of cytosol, autophagy may proceed through selective pathways that target distinct cargoes to autophagosomes. The principle homeostatic functions of autophagy include the selective clearance of aggregated protein to preserve proteostasis, and the selective removal of dysfunctional mitochondria (mitophagy). Additionally, autophagy plays a central role in innate and adaptive immunity, with diverse functions such as regulation of inflammatory responses, antigen presen-tation, and pathogen clearance. Autophagy can preserve cellular function in a wide variety of tissue injury and disease states, however, maladaptive or pro-pathogenic outcomes have also been described. Among the many diseases where autophagy may play a role in-clude proteo-pathies which involve aberrant accumulation of proteins (e.g., neurodegenerative disorders), infectious diseases, and metabolic disorders such as diabetes and metabolic syndrome. Targeting the autophagy pathway and its regu-latory components may eventually lead to the develop-ment of therapeutics.

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    참고문헌 (Reference)

    1 Winslow, A.R, "α-Synuclein impairs macroautophagy: implications for Parkinson’s disease" 190 : 1023-1037, 2010

    2 Clausen, T.H, "p62/SQSTM1 and ALFY interact to facilitate the formation of p62 bodies/ALIS and their degradation by autophagy" 6 : 330-344, 2010

    3 Jung, C.H, "mTOR regulation of autophagy" 584 : 1287-1295, 2010

    4 Hsu, L.J, "alpha-synuclein promotes mitochondrial deficit and oxidative stress" 157 : 401-410, 2000

    5 Shaid, S, "Ubiquitination and selective autophagy" 20 : 21-30, 2013

    6 Ganley, I.G, "ULK1.ATG13.FIP200 complex mediates mTOR signaling and is essential for autophagy" 284 : 12297-12305, 2009

    7 Jung, C.H, "ULK-Atg13-FIP200 complexes mediate mTOR signaling to the autophagy machinery" 20 : 1992-2003, 2009

    8 Bodas, M, "Therapeutic strategies to correct proteostasis-imbalance in chronic obstructive lung diseases" 12 : 807-814, 2012

    9 Satoo, K, "The structure of Atg4B-LC3 complex reveals the mechanism of LC3 processing and delipidation during autophagy" 28 : 1341-1350, 2009

    10 Mizushima, N, "The role of the Atg1/ULK1 complex in autophagy regulation" 22 : 132-139, 2010

    1 Winslow, A.R, "α-Synuclein impairs macroautophagy: implications for Parkinson’s disease" 190 : 1023-1037, 2010

    2 Clausen, T.H, "p62/SQSTM1 and ALFY interact to facilitate the formation of p62 bodies/ALIS and their degradation by autophagy" 6 : 330-344, 2010

    3 Jung, C.H, "mTOR regulation of autophagy" 584 : 1287-1295, 2010

    4 Hsu, L.J, "alpha-synuclein promotes mitochondrial deficit and oxidative stress" 157 : 401-410, 2000

    5 Shaid, S, "Ubiquitination and selective autophagy" 20 : 21-30, 2013

    6 Ganley, I.G, "ULK1.ATG13.FIP200 complex mediates mTOR signaling and is essential for autophagy" 284 : 12297-12305, 2009

    7 Jung, C.H, "ULK-Atg13-FIP200 complexes mediate mTOR signaling to the autophagy machinery" 20 : 1992-2003, 2009

    8 Bodas, M, "Therapeutic strategies to correct proteostasis-imbalance in chronic obstructive lung diseases" 12 : 807-814, 2012

    9 Satoo, K, "The structure of Atg4B-LC3 complex reveals the mechanism of LC3 processing and delipidation during autophagy" 28 : 1341-1350, 2009

    10 Mizushima, N, "The role of the Atg1/ULK1 complex in autophagy regulation" 22 : 132-139, 2010

    11 Gonzalez, C.D, "The emerging role of autophagy in the pathophysiology of diabetes mellitus" 7 : 2-11, 2011

    12 Yamamoto, A, "The elimination of accumulated and aggregated proteins: a role for aggrephagy in neurodegeneration" 43 : 17-28, 2011

    13 Kawaguchi, Y, "The deacetylase HDAC6 regulates aggresome formation and cell viability in response to misfolded protein stress" 115 : 727-738, 2003

    14 Pickford, F, "The autophagy-related protein beclin 1 shows reduced expression in early Alzheimer disease and regulates amyloid beta accumulation in mice" 118 : 2190-, 2008

    15 Wong, P.M, "The ULK1 complex: sensing nutrient signals for autophagy activation" 9 : 124-137, 2013

    16 Thurston, T.L., "The TBK1 adaptor and autophagy receptor NDP52 restricts the proliferation of ubiquitin-coated bacteria" 10 : 1215-1221, 2009

    17 He, C, "The Beclin 1 interactome" 22 : 140-149, 2010

    18 Mihaylova, M.M, "The AMPK signalling pathway coordinates cell growth, autophagy and metabolism" 13 : 1016-1023, 2011

    19 Inoki, K, "TSC2 mediates cellular energy response to control cell growth and survival" 115 : 577-590, 2003

    20 Hara, T, "Suppression of basal autophagy in neural cells causes neurodegenerative disease in mice" 44 : 885-889, 2006

    21 Li, J, "Subversion of cellular autophagy machinery by hepatitis B virus for viral envelopment" 85 : 6319-6333, 2011

    22 Schreiber, A, "Substrate recognition in selective autophagy and the ubiquitin-proteasome system" 167 (167): 00120-00121, 2013

    23 Schaeffer, V, "Stimulation of autophagy reduces neurodegeneration in a mouse model of human tauopathy" 135 : 2169-2177, 2012

    24 Bachar-Wikstrom, E, "Stimulation of autophagy improves endoplasmic reticulum stress-induced diabetes" 62 : 1227-1237, 2013

    25 Young, A.R, "Starvation and ULK1-dependent cycling of mammalian Atg9 between the TGN and endosomes" 119 : 3888-3900, 2006

    26 Granell, S, "Sequestration of mutated alpha1- antitrypsin into inclusion bodies is a cell-protective mechanism to maintain endoplasmic reticulum function" 19 : 572-586, 2008

    27 Maiuri, M.C, "Selfeating and self-killing: crosstalk between autophagy and apoptosis" 8 : 741-752, 2007

    28 Starr, T, "Selective subversion of autophagy complexes facilitates completion of the Brucella intracellular cycle" 11 : 33-45, 2012

    29 Ichimura, Y, "Selective degradation of p62 by autophagy" 32 : 431-436, 2010

    30 Johansen, T, "Selective autophagy mediated by autophagic adapter proteins" 7 : 279-296, 2011

    31 Jung, H.S, "Role of autophagy in diabetes and mitochondria" 1201 : 79-83, 2010

    32 Ravikumar, B, "Regulation of mammalian autophagy in physiology and pathophysiology" 90 : 1383-1435, 2010

    33 Liu, K, "Regulation of lipid stores and metabolism by lipophagy" 20 : 3-11, 2013

    34 Shibata, M, "Regulation of intracellular accumulation of mutant Huntingtin by Beclin 1" 281 : 14474-14485, 2006

    35 Chan, E.Y., "Regulation and function of uncoordinated-51 like kinase proteins" 17 : 775-785, 2012

    36 Zhou, Z, "Rapamycin induces autophagy and exacerbates metabolism associated complications in a mouse model of type 1 diabetes" 48 : 31-38, 2010

    37 Wild, P., "Phosphorylation of the autophagy receptor optineurin restricts Salmonella growth" 333 : 228-233, 2011

    38 Narendra, D, "Parkin is recruited selectively to impaired mitochondria and promotes their autophagy" 183 : 795-803, 2008

    39 Geisler, S, "PINK1/Parkin-mediated mitophagy is dependent on VDAC1 and p62/SQSTM1" 12 : 119-131, 2010

    40 Vives-Bauza, C, "PINK1-dependent recruitment of Parkin to mitochondria in mitophagy" 107 : 378-383, 2010

    41 Hosokawa, N, "Nutrient-dependent mTORC1 association with the ULK1-Atg13-FIP200 complex required for autophagy" 20 : 1981-1991, 2009

    42 Liu, L, "Mitochondrial outermembrane protein FUNDC1 mediates hypoxia-induced mitophagy in mammalian cells" 14 : 177-185, 2012

    43 Trancikova, A, "Mitochondrial dysfunction in genetic animal models of Parkinson’s disease" 216 : 896-919, 2012

    44 Zhang, H, "Mitochondrial autophagy is an HIF-1-dependent adaptive metabolic response to hypoxia" 283 : 10892-10903, 2008

    45 Mizushima, N, "Methods in mammalian autophagy research" 140 : 313-326, 2010

    46 Youle, R.J, "Mechanisms of mitophagy" 12 : 9-14, 2011

    47 Yang, Z, "Mammalian autophagy: core molecular machinery and signaling regulation" 22 : 124-131, 2010

    48 Yu, W.H, "Macroautophagy-a novel Beta-amyloid peptide- generating pathway activated in Alzheimer’s disease" 171 : 87-98, 2005

    49 Elliott, P.R, "Lung polymers in Z alpha1-antitrypsin deficiency-related emphysema" 18 : 670-674, 1998

    50 Komatsu, M, "Loss of autophagy in the central nervous system causes neurodegeneration in mice" 441 : 880-884, 2006

    51 Dagda, R.K, "Loss of PINK1 function promotes mitophagy through effects on oxidative stress and mitochondrial fission" 284 : 13843-13855, 2009

    52 Kabeya, Y, "LC3, a mammalian homologue of yeast Apg8p, is localized in autophagosome membranes after processing" 19 : 5720-5728, 2000

    53 Kabeya, Y, "LC3, GABARAP and GATE16 localize to autophagosomal membrane depending on form-II formation" 117 : 2805-2812, 2004

    54 Yano, T, "Intracellular recognition of pathogens and autophagy as an innate immune host defence" 150 : 143-149, 2011

    55 Kamimoto, T, "Intracellular inclusions containing mutant alpha1-antitrypsin Z are propagated in the absence of autophagic activity" 281 : 4467-4476, 2006

    56 Vander Haar, E, "Insulin signalling to mTOR mediated by the Akt/ PKB substrate PRAS40" 9 : 316-323, 2007

    57 Boya, P, "Inhibition of macroautophagy triggers apoptosis" 25 : 1025-1040, 2005

    58 Ravikumar, B., "Inhibition of mTOR induces autophagy and reduces toxicity of polyglutamine expansions in fly and mouse models of Huntington disease" 36 : 585-595, 2004

    59 Liang, X.H, "Induction of autophagy and inhibition of tumorigenesis by beclin 1" 402 : 672-676, 1999

    60 Ma, J.F., "Immunohistochemical evidence for macroautophagy in neurones and endothelial cells in Alzheimer’s disease" 36 : 312-319, 2010

    61 Orvedahl, A, "Imagebased genome-wide siRNA screen identifies selective autophagy factors" 480 : 113-117, 2011

    62 Imarisio, S, "Huntington’s disease: from pathology and genetics to potential therapies" 412 : 191-209, 2008

    63 Campbell, G.R, "Hormonally active vitamin D3 (1alpha,25-dihydroxycholecalciferol) triggers autophagy in human macrophages that inhibits HIV-1 infection" 286 : 18890-18902, 2011

    64 Lee, J.Y, "HDAC6 controls autophagosome maturation essential for ubiquitinselective quality-control autophagy" 29 : 969-980, 2010

    65 Morris, H.R., "Genetics of Parkinson’s disease" 37 : 86-96, 2005

    66 Mornex, J.F, "Expression of the alpha-1-antitrypsin gene in mononuclear phagocytes of normal and alpha-1- antitrypsin-deficient individuals" 77 : 1952-1961, 1986

    67 He, C, "Exercise-induced BCL2- regulated autophagy is required for muscle glucose homeostasis" 481 : 511-515, 2012

    68 Chen, Z.H, "Egr-1 regulates autophagy in cigarette smoke-induced chronic obstructive pulmonary disease" 3 : e3316-, 2008

    69 Yang, Z, "Eaten alive: a history of macroautophagy" 12 : 814-822, 2010

    70 Yang, L, "Defective hepatic autophagy in obesity promotes ER stress and causes insulin resistance" 11 : 467-478, 2010

    71 Luciani, A, "Defective CFTR induces aggresome formation and lung inflammation in cystic fibrosis through ROS-mediated autophagy inhibition" 12 : 863-875, 2010

    72 Min, T, "Critical role of proteostasis- imbalance in pathogenesis of COPD and severe emphysema" 89 : 577-593, 2011

    73 Santambrogio, L, "Chasing the elusive mammalian microautophagy" 7 : 652-654, 2011

    74 Kaushik, S, "Chaperone-mediated autophagy at a glance" 124 : 495-499, 2011

    75 Martinez-Vicente, M, "Cargo recognition failure is responsible for inefficient autophagy in Huntington’s disease" 13 : 567-576, 2010

    76 Spencer, B, "Beclin1 gene transfer activates autophagy and ameliorates the neurodegenerative pathology in α-synuclein models of Parkinson’s and Lewy body diseases" 29 : 13578-13588, 2009

    77 Itakura, E, "Beclin 1 forms two distinct phosphatidylinositol 3-kinase complexes with mammalian Atg14 and UVRAG" 19 : 5360-5372, 2008

    78 Pattingre, S, "Bcl-2 antiapoptotic proteins inhibit Beclin 1-dependent autophagy" 122 : 927-939, 2005

    79 Jellinger, K.A, "Basic mechanisms of neurodegeneration: a critical update" 14 : 457-487, 2010

    80 Mizushima, N, "Autophagy: renovation of cells and tissues" 147 : 728-741, 2011

    81 Checroun, C, "Autophagy-mediated reentry of Francisella tularensis into the endocytic compartment after cytoplasmic replication" 103 : 14578-14583, 2006

    82 Deretic, V, "Autophagy, immunity, and microbial adaptations" 5 : 527-549, 2009

    83 Tian, Y., "Autophagy required for hepatitis B virus replication in transgenic mice" 85 : 13453-13456, 2011

    84 Singh, R, "Autophagy regulates lipid metabolism" 458 : 1131-11135, 2009

    85 Singh, R, "Autophagy regulates adipose mass and differentiation in mice" 119 : 3329-3339, 2009

    86 Nakahira, K, "Autophagy proteins regulate innate immune responses by inhibiting the release of mitochondrial DNA mediated by the NALP3 inflammasome" 12 : 222-230, 2011

    87 Kyei, G.B, "Autophagy pathway intersects with HIV-1 biosynthesis and regulates viral yields in macrophages" 186 : 255-268, 2009

    88 Rubinsztein, D.C, "Autophagy modulation as a potential therapeutic target for diverse diseases" 11 : 709-730, 2012

    89 Gutierrez, M.G, "Autophagy induction favours the generation and maturation of the Coxiellareplicative vacuoles" 7 : 981-993, 2005

    90 Levine, B, "Autophagy in the pathogenesis of disease" 132 : 27-42, 2008

    91 Levine, B, "Autophagy in immunity and inflammation" 469 : 323-335, 2011

    92 Kaushik, S, "Autophagy in hypothalamic AgRP neurons regulates food intake and energy balance" 14 : 173-183, 2011

    93 Choi, A.M, "Autophagy in human health and disease" 368 : 651-662, 2013

    94 Wong, E, "Autophagy gone awry in neurodegenerative diseases" 13 : 805-811, 2010

    95 Mizushima, N, "Autophagy fights disease through cellular self-digestion" 451 : 1069-2075, 2008

    96 Kroemer, G, "Autophagy and the integrated stress response" 40 : 280-293, 2010

    97 Metcalf, D.J, "Autophagy and misfolded proteins in neurodegeneration" 238 : 22-28, 2012

    98 Yamamoto, H, "Atg9 vesicles are an important membrane source during early steps of autophagosome formation" 198 : 219-233, 2012

    99 Hidvegi, T, "An autophagy-enhancing drug promotes degradation of mutant alpha1-antitrypsin Z and reduces hepatic fibrosis" 329 : 229-232, 2010

    100 Marciniak, S.J, "Alpha1-antitrypsin deficiency and autophagy" 363 : 1863-1864, 2010

    101 Wang, R.C, "Akt-mediated regulation of autophagy and tumorigenesis through Beclin 1 phosphorylation" 338 : 956-959, 2012

    102 Lamark, T, "Aggrephagy: selective disposal of protein aggregates by macroautophagy" 2012 : 736-905, 2012

    103 Ravikumar, B, "Aggregateprone proteins with polyglutamine and polyalanine expansions are degraded by autophagy" 11 : 107-117, 2002

    104 Ke, P.Y, "Activation of the unfolded protein response and autophagy after hepatitis C virus infection suppresses innate antiviral immunity in vitro" 121 : 37-56, 2011

    105 Kim, J, "AMPK and mTOR regulate autophagy through direct phosphorylation of Ulk1" 13 : 132-141, 2011

    106 Kirkin, V, "A role for NBR1 in autophagosomal degradation of ubiquitinated substrates" 33 : 505-516, 2009

    107 Ranes, J, "A review of alpha-1 antitrypsin deficiency" 26 : 154-166, 2005

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