Management of plant central metabolism by SnRK1 protein kinases

被引:38
作者
Peixoto, Bruno
Baena-Gonzalez, Elena [1 ,2 ]
机构
[1] Inst Gulbenkian Ciencias, P-2780156 Oeiras, Portugal
[2] Univ Oxford, Dept Plant Sci, South Parks Rd, Oxford OX1 3RB, England
关键词
Carbon; central metabolism; homeostasis; nitrogen; SnRK1; SUCROSE-PHOSPHATE SYNTHASE; ADP-GLUCOSE PYROPHOSPHORYLASE; CARBOHYDRATE-METABOLISM; TREHALOSE; 6-PHOSPHATE; NITRATE REDUCTASE; GLYCERALDEHYDE-3-PHOSPHATE DEHYDROGENASE; QUANTITATIVE PHOSPHOPROTEOMICS; TRIACYLGLYCEROL ACCUMULATION; ARABIDOPSIS-THALIANA; SNF1-RELATED KINASE;
D O I
10.1093/jxb/erac261
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
SUCROSE NON-FERMENTING1 (SNF1)-RELATED KINASE 1 (SnRK1) is an evolutionarily conserved protein kinase with key roles in plant stress responses. SnRK1 is activated when energy levels decline during stress, reconfiguring metabolism and gene expression to favour catabolism over anabolism, and ultimately to restore energy balance and homeostasis. The capacity to efficiently redistribute resources is crucial to cope with adverse environmental conditions and, accordingly, genetic manipulations that increase SnRK1 activity are generally associated with enhanced tolerance to stress. In addition to its well-established function in stress responses, an increasing number of studies implicate SnRK1 in the homeostatic control of metabolism during the regular day-night cycle and in different organs and developmental stages. Here, we review how the genetic manipulation of SnRK1 alters central metabolism in several plant species and tissue types. We complement this with studies that provide mechanistic insight into how SnRK1 modulates metabolism, identifying changes in transcripts of metabolic components, altered enzyme activities, or direct regulation of enzymes or transcription factors by SnRK1 via phosphorylation. We identify patterns of response that centre on the maintenance of sucrose levels, in an analogous manner to the role described for its mammalian orthologue in the control of blood glucose homeostasis. Finally, we highlight several knowledge gaps and technical limitations that will have to be addressed in future research aiming to fully understand how SnRK1 modulates metabolism at the cellular and whole-plant levels. Here we review studies linking the SnRK1 energy-sensing kinase and plant primary metabolism, and present a model in which SnRK1 function is centred on the maintenance of sucrose homeostasis.
引用
收藏
页码:7068 / 7082
页数:15
相关论文
共 50 条
[41]   Structural and functional basis for starch binding in the SnRK1 subunits AKINβ2 and AKINβγ [J].
Avila-Castaneda, Alejandra ;
Gutierrez-Granados, Natalia ;
Ruiz-Gayosso, Ana ;
Sosa-Peinado, Alejandro ;
Martinez-Barajas, Eleazar ;
Coello, Patricia .
FRONTIERS IN PLANT SCIENCE, 2014, 5
[42]   Mapping of the plant SnRK1 kinase signalling network reveals a key regulatory role for the class II T6P synthase-like proteins [J].
Van Leene, Jelle ;
Eeckhout, Dominique ;
Gadeyne, Astrid ;
Matthijs, Caroline ;
Han, Chao ;
De Winne, Nancy ;
Persiau, Geert ;
Van De Slijke, Eveline ;
Persyn, Freya ;
Mertens, Toon ;
Smagghe, Wouter ;
Crepin, Nathalie ;
Broucke, Ellen ;
Van Damme, Daniel ;
Pleskot, Roman ;
Rolland, Filip ;
De Jaeger, Geert .
NATURE PLANTS, 2022, 8 (11) :1245-+
[43]   SnRK2 Protein Kinases-Key Regulators of Plant Response to Abiotic Stresses [J].
Kulik, Anna ;
Wawer, Izabela ;
Krzywinska, Ewa ;
Bucholc, Maria ;
Dobrowolska, Grazyna .
OMICS-A JOURNAL OF INTEGRATIVE BIOLOGY, 2011, 15 (12) :859-872
[44]   Source/sink interactions underpin crop yield: the case for trehalose 6-phosphate/SnRK1 in improvement of wheat [J].
Lawlor, David W. ;
Paul, Matthew J. .
FRONTIERS IN PLANT SCIENCE, 2014, 5
[45]   Identification of multiple genes encoding SnRK1 subunits in potato tuber [J].
Zhang, Yongzhong ;
Huang, Binquan .
PLOS ONE, 2018, 13 (07)
[46]   The Role of SnRK1 Kinase in the Response of the Photosynthetic Machinery to Salinity Stress [J].
Murtuzova, A. V. ;
Tyutereva, E. V. ;
Voitsekhovskaja, O. V. .
RUSSIAN JOURNAL OF PLANT PHYSIOLOGY, 2023, 70 (03)
[47]   SnRK1 is differentially regulated in the cotyledon and embryo axe of bean (Phaseolus vulgaris L) seeds [J].
Coello, Patricia ;
Martinez-Barajas, Eleazar .
PLANT PHYSIOLOGY AND BIOCHEMISTRY, 2014, 80 :153-159
[48]   TaFROG Encodes a Pooideae Orphan Protein That Interacts with SnRK1 and Enhances Resistance to the Mycotoxigenic Fungus Fusarium graminearum [J].
Perochon, Alexandre ;
Jia Jianguang ;
Kahla, Amal ;
Arunachalam, Chanemougasoundharam ;
Scofield, Steven R. ;
Bowden, Sarah ;
Wallington, Emma ;
Doohan, Fiona M. .
PLANT PHYSIOLOGY, 2015, 169 (04) :2895-2906
[49]   Default Activation and Nuclear Translocation of the Plant Cellular Energy Sensor SnRK1 Regulate Metabolic Stress Responses and Development [J].
Ramon, Matthew ;
Dang, Tuong Vi T. ;
Broeckx, Tom ;
Hulsmans, Sander ;
Crepin, Nathalie ;
Sheen, Jen ;
Rolland, Filip .
PLANT CELL, 2019, 31 (07) :1614-1632
[50]   The hybrid Four-CBS-Domain KIN subunit functions as the canonical subunit of the plant energy sensor SnRK1 [J].
Ramon, Matthew ;
Ruelens, Philip ;
Li, Yi ;
Sheen, Jen ;
Geuten, Koen ;
Rolland, Filip .
PLANT JOURNAL, 2013, 75 (01) :11-25