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Experimental Investigation of Plant Root Growth Through Granular Substrates

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Abstract

It is well known that granular materials are not homogeneous, i.e. the forces between grains are localized in force chains. However, previous work on plant root growth has neglected this variability in granular soils and reported bulk characteristics or used homogeneous media, such as agar, to grow plant roots. In this paper we report the results of pinto bean root growth through a granular system where photoelastic grains are used to visualize and quantify the local forces in the system. Two issues are addressed: how plant roots respond to different levels of force between grains, and how the growing roots alter the force distribution in a granular system. We find that pinto bean roots are less likely to grow between grains as the force between those grains increases and that roots can exert, on average, 110 mN of force on the granular system. However, both of these observations are time-dependent. Both the inter-grain forces as the roots grow and the forces that the roots impart to the system increase in time without observable concomitant geometric changes in root cross-section.

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References

  1. Erickson R, Sax K (1956) Elemental growth rate of the primary root of zea mays. Proc Am Philos Soc 100:487–498

    Google Scholar 

  2. Erickson R, Sax K (1956) Rates of cell division and cell elongation in the growth of the primary root of zea mays. Proc Am Philos Soc 100:499–514

    Google Scholar 

  3. Zou C, Penfold C, Sands R, Misra R, Hudson I (2001) Effects of soil air-filled porosity, soil matric potential and soil strength on primary root growth of radiata pine seedlings. Plant Soil 236:105–115

    Article  Google Scholar 

  4. Bengough A (2005) Root responses to soil physical conditions; growth dynamics from field to cell. J Exp Bot 57:437–447. doi:10.1093/jxb/erj003

    Article  Google Scholar 

  5. Cates M, Wittmer J, Bouchaud J, Claudin P (1998) Development of stresses in cohesionless poured sand. Philos Trans R Soc 356(1747):2535–2560

    Google Scholar 

  6. Geng J, Longhi E, Behringer R (2001) Memory in two-dimensional heap experiments. Phys Rev E 64:060301

    Google Scholar 

  7. Liu C, Nagel S, Schecter D, Coppersmith S, Majumdar S, Narayan O, Witten T (1995) Force fluctuations in bead packs. Science 269(5223):513–515

    Google Scholar 

  8. Majmudar T, Behringer R (2005) Contact force measurements and stress-induced anisotropy in granular materials. Nature 435:1079–1082

    Article  Google Scholar 

  9. Miller B, O’Hern C, Behringer R (1996) Stress fluctuations for continuously sheared granular materials. Phys Rev Lett 77:3110–3113

    Article  Google Scholar 

  10. Drew M (1992) Soil aeration and plant root metabolism. J Soil Sci 154(4):259–268

    Google Scholar 

  11. Silk W, Beusmans J (1988) Mechanical properties within the growth zone of corn roots investigated by bending experiments. i. preliminary observations. Am J Bot 75:990–995

    Article  Google Scholar 

  12. Bingham I, Bengough A (2003) Morphological plasticity of wheat and barley roots in response to spatial variation in soil strength. Plant Soil 250:273–282

    Article  Google Scholar 

  13. Dexter A (1987) Mechanics of root growth. Plant Soil 98:303–312

    Article  Google Scholar 

  14. Misra R, Gibbons A (1996) Growth and morphology of eucalypt seedling-roots, in relation to soil strength arising from compaction. Plant Soil 182:1–11

    Article  Google Scholar 

  15. Pierret A, Doussan C, Capowiez Y, Bastardie F, Pagès L (2007) Root functional architecture: a framework for modeling the interplay between roots and soil. Vadose Zone J 6:269–281. doi:10.2136/vzj2006.0067

    Article  Google Scholar 

  16. Zou C, Sands R, Sun O (2000) Physiological responses of radiata pine roots to soil strength and soil water deficit. Tree Physiol 20:1205–1207

    Article  Google Scholar 

  17. Cárdenas L (2009) New findings in the mechanisms regulating polar growth in root hair cells. Plant Signal Behav 4:4–8

    Article  Google Scholar 

  18. McNicholas J, Ranklilor P (1969) The mechanical properties of some polyurethane rubbers at room temperature. Strain 5(2):74–79

    Google Scholar 

  19. Kolb E, Genet P, Lecoq LE, Hartmann C, Quartier L, Darnige T (2009) Root growth in mechanically stressed environment: In situ measurements of radial root forces measured by a photoelastic technique. In: 6th plant biomechanics conference, pp 322–327

  20. McMaster-Carr, McMaster-Carr Supply Company. Elmhurst, Illinois, USA. www.mcmaster.com. Accessed 28 Feb 2011

  21. Canon, Canon USA, Inc. Lake Success, New York, USA. www.usa.canon.com. Accessed 28 Feb 2011

  22. CHDK (Shareware) chdk.wikia.com/wiki/Software. Accessed 28 Feb 2011

  23. TA.XT.Plus, Texture Technologies Corporation. Scarsdale, New York, USA. www.texturetechnologies.com. Accessed 28 Feb 2011

  24. Harvest, Harvest Cooperative Markets. Boston, Massachusetts, USA. www.harvestcoop.com. Accessed 28 Feb 2011

  25. Water, Poland Spring Water. Wilkes Barre, Pennsylvania, USA. www.polandspring.com. Accessed 28 Feb 2011

  26. Raja R, Talwalker S (1989) Bounds on life expectancy for the rayleigh and weibull distributions. Math Biosci 96:95–115

    Article  MathSciNet  MATH  Google Scholar 

  27. Fayad W, Thompson C, Frost H (1999) Steady-state grain-size distributions resulting from grain growth in two dimensions. Scr Mater 40:1199–1204

    Article  Google Scholar 

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Acknowledgements

The authors wish to thank Prof. Pedro Reis and Diego Solano for assistance with experimental equipment and Prof. Evelyne Kolb for useful discussions. The authors acknowledge financial support from Schlumberger-Doll Research, Cambridge, Massachusetts, USA for this work.

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Correspondence to D.M. Wendell.

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The authors acknowledge financial support from Schlumberger-Doll Research, Cambridge, Massachusetts, USA for this work.

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Wendell, D., Luginbuhl, K., Guerrero, J. et al. Experimental Investigation of Plant Root Growth Through Granular Substrates. Exp Mech 52, 945–949 (2012). https://doi.org/10.1007/s11340-011-9569-x

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  • DOI: https://doi.org/10.1007/s11340-011-9569-x

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