PpATG9 encodes a novel membrane protein that traffics to vacuolar membranes, which sequester peroxisomes during pexophagy in Pichia pastoris

被引:36
作者
Chang, T
Schroder, LA
Thomson, JM
Klocman, AS
Tomasini, AJ
Stromhaug, PE
Dunn, WA [1 ]
机构
[1] Univ Florida, Coll Med, Dept Anat & Cell Biol, Gainesville, FL 32610 USA
[2] Univ Missouri, Div Biol Sci, Columbia, MO 65201 USA
关键词
D O I
10.1091/mbc.E05-02-0143
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
When Pichia pastoris adapts from methanol to glucose growth, peroxisomes are rapidly sequestered and degraded within the vacuole by micropexophagy. During micropexophagy, sequestering membranes arise from the vacuole to engulf the peroxisomes. Fusion of the sequestering membranes and incorporation of the peroxisomes into the vacuole is mediated by the micropexophagy-specific membrane apparatus (MIPA). In this study, we show the P. pastoris ortholog of Atg9, a novel membrane protein is essential for the formation of the sequestering membranes and assembly of MIPA. During methanol growth, GFP-PpAtg9 localizes to multiple structures situated near the plasma membrane referred as the peripheral compartment (Atg9-PC). On glucose-induced micropexophagy, PpAtg9 traffics from the Atg9-PC to unique perivacuolar structures (PVS) that contain PpAtg11, but lack PpAtg2 and PpAtg8. Afterward, PpAtg9 distributes to the vacuole surface and sequestering membranes. Movement of the PpAtg9 from the Atg9-PC to the PVS requires PpAtg11 and PpVps15. PpAtg2 and PpAtg7 are essential for PpAtg9 trafficking from the PVS to the vacuole and sequestering membranes, whereas trafficking of PpAtg9 proceeds independent of PpAtg1, PpAtg18, and PpVac8. In summary, our data suggest that PpAtg9 transits from the Atg9-PC to the PVS and then to the sequestering membranes that engulf the peroxisomes for degradation.
引用
收藏
页码:4941 / 4953
页数:13
相关论文
共 40 条
  • [1] Chemical genetic analysis of Apg1 reveals a nonkinase role in the induction of autophagy
    Abeliovich, H
    Zhang, C
    Dunn, WA
    Shokat, KM
    Klionsky, DJ
    [J]. MOLECULAR BIOLOGY OF THE CELL, 2003, 14 (02) : 477 - 490
  • [2] A sorting nexin PpAtg24 regulates vacuolar membrane dynamics during pexophagy via binding to phosphatidylinositol-3-phosphate
    Ano, Y
    Hattori, T
    Oku, M
    Mukaiyama, H
    Baba, M
    Ohsumi, Y
    Kato, N
    Sakai, Y
    [J]. MOLECULAR BIOLOGY OF THE CELL, 2005, 16 (02) : 446 - 457
  • [3] De novo formation of transitional ER sites and Golgi structures in Pichia pastoris
    Bevis, BJ
    Hammond, AT
    Reinke, CA
    Glick, BS
    [J]. NATURE CELL BIOLOGY, 2002, 4 (10) : 750 - 756
  • [4] Campbell CL, 1998, J CELL SCI, V111, P2455
  • [5] A monomeric red fluorescent protein
    Campbell, RE
    Tour, O
    Palmer, AE
    Steinbach, PA
    Baird, GS
    Zacharias, DA
    Tsien, RY
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2002, 99 (12) : 7877 - 7882
  • [6] PICHIA-PASTORIS AS A HOST SYSTEM FOR TRANSFORMATIONS
    CREGG, JM
    BARRINGER, KJ
    HESSLER, AY
    MADDEN, KR
    [J]. MOLECULAR AND CELLULAR BIOLOGY, 1985, 5 (12) : 3376 - 3385
  • [7] Cvt18/Gsa12 is required for cytoplasm-to-vacuole transport, pexophagy, and autophagy in Saccharomyces cerevisiae and Pichia pastoris
    Guan, J
    Stromhaug, PE
    George, MD
    Habibzadegah-Tari, P
    Bevan, A
    Dunn, WA
    Klionsky, DJ
    [J]. MOLECULAR BIOLOGY OF THE CELL, 2001, 12 (12) : 3821 - 3838
  • [8] HABIBZADEGAHTAR.P, 2003, AUTOPHAGY
  • [9] Leaf senescence and starvation-induced chlorosis are accelerated by the disruption of an Arabidopsis autophagy gene
    Hanaoka, H
    Noda, T
    Shirano, Y
    Kato, T
    Hayashi, H
    Shibata, D
    Tabata, S
    Ohsumi, Y
    [J]. PLANT PHYSIOLOGY, 2002, 129 (03) : 1181 - 1193
  • [10] Autophagy in yeast: A review of the molecular machinery
    Huang, WP
    Klionsky, DJ
    [J]. CELL STRUCTURE AND FUNCTION, 2002, 27 (06) : 409 - 420