Defects in Cell Wall Differentiation of the Arabidopsis Mutant rol1-2 Is Dependent on Cyclin-Dependent Kinase CDK8
Abstract
:1. Introduction
2. Materials and Methods
2.1. Plant Growth and Mutagenesis
2.2. Microscopic Analysis of Plant Growth Phenotypes
2.3. Quantitative RT-PCR
2.4. Aniline-Blue Staining for Callose Detection in Whole Seedlings
2.5. Ultrastructural Analysis and Immunogold Labelling
2.6. Plant Infection Experiments
2.7. Flavonol Extraction and Quantification
3. Results
3.1. Cell Wall Defects in the rol1-2 Mutant Alter Root Growth
3.2. The rol1-2 Mutation Causes Modifications of the Cell Wall Composition and Structure
3.3. Alleviation of the rol1-2 Mutant Phenotype
3.4. The Surr Mutation Is a New Allele of the Cyclin-Dependent Kinase 8
3.5. Surr Leaves RHM2 or RHM3 Expression and Accumulation of Flavonols Unaffected
4. Discussion
4.1. Lack of Cell Wall Differentiation in rol1-2 Roots
4.2. CDK8 Is Involved in Establishing the Aberrant Development of rol1-2
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Cosgrove, D.J. Plant cell wall extensibility: Connecting plant cell growth with cell wall structure, mechanics, and the action of wall-modifying enzymes. J. Exp. Bot. 2015, 67, 463–476. [Google Scholar] [CrossRef]
- Voxeur, A.; Hofte, H. Cell wall integrity signaling in plants: “To grow or not to grow that’s the question”. Glycobiology 2016, 26, 950–960. [Google Scholar] [CrossRef] [PubMed]
- Somssich, M.; Khan, G.A.; Persson, S. Cell wall heterogeneity in root development of Arabidopsis. Front. Plant Sci. 2016, 7, 1242. [Google Scholar] [CrossRef] [Green Version]
- Mohnen, D. Pectin structure and biosynthesis. Curr. Opin. Plant Biol. 2008, 11, 266–277. [Google Scholar] [CrossRef]
- Sampathkumar, A. Mechanical feedback-loop regulation of morphogenesis in plants. Development 2020, 147. [Google Scholar] [CrossRef]
- Seifert, G.J. Nucleotide sugar interconversions and cell wall biosynthesis: How to bring the inside to the outside. Curr. Opin. Plant Biol. 2004, 7, 277–284. [Google Scholar] [CrossRef] [PubMed]
- Höfte, H.; Peaucelle, A.; Braybrook, S. Cell wall mechanics and growth control in plants: The role of pectins revisited. Front. Plant Sci. 2012, 3, 121. [Google Scholar]
- Amos, R.A.; Mohnen, D. Critical review of plant cell wall matrix polysaccharide glycosyltransferase activities verified by heterologous protein expression. Front. Plant Sci. 2019, 10, 915. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Baumberger, N.; Ringli, C.; Keller, B. The chimeric leucine-rich repeat/extensin cell wall protein LRX1 is required for root hair morphogenesis in Arabidopsis thaliana. Genes Dev. 2001, 15, 1128–1139. [Google Scholar] [CrossRef] [Green Version]
- Diet, A.; Link, B.; Seifert, G.J.; Schellenberg, B.; Wagner, U.; Pauly, M.; Reiter, W.-D.; Ringli, C.; Saint-Jore-Dupas, C.; Nebenführ, A.; et al. The Arabidopsis Root Hair Cell Wall Formation Mutant lrx1 Is Suppressed by Mutations in the RHM1 Gene Encoding a UDP-l-Rhamnose Synthase. Plant Cell 2006, 18, 1630–1641. [Google Scholar] [CrossRef] [Green Version]
- Mecchia, M.A.; Santos-Fernandez, G.; Duss, N.N.; Somoza, S.C.; Boisson-Dernier, A.; Gagliardini, V.; Martinez-Bernardini, A.; Fabrice, T.N.; Ringli, C.; Muschietti, J.P.; et al. RALF4/19 peptides interact with LRX proteins to control pollen tube growth in Arabidopsis. Science 2017, 358, 1600–1603. [Google Scholar] [CrossRef] [Green Version]
- Moussu, S.; Broyart, C.; Santos-Fernandez, G.; Augustin, S.; Wehrle, S.; Grossniklaus, U.; Santiago, J. Structural basis for recognition of RALF peptides by LRX proteins during pollen tube growth. Proc. Natl. Acad. Sci. USA 2020, 117, 7494–7503. [Google Scholar] [CrossRef] [Green Version]
- Herger, A.; Dünser, K.; Kleine-Vehn, J.; Ringli, C. Leucine-Rich Repeat Extensin Proteins and Their Role in Cell Wall Sensing. Curr. Biol. 2019, 29, R851–R858. [Google Scholar] [CrossRef]
- Herger, A.; Gupta, S.; Kadler, G.; Franck, C.M.; Boisson-Dernier, A.; Ringli, C. Overlapping functions and protein-protein interactions of LRR-extensins in Arabidopsis. PLoS Genet. 2020, 16, e1008847. [Google Scholar] [CrossRef]
- Feng, W.; Kita, D.; Peaucelle, A.; Cartwright, H.N.; Doan, V.; Duan, Q.; Liu, M.-C.; Maman, J.; Steinhorst, L.; Schmitz-Thom, I.; et al. The FERONIA Receptor Kinase Maintains Cell-Wall Integrity during Salt Stress through Ca2+ Signaling. Curr. Biol. 2018, 28, 666–675.e5. [Google Scholar] [CrossRef] [Green Version]
- Dünser, K.; Gupta, S.; Herger, A.; Feraru, M.I.; Ringli, C.; Kleine-Vehn, J. Extracellular matrix sensing by FERONIA and Leucine-Rich Repeat Extensins controls vacuolar expansion during cellular elongation in Arabidopsis thaliana. EMBO J. 2019, 38, 100353. [Google Scholar] [CrossRef]
- Ringli, C.; Bigler, L.; Kuhn, B.M.; Leiber, R.-M.; Diet, A.; Santelia, D.; Frey, B.; Pollmann, S.; Klein, M. The Modified Flavonol Glycosylation Profile in the Arabidopsis rol1 Mutants Results in Alterations in Plant Growth and Cell Shape Formation. Plant Cell 2008, 20, 1470–1481. [Google Scholar] [CrossRef] [Green Version]
- Jiang, N.; Dillon, F.M.; Silva, A.; Gomez-Cano, L.; Grotewold, E. Rhamnose in plants—From biosynthesis to diverse functions. Plant Sci. 2021, 302, 110687. [Google Scholar] [CrossRef]
- Peer, W.A.; Murphy, A.S. Flavonoids as signal molecules. Sci. Flavonoids 2008, 239–268. [Google Scholar]
- Kuhn, B.M.; Geisler, M.; Bigler, L.; Ringli, C. Flavonols Accumulate Asymmetrically and Affect Auxin Transport in Arabidopsis. Plant Physiol. 2011, 156, 585–595. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Carlsten, J.O.P.; Zhu, X.; Gustafsson, C.M. The multitalented Mediator complex. Trends Biochem. Sci. 2013, 38, 531–537. [Google Scholar] [CrossRef]
- Murashige, T.; Skoog, J. A revised medium for rapid growth and bio assays with tobacco tissue cultures. Physiol. Plantarum 1962, 15, 473–497. [Google Scholar] [CrossRef]
- Ng, S.; Giraud, E.; Duncan, O.; Law, S.R.; Wang, Y.; Xu, L.; Narsai, R.; Carrie, C.; Walker, H.; Day, D.A.; et al. Cyclin-dependent Kinase E1 (CDKE1) Provides a Cellular Switch in Plants between Growth and Stress Responses. J. Biol. Chem. 2013, 288, 3449–3459. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Zhu, Y.; Schluttenhoffer, C.M.; Wang, P.; Fu, F.; Thimmapuram, J.; Zhu, J.-K.; Lee, S.Y.; Yun, D.-J.; Mengiste, T. Cyclin-Dependent Kinase8 Differentially Regulates Plant Immunity to Fungal Pathogens through Kinase-Dependent and -Independent Functions in Arabidopsis. Plant Cell 2014, 26, 4149–4170. [Google Scholar] [CrossRef] [Green Version]
- Fabrice, T.N.; Kaech, A.; Barmettler, G.; Eichenberger, C.; Knox, J.P.; Grossniklaus, U.; Ringli, C. Efficient preparation of Arabidopsis pollen tubes for ultrastructural analysis using chemical and cryo-fixation. BMC Plant Biol. 2017, 17, 176. [Google Scholar] [CrossRef] [Green Version]
- Voxeur, A.; Habrylo, O.; Guénin, S.; Miart, F.; Soulié, M.-C.; Rihouey, C.; Pau-Roblot, C.; Domon, J.-M.; Gutierrez, L.; Pelloux, J.; et al. Oligogalacturonide production upon Arabidopsis thaliana–Botrytis cinerea interaction. Proc. Natl. Acad. Sci. USA 2019, 116, 19743–19752. [Google Scholar] [CrossRef] [Green Version]
- Parre, E.; Geitmann, A. More Than a Leak Sealant. The Mechanical Properties of Callose in Pollen Tubes. Plant Physiol. 2005, 137, 274–286. [Google Scholar] [CrossRef] [Green Version]
- Fabrice, T.N.; Vogler, H.; Draeger, C.; Munglani, G.; Gupta, S.; Herger, A.G.; Knox, P.; Grossniklaus, U.; Ringli, C. LRX Proteins Play a Crucial Role in Pollen Grain and Pollen Tube Cell Wall Development. Plant Physiol. 2018, 176, 1981–1992. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Kuhn, B.M.; Nodzyński, T.; Errafi, S.; Bucher, R.; Gupta, S.; Aryal, B.; Dobrev, P.; Bigler, L.; Geisler, M.; Zažímalová, E.; et al. Flavonol-induced changes in PIN2 polarity and auxin transport in the Arabidopsis thaliana rol1-2 mutant require phosphatase activity. Sci. Rep. 2017, 7, 41906. [Google Scholar] [CrossRef] [Green Version]
- Dolan, L.; Duckett, C.M.; Grierson, C.; Linstead, P.; Schneider, K.; Lawson, E.; Dean, C.; Poethig, S.; Roberts, K. Clonal relationships and cell patterning in the root epidermis of Arabidopsis. Development 1994, 120, 2465–2474. [Google Scholar]
- McCartney, L.; Steele-King, C.G.; Jordan, E.; Knox, J.P. Cell wall pectic (1 -> 4)-ß-D-galactan marks the acceleration of cell elongation in the Arabidopsis seedling root meristem. Plant J. 2003, 33, 447–454. [Google Scholar] [CrossRef] [PubMed]
- Landrein, B.; Hamant, O. How mechanical stress controls microtubule behavior and morphogenesis in plants: History, experiments and revisited theories. Plant J. 2013, 75, 324–338. [Google Scholar] [CrossRef] [PubMed]
- McQueen-Mason, S.; Durachko, D.M.; Cosgrove, D.J. Two endogenous proteins that induce cell wall expansion in plants. Plant Cell 1992, 4, 1425–1433. [Google Scholar]
- Shcherban, T.Y.; Shi, J.; Durachko, D.M.; Guiltinan, M.J.; McQueen-Mason, S.J.; Shieh, M.; Cosgrove, D.J. Molecular cloning and sequence analysis of expansins—A highly conserved, multigene family of proteins that mediate cell wall extension in plants. Proc. Natl. Acad. Sci. USA 1995, 92, 9245–9249. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Park, Y.B.; Cosgrove, D.J. Xyloglucan and its interactions with other components of the growing cell wall. Plant Cell Physiol. 2015, 56, 180–194. [Google Scholar] [CrossRef] [Green Version]
- Eklof, J.M.; Brumer, H. The XTH gene family: An update on enzyme structure, function, and phylogeny in xyloglucan re-modeling. Plant Physiol. 2010, 153, 456–466. [Google Scholar] [CrossRef] [Green Version]
- Domingo, C.; Roberts, K.; Stacey, N.J.; Connerton, I.; Ruiz-Teran, F.; McCann, M.C. A pectate lyase from Zinnia elegans is auxin inducible. Plant J. 1998, 13, 17–28. [Google Scholar] [CrossRef]
- Laskowski, M.; Biller, S.; Stanley, K.; Kajstura, T.; Prusty, R. Expression profiling of auxin-treated Arabidopsis roots: Toward a molecular analysis of lateral root emergence. Plant Cell Physiol. 2006, 47, 788–792. [Google Scholar] [CrossRef]
- Duman, Z.; Eliyahu, A.; Abu-Abied, M.; Sadot, E. The contribution of cell wall remodeling and signaling to lateral organs formation. Isr. J. Plant Sci. 2020, 67, 110–127. [Google Scholar] [CrossRef] [Green Version]
- Fleming, A.J.; McQueenMason, S.; Mandel, T.; Kuhlemeier, C. Induction of leaf primordia by the cell wall protein expansion. Science 1997, 276, 1415–1418. [Google Scholar] [CrossRef]
- Peaucelle, A.; Braybrook, S.A.; Le Guillou, L.; Bron, E.; Kuhlemeier, C.; Höfte, H. Pectin-Induced Changes in Cell Wall Mechanics Underlie Organ Initiation in Arabidopsis. Curr. Biol. 2011, 21, 1720–1726. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Willats, W.G.T.; Orfila, C.; Limberg, G.; Buchholt, H.C.; van Alebeek, G.; Voragen, A.G.J.; Marcus, S.E.; Christensen, T.; Mikkelsen, J.D.; Murray, B.S.; et al. Modulation of the degree and pattern of methyl-esterification of pectic homogalacturonan in plant cell walls—Implications for pectin methyl esterase action, matrix properties, and cell adhesion. J. Biol. Chem. 2001, 276, 19404–19413. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Manfield, I.W.; Bernal, A.J.; Møller, I.; McCartney, L.; Riess, N.P.; Knox, J.P.; Willats, W.G. Re-engineering of the PAM1 phage display monoclonal antibody to produce a soluble, versatile anti-homogalacturonan scFv. Plant Sci. 2005, 169, 1090–1095. [Google Scholar] [CrossRef]
- Ryser, U. Protoxylem: The deposition of a network containing glycine-rich cell wall proteins starts in the cell corners in close association with the pectins of the middle lamella. Planta 2003, 216, 854–864. [Google Scholar] [CrossRef] [PubMed]
- Ryser, U.; Keller, B. Ultrastructural localization of a bean glycine-rich protein in unlignified primary walls of protoxylem cells. Plant Cell 1992, 4, 773–783. [Google Scholar] [CrossRef] [Green Version]
- Jarvis, M.C. Intercellular separation forces generated by intracellular pressure. Plant Cell Env. 1998, 21, 1307–1310. [Google Scholar] [CrossRef]
- Shevell, D.E.; Kunkel, T.; Chua, N.H. Cell wall alterations in the Arabidopsis emb30 mutant. Plant Cell 2000, 12, 2047–2059. [Google Scholar] [CrossRef] [Green Version]
- Saffer, A.M.; Carpita, N.C.; Irish, V.F. Rhamnose-containing cell wall polymers suppress helical plant growth independently of microtubule orientation. Curr. Biol. 2017, 27, 2248–2259. [Google Scholar] [CrossRef]
- Reiter, W.D.; Vanzin, G.F. Molecular genetics of nucleotide sugar interconversion pathways in plants. Plant Mol. Biol. 2001, 47, 95–113. [Google Scholar] [CrossRef]
- Guillon, F.; Moïse, A.; Quemener, B.; Bouchet, B.; Devaux, M.-F.; Alvarado, C.; Lahaye, M. Remodeling of pectin and hemicelluloses in tomato pericarp during fruit growth. Plant Sci. 2017, 257, 48–62. [Google Scholar] [CrossRef]
- Anderson, C.T.; Wallace, I.S.; Somerville, C.R. Metabolic click-labeling with a fucose analog reveals pectin delivery, architecture, and dynamics in Arabidopsis cell walls. Proc. Natl. Acad. Sci. USA 2012, 109, 1329–1334. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Bacete, L.; Mélida, H.; Miedes, E.; Molina, A. Plant cell wall-mediated immunity: Cell wall changes trigger disease resistance responses. Plant J. 2018, 93, 614–636. [Google Scholar] [CrossRef]
- Nishimura, M.T.; Stein, M.; Hou, B.-H.; Vogel, J.P.; Edwards, H.; Somerville, S.C. Loss of a Callose Synthase Results in Salicylic Acid-Dependent Disease Resistance. Science 2003, 301, 969–972. [Google Scholar] [CrossRef]
- Chong, L.; Guo, P.; Zhu, Y. Mediator Complex: A Pivotal Regulator of ABA Signaling Pathway and Abiotic Stress Response in Plants. Int. J. Mol. Sci. 2020, 21, 7755. [Google Scholar] [CrossRef]
- Zhu, Y.; Huang, P.; Guo, P.; Chong, L.; Yu, G.; Sun, X.; Hu, T.; Li, Y.; Hsu, C.; Tang, K.; et al. CDK8 is associated with RAP2.6 and SnRK2.6 and positively modulates abscisic acid signaling and drought response in Arabidopsis. N. Phytol. 2020, 228, 1573–1590. [Google Scholar] [CrossRef] [PubMed]
- Wang, W.M.; Chen, X.M. HUA ENHANCER3 reveals a role for a cyclin-dependent protein kinase in the specification of floral organ identity in Arabidopsis. Development 2004, 131, 3147–3156. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Chen, J.; Mohan, R.; Zhang, Y.; Li, M.; Chen, H.; Palmer, I.A.; Chang, M.; Qi, G.; Spoel, S.H.; Mengiste, T.; et al. NPR1 Promotes Its Own and Target Gene Expression in Plant Defense by Recruiting CDK8. Plant Physiol. 2019, 181, 289–304. [Google Scholar] [CrossRef]
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Schumacher, I.; Ndinyanka Fabrice, T.; Abdou, M.-T.; Kuhn, B.M.; Voxeur, A.; Herger, A.; Roffler, S.; Bigler, L.; Wicker, T.; Ringli, C. Defects in Cell Wall Differentiation of the Arabidopsis Mutant rol1-2 Is Dependent on Cyclin-Dependent Kinase CDK8. Cells 2021, 10, 685. https://doi.org/10.3390/cells10030685
Schumacher I, Ndinyanka Fabrice T, Abdou M-T, Kuhn BM, Voxeur A, Herger A, Roffler S, Bigler L, Wicker T, Ringli C. Defects in Cell Wall Differentiation of the Arabidopsis Mutant rol1-2 Is Dependent on Cyclin-Dependent Kinase CDK8. Cells. 2021; 10(3):685. https://doi.org/10.3390/cells10030685
Chicago/Turabian StyleSchumacher, Isabel, Tohnyui Ndinyanka Fabrice, Marie-Therese Abdou, Benjamin M. Kuhn, Aline Voxeur, Aline Herger, Stefan Roffler, Laurent Bigler, Thomas Wicker, and Christoph Ringli. 2021. "Defects in Cell Wall Differentiation of the Arabidopsis Mutant rol1-2 Is Dependent on Cyclin-Dependent Kinase CDK8" Cells 10, no. 3: 685. https://doi.org/10.3390/cells10030685
APA StyleSchumacher, I., Ndinyanka Fabrice, T., Abdou, M. -T., Kuhn, B. M., Voxeur, A., Herger, A., Roffler, S., Bigler, L., Wicker, T., & Ringli, C. (2021). Defects in Cell Wall Differentiation of the Arabidopsis Mutant rol1-2 Is Dependent on Cyclin-Dependent Kinase CDK8. Cells, 10(3), 685. https://doi.org/10.3390/cells10030685