How do cell walls regulate plant growth?
Open Access
- 1 August 2005
- journal article
- review article
- Published by Oxford University Press (OUP) in Journal of Experimental Botany
- Vol. 56 (419) , 2275-2285
- https://doi.org/10.1093/jxb/eri247
Abstract
The cell wall of growing plant tissues has frequently been interpreted in terms of inextensible cellulose microfibrils ‘tethered’ by hemicellulose polymers attached to the microfibril surface by hydrogen bonds, with growth occurring when tethers are broken or ‘peeled’ off the microfibril surface by expansins. This has sometimes been described as the ‘sticky network’ model. In this paper, a number of theoretical difficulties with this model, and discrepancies between predicted behaviour and observations by a number of researchers, are noted. (i) Predictions of cell wall moduli, based upon the sticky network model, suggest that the cell wall should be much weaker than is observed. (ii) The maximum hydrogen bond energy between tethers and microfibrils is less than the work done in expansion and therefore breakage of such hydrogen bonds is unlikely to limit growth. (iii) Composites of bacterial cellulose with xyloglucan are weaker than pellicles of pure cellulose so that it seems unlikely that hemicelluloses bind the microfibrils together. (iv) Calcium chelators promote creep of plant material in a similar way to expansins. (v) Reduced relative ‘permittivities’ inhibit the contraction of cell wall material when an applied stress is decreased. Revisions of the sticky network model that might address these issues are considered, as are alternatives including a model of cell wall biophysics in which cell wall polymers act as ‘scaffolds’ to regulate the space available for microfibril movement. Experiments that support the latter hypothesis, by demonstrating that reducing cell wall free volume decreases extensibility, are briefly described.Keywords
This publication has 41 references indexed in Scilit:
- Mechanical effects of plant cell wall enzymes on cellulose/xyloglucan compositesThe Plant Journal, 2004
- The molecular basis of plant cell wall extensionPlant Molecular Biology, 2001
- Altered expression of expansin modulates leaf growth and pedicel abscission inArabidopsis thalianaProceedings of the National Academy of Sciences, 2000
- Expansive growth of plant cell wallsPlant Physiology and Biochemistry, 2000
- In vitro synthesis and properties of pectin/Acetobacter xylinus cellulose compositesThe Plant Journal, 1999
- Relaxation in a high-stress environment: the molecular bases of extensible cell walls and cell enlargement.Plant Cell, 1997
- Metabolic involvement in acid-mediated extension growth of maize coleoptilesJournal of Experimental Botany, 1997
- Tansley Review No. 22 What becomes of the transpiration stream?New Phytologist, 1990
- Physiology and Biochemistry of Plant Cell WallsPublished by Springer Nature ,1990
- Determination of the Pore Size of Cell Walls of Living Plant CellsScience, 1979