Abstract
Arabidopsis thaliana is commonly regarded as a self-pollinated plant. We observed that the stigma in each flower of A. thaliana cannot be pollinated by its own pollen in the early phases of the flowering process, when the anthers had dehisced but the filaments were still too short for the pollen to be deposited on the stigma. In the later stages, after elongation of the filaments, self-pollination can occur. After artificial pollination of the flower of a wild plant with GFP transgenic pollen grains in earlier stages of flowering, GFP expressed within epidermal cells was detected in some of the offspring (26.1 - 57.1 %). Wind-mediated pollen dispersal was poor but is likely to exist in natural habitats, while insects were observed visiting flowers of A. thaliana in natural and experimental populations. We constructed an experimental population consisting of 28 GFP transgenic plants and 240 wild plants and examined gene flow in the population. The result was that the distance of gene flow was limited to 0.5 m. 22 offspring with expressed GFP were found in 28 299 filial individuals examined, which suggested a relatively low outcrossing rate (0.74 %). We conclude that outcrossing in populations of A. thaliana is mainly due to insect pollination. The data on gene flow could be useful to assess the ecological hazards of experimental transgene combinations.
Key words
Pollination mechanism - green fluorescent protein (GFP) - gene flow - outcrossing rate -
Arabidopsis thaliana.
References
-
1
Abbott R. J., Gomes M. F..
Population genetic structure and outcrossing rate of Arabidopsis thaliana (L.) Heynh.
Heredity.
(1989);
62
411-418
-
2
Bechtold N., Ellis J., Pelletier G..
In planta Agrobacterium mediated gene transfer by infiltration of adult Arabidopsis thaliana plants.
Comptes Rendus de l'Académie des Sciences - Series III - Sciences de la Vie.
(1993);
316
1194-1199
-
3 Bowman J..
Arabidopsis: an Atlas of Morphology and Development. Berlin; Springer-Verlag (1993)
-
4
Cheung A. Y..
Imaging elongating pollen tubes by green fluorescent protein.
Sex Plant Reproduction.
(2001);
14
9-14
-
5
Drescher W., Kranz A. R..
First evidence for entomogamous hybridization in Arabidopsis thaliana (L) Heynh.
Arabidopsis Information Service.
(1987);
23
41-45
-
6
Fedorenko O. M., Savushkin A. I., Olimpienko G. S..
Geneic diversity in natural populations of Arabidopsis thaliana (L.) Heynh. from Karelia.
Russian Journal of Genetics.
(2001);
37
162-167
-
7
Gepts P., Papa R..
Possible effects of (trans)gene flow from crops on the genetic diversity from landraces and wild relatives.
Environmental Biosafety Research.
(2003);
2
89-103
-
8
Haubold B., Kroymann J., Ratzka A., Mitchell-Olds T., Wiehe T..
Recombination and gene conversion in a 170-kb genomic region of Arabidopsis thaliana.
.
Genetics.
(2002);
161
1269-1278
-
9
Heim R., Cubitt A. B., Tsien R. Y..
Improved green fluorescence.
Nature.
(1995);
373
663-664
-
10
Hoffmann M. H., Bremer M., Schneider K., Burger F., Stolle E., Moritz G..
Flower visitors in a natural population of Arabidopsis thaliana.
.
Plant Biology.
(2003);
5
491-494
-
11
Hudson L. C., Chamberlain D., Stewart C. N. J..
GFP-tagged pollen to monitor pollen flow of transgenic plants.
Molecular Biology Note.
(2001);
1
321-324
-
12
Kuittinen H., Aguade M..
Nucleotide variation at the CHALCONE ISOMERASE locus in Arabidopsis thaliana.
.
Genetics.
(2000);
155
863-872
-
13
Murashige T., Skoog F..
A revised medium for rapid growth and bioassays with tobacco tissue culture.
Plant Physiology.
(1962);
15
473-497
-
14
Müller A..
Zur Charakterisierung der Blüten und Infloreszenzen von Arabidopsis thaliana (L.) Heynh.
Kulturpflanze.
(1961);
9
364-393
-
16
Schaal B. A..
Measurement of gene flow in Lupinus texensis.
.
Nature.
(1980);
284
450-451
-
17
Schmuths H., Hoffmann M. H., Bachmann K..
Geographic distribution and recombination of genomic fragments on the short arm of chromosome 2 of Arabidopsis thaliana.
.
Plant Biology.
(2004);
6
128-139
-
18
Slatkin M..
Gene flow and the geographic structure of natural population.
Science.
(1987);
236
787-792
-
19
Stahl E. A., Dwyer G., Mauricio T., Kreitman M., Bergelson J..
Dynamics of disease resistance polymorphism at the Rpm1 locus of Arabidopsis.
.
Nature.
(1999);
400
667-671
-
20
Stewart C. N. J..
Transgene flow and persistence may be monitored by using in vivo markers such as GFP.
BioSafety Journal.
(1996);
2
3-14
-
21
Stewart C. N. J., Halfhill M. D., Warwick S. I..
Transgene introgression from genetically modified crops to their wild relatives.
Genetics.
(2003);
4
206-217
-
22
Wang X.-F., Chen J.-K..
Floral expression, pollination mechanism and mating system of Sagittaria potamogetifolia.
.
Acta Phytoecologica Sinica.
(2001);
25
155-160
X.-F. Wang
Key Laboratory of MOE for Developmental Biology
College of Life Sciences
Wuhan University
Wuhan
P.R. China
eMail: wang-xiaofan@263.net
Editor: R. Mendel