Involvement of the Sieve Element Cytoskeleton in Electrical Responses to Cold Shocks

Author:

Hafke Jens B.1,Ehlers Katrin12,Föller Jens12,Höll Sabina-Roxana1,Becker Stefanie1,van Bel Aart J.E.1

Affiliation:

1. Plant Cell Physiology Group, Institute of Plant Physiology (J.B.H., S.-R.H., S.B.), and Plant Cell Biology Research Group, Institute of General Botany (J.B.H., K.E., J.F., S.B., A.J.E.v.B.), Justus-Liebig-University, D–35390 Giessen, Germany; and

2. Institute of Botany, Justus-Liebig-University, D–35392 Giessen, Germany (K.E., J.F.)

Abstract

Abstract This study dealt with the visualization of the sieve element (SE) cytoskeleton and its involvement in electrical responses to local cold shocks, exemplifying the role of the cytoskeleton in Ca2+-triggered signal cascades in SEs. High-affinity fluorescent phalloidin as well as immunocytochemistry using anti-actin antibodies demonstrated a fully developed parietal actin meshwork in SEs. The involvement of the cytoskeleton in electrical responses and forisome conformation changes as indicators of Ca2+ influx was investigated by the application of cold shocks in the presence of diverse actin disruptors (latrunculin A and cytochalasin D). Under control conditions, cold shocks elicited a graded initial voltage transient, ƊV1, reduced by external La3+ in keeping with the involvement of Ca2+ channels, and a second voltage transient, ƊV2. Cytochalasin D had no effect on ƊV1, while ƊV1 was significantly reduced with 500 nm latrunculin A. Forisome dispersion was triggered by cold shocks of 4°C or greater, which was indicative of an all-or-none behavior. Forisome dispersion was suppressed by incubation with latrunculin A. In conclusion, the cytoskeleton controls cold shock-induced Ca2+ influx into SEs, leading to forisome dispersion and sieve plate occlusion in fava bean (Vicia faba).

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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