Distinct Calcium Signaling Pathways Regulate Calmodulin Gene Expression in Tobacco

Author:

van der Luit Arnold H.1,Olivari Claudio2,Haley Ann3,Knight Marc R.4,Trewavas Anthony J.3

Affiliation:

1. Institute for Molecular Cell Biology, University of Amsterdam, Kruislaan 318, 1098 SM Amsterdam, The Netherlands (A.H.v.d.L.);

2. Dipartimento di Biologia, Sezione Biochimica e Fisiologia delle Piante, University of Milan, Via Celoria 26, 20133 Milano, Italy (C.O.); and

3. Institute of Cell and Molecular Biology, University of Edinburgh, Mayfield Road, Edinburgh EH9 3JH, United Kingdom (A.H., A.J.T.);

4. Department of Plant Sciences, University of Oxford, South Parks Road, Oxford OX1 3RB, United Kingdom (M.R.K.)

Abstract

Abstract Cold shock and wind stimuli initiate Ca2+ transients in transgenic tobacco (Nicotiana plumbaginifolia) seedlings (named MAQ 2.4) containing cytoplasmic aequorin. To investigate whether these stimuli initiate Ca2+ pathways that are spatially distinct, stress-induced nuclear and cytoplasmic Ca2+ transients and the expression of a stress-induced calmodulin gene were compared. Tobacco seedlings were transformed with a construct that encodes a fusion protein between nucleoplasmin (a major oocyte nuclear protein) and aequorin. Immunocytochemical evidence indicated targeting of the fusion protein to the nucleus in these plants, which were named MAQ 7.11. Comparison between MAQ 7.11 and MAQ 2.4 seedlings confirmed that wind stimuli and cold shock invoke separate Ca2+ signaling pathways. Partial cDNAs encoding two tobacco calmodulin genes, NpCaM-1 andNpCaM-2, were identified and shown to have distinct nucleotide sequences that encode identical polypeptides. Expression ofNpCaM-1, but not NpCaM-2, responded to wind and cold shock stimulation. Comparison of the Ca2+dynamics with NpCaM-1 expression after stimulation suggested that wind-induced NpCaM-1 expression is regulated by a Ca2+ signaling pathway operational predominantly in the nucleus. In contrast, expression ofNpCaM-1 in response to cold shock is regulated by a pathway operational predominantly in the cytoplasm.

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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