Interactome of Arabidopsis ATG5 Suggests Functions beyond Autophagy

被引:4
|
作者
Elander, Pernilla H. [1 ,2 ]
Holla, Sanjana [1 ,2 ]
Sabljic, Igor [1 ,2 ]
Gutierrez-Beltran, Emilio [3 ,4 ]
Willems, Patrick [5 ,6 ]
Bozhkov, Peter V. [1 ,2 ]
Minina, Elena A. [1 ,2 ]
机构
[1] Swedish Univ Agr Sci, Dept Mol Sci, Uppsala Bioctr, Uppsala, Sweden
[2] Linnean Ctr Plant Biol, Uppsala, Sweden
[3] Univ Sevilla & Consejo Super Invest Cientif, Inst Bioquim Vegetal & Fotosintesis, Seville 41092, Spain
[4] Univ Seville, Fac Biol, Dept Bioquim Vegetal & Biol Mol, Seville 41012, Spain
[5] Univ Ghent, Dept Plant Biotechnol & Bioinformat, B-9052 Ghent, Belgium
[6] Univ Ghent, Dept Biomol Med, B-9000 Ghent, Belgium
关键词
plant proteomics; plant ubiquitin-like conjugation system; autophagy-unrelated functions; nuclear ATG5; nuclear ATG12; posttranslational modifications; PP2A; HXK1; endomembrane trafficking; proteasome; PHOSPHATIDYLINOSITOL; 3-PHOSPHATE; AFFINITY PURIFICATION; PROTEIN; COMPONENTS; COMPLEX; IDENTIFICATION; SYSTEM; CROSSTALK; PATHWAYS; BINDING;
D O I
10.3390/ijms241512300
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Autophagy is a catabolic pathway capable of degrading cellular components ranging from individual molecules to organelles. Autophagy helps cells cope with stress by removing superfluous or hazardous material. In a previous work, we demonstrated that transcriptional upregulation of two autophagy-related genes, ATG5 and ATG7, in Arabidopsis thaliana positively affected agronomically important traits: biomass, seed yield, tolerance to pathogens and oxidative stress. Although the occurrence of these traits correlated with enhanced autophagic activity, it is possible that autophagy-independent roles of ATG5 and ATG7 also contributed to the phenotypes. In this study, we employed affinity purification and LC-MS/MS to identify the interactome of wild-type ATG5 and its autophagy-inactive substitution mutant, ATG5(K128R) Here we present the first interactome of plant ATG5, encompassing not only known autophagy regulators but also stress-response factors, components of the ubiquitin-proteasome system, proteins involved in endomembrane trafficking, and potential partners of the nuclear fraction of ATG5. Furthermore, we discovered post-translational modifications, such as phosphorylation and acetylation present on ATG5 complex components that are likely to play regulatory functions. These results strongly indicate that plant ATG5 complex proteins have roles beyond autophagy itself, opening avenues for further investigations on the complex roles of autophagy in plant growth and stress responses.
引用
收藏
页数:16
相关论文
共 50 条
  • [41] ATG5 Dependent Autophagy Uncouples T Cell Functions and Modulates Experimental Graft-Versus-Host Disease
    Oravecz-Wilson, Katherine
    Rossi, Corinne
    Liu, Chen
    Toubai, Tomomi
    Tamaki, Hiroya
    Zajac, Cynthia
    Brabbs, Stuart
    Mathewson, Nathan
    Wu, Julia
    Sun, Yaping
    Reddy, Pavan
    BLOOD, 2015, 126 (23)
  • [42] ATG5 Dependent Autophagy Uncouples T Cell Functions and Modulates Experimental Graft-Versus-Host Disease
    Oravecz-Wilson, Katherine
    Rossi, Corinne
    Toubai, Tomomi
    Tamaki, Hiroya
    Liu, Chen
    Zajac, Cynthia
    Brabbs, Stuart
    Mathewson, Nathan
    Wu, Julia
    Sun, Yaping
    Reddy, Pavan
    BIOLOGY OF BLOOD AND MARROW TRANSPLANTATION, 2016, 22 (03) : S91 - S91
  • [43] RACK1 Is an Interaction Partner of ATG5 and a Novel Regulator of Autophagy
    Erbil, Secil
    Oral, Ozlem
    Mitou, Geraldine
    Kig, Cenk
    Durmaz-Timucin, Emel
    Guven-Maiorov, Emine
    Gulacti, Ferah
    Gokce, Gokcen
    Dengjel, Jorn
    Sezerman, Osman Ugur
    Gozuacik, Devrim
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2016, 291 (32) : 16753 - 16765
  • [44] The autophagy gene ATG5 plays an essential role in B lymphocyte development
    Miller, Brian C.
    Zhao, Zijiang
    Stephenson, Linda M.
    Cadwell, Ken
    Pua, Heather H.
    Lee, Heung Kyu
    Mizushima, Noboru
    Iwasaki, Akiko
    He, You-Wen
    Swat, Wojciech
    Virgin, Herbert W.
    AUTOPHAGY, 2008, 4 (03) : 309 - 314
  • [45] m6A mRNA methylation controls autophagy and adipogenesis by targeting Atg5 and Atg7
    Wang, Xinxia
    Wu, Ruifan
    Liu, Youhua
    Zhao, Yuanling
    Bi, Zhen
    Yao, Yongxi
    Liu, Qing
    Shi, Hailing
    Wang, Fengqin
    Wang, Yizhen
    AUTOPHAGY, 2020, 16 (07) : 1221 - 1235
  • [46] Structure of the human ATG12~ATG5 conjugate required for LC3 lipidation in autophagy
    Chinatsu Otomo
    Zoltan Metlagel
    Giichi Takaesu
    Takanori Otomo
    Nature Structural & Molecular Biology, 2013, 20 : 59 - 66
  • [47] Structure of the human ATG12∼ATG5 conjugate required for LC3 lipidation in autophagy
    Otomo, Chinatsu
    Metlagel, Zoltan
    Takaesu, Giichi
    Otomo, Takanori
    NATURE STRUCTURAL & MOLECULAR BIOLOGY, 2013, 20 (01) : 59 - U79
  • [48] ATG5 Mediates a Positive Feedback Loop between Wnt Signaling and Autophagy in Melanoma
    Ndoye, Abibatou
    Budina-Kolomets, Anna
    Kugel, Curtis H., III
    Webster, Marie R.
    Kaur, Amanpreet
    Behera, Reeti
    Rebecca, Vito W.
    Li, Ling
    Brafford, Patricia A.
    Liu, Qin
    Gopal, Y. N. Vashisht
    Davies, Michael A.
    Mills, Gordon B.
    Xu, Xiaowei
    Wu, Hong
    Herlyn, Meenhard
    Nicastri, Michael C.
    Winkler, Jeffrey D.
    Soengas, Maria S.
    Amaravadi, Ravi K.
    Murphy, Maureen E.
    Weeraratna, Ashani T.
    CANCER RESEARCH, 2017, 77 (21) : 5873 - 5885
  • [49] SIRT1/Atg5/autophagy are involved in the antiatherosclerosis effects of ursolic acid
    Jiang, Qixiao
    Hao, Ranran
    Wang, Wencheng
    Gao, Hui
    Wang, Chunbo
    MOLECULAR AND CELLULAR BIOCHEMISTRY, 2016, 420 (1-2) : 171 - 184
  • [50] Autophagy regulator ATG5 preserves cerebellar function by safeguarding its glycolytic activity
    Tutas, Janine
    Tolve, Marianna
    oezer-Yildiz, Ebru
    Ickert, Lotte
    Klein, Ines
    Silverman, Quinn
    Liebsch, Filip
    Dethloff, Frederik
    Giavalisco, Patrick
    Endepols, Heike
    Georgomanolis, Theodoros
    Neumaier, Bernd
    Drzezga, Alexander
    Schwarz, Guenter
    Thorens, Bernard
    Gatto, Graziana
    Frezza, Christian
    Kononenko, Natalia L.
    NATURE METABOLISM, 2025, 7 (02) : 297 - 320