Literature DB >> 32616663

Autophagy Plays Prominent Roles in Amino Acid, Nucleotide, and Carbohydrate Metabolism during Fixed-Carbon Starvation in Maize.

Fionn McLoughlin1, Richard S Marshall1, Xinxin Ding2,3, Elizabeth C Chatt1, Liam D Kirkpatrick1, Robert C Augustine1, Faqiang Li4, Marisa S Otegui2,3, Richard D Vierstra5,4.   

Abstract

Autophagic recycling of proteins, lipids, nucleic acids, carbohydrates, and organelles is essential for cellular homeostasis and optimal health, especially under nutrient-limiting conditions. To better understand how this turnover affects plant growth, development, and survival upon nutrient stress, we applied an integrated multiomics approach to study maize (Zea mays) autophagy mutants subjected to fixed-carbon starvation induced by darkness. Broad metabolic alterations were evident in leaves missing the core autophagy component ATG12 under normal growth conditions (e.g., lipids and secondary metabolism), while changes in amino acid-, carbohydrate-, and nucleotide-related metabolites selectively emerged during fixed-carbon starvation. Through combined proteomic and transcriptomic analyses, we identified numerous autophagy-responsive proteins, which revealed processes underpinning the various metabolic changes seen during carbon stress as well as potential autophagic cargo. Strikingly, a strong upregulation of various catabolic processes was observed in the absence of autophagy, including increases in simple carbohydrate levels with a commensurate drop in starch levels, elevated free amino acid levels with a corresponding reduction in intact protein levels, and a strong increase in the abundance of several nitrogen-rich nucleotide catabolites. Altogether, this analysis showed that fixed-carbon starvation in the absence of autophagy adjusts the choice of respiratory substrates, promotes the transition of peroxisomes to glyoxysomes, and enhances the retention of assimilated nitrogen.
© 2020 American Society of Plant Biologists. All rights reserved.

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Year:  2020        PMID: 32616663      PMCID: PMC7474275          DOI: 10.1105/tpc.20.00226

Source DB:  PubMed          Journal:  Plant Cell        ISSN: 1040-4651            Impact factor:   11.277


  93 in total

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Authors:  Bastiaan Brouwer; Agnieszka Ziolkowska; Matthieu Bagard; Olivier Keech; Per Gardeström
Journal:  Plant Cell Environ       Date:  2012-01-06       Impact factor: 7.228

Review 2.  New Insight into the Mechanism and Function of Autophagy in Plant Cells.

Authors:  Xiaochen Yang; Diane C Bassham
Journal:  Int Rev Cell Mol Biol       Date:  2015-08-31       Impact factor: 6.813

Review 3.  Ultrastructure of autophagy in plant cells: a review.

Authors:  Wouter G van Doorn; Alessio Papini
Journal:  Autophagy       Date:  2013-09-30       Impact factor: 16.016

4.  Circadian control of carbohydrate availability for growth in Arabidopsis plants at night.

Authors:  Alexander Graf; Armin Schlereth; Mark Stitt; Alison M Smith
Journal:  Proc Natl Acad Sci U S A       Date:  2010-05-03       Impact factor: 11.205

5.  The APG8/12-activating enzyme APG7 is required for proper nutrient recycling and senescence in Arabidopsis thaliana.

Authors:  Jed H Doelling; Joseph M Walker; Eric M Friedman; Allison R Thompson; Richard D Vierstra
Journal:  J Biol Chem       Date:  2002-06-17       Impact factor: 5.157

6.  The ATG autophagic conjugation system in maize: ATG transcripts and abundance of the ATG8-lipid adduct are regulated by development and nutrient availability.

Authors:  Taijoon Chung; Anongpat Suttangkakul; Richard D Vierstra
Journal:  Plant Physiol       Date:  2008-09-12       Impact factor: 8.340

7.  Purification of the Arabidopsis 26 S proteasome: biochemical and molecular analyses revealed the presence of multiple isoforms.

Authors:  Peizhen Yang; Hongyong Fu; Joseph Walker; Charles M Papa; Jan Smalle; Yu-Ming Ju; Richard D Vierstra
Journal:  J Biol Chem       Date:  2003-11-17       Impact factor: 5.157

8.  Overexpression of the ASN1 gene enhances nitrogen status in seeds of Arabidopsis.

Authors:  Hon-Ming Lam; Piu Wong; Hiu-Ki Chan; Kwan-Mei Yam; Li Chen; Cheung-Ming Chow; Gloria M Coruzzi
Journal:  Plant Physiol       Date:  2003-04-17       Impact factor: 8.340

9.  The ATG1/ATG13 protein kinase complex is both a regulator and a target of autophagic recycling in Arabidopsis.

Authors:  Anongpat Suttangkakul; Faqiang Li; Taijoon Chung; Richard D Vierstra
Journal:  Plant Cell       Date:  2011-10-07       Impact factor: 11.277

Review 10.  Functions of autophagy in plant carbon and nitrogen metabolism.

Authors:  Chenxia Ren; Jingfang Liu; Qingqiu Gong
Journal:  Front Plant Sci       Date:  2014-06-24       Impact factor: 5.753

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  17 in total

1.  Feasting While Fasting: How Autophagy Helps Maize Survive Carbon Starvation.

Authors:  Brendan M O'Leary
Journal:  Plant Cell       Date:  2020-07-14       Impact factor: 11.277

2.  Plant autophagosomes mature into amphisomes prior to their delivery to the central vacuole.

Authors:  Jierui Zhao; Mai Thu Bui; Juncai Ma; Fabian Künzl; Lorenzo Picchianti; Juan Carlos De La Concepcion; Yixuan Chen; Sofia Petsangouraki; Azadeh Mohseni; Marta García-Leon; Marta Salas Gomez; Caterina Giannini; Dubois Gwennogan; Roksolana Kobylinska; Marion Clavel; Swen Schellmann; Yvon Jaillais; Jiri Friml; Byung-Ho Kang; Yasin Dagdas
Journal:  J Cell Biol       Date:  2022-10-19       Impact factor: 8.077

3.  An Overview of the Molecular Mechanisms and Functions of Autophagic Pathways in Plants.

Authors:  Yang Yang; Yun Xiang; Yue Niu
Journal:  Plant Signal Behav       Date:  2021-10-07

4.  Plant Proteomics and Systems Biology.

Authors:  Flavia Vischi Winck; André Luis Wendt Dos Santos; Maria Juliana Calderan-Rodrigues
Journal:  Adv Exp Med Biol       Date:  2021       Impact factor: 2.622

5.  Transcriptome analysis of the role of autophagy in plant response to heat stress.

Authors:  Yan Zhang; Haoxuan Min; Chengchen Shi; Gengshou Xia; Zhibing Lai
Journal:  PLoS One       Date:  2021-02-26       Impact factor: 3.240

6.  Proteomic and metabolomic analysis of Nicotiana benthamiana under dark stress.

Authors:  Juan-Juan Shen; Qian-Si Chen; Ze-Feng Li; Qing-Xia Zheng; Ya-Long Xu; Hui-Na Zhou; Hong-Yan Mao; Qi Shen; Ping-Ping Liu
Journal:  FEBS Open Bio       Date:  2021-12-16       Impact factor: 2.693

7.  Complex Changes in Membrane Lipids Associated with the Modification of Autophagy in Arabidopsis.

Authors:  Yosia Mugume; Geng Ding; Maria Emilia Dueñas; Meiling Liu; Young-Jin Lee; Basil J Nikolau; Diane C Bassham
Journal:  Metabolites       Date:  2022-02-18

8.  Autophagy Is Required for Strawberry Fruit Ripening.

Authors:  José F Sánchez-Sevilla; Miguel A Botella; Victoriano Valpuesta; Victoria Sanchez-Vera
Journal:  Front Plant Sci       Date:  2021-08-27       Impact factor: 5.753

9.  Exploring the Contribution of Autophagy to the Excess-Sucrose Response in Arabidopsis thaliana.

Authors:  Daniel Laloum; Sahar Magen; Yoram Soroka; Tamar Avin-Wittenberg
Journal:  Int J Mol Sci       Date:  2022-03-31       Impact factor: 5.923

10.  Autophagy is required for lipid homeostasis during dark-induced senescence.

Authors:  Jessica A S Barros; Sahar Magen; Taly Lapidot-Cohen; Leah Rosental; Yariv Brotman; Wagner L Araújo; Tamar Avin-Wittenberg
Journal:  Plant Physiol       Date:  2021-04-23       Impact factor: 8.340

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