Skip to main content
Log in

Time course and auxin sensitivity of cortical microtubule reorientation in maize roots

  • Published:
Protoplasma Aims and scope Submit manuscript

Summary

The kinetics of MT reorientation in primary roots ofZea mays cv. Merit, were examined 15,30,45, and 60 min after horizontal positioning. Confocal microscopy of longitudinal tissue sections showed no change in MT orientation 15 and 30 min after horizontal placement. However, after 45 and 60 min, MTs of the outer 4–5 cortical cell layers along the lower side were reoriented. In order to test whether MT reorientation during graviresponse is caused by an auxin gradient, we examined the organization of MTs in roots that were incubated for 1 h in solutions containing 10−9 to 10−6M IAA. IAA treatment at 10−8M or less showed no major or consistent changes but 10−7 M IAA resulted in MT reorientation in the cortex. The auxin effect does not appear to be acid-induced since benzoic acid (10−5M) did not cause MT reorientation. The region closest to the maturation zone was most sensitive to IAA. The data indicate that early stages of gravity induced curvature occur in the absence of MT reorientation but sustained curvature leads to reoriented MTs in the outer cortex. Growth inhibition along the lower side of graviresponding roots appears to result from asymmetric distribution of auxin following gravistimulation.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Similar content being viewed by others

Abbreviations

EGTA:

ethylene glycol-bis(β-aminoethyl ether) N,N,N′N′-tetraacetic acid

MTs:

cortical microtubules

QC:

quiescent center

MES/TRIS:

2-(N-morpholino)ethanesulfonic acid/tris(hydroxymethyl)aminomethane

IAA:

indole-3-acetic acid

PBS:

phosphate buffered saline

PHEMD:

[60 mM Pipes (piperazine-diethanesulfonic acid), 25 mM Hepes (N-2-hydroxyethylpiperazine-N′-2-ethanesulfonic acid), 10 mM EGTA, 2mM MgCl2 pH7.0 adjusted with NaOH] containing 5% dimethyl sulfoxide

References

  • Baluška F, Kubica Š, Hausknecht M (1990) Postmitotic ‘isodiametric’ cell growth in the maize root apex. Planta 181: 269–274

    Google Scholar 

  • —, Parker JS, Barlow PW (1992) Specific patterns of cortical and endoplasmic microtubules associated with cell growth and tissue differentiation in roots of maize (Zea mays L.). J Cell Sci 103: 191–200

    Google Scholar 

  • Bergfeld R, Speth V, Schopfer P (1988) Reorientation of microfibrils and microtubules at the outer epidermal wall of maize coleoptiles during auxin mediated growth. Bot Acta 101: 57–67

    Google Scholar 

  • Blancaflor EB, Hasenstein KH (1993) Organization of cortical microtubules in graviresponding maize roots. Planta 191: 231–237

    Google Scholar 

  • Chadwick AV, Burg SP (1970) Regulation of root growth by auxin ethylene interaction. Plant Physiol 45: 192–200

    Google Scholar 

  • Davies PJ, Mitchell EK (1972) Transport of indoleacetic acid in intact roots ofPhaseolus coccineus. Planta 105: 139–154

    Google Scholar 

  • Emons AMC (1982) Microtubules do not control microfibril orientation in a helicoidal cell wall. Protoplasma 113: 85–92

    Google Scholar 

  • —, van Maaren N (1987) Helicoidal cell-wall texture in root hairs. Planta 170: 145–152

    Google Scholar 

  • Evans ML (1985) The action of auxin on plant cell elongation. CRC Crit Rev Plant Sci 2: 317–365

    Google Scholar 

  • Giddings TH, Staehelin LA (1991) Microtubule-mediated control of microfibril deposition: a re-examination of the hypothesis. In: Lloyd CW (ed) The cytoskeletal basis of plant growth and form. Academic Press, London, pp 85–99

    Google Scholar 

  • Hasenstein KH (1991) Measurement of circumnutation in maize roots. Micrograv Sci Tech 4: 262–266

    Google Scholar 

  • —, Evans ML (1988) The effect of cations on hormone transport in primary roots ofZea mays. Plant Physiol 86: 890–894

    Google Scholar 

  • Hirota H, Watanabe S (1981) Endogenous factors affecting the varietal differences in the curvature of seminal roots ofZea mays L. seedlings in water culture. J Crop Sci 50: 148–156

    Google Scholar 

  • Hush JM, Hawes CR, Overall RL (1990) Interphase microtubule reorientation predicts a new cell polarity in wounded pea roots. J Cell Sci 96: 47–61

    Google Scholar 

  • Ishikawa H, Hasenstein KH, Evans ML (1991) Computer based video-digitizer analysis of surface extension in maize roots: kinetics of growth rate change during gravitropism. Planta 183: 381–390

    Google Scholar 

  • Iwata R, Hogetsu T (1989) The effects of light irradiation on the orientation of microtubules in seedlings ofAvena sativa L. andPisum sativum L. Plant Cell Physiol 30: 1011–1016

    Google Scholar 

  • Laskowski MJ (1990) Microtubule reorientation in pea stem cells: a change in orientation follows the initiation of growth rate decline. Planta 181: 44–52

    Google Scholar 

  • Lee JS, Evans ML (1985) Polar transport of auxin across gravistimulated roots of maize and its enhancement by calcium. Plant Physiol 87: 824–827

    Google Scholar 

  • Lloyd CW (1984) Toward a dynamical helical model for the influence of microtubules on wall patterns in plants. Int Rev Cytol 86: 1–51

    Google Scholar 

  • Mulkey TJ, Kuzmanoff KM, Evans ML (1982) Promotion of growth and hydrogen ion efflux by auxin in roots of maize pretreated with ethylene biosynthesis inhibitors. Plant Physiol 70: 186–188

    Google Scholar 

  • Nick P, Bergfeld R, Schäfer E, Schopfer P (1990) Unilateral reorientation of microtubules at the outer epidermal wall during photo- and gravitropic curvature of maize coleoptiles and sunflower hypocotyls. Planta 181: 162–168

    Google Scholar 

  • Okada K, Shimura Y (1990) Reversible root tip rotation in Arabidopsis seedlings induced by obstacle-touching stimulus. Science 25: 274–276

    Google Scholar 

  • Rademacher E, Klämbt D (1993) Auxin dependent growth and auxin binding proteins in primary roots and root hairs of corn (Zea mays L.). J Plant Physiol 141: 698–703

    Google Scholar 

  • Steen DA, Chadwick AV (1973) Effects of cycloheximide on indoleacetic acid-induced ethylene production in pea root tips. Plant Physiol 52: 171–173

    Google Scholar 

  • Young LM, Evans ML, Hertel R (1990) Correlations between gravitropic curvature and auxin movement across gravistimulated roots ofZea mays. Plant Physiol 92: 792–796

    Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

Rights and permissions

Reprints and permissions

About this article

Cite this article

Blancaflor, E.B., Hasenstein, K.H. Time course and auxin sensitivity of cortical microtubule reorientation in maize roots. Protoplasma 185, 72–82 (1995). https://doi.org/10.1007/BF01272755

Download citation

  • Received:

  • Accepted:

  • Issue Date:

  • DOI: https://doi.org/10.1007/BF01272755

Keywords

Navigation