Plant Stress Granules: Trends and Beyond

被引:55
作者
Maruri-Lopez, Israel [1 ]
Figueroa, Nicolas E. [1 ]
Hernandez-Sanchez, Itzell E. [1 ]
Chodasiewicz, Monika [1 ]
机构
[1] King Abdullah Univ Sci & Technol, Ctr Desert Agr, Biol & Environm Sci & Engn Div, Thuwal, Saudi Arabia
来源
FRONTIERS IN PLANT SCIENCE | 2021年 / 12卷
关键词
plant stress granules; phase separation; intrinsically disordered regions; RNA-binding domains; small molecules; preexisting complex; post-translational modifications; four-phase assembly model; RNA-BINDING PROTEINS; HEAT-SHOCK GRANULES; MESSENGER-RNA; PROCESSING BODIES; P-BODIES; TRANSLATIONAL CONTROL; NUCLEAR SPECKLES; REVEALS; SEQUESTRATION; DISTINCT;
D O I
10.3389/fpls.2021.722643
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Stress granules (SGs) are dynamic membrane-less condensates transiently assembled through liquid-liquid phase separation (LLPS) in response to stress. SGs display a biphasic architecture constituted of core and shell phases. The core is a conserved SG fraction fundamental for its assembly and consists primarily of proteins with intrinsically disordered regions and RNA-binding domains, along with translational-related proteins. The shell fraction contains specific SG components that differ among species, cell type, and developmental stage and might include metabolic enzymes, receptors, transcription factors, untranslated mRNAs, and small molecules. SGs assembly positively correlates with stalled translation associated with stress responses playing a pivotal role during the adaptive cellular response, post-stress recovery, signaling, and metabolic rewire. After stress, SG disassembly releases mRNA and proteins to the cytoplasm to reactivate translation and reassume cell growth and development. However, under severe stress conditions or aberrant cellular behavior, SG dynamics are severely disturbed, affecting cellular homeostasis and leading to cell death in the most critical cases. The majority of research on SGs has focused on yeast and mammals as model organism. Nevertheless, the study of plant SGs has attracted attention in the last few years. Genetics studies and adapted techniques from other non-plant models, such as affinity capture coupled with multi-omics analyses, have enriched our understanding of SG composition in plants. Despite these efforts, the investigation of plant SGs is still an emerging field in plant biology research. In this review, we compile and discuss the accumulated progress of plant SGs regarding their composition, organization, dynamics, regulation, and their relation to other cytoplasmic foci. Lastly, we will explore the possible connections among the most exciting findings of SGs from mammalian, yeast, and plants, which might help provide a complete view of the biology of plant SGs in the future.
引用
收藏
页数:16
相关论文
共 124 条
[31]   Robust heat shock induces eIF2α-phosphorylation-independent assembly of stress granules containing eIF3 and 40S ribosomal subunits in budding yeast, Saccharomyces cerevisiae [J].
Grousl, Tomas ;
Ivanov, Pavel ;
Frydlova, Ivana ;
Vasicova, Pavla ;
Janda, Filip ;
Vojtova, Jana ;
Malinska, Katerina ;
Malcova, Ivana ;
Novakova, Lenka ;
Janoskova, Dana ;
Valasek, Leos ;
Hasek, Jiri .
JOURNAL OF CELL SCIENCE, 2009, 122 (12) :2078-2088
[32]   RNA-Induced Conformational Switching and Clustering of G3BP Drive Stress Granule Assembly by Condensation [J].
Guillen-Boixet, Jordina ;
Kopach, Andrii ;
Holehouse, Alex S. ;
Wittmann, Sina ;
Jahnel, Marcus ;
Schluessler, Raimund ;
Kim, Kyoohyun ;
Trussina, Irmela R. E. A. ;
Wang, Jie ;
Mateju, Daniel ;
Poser, Ina ;
Maharana, Shovamayee ;
Ruer-Gruss, Martine ;
Richter, Doris ;
Zhang, Xiaojie ;
Chang, Young-Tae ;
Guck, Jochen ;
Honigmann, Alf ;
Mahamid, Julia ;
Hyman, Anthony A. ;
Pappu, Rohit V. ;
Alberti, Simon ;
Franzmann, Titus M. .
CELL, 2020, 181 (02) :346-+
[33]  
Gutierrez-Beltran E., 2020, TUDOR STAPHYLOCOCCAL, DOI [10.1101/2020.02.20.955922, DOI 10.1101/2020.02.20.955922]
[34]   Tudor Staphylococcal Nuclease Links Formation of Stress Granules and Processing Bodies with mRNA Catabolism in Arabidopsis [J].
Gutierrez-Beltran, Emilio ;
Moschou, Panagiotis N. ;
Smertenko, Andrei P. ;
Bozhkov, Peter V. .
PLANT CELL, 2015, 27 (03) :926-943
[35]   Ubiquitination of G3BP1 mediates stress granule disassembly in a context-specific manner [J].
Gwon, Youngdae ;
Maxwell, Brian A. ;
Kolaitis, Regina-Maria ;
Zhang, Peipei ;
Kim, Hong Joo ;
Taylor, J. Paul .
SCIENCE, 2021, 372 (6549) :1410-+
[36]   Stress granule formation is induced by a threshold temperature rather than a temperature difference in Arabidopsis [J].
Hamada, Takahiro ;
Yako, Mako ;
Minegishi, Marina ;
Sato, Mayuko ;
Kamei, Yasuhiro ;
Yanagawa, Yuki ;
Toyooka, Kiminori ;
Watanabe, Yuichiro ;
Hara-Nishimura, Ikuko .
JOURNAL OF CELL SCIENCE, 2018, 131 (16)
[37]   The Critical Role of Zinc in Plants Facing the Drought Stress [J].
Hassan, Muhammad Umair ;
Aamer, Muhammad ;
Chattha, Muhammad Umer ;
Haiying, Tang ;
Shahzad, Babar ;
Barbanti, Lorenzo ;
Nawaz, Muhammad ;
Rasheed, Adnan ;
Afzal, Aniqa ;
Liu, Ying ;
Guoqin, Huang .
AGRICULTURE-BASEL, 2020, 10 (09) :1-20
[38]   Molecular mechanisms of stress granule assembly and disassembly [J].
Hofmann, Sarah ;
Kedersha, Nancy ;
Anderson, Paul ;
Ivanov, Pavel .
BIOCHIMICA ET BIOPHYSICA ACTA-MOLECULAR CELL RESEARCH, 2021, 1868 (01)
[39]   DEAD-box ATPases are global regulators of phase-separated organelles [J].
Hondele, Maria ;
Sachdev, Ruchika ;
Heinrich, Stephanie ;
Wang, Juan ;
Vallotton, Pascal ;
Fontoura, Beatriz M. A. ;
Weis, Karsten .
NATURE, 2019, 573 (7772) :144-+
[40]   Stress-dependent relocalization of translationally primed mRNPs to cytoplasmic granules that are kinetically and spatially distinct from P-bodies [J].
Hoyle, Nathaniel P. ;
Castelli, Lydia M. ;
Campbell, Susan G. ;
Holmes, Leah E. A. ;
Ashe, Mark P. .
JOURNAL OF CELL BIOLOGY, 2007, 179 (01) :65-74