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PMID: 7596816 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Chromosomal mapping of the MADS-box multigene family in Zea mays reveals dispersed distribution of allelic genes as well as transposed copies.

Nucleic acids research ·Vol. 23 ·No. 11 ·1995-06-11 ·Pages 1901-11

Fischer A, Baum N, Saedler H, Theissen G

Abstract

A linker PCR procedure has been developed for preparing repetitive DNA-free probes from genomic clones, which is especially efficient for members of gene families. Using this procedure as well as standard methods to prepare hybridization probes, chromosomal map positions of MADS-box genes were determined in recombinant inbred lines of maize (Zea mays ssp. mays). It appears that MADS-box genes are scattered throughout the maize genome. While there is evidence that this genomic distribution is representative for plant MADS-box genes in general, the following two other observations probably reflect Zea genome organization. First, at least one family of MADS-box-carrying elements contains line-specific versions, which are present in some maize lines at certain chromosomal positions, but are absent from these loci in other lines. The members of this family resemble transposable elements in some respects. Secondly, the finding of pairs of highly related MADS-box genes which are accompanied by other duplicated markers is a further indication of the ancestral polyploid genome constitution revealed with other markers. The importance of these findings for an understanding of the genomic organization of MADS-box genes and the evolution of the MADS-box gene family is discussed.

MeSH Terms
Alleles Amino Acid Sequence Base Sequence Chromosome Mapping DNA-Binding Proteins/genetics MADS Domain Proteins Molecular Sequence Data Plant Proteins/genetics Transcription Factors/genetics Zea mays/genetics
Chemicals
DNA-Binding Proteins MADS Domain Proteins Plant Proteins Transcription Factors
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Fischer A
Max-Planck-Institut für Züchtungsforschung, Abteilung Molekulare Pflanzengenetik, Köln, Germany.
Baum N
Saedler H
Theissen G
References (44)
44 references, click to expand
  1. Genetic Control of Flower Development by Homeotic Genes in Antirrhinum majus.
    Science. 1990 Nov 16;250(4983):931-6 PMID: 17746916
  2. Bracteomania, an inflorescence anomaly, is caused by the loss of function of the MADS-box gene squamosa in Antirrhinum majus.
    EMBO J. 1992 Apr;11(4):1239-49 PMID: 1563342
  3. Recombinant inbreds for molecular mapping in maize: theoretical and practical considerations.
    Trends Genet. 1991 Feb;7(2):55-60 PMID: 2035192
  4. The protein encoded by the Arabidopsis homeotic gene agamous resembles transcription factors.
    Nature. 1990 Jul 5;346(6279):35-9 PMID: 1973265
  5. Co-suppression of the petunia homeotic gene fbp2 affects the identity of the generative meristem.
    Plant J. 1994 Jan;5(1):33-44 PMID: 7907515
  6. Frequent loss of the En transposable element after excision and its relation to chromosome replication in maize (Zea mays L.).
    Genetics. 1994 Feb;136(2):653-71 PMID: 8150289
  7. Genome size and the proportion of repeated nucleotide sequence DNA in plants.
    Biochem Genet. 1974 Oct;12(4):257-69 PMID: 4441361
  8. Function and regulation of the Arabidopsis floral homeotic gene PISTILLATA.
    Genes Dev. 1994 Jul 1;8(13):1548-60 PMID: 7958839
  9. Complementary floral homeotic phenotypes result from opposite orientations of a transposon at the plena locus of Antirrhinum.
    Cell. 1993 Jan 15;72(1):85-95 PMID: 8093684
  10. Integration and nonrandom mutation of a plasma membrane proton ATPase gene fragment within the Bs1 retroelement of maize.
    Plant Cell. 1994 Aug;6(8):1177-86 PMID: 7919987
  11. Molecular basis of the cauliflower phenotype in Arabidopsis.
    Science. 1995 Jan 27;267(5197):522-5 PMID: 7824951
  12. Short introns interrupting the Oct-2 POU domain may prevent recombination between POU family genes without interfering with potential POU domain 'shuffling' in evolution.
    Biol Chem Hoppe Seyler. 1994 Oct;375(10):675-83 PMID: 7888080
  13. The zootype and the phylotypic stage.
    Nature. 1993 Feb 11;361(6412):490-2 PMID: 8094230
  14. Active maize genes are unmodified and flanked by diverse classes of modified, highly repetitive DNA.
    Genome. 1994 Aug;37(4):565-76 PMID: 7958822
  15. Genetic applications of an inverse polymerase chain reaction.
    Genetics. 1988 Nov;120(3):621-3 PMID: 2852134
  16. Cin4, an insert altering the structure of the A1 gene in Zea mays, exhibits properties of nonviral retrotransposons.
    EMBO J. 1987 Dec 20;6(13):3873-80 PMID: 16453815
  17. Mutations of the Adh1 gene in maize following infection with barley stripe mosaic virus.
    Mol Gen Genet. 1984;195(1-2):367-9 PMID: 6092861
  18. Molecular characterization of the Arabidopsis floral homeotic gene APETALA1.
    Nature. 1992 Nov 19;360(6401):273-7 PMID: 1359429
  19. Nonviral retroposons: genes, pseudogenes, and transposable elements generated by the reverse flow of genetic information.
    Annu Rev Biochem. 1986;55:631-61 PMID: 2427017
  20. Structural characterization, chromosomal localization and phylogenetic evaluation of two pairs of AGAMOUS-like MADS-box genes from maize.
    Gene. 1995 Apr 24;156(2):155-66 PMID: 7758952
  21. DNA class organization on maize Adh1 yeast artificial chromosomes.
    Proc Natl Acad Sci U S A. 1994 Feb 1;91(3):863-7 PMID: 8302858
  22. Maize transposable elements.
    Annu Rev Genet. 1989;23:71-85 PMID: 2559653
  23. If birds can fly, why can't we? Homeotic genes and evolution.
    Cell. 1994 Jul 29;78(2):175-80 PMID: 7913878
  24. The evolutionary dynamics of repetitive DNA in eukaryotes.
    Nature. 1994 Sep 15;371(6494):215-20 PMID: 8078581
  25. The MADS box gene family in tomato: temporal expression during floral development, conserved secondary structures and homology with homeotic genes from Antirrhinum and Arabidopsis.
    Plant J. 1991 Sep;1(2):255-66 PMID: 1688249
  26. Deficiens, a homeotic gene involved in the control of flower morphogenesis in Antirrhinum majus: the protein shows homology to transcription factors.
    EMBO J. 1990 Mar;9(3):605-13 PMID: 1968830
  27. GLOBOSA: a homeotic gene which interacts with DEFICIENS in the control of Antirrhinum floral organogenesis.
    EMBO J. 1992 Dec;11(13):4693-704 PMID: 1361166
  28. Colinearity and functional hierarchy among genes of the homeotic complexes.
    Trends Genet. 1994 Oct;10(10):358-64 PMID: 7985240
  29. Rapid production of full-length cDNAs from rare transcripts: amplification using a single gene-specific oligonucleotide primer.
    Proc Natl Acad Sci U S A. 1988 Dec;85(23):8998-9002 PMID: 2461560
  30. Evolution of gene networks by gene duplications: a mathematical model and its implications on genome organization.
    Proc Natl Acad Sci U S A. 1994 May 10;91(10):4387-91 PMID: 8183919
  31. Maize Floral Development: New Genes and Old Mutants.
    Plant Cell. 1993 Oct;5(10):1205-1215 PMID: 12271023
  32. Gene mapping with recombinant inbreds in maize.
    Genetics. 1988 Mar;118(3):519-26 PMID: 3366363
  33. Genetic and molecular analysis of a three-component transposable-element system in maize.
    Mol Gen Genet. 1993 Feb;237(1-2):105-12 PMID: 8384288
  34. The homeobox in perspective.
    Trends Biochem Sci. 1992 Aug;17(8):277-80 PMID: 1357790
  35. The homeotic gene APETALA3 of Arabidopsis thaliana encodes a MADS box and is expressed in petals and stamens.
    Cell. 1992 Feb 21;68(4):683-97 PMID: 1346756
  36. Partial sequencing and mapping of clones from two maize cDNA libraries.
    Plant Mol Biol. 1994 Nov;26(4):1085-101 PMID: 7811968
  37. Identification and molecular characterization of ZAG1, the maize homolog of the Arabidopsis floral homeotic gene AGAMOUS.
    Plant Cell. 1993 Jul;5(7):729-37 PMID: 8103379
  38. In vivo footprinting of a muscle specific enhancer by ligation mediated PCR.
    Science. 1989 Nov 10;246(4931):780-6 PMID: 2814500
  39. Control of floral organ identity by homeotic MADS-box transcription factors.
    Results Probl Cell Differ. 1994;20:235-58 PMID: 7913550
  40. The unfolding drama of flower development: recent results from genetic and molecular analyses.
    Genes Dev. 1994 Apr 1;8(7):745-56 PMID: 7926764
  41. AGL1-AGL6, an Arabidopsis gene family with similarity to floral homeotic and transcription factor genes.
    Genes Dev. 1991 Mar;5(3):484-95 PMID: 1672119
  42. Flower development and evolution: new answers and new questions.
    Proc Natl Acad Sci U S A. 1994 Jun 21;91(13):5735-7 PMID: 7912433
  43. Repetitive sequences and their organization on genomic clones of Zea mays.
    EMBO J. 1984 Jan;3(1):133-9 PMID: 16453490
  44. Building protein structure and function from modular units.
    Trends Biotechnol. 1994 May;12(5):168-72 PMID: 7764899
Article Info
Journal
Nucleic acids research
Abbr.
Nucleic Acids Res
ISSN
0305-1048
Published
1995-06-11
Pages
1901-11
Language
English
Region
England
NLM ID
0411011
PMCID
PMC306961
Subset
IM
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