Atg19 mediates a dual interaction cargo sorting mechanism in selective autophagy

被引:48
作者
Chang, Chiung-Ying
Huang, Wei-Pang [1 ]
机构
[1] Natl Taiwan Univ, Inst Zool, Taipei 106, Taiwan
[2] Natl Taiwan Univ, Dept Life Sci, Taipei 106, Taiwan
关键词
D O I
10.1091/mbc.E06-08-0683
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Autophagy is a catabolic membrane-trafficking mechanism conserved in all eukaryotic cells. In addition to the nonselective transport of bulk cytosol, autophagy is responsible for efficient delivery of the vacuolar enzyme Ape1 precursor (prApe1) in the budding yeast Saccharomyces cerevisiae, suggesting the presence of a prApe1 sorting machinery. Sequential interactions between Atg19-Atg11 and Atg19-Atg8 pairs are thought responsible for targeting prApe1 to the vesicle formation site, the preautophagosomal structure (PAS), and loading it into transport vesicles, respectively. However, the different patterns of prApe1 transport defect seen in the atg11 Delta and atg19 Delta strains seem to be incompatible with this model. Here we report that prApe1 could not be targeted to the PAS and failed to be delivered into the vacuole in atg8 Delta atg11 Delta double knockout cells regardless of the nutrient conditions. We postulate that Atg19 mediates a dual interaction prApe1-sorting mechanism through independent, instead of sequential, interactions with Atg11 and Atg8. In addition, to efficiently deliver prApe1 to the vacuole, a proper interaction between Atg11 and Atg9 is indispensable. We speculate that Atg11 may elicit a cargo-loading signal and induce Atg9 shuttling to a specific PAS site, where Atg9 relays the signal and recruits other Atg proteins to induce vesicle formation.
引用
收藏
页码:919 / 929
页数:11
相关论文
共 40 条
[1]   Dissection of autophagosome biogenesis into distinct nucleation and expansion steps [J].
Abeliovich, H ;
Dunn, WA ;
Kim, J ;
Klionsky, DJ .
JOURNAL OF CELL BIOLOGY, 2000, 151 (05) :1025-1033
[2]   p62/SQSTM1 forms protein aggregates degraded by autophagy and has a protective effect on huntingtin-induced cell death [J].
Bjorkoy, G ;
Lamark, T ;
Brech, A ;
Outzen, H ;
Perander, M ;
Overvatn, A ;
Stenmark, H ;
Johansen, T .
JOURNAL OF CELL BIOLOGY, 2005, 171 (04) :603-614
[3]  
Dunn WA, 2005, AUTOPHAGY, V1, P75
[4]   Apg5p functions in the sequestration step in the cytoplasm-to-vacuole targeting and macroautophagy pathways [J].
George, MD ;
Baba, M ;
Scott, SV ;
Mizushima, N ;
Garrison, BS ;
Ohsumi, Y ;
Klionsky, DJ .
MOLECULAR BIOLOGY OF THE CELL, 2000, 11 (03) :969-982
[5]   Effect of IGF-1 on the balance between autophagy of dysfunctional mitochondria and apoptosis [J].
Gu, YP ;
Wang, CJ ;
Cohen, A .
FEBS LETTERS, 2004, 577 (03) :357-360
[6]   Autophagy is a defense mechanism inhibiting BCG and Mycobacterium tuberculosis survival in infected macrophages [J].
Gutierrez, MG ;
Master, SS ;
Singh, SB ;
Taylor, GA ;
Colombo, MI ;
Deretic, V .
CELL, 2004, 119 (06) :753-766
[7]   Suppression of basal autophagy in neural cells causes neurodegenerative disease in mice [J].
Hara, Taichi ;
Nakamura, Kenji ;
Matsui, Makoto ;
Yamamoto, Akitsugu ;
Nakahara, Yohko ;
Suzuki-Migishima, Rika ;
Yokoyama, Minesuke ;
Mishima, Kenji ;
Saito, Ichiro ;
Okano, Hideyuki ;
Mizushima, Noboru .
NATURE, 2006, 441 (7095) :885-889
[8]   Autophagy in yeast: A review of the molecular machinery [J].
Huang, WP ;
Klionsky, DJ .
CELL STRUCTURE AND FUNCTION, 2002, 27 (06) :409-420
[9]   The itinerary of a vesicle component, Aut7p/Cvt5p, terminates in the yeast vacuole via the autophagy/Cvt pathways [J].
Huang, WP ;
Scott, SV ;
Kim, J ;
Klionsky, DJ .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2000, 275 (08) :5845-5851
[10]   The ESCRT complexes: Structure and mechanism of a membrane-trafficking network [J].
Hurley, James H. ;
Emr, Scott D. .
ANNUAL REVIEW OF BIOPHYSICS AND BIOMOLECULAR STRUCTURE, 2006, 35 :277-298