메뉴 건너뛰기




Volumn 114, Issue 3, 2017, Pages E426-E435

ATG9 regulates autophagosome progression from the endoplasmic reticulum in Arabidopsis

Author keywords

ATG18; ATG9; Autophagosome; Autophagy; Endoplasmic reticulum

Indexed keywords

AUTOPHAGY RELATED PROTEIN; AUTOPHAGY RELATED PROTEIN 9; PHOSPHATIDYLINOSITOL 3 PHOSPHATE; UNCLASSIFIED DRUG; APG9 PROTEIN, ARABIDOPSIS; ARABIDOPSIS PROTEIN; CARRIER PROTEIN; MEMBRANE PROTEIN; POLYPHOSPHOINOSITIDE;

EID: 85009774811     PISSN: 00278424     EISSN: 10916490     Source Type: Journal    
DOI: 10.1073/pnas.1616299114     Document Type: Article
Times cited : (190)

References (58)
  • 1
    • 84888380983 scopus 로고    scopus 로고
    • The autophagosome: Origins unknown, biogenesis complex
    • Lamb CA, Yoshimori T, Tooze SA (2013) The autophagosome: Origins unknown, biogenesis complex. Nat Rev Mol Cell Biol 14(12): 759-774.
    • (2013) Nat Rev Mol Cell Biol , vol.14 , Issue.12 , pp. 759-774
    • Lamb, C.A.1    Yoshimori, T.2    Tooze, S.A.3
  • 3
    • 84865859612 scopus 로고    scopus 로고
    • Autophagy: Pathways for self-eating in plant cells
    • Liu Y, Bassham DC (2012) Autophagy: Pathways for self-eating in plant cells. Annu Rev Plant Biol 63: 215-237.
    • (2012) Annu Rev Plant Biol , vol.63 , pp. 215-237
    • Liu, Y.1    Bassham, D.C.2
  • 4
    • 84864991509 scopus 로고    scopus 로고
    • Atg9 vesicles are an important membrane source during early steps of autophagosome formation
    • Yamamoto H, et al. (2012) Atg9 vesicles are an important membrane source during early steps of autophagosome formation. J Cell Biol 198(2): 219-233.
    • (2012) J Cell Biol , vol.198 , Issue.2 , pp. 219-233
    • Yamamoto, H.1
  • 5
    • 84861158462 scopus 로고    scopus 로고
    • Dynamic and transient interactions of atg9 with autophago-somes, but not membrane integration, are required for autophagy
    • Orsi A, et al. (2012) Dynamic and transient interactions of Atg9 with autophago-somes, but not membrane integration, are required for autophagy. Mol Biol Cell 23(10): 1860-1873.
    • (2012) Mol Biol Cell , vol.23 , Issue.10 , pp. 1860-1873
    • Orsi, A.1
  • 6
    • 0035983934 scopus 로고    scopus 로고
    • Leaf senescence and starvation-induced chlorosis are accelerated by the disruption of an arabidopsis autophagy gene
    • Hanaoka H, et al. (2002) Leaf senescence and starvation-induced chlorosis are accelerated by the disruption of an Arabidopsis autophagy gene. Plant Physiol 129(3): 1181-1193.
    • (2002) Plant Physiol , vol.129 , Issue.3 , pp. 1181-1193
    • Hanaoka, H.1
  • 7
    • 84900843110 scopus 로고    scopus 로고
    • Imaging endosomes and autophagosomes in whole mammalian cells using correlative cryo-fluorescence and cryo-soft X-ray microscopy (cryo-CLXM)
    • Duke EM, et al. (2014) Imaging endosomes and autophagosomes in whole mammalian cells using correlative cryo-fluorescence and cryo-soft X-ray microscopy (cryo-CLXM). Ultramicroscopy 143: 77-87.
    • (2014) Ultramicroscopy , vol.143 , pp. 77-87
    • Duke, E.M.1
  • 8
    • 84982187966 scopus 로고    scopus 로고
    • Autophagy initiation by ULK complex assembly on ER tubulovesicular regions marked by ATG9 vesicles
    • Karanasios E, et al. (2016) Autophagy initiation by ULK complex assembly on ER tubulovesicular regions marked by ATG9 vesicles. Nat Commun 7: 12420.
    • (2016) Nat Commun , vol.7
    • Karanasios, E.1
  • 9
    • 84938782094 scopus 로고    scopus 로고
    • A role for macro-ER-phagy in ER quality control
    • Lipatova Z, Segev N (2015) A role for macro-ER-phagy in ER quality control. PLoS Genet 11(7): e1005390.
    • (2015) PLoS Genet , vol.11 , Issue.7
    • Lipatova, Z.1    Segev, N.2
  • 10
    • 84891508179 scopus 로고    scopus 로고
    • A BAR-domain protein SH3P2, which binds to phosphatidylinositol 3-phosphate and ATG8, regulates autophagosome formation in arabidopsis
    • Zhuang X, et al. (2013) A BAR-domain protein SH3P2, which binds to phosphatidylinositol 3-phosphate and ATG8, regulates autophagosome formation in Arabidopsis. Plant Cell 25(11): 4596-4615.
    • (2013) Plant Cell , vol.25 , Issue.11 , pp. 4596-4615
    • Zhuang, X.1
  • 11
    • 77950956398 scopus 로고    scopus 로고
    • ATG8 lipidation and ATG8-mediated autophagy in arabidopsis require ATG12 expressed from the differentially controlled ATG12A AND ATG12B loci
    • Chung T, Phillips AR, Vierstra RD (2010) ATG8 lipidation and ATG8-mediated autophagy in Arabidopsis require ATG12 expressed from the differentially controlled ATG12A AND ATG12B loci. Plant J 62(3): 483-493.
    • (2010) Plant J , vol.62 , Issue.3 , pp. 483-493
    • Chung, T.1    Phillips, A.R.2    Vierstra, R.D.3
  • 12
    • 19444370899 scopus 로고    scopus 로고
    • Visualization of autophagy in arabidopsis using the fluorescent dye monodansylcadaverine and a GFP-AtATG8e fusion protein
    • Contento AL, Xiong Y, Bassham DC (2005) Visualization of autophagy in Arabidopsis using the fluorescent dye monodansylcadaverine and a GFP-AtATG8e fusion protein. Plant J 42(4): 598-608.
    • (2005) Plant J , vol.42 , Issue.4 , pp. 598-608
    • Contento, A.L.1    Xiong, Y.2    Bassham, D.C.3
  • 13
    • 82755166963 scopus 로고    scopus 로고
    • The ATG1/ATG13 protein kinase complex is both a regulator and a target of autophagic recycling in arabidopsis
    • Suttangkakul A, Li F, Chung T, Vierstra RD (2011) The ATG1/ATG13 protein kinase complex is both a regulator and a target of autophagic recycling in Arabidopsis. Plant Cell 23(10): 3761-3779.
    • (2011) Plant Cell , vol.23 , Issue.10 , pp. 3761-3779
    • Suttangkakul, A.1    Li, F.2    Chung, T.3    Vierstra, R.D.4
  • 14
    • 84912061970 scopus 로고    scopus 로고
    • Arabidopsis ATG8-INTERACTING PROTEIN1 is involved in autophagy-dependent vesicular trafficking of plastid proteins to the vacuole
    • Michaeli S, Honig A, Levanony H, Peled-Zehavi H, Galili G (2014) Arabidopsis ATG8-INTERACTING PROTEIN1 is involved in autophagy-dependent vesicular trafficking of plastid proteins to the vacuole. Plant Cell 26(10): 4084-4101.
    • (2014) Plant Cell , vol.26 , Issue.10 , pp. 4084-4101
    • Michaeli, S.1    Honig, A.2    Levanony, H.3    Peled-Zehavi, H.4    Galili, G.5
  • 15
    • 65549157489 scopus 로고    scopus 로고
    • Autophagic components contribute to hypersensitive cell death in arabidopsis
    • Hofius D, et al. (2009) Autophagic components contribute to hypersensitive cell death in Arabidopsis. Cell 137(4): 773-783.
    • (2009) Cell , vol.137 , Issue.4 , pp. 773-783
    • Hofius, D.1
  • 16
    • 84901410100 scopus 로고    scopus 로고
    • A revised assay for monitoring autophagic flux in arabidopsis thaliana reveals involvement of AUTOPHAGY-RELATED9 in autophagy
    • Shin KD, Lee HN, Chung T (2014) A revised assay for monitoring autophagic flux in Arabidopsis thaliana reveals involvement of AUTOPHAGY-RELATED9 in autophagy. Mol Cells 37(5): 399-405.
    • (2014) Mol Cells , vol.37 , Issue.5 , pp. 399-405
    • Shin, K.D.1    Lee, H.N.2    Chung, T.3
  • 17
    • 84964267365 scopus 로고    scopus 로고
    • Evidence for autophagy-dependent pathways of rRNA turnover in arabidopsis
    • Floyd BE, Morriss SC, MacIntosh GC, Bassham DC (2015) Evidence for autophagy-dependent pathways of rRNA turnover in Arabidopsis. Autophagy 11(12): 2199-2212.
    • (2015) Autophagy , vol.11 , Issue.12 , pp. 2199-2212
    • Floyd, B.E.1    Morriss, S.C.2    MacIntosh, G.C.3    Bassham, D.C.4
  • 18
    • 70849127320 scopus 로고    scopus 로고
    • Autophagy negatively regulates cell death by controlling NPR1-dependent salicylic acid signaling during senescence and the innate immune response in arabidopsis
    • Yoshimoto K, et al. (2009) Autophagy negatively regulates cell death by controlling NPR1-dependent salicylic acid signaling during senescence and the innate immune response in Arabidopsis. Plant Cell 21(9): 2914-2927.
    • (2009) Plant Cell , vol.21 , Issue.9 , pp. 2914-2927
    • Yoshimoto, K.1
  • 19
    • 84871899675 scopus 로고    scopus 로고
    • Degradation of the endoplasmic reticulum by autophagy during endoplasmic reticulum stress in arabidopsis
    • Liu Y, et al. (2012) Degradation of the endoplasmic reticulum by autophagy during endoplasmic reticulum stress in Arabidopsis. Plant Cell 24(11): 4635-4651.
    • (2012) Plant Cell , vol.24 , Issue.11 , pp. 4635-4651
    • Liu, Y.1
  • 20
    • 84922667674 scopus 로고    scopus 로고
    • Dual roles of an arabidopsis ESCRT component FREE1 in regulating vacuolar protein transport and autophagic degradation
    • Gao C, et al. (2015) Dual roles of an Arabidopsis ESCRT component FREE1 in regulating vacuolar protein transport and autophagic degradation. Proc Natl Acad Sci USA 112(6): 1886-1891.
    • (2015) Proc Natl Acad Sci USA , vol.112 , Issue.6 , pp. 1886-1891
    • Gao, C.1
  • 21
    • 84897081288 scopus 로고    scopus 로고
    • AUTOPHAGY-RELATED11 plays a critical role in general autophagy- and senescence-induced mitophagy in arabidopsis
    • Li F, Chung T, Vierstra RD (2014) AUTOPHAGY-RELATED11 plays a critical role in general autophagy- and senescence-induced mitophagy in Arabidopsis. Plant Cell 26(2): 788-807.
    • (2014) Plant Cell , vol.26 , Issue.2 , pp. 788-807
    • Li, F.1    Chung, T.2    Vierstra, R.D.3
  • 22
    • 84946195748 scopus 로고    scopus 로고
    • Exocyst-positive organelles and autophagosomes are distinct organelles in plants
    • Lin Y, et al. (2015) Exocyst-positive organelles and autophagosomes are distinct organelles in plants. Plant Physiol 169(3): 1917-1932.
    • (2015) Plant Physiol , vol.169 , Issue.3 , pp. 1917-1932
    • Lin, Y.1
  • 23
    • 1642372806 scopus 로고    scopus 로고
    • FM-dyes as experimental probes for dissecting vesicle trafficking in living plant cells
    • Bolte S, et al. (2004) FM-dyes as experimental probes for dissecting vesicle trafficking in living plant cells. J Microsc 214(Pt 2): 159-173.
    • (2004) J Microsc , vol.214 , pp. 159-173
    • Bolte, S.1
  • 24
    • 84913553300 scopus 로고    scopus 로고
    • A unique plant ESCRT component, FREE1, regulates multivesicular body protein sorting and plant growth
    • Gao C, et al. (2014) A unique plant ESCRT component, FREE1, regulates multivesicular body protein sorting and plant growth. Curr Biol 24(21): 2556-2563.
    • (2014) Curr Biol , vol.24 , Issue.21 , pp. 2556-2563
    • Gao, C.1
  • 25
    • 33644594726 scopus 로고    scopus 로고
    • Autophagic nutrient recycling in arabidopsis directed by the ATG8 and ATG12 conjugation pathways
    • Thompson AR, Doelling JH, Suttangkakul A, Vierstra RD (2005) Autophagic nutrient recycling in Arabidopsis directed by the ATG8 and ATG12 conjugation pathways. Plant Physiol 138(4): 2097-2110.
    • (2005) Plant Physiol , vol.138 , Issue.4 , pp. 2097-2110
    • Thompson, A.R.1    Doelling, J.H.2    Suttangkakul, A.3    Vierstra, R.D.4
  • 26
    • 84859608281 scopus 로고    scopus 로고
    • Autophagy machinery controls nitrogen remobilization at the whole-plant level under both limiting and ample nitrate conditions in arabidopsis
    • Guiboileau A, et al. (2012) Autophagy machinery controls nitrogen remobilization at the whole-plant level under both limiting and ample nitrate conditions in Arabidopsis. New Phytol 194(3): 732-740.
    • (2012) New Phytol , vol.194 , Issue.3 , pp. 732-740
    • Guiboileau, A.1
  • 27
    • 84903131140 scopus 로고    scopus 로고
    • ATG5 defines a phagophore domain connected to the endoplasmic reticulum during autophagosome formation in plants
    • Le Bars R, Marion J, Le Borgne R, Satiat-Jeunemaitre B, Bianchi MW (2014) ATG5 defines a phagophore domain connected to the endoplasmic reticulum during autophagosome formation in plants. Nat Commun 5: 4121.
    • (2014) Nat Commun , vol.5 , pp. 4121
    • Le Bars, R.1    Marion, J.2    Le Borgne, R.3    Satiat-Jeunemaitre, B.4    Bianchi, M.W.5
  • 28
    • 84926197767 scopus 로고    scopus 로고
    • Establishment of monitoring methods for autophagy in rice reveals autophagic recycling of chloroplasts and root plastids during energy limitation
    • Izumi M, et al. (2015) Establishment of monitoring methods for autophagy in rice reveals autophagic recycling of chloroplasts and root plastids during energy limitation. Plant Physiol 167(4): 1307-1320.
    • (2015) Plant Physiol , vol.167 , Issue.4 , pp. 1307-1320
    • Izumi, M.1
  • 29
    • 0032743638 scopus 로고    scopus 로고
    • Saturation of the endoplasmic reticulum retention machinery reveals anterograde bulk flow
    • Crofts AJ, et al. (1999) Saturation of the endoplasmic reticulum retention machinery reveals anterograde bulk flow. Plant Cell 11(11): 2233-2248.
    • (1999) Plant Cell , vol.11 , Issue.11 , pp. 2233-2248
    • Crofts, A.J.1
  • 30
    • 71649087199 scopus 로고    scopus 로고
    • A subdomain of the endoplasmic reticulum forms a cradle for autophagosome formation
    • Hayashi-Nishino M, et al. (2009) A subdomain of the endoplasmic reticulum forms a cradle for autophagosome formation. Nat Cell Biol 11(12): 1433-1437.
    • (2009) Nat Cell Biol , vol.11 , Issue.12 , pp. 1433-1437
    • Hayashi-Nishino, M.1
  • 31
    • 84862262971 scopus 로고    scopus 로고
    • Vacuolar degradation of two integral plasma membrane proteins, AtLRR84A and OsSCAMP1, is cargo ubiquitination-independent and prevacuolar compartment-mediated in plant cells
    • Cai Y, et al. (2012) Vacuolar degradation of two integral plasma membrane proteins, AtLRR84A and OsSCAMP1, is cargo ubiquitination-independent and prevacuolar compartment-mediated in plant cells. Traffic 13(7): 1023-1040.
    • (2012) Traffic , vol.13 , Issue.7 , pp. 1023-1040
    • Cai, Y.1
  • 32
    • 33750366092 scopus 로고    scopus 로고
    • Starvation and ULK1-dependent cycling of mammalian atg9 between the TGN and endosomes
    • Young AR, et al. (2006) Starvation and ULK1-dependent cycling of mammalian Atg9 between the TGN and endosomes. J Cell Sci 119(Pt 18): 3888-3900.
    • (2006) J Cell Sci , vol.119 , pp. 3888-3900
    • Young, A.R.1
  • 33
    • 33845692364 scopus 로고    scopus 로고
    • Recruitment of atg9 to the preautophagosomal structure by atg11 is essential for selective autophagy in budding yeast
    • He C, et al. (2006) Recruitment of Atg9 to the preautophagosomal structure by Atg11 is essential for selective autophagy in budding yeast. J Cell Biol 175(6): 925-935.
    • (2006) J Cell Biol , vol.175 , Issue.6 , pp. 925-935
    • He, C.1
  • 34
    • 53749090788 scopus 로고    scopus 로고
    • The endosomal system of plants: Charting new and familiar territories
    • Robinson DG, Jiang L, Schumacher K (2008) The endosomal system of plants: Charting new and familiar territories. Plant Physiol 147(4): 1482-1492.
    • (2008) Plant Physiol , vol.147 , Issue.4 , pp. 1482-1492
    • Robinson, D.G.1    Jiang, L.2    Schumacher, K.3
  • 35
    • 84893439181 scopus 로고    scopus 로고
    • Early steps in autophagy depend on direct phosphorylation of atg9 by the atg1 kinase
    • Papinski D, et al. (2014) Early steps in autophagy depend on direct phosphorylation of Atg9 by the Atg1 kinase. Mol Cell 53(3): 471-483.
    • (2014) Mol Cell , vol.53 , Issue.3 , pp. 471-483
    • Papinski, D.1
  • 36
    • 19444366819 scopus 로고    scopus 로고
    • AtATG18a is required for the formation of autophagosomes during nutrient stress and senescence in arabidopsis thaliana
    • Xiong Y, Contento AL, Bassham DC (2005) AtATG18a is required for the formation of autophagosomes during nutrient stress and senescence in Arabidopsis thaliana. Plant J 42(4): 535-546.
    • (2005) Plant J , vol.42 , Issue.4 , pp. 535-546
    • Xiong, Y.1    Contento, A.L.2    Bassham, D.C.3
  • 37
    • 80052557034 scopus 로고    scopus 로고
    • ATG2, an autophagy-related protein, negatively affects powdery mildew resistance and mildew-induced cell death in arabidopsis
    • Wang Y, Nishimura MT, Zhao T, Tang D (2011) ATG2, an autophagy-related protein, negatively affects powdery mildew resistance and mildew-induced cell death in Arabidopsis. Plant J 68(1): 74-87.
    • (2011) Plant J , vol.68 , Issue.1 , pp. 74-87
    • Wang, Y.1    Nishimura, M.T.2    Zhao, T.3    Tang, D.4
  • 38
    • 84893060553 scopus 로고    scopus 로고
    • Highly oxidized peroxisomes are selectively degraded via autophagy in arabidopsis
    • Shibata M, et al. (2013) Highly oxidized peroxisomes are selectively degraded via autophagy in Arabidopsis. Plant Cell 25(12): 4967-4983.
    • (2013) Plant Cell , vol.25 , Issue.12 , pp. 4967-4983
    • Shibata, M.1
  • 39
    • 85007284295 scopus 로고    scopus 로고
    • Origin of the autophagosomal membrane in plants
    • Zhuang X, Chung KP, Jiang L (2016) Origin of the autophagosomal membrane in plants. Front Plant Sci 7: 1655.
    • (2016) Front Plant Sci , vol.7 , pp. 1655
    • Zhuang, X.1    Chung, K.P.2    Jiang, L.3
  • 40
    • 84943529355 scopus 로고    scopus 로고
    • Endocytic and autophagic pathways crosstalk in plants
    • Zhuang X, Cui Y, Gao C, Jiang L (2015) Endocytic and autophagic pathways crosstalk in plants. Curr Opin Plant Biol 28: 39-47.
    • (2015) Curr Opin Plant Biol , vol.28 , pp. 39-47
    • Zhuang, X.1    Cui, Y.2    Gao, C.3    Jiang, L.4
  • 41
    • 84898467682 scopus 로고    scopus 로고
    • Autophagosome biogenesis in plants: Roles of SH3P2
    • Zhuang X, Jiang L (2014) Autophagosome biogenesis in plants: roles of SH3P2. Autophagy 10(4): 704-705.
    • (2014) Autophagy , vol.10 , Issue.4 , pp. 704-705
    • Zhuang, X.1    Jiang, L.2
  • 43
    • 84892563554 scopus 로고    scopus 로고
    • Differential processing of arabidopsis ubiquitin-like atg8 autophagy proteins by atg4 cysteine proteases
    • Woo J, Park E, Dinesh-Kumar SP (2014) Differential processing of Arabidopsis ubiquitin-like Atg8 autophagy proteins by Atg4 cysteine proteases. Proc Natl Acad Sci USA 111(2): 863-868.
    • (2014) Proc Natl Acad Sci USA , vol.111 , Issue.2 , pp. 863-868
    • Woo, J.1    Park, E.2    Dinesh-Kumar, S.P.3
  • 44
    • 84871811752 scopus 로고    scopus 로고
    • Atg9 vesicles recruit vesicle-tethering proteins trs85 and ypt1 to the autophagosome formation site
    • Kakuta S, et al. (2012) Atg9 vesicles recruit vesicle-tethering proteins Trs85 and Ypt1 to the autophagosome formation site. J Biol Chem 287(53): 44261-44269.
    • (2012) J Biol Chem , vol.287 , Issue.53 , pp. 44261-44269
    • Kakuta, S.1
  • 45
    • 84887581571 scopus 로고    scopus 로고
    • TRAPPIII is responsible for vesicular transport from early endosomes to golgi, facilitating atg9 cycling in autophagy
    • Shirahama-Noda K, Kira S, Yoshimori T, Noda T (2013) TRAPPIII is responsible for vesicular transport from early endosomes to Golgi, facilitating Atg9 cycling in autophagy. J Cell Sci 126(Pt 21): 4963-4973.
    • (2013) J Cell Sci , vol.126 , pp. 4963-4973
    • Shirahama-Noda, K.1    Kira, S.2    Yoshimori, T.3    Noda, T.4
  • 46
    • 84885175531 scopus 로고    scopus 로고
    • PtdIns(3)P-bound UVRAG coordinates golgi-ER retrograde and atg9 transport by differential interactions with the ER tether and the beclin 1 complex
    • He S, et al. (2013) PtdIns(3)P-bound UVRAG coordinates Golgi-ER retrograde and Atg9 transport by differential interactions with the ER tether and the beclin 1 complex. Nat Cell Biol 15(10): 1206-1219.
    • (2013) Nat Cell Biol , vol.15 , Issue.10 , pp. 1206-1219
    • He, S.1
  • 47
    • 77955131007 scopus 로고    scopus 로고
    • Plasma membrane contributes to the formation of pre-autophagosomal structures
    • Ravikumar B, Moreau K, Jahreiss L, Puri C, Rubinsztein DC (2010) Plasma membrane contributes to the formation of pre-autophagosomal structures. Nat Cell Biol 12(8): 747-757.
    • (2010) Nat Cell Biol , vol.12 , Issue.8 , pp. 747-757
    • Ravikumar, B.1    Moreau, K.2    Jahreiss, L.3    Puri, C.4    Rubinsztein, D.C.5
  • 48
    • 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(6): 1285-1299.
    • (2013) Cell , vol.154 , Issue.6 , pp. 1285-1299
    • Puri, C.1    Renna, M.2    Bento, C.F.3    Moreau, K.4    Rubinsztein, D.C.5
  • 49
    • 84875365804 scopus 로고    scopus 로고
    • Autophagosomes form at ER-mitochondria contact sites
    • Hamasaki M, et al. (2013) Autophagosomes form at ER-mitochondria contact sites. Nature 495(7441): 389-393.
    • (2013) Nature , vol.495 , Issue.7441 , pp. 389-393
    • Hamasaki, M.1
  • 50
    • 84907181761 scopus 로고    scopus 로고
    • Autophagy deficiency leads to accumulation of ubiquitinated proteins, ER stress, and cell death in arabidopsis
    • Munch D, et al. (2014) Autophagy deficiency leads to accumulation of ubiquitinated proteins, ER stress, and cell death in Arabidopsis. Autophagy 10(9): 1579-1587.
    • (2014) Autophagy , vol.10 , Issue.9 , pp. 1579-1587
    • Munch, D.1
  • 51
    • 77957006264 scopus 로고    scopus 로고
    • Electron microscopy and high-pressure freezing of arabidopsis
    • Kang BH (2010) Electron microscopy and high-pressure freezing of Arabidopsis. Methods Cell Biol 96: 259-283.
    • (2010) Methods Cell Biol , vol.96 , pp. 259-283
    • Kang, B.H.1
  • 52
    • 84934436535 scopus 로고    scopus 로고
    • Reconstructing plant cells in 3D by serial section electron tomography
    • Toyooka K, Kang BH (2014) Reconstructing plant cells in 3D by serial section electron tomography. Methods Mol Biol 1080: 159-170.
    • (2014) Methods Mol Biol , vol.1080 , pp. 159-170
    • Toyooka, K.1    Kang, B.H.2
  • 53
    • 0032447801 scopus 로고    scopus 로고
    • Floral dip: A simplified method for agrobacterium-mediated transformation of arabidopsis thaliana
    • Clough SJ, Bent AF (1998) Floral dip: A simplified method for Agrobacterium-mediated transformation of Arabidopsis thaliana. Plant J 16(6): 735-743.
    • (1998) Plant J , vol.16 , Issue.6 , pp. 735-743
    • Clough, S.J.1    Bent, A.F.2
  • 54
    • 0036006196 scopus 로고    scopus 로고
    • Redistribution of membrane proteins between the golgi apparatus and endoplasmic reticulum in plants is reversible and not dependent on cytoskeletal networks
    • Saint-Jore CM, et al. (2002) Redistribution of membrane proteins between the Golgi apparatus and endoplasmic reticulum in plants is reversible and not dependent on cytoskeletal networks. Plant J 29(5): 661-678.
    • (2002) Plant J , vol.29 , Issue.5 , pp. 661-678
    • Saint-Jore, C.M.1
  • 55
    • 34548487513 scopus 로고    scopus 로고
    • A multicolored set of in vivo organelle markers for co-localization studies in arabidopsis and other plants
    • Nelson BK, Cai X, Nebenführ A (2007) A multicolored set of in vivo organelle markers for co-localization studies in Arabidopsis and other plants. Plant J 51(6): 1126-1136.
    • (2007) Plant J , vol.51 , Issue.6 , pp. 1126-1136
    • Nelson, B.K.1    Cai, X.2    Nebenführ, A.3
  • 56
    • 38449110969 scopus 로고    scopus 로고
    • Transient expression of fluorescent fusion proteins in protoplasts of suspension cultured cells
    • Miao Y, Jiang L (2007) Transient expression of fluorescent fusion proteins in protoplasts of suspension cultured cells. Nat Protoc 2(10): 2348-2353.
    • (2007) Nat Protoc , vol.2 , Issue.10 , pp. 2348-2353
    • Miao, Y.1    Jiang, L.2
  • 57
    • 42049116064 scopus 로고    scopus 로고
    • Colocalization of fluorescent markers in confocal microscope images of plant cells
    • French AP, Mills S, Swarup R, Bennett MJ, Pridmore TP (2008) Colocalization of fluorescent markers in confocal microscope images of plant cells. Nat Protoc 3(4): 619-628.
    • (2008) Nat Protoc , vol.3 , Issue.4 , pp. 619-628
    • French, A.P.1    Mills, S.2    Swarup, R.3    Bennett, M.J.4    Pridmore, T.P.5
  • 58
    • 0032583163 scopus 로고    scopus 로고
    • Integral membrane protein sorting to vacuoles in plant cells: Evidence for two pathways
    • Jiang L, Rogers JC (1998) Integral membrane protein sorting to vacuoles in plant cells: Evidence for two pathways. J Cell Biol 143(5): 1183-1199.
    • (1998) J Cell Biol , vol.143 , Issue.5 , pp. 1183-1199
    • Jiang, L.1    Rogers, J.C.2


* 이 정보는 Elsevier사의 SCOPUS DB에서 KISTI가 분석하여 추출한 것입니다.