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Pyruvate Decarboxylase Provides Growing Pollen Tubes with a Competitive Advantage in Petunia
Author(s) -
N. Gass,
Tatiana Glagotskaia,
Stefan Mellema,
Jeroen Stuurman,
Mario Barone,
Therese Mandel,
Ute Roessner,
Cris Kuhlemeier
Publication year - 2005
Publication title -
the plant cell
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.324
H-Index - 341
eISSN - 1532-298X
pISSN - 1040-4651
DOI - 10.1105/tpc.105.033290
Subject(s) - biology , pollen , pollen tube , pyruvate decarboxylase , petunia , gametophyte , mutant , alcohol dehydrogenase , biochemistry , dehydrogenase , enzyme , botany , pollination , gene
Rapid pollen tube growth places unique demands on energy production and biosynthetic capacity. The aim of this work is to understand how primary metabolism meets the demands of such rapid growth. Aerobically grown pollen produce ethanol in large quantities. The ethanolic fermentation pathway consists of two committed enzymes: pyruvate decarboxylase (PDC) and alcohol dehydrogenase (ADH). Because adh mutations do not affect male gametophyte function, the obvious question is why pollen synthesize an abundant enzyme if they could do just as well without. Using transposon tagging in Petunia hybrida, we isolated a null mutant in pollen-specific Pdc2. Growth of the mutant pollen tubes through the style is reduced, and the mutant allele shows reduced transmission through the male, when in competition with wild-type pollen. We propose that not ADH but rather PDC is the critical enzyme in a novel, pollen-specific pathway. This pathway serves to bypass pyruvate dehydrogenase enzymes and thereby maintain biosynthetic capacity and energy production under the unique conditions prevailing during pollen-pistil interaction.

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