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Plant Physiol. (1999) 121: 21-24 SCIENTIFIC CORRESPONDENCE Newly Discovered Plant c-myb-Like Genes Rewrite the Evolution of the Plant myb Gene Family1
Department of Plant Biology and Plant Biotechnology Center, The Ohio State University, Columbus, Ohio 43210
Transcription factors containing the
conserved Myb DNA-binding domain were first recognized in the form of
the v-myb oncogene of the avian myeloblastosis virus, but
have subsequently been found in diverse eukaryotic groups (Lipsick,
1996 Myb proteins are characterized by the presence of two or three Myb
motifs, each of which contains a helix-turn-helix structure with three
regularly spaced Trp residues (Lipsick, 1996 The pc-myb genes were identified while searching Arabidopsis
myb genes in the data produced by the genome sequencing
project based upon the presence of a Trp residue in the first helix of R3 (Fig. 1a), which is characteristic of
vertebrate Myb-domain proteins but occupied by a hydrophobic amino acid
in all described plant R2R3 Myb proteins (Martin and Paz-Ares, 1997
A direct relationship between the pc-myb genes in plants and
the vertebrate c-myb proto-oncogene is suggested by the
presence of conserved introns in the R1 and R3 Myb motifs, one of which is also present in D. discoideum (Fig. 1a). The position of
these introns is very different from those found in the R2R3
myb gene family (Romero et al., 1998 Myb domains formed by multiple Myb repeats probably arose by
duplication of an ancestral Myb motif. It has been proposed that the
duplication of R2 in an early form of two repeat Myb proteins gave rise
to the R1R2R3 Myb domains (Rosinski and Atchley, 1998 The close relationship between the pc-Myb proteins and the R1R2R3 Myb
proteins present in animals and D. discoideum suggested by
their intron-exon structure was confirmed by phylogenetic analyses of
R2R3 Myb sequences (Fig. 1b). These analyses also suggest that the gene
duplication resulting in pc-myb1 and pc-myb2
occurred after the divergence of plants from other eukaryotic groups.
Indeed, the existence of multiple pc-myb genes in
Arabidopsis suggests that these genes form a small gene family similar
to the one encoding the A-Myb, B-Myb, and c-Myb proteins, which
resulted from duplications within animals (Rosinski and Atchley 1998 The relationship between the diverse R2R3 myb gene family in
plants and the R1R2R3 myb gene family has been difficult to
establish. It has been proposed that either the plant R2R3
myb gene family reflects the duplication of an ancestral
R1R2R3 myb gene after the loss of the R1 motif or the
R2R3 myb gene family represents an ancient group of genes
that diversified within the higher plants (Lipsick, 1996 These analyses suggest a model in which the diverse R2R3 myb
gene family in plants arose by the loss of the R1 motif from a
pc-myb-like gene. After the loss of R1, the higher degree of divergence between plant R2R3 Myb proteins and the vertebrate c-Myb
proto-oncoprotein suggests that the rate at which amino acid
substitutions accumulated in R2R3 Myb proteins increased. Within the
R2R3 myb gene family, there have been additional
substitutions, such as the insertion of a functionally relevant residue
in R2 (Williams and Grotewold, 1997
* Corresponding author; e-mail grotewold.1{at}osu.edu; fax 614-292-5379. Received May 24, 1999;
accepted May 27, 1999.
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Copyright Clearance Center: 0032-0889/99/121//04
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