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PMID: 15299121 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Functional characterization of OsMADS18, a member of the AP1/SQUA subfamily of MADS box genes.

Plant physiology ·Vol. 135 ·No. 4 ·2004-08-00 ·Pages 2207-19

Fornara F, Parenicová L, Falasca G, Pelucchi N, Masiero S, Ciannamea S, Lopez-Dee Z, Altamura MM, Colombo L, Kater MM

Abstract

MADS box transcription factors controlling flower development have been isolated and studied in a wide variety of organisms. These studies have shown that homologous MADS box genes from different species often have similar functions. OsMADS18 from rice (Oryza sativa) belongs to the phylogenetically defined AP1/SQUA group. The MADS box genes of this group have functions in plant development, like controlling the transition from vegetative to reproductive growth, determination of floral organ identity, and regulation of fruit maturation. In this paper we report the functional analysis of OsMADS18. This rice MADS box gene is widely expressed in rice with its transcripts accumulated to higher levels in meristems. Overexpression of OsMADS18 in rice induced early flowering, and detailed histological analysis revealed that the formation of axillary shoot meristems was accelerated. Silencing of OsMADS18 using an RNA interference approach did not result in any visible phenotypic alteration, indicating that OsMADS18 is probably redundant with other MADS box transcription factors. Surprisingly, overexpression of OsMADS18 in Arabidopsis caused a phenotype closely resembling the ap1 mutant. We show that the ap1 phenotype is not caused by down-regulation of AP1 expression. Yeast two-hybrid experiments showed that some of the natural partners of AP1 interact with OsMADS18, suggesting that the OsMADS18 overexpression phenotype in Arabidopsis is likely to be due to the subtraction of AP1 partners from active transcription complexes. Thus, when compared to AP1, OsMADS18 during evolution seems to have conserved the mechanistic properties of protein-protein interactions, although it cannot complement the AP1 function.

MeSH Terms
Amino Acid Sequence Arabidopsis/genetics Flowers/genetics MADS Domain Proteins/chemistry,genetics Molecular Sequence Data Oryza/genetics Sequence Alignment Sequence Homology, Amino Acid Transcription Factors/genetics Zea mays/genetics
Chemicals
MADS Domain Proteins Transcription Factors
Authors & Affiliations
10 authors, click to expand affiliations / ORCID
Fornara Fabio
Dipartimento di Biologia, Università degli Studi di Milano, 20133 Milan, Italy.
Parenicová Lucie
Falasca Giuseppina
Pelucchi Nilla
Masiero Simona
Ciannamea Stefano
Lopez-Dee Zenaida
Altamura Maria Maddalena
Colombo Lucia
Kater Martin M
References (72)
72 references, click to expand
  1. Redundant regulation of meristem identity and plant architecture by FRUITFULL, APETALA1 and CAULIFLOWER.
    Development. 2000 Feb;127(4):725-34 PMID: 10648231
  2. Genetic Control of Flower Development by Homeotic Genes in Antirrhinum majus.
    Science. 1990 Nov 16;250(4983):931-6 PMID: 17746916
  3. 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
  4. Genetic interactions among floral homeotic genes of Arabidopsis.
    Development. 1991 May;112(1):1-20 PMID: 1685111
  5. Ternary complex formation between the MADS-box proteins SQUAMOSA, DEFICIENS and GLOBOSA is involved in the control of floral architecture in Antirrhinum majus.
    EMBO J. 1999 Oct 1;18(19):5370-9 PMID: 10508169
  6. Evolution of floral meristem identity genes. Analysis of Lolium temulentum genes related to APETALA1 and LEAFY of Arabidopsis.
    Plant Physiol. 2001 Apr;125(4):1788-801 PMID: 11299359
  7. Floral homeotic mutations produced by transposon-mutagenesis in Antirrhinum majus.
    Genes Dev. 1990 Sep;4(9):1483-93 PMID: 1979295
  8. Phenotypic alterations of petal and sepal by ectopic expression of a rice MADS box gene in tobacco.
    Plant Mol Biol. 1995 Oct;29(1):1-10 PMID: 7579155
  9. Transformation of rice mediated by Agrobacterium tumefaciens.
    Plant Mol Biol. 1997 Sep;35(1-2):205-18 PMID: 9291974
  10. Identification of a rice APETALA3 homologue by yeast two-hybrid screening.
    Plant Mol Biol. 1999 May;40(1):167-77 PMID: 10394955
  11. Determination of the motif responsible for interaction between the rice APETALA1/AGAMOUS-LIKE9 family proteins using a yeast two-hybrid system.
    Plant Physiol. 1999 Aug;120(4):1193-204 PMID: 10444103
  12. The blooming of grass flower development.
    Curr Opin Plant Biol. 1998 Feb;1(1):60-7 PMID: 10066562
  13. MADS-box protein complexes control carpel and ovule development in Arabidopsis.
    Plant Cell. 2003 Nov;15(11):2603-11 PMID: 14555696
  14. The petunia MADS box gene FBP11 determines ovule identity.
    Plant Cell. 1995 Nov;7(11):1859-68 PMID: 8535139
  15. MADS box genes expressed in developing inflorescences of rice and sorghum.
    Mol Gen Genet. 1997 Feb 20;253(5):615-23 PMID: 9065695
  16. Ternary complex formation between MADS-box transcription factors and the histone fold protein NF-YB.
    J Biol Chem. 2002 Jul 19;277(29):26429-35 PMID: 11971906
  17. Molecular and genetic analyses of the silky1 gene reveal conservation in floral organ specification between eudicots and monocots.
    Mol Cell. 2000 Mar;5(3):569-79 PMID: 10882141
  18. Cloning, mapping and expression analysis of barley MADS-box genes.
    Plant Mol Biol. 2000 Apr;42(6):899-913 PMID: 10890536
  19. Floral dip: a simplified method for Agrobacterium-mediated transformation of Arabidopsis thaliana.
    Plant J. 1998 Dec;16(6):735-43 PMID: 10069079
  20. Characterization of two rice MADS box genes that control flowering time.
    Mol Cells. 1997 Aug 31;7(4):559-66 PMID: 9339904
  21. Function and regulation of the Arabidopsis floral homeotic gene PISTILLATA.
    Genes Dev. 1994 Jul 1;8(13):1548-60 PMID: 7958839
  22. Nuclear transcriptional activity of the tobacco plastid psbA promoter.
    Nucleic Acids Res. 1989 Jan 11;17(1):19-29 PMID: 2563150
  23. Prenylation of the floral transcription factor APETALA1 modulates its function.
    Plant Cell. 2000 Aug;12(8):1257-66 PMID: 10948247
  24. Characterization of tobacco MADS-box genes involved in floral initiation.
    Plant Cell Physiol. 2002 Feb;43(2):230-8 PMID: 11867703
  25. Functional analysis of the rice AP3 homologue OsMADS16 by RNA interference.
    Plant Mol Biol. 2003 Jul;52(5):957-66 PMID: 14558657
  26. The K domain mediates heterodimerization of the Arabidopsis floral organ identity proteins, APETALA3 and PISTILLATA.
    Plant J. 2003 Jan;33(1):47-59 PMID: 12943540
  27. Early flowering and reduced apical dominance result from ectopic expression of a rice MADS box gene.
    Plant Mol Biol. 1994 Oct;26(2):657-65 PMID: 7948920
  28. Identification of class B and class C floral organ identity genes from rice plants.
    Plant Mol Biol. 1998 Dec;38(6):1021-9 PMID: 9869408
  29. A novel class of MADS box genes is involved in ovule development in petunia.
    Plant Cell. 1995 Oct;7(10):1569-82 PMID: 7580252
  30. Sex determination in the monoecious species cucumber is confined to specific floral whorls.
    Plant Cell. 2001 Mar;13(3):481-93 PMID: 11251091
  31. Analysis of the petunia MADS-box transcription factor family.
    Mol Genet Genomics. 2003 Feb;268(5):598-606 PMID: 12589434
  32. Adaptation of photoperiodic control pathways produces short-day flowering in rice.
    Nature. 2003 Apr 17;422(6933):719-22 PMID: 12700762
  33. Negative regulation of the SHATTERPROOF genes by FRUITFULL during Arabidopsis fruit development.
    Science. 2000 Jul 21;289(5478):436-8 PMID: 10903201
  34. Duplication and diversification in the APETALA1/FRUITFULL floral homeotic gene lineage: implications for the evolution of floral development.
    Genetics. 2003 Oct;165(2):821-33 PMID: 14573491
  35. Mapping the protein regions responsible for the functional specificities of the Arabidopsis MADS domain organ-identity proteins.
    Proc Natl Acad Sci U S A. 1996 Apr 30;93(9):4063-70 PMID: 8633017
  36. Identification of two MADS box genes that are expressed in the apical meristem of the long-day plant Sinapis alba in transition to flowering.
    Plant J. 1996 Mar;9(3):399-408 PMID: 8919916
  37. Construction of an improved host strain for two hybrid screening.
    Nucleic Acids Res. 1994 Apr 25;22(8):1502-3 PMID: 8190644
  38. MADS box genes control vernalization-induced flowering in cereals.
    Proc Natl Acad Sci U S A. 2003 Oct 28;100(22):13099-104 PMID: 14557548
  39. Molecular characterization of the Arabidopsis floral homeotic gene APETALA1.
    Nature. 1992 Nov 19;360(6401):273-7 PMID: 1359429
  40. A characterization of the MADS-box gene family in maize.
    Plant J. 1995 Dec;8(6):845-54 PMID: 8580958
  41. B and C floral organ identity functions require SEPALLATA MADS-box genes.
    Nature. 2000 May 11;405(6783):200-3 PMID: 10821278
  42. A gene triggering flower formation in Arabidopsis.
    Nature. 1995 Oct 12;377(6549):522-4 PMID: 7566148
  43. AGL24 acts as a promoter of flowering in Arabidopsis and is positively regulated by vernalization.
    Plant J. 2003 Mar;33(5):867-74 PMID: 12609028
  44. Transcription factors do it together: the hows and whys of studying protein-protein interactions.
    Trends Plant Sci. 2002 Dec;7(12):531-4 PMID: 12475492
  45. Two rice MADS domain proteins interact with OsMADS1.
    Plant Mol Biol. 2000 Nov;44(4):513-27 PMID: 11197326
  46. The MADS box gene FBP2 is required for SEPALLATA function in petunia.
    Plant Cell. 2003 Apr;15(4):914-25 PMID: 12671087
  47. Complexes of MADS-box proteins are sufficient to convert leaves into floral organs.
    Nature. 2001 Jan 25;409(6819):525-9 PMID: 11206550
  48. leafy hull sterile1 is a homeotic mutation in a rice MADS box gene affecting rice flower development.
    Plant Cell. 2000 Jun;12(6):871-84 PMID: 10852934
  49. Use of T7 RNA polymerase to direct expression of cloned genes.
    Methods Enzymol. 1990;185:60-89 PMID: 2199796
  50. Analysis of PEAM4, the pea AP1 functional homologue, supports a model for AP1-like genes controlling both floral meristem and floral organ identity in different plant species.
    Plant J. 2001 Feb;25(4):441-51 PMID: 11260500
  51. Genomic libraries and a host strain designed for highly efficient two-hybrid selection in yeast.
    Genetics. 1996 Dec;144(4):1425-36 PMID: 8978031
  52. Positional cloning of the wheat vernalization gene VRN1.
    Proc Natl Acad Sci U S A. 2003 May 13;100(10):6263-8 PMID: 12730378
  53. OsMADS13, a novel rice MADS-box gene expressed during ovule development.
    Dev Genet. 1999 Sep;25(3):237-44 PMID: 10528264
  54. Structural diversification and neo-functionalization during floral MADS-box gene evolution by C-terminal frameshift mutations.
    Nucleic Acids Res. 2003 Aug 1;31(15):4401-9 PMID: 12888499
  55. Assessing the redundancy of MADS-box genes during carpel and ovule development.
    Nature. 2003 Jul 3;424(6944):85-8 PMID: 12840762
  56. Multiple AGAMOUS homologs from cucumber and petunia differ in their ability to induce reproductive organ fate.
    Plant Cell. 1998 Feb;10(2):171-82 PMID: 9490741
  57. Multiple interactions amongst floral homeotic MADS box proteins.
    EMBO J. 1996 Aug 15;15(16):4330-43 PMID: 8861961
  58. Function of the apetala-1 gene during Arabidopsis floral development.
    Plant Cell. 1990 Aug;2(8):741-53 PMID: 1983792
  59. Molecular evolution of flower development: diversification of the plant MADS-box regulatory gene family.
    Genetics. 1995 May;140(1):345-56 PMID: 7635298
  60. APETALA1 and SEPALLATA3 interact to promote flower development.
    Plant J. 2001 May;26(4):385-94 PMID: 11439126
  61. Molecular cloning of SVP: a negative regulator of the floral transition in Arabidopsis.
    Plant J. 2000 Feb;21(4):351-60 PMID: 10758486
  62. Ectopic expression of OsMADS3, a rice ortholog of AGAMOUS, caused a homeotic transformation of lodicules to stamens in transgenic rice plants.
    Plant Cell Physiol. 2002 Jan;43(1):130-5 PMID: 11828031
  63. Ovule-specific MADS-box proteins have conserved protein-protein interactions in monocot and dicot plants.
    Mol Genet Genomics. 2002 Oct;268(2):152-9 PMID: 12395189
  64. Systematic reverse genetic screening of T-DNA tagged genes in rice for functional genomic analyses: MADS-box genes as a test case.
    Plant Cell Physiol. 2003 Dec;44(12):1403-11 PMID: 14701936
  65. The TM5 MADS Box Gene Mediates Organ Differentiation in the Three Inner Whorls of Tomato Flowers.
    Plant Cell. 1994 Feb;6(2):175-186 PMID: 12244235
  66. AGAMOUS-LIKE 24, a dosage-dependent mediator of the flowering signals.
    Proc Natl Acad Sci U S A. 2002 Dec 10;99(25):16336-41 PMID: 12451184
  67. 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
  68. A small-scale procedure for the rapid isolation of plant RNAs.
    Nucleic Acids Res. 1989 Mar 25;17(6):2362 PMID: 2468132
  69. Relative strengths of the 35S cauliflower mosaic virus, 1', 2', and nopaline synthase promoters in transformed tobacco sugarbeet and oilseed rape callus tissue.
    Mol Gen Genet. 1988 Apr;212(1):182-90 PMID: 3163765
  70. Spatially and temporally regulated expression of rice MADS box genes with similarity to Arabidopsis class A, B and C genes.
    Plant Cell Physiol. 2000 Jun;41(6):710-8 PMID: 10945340
  71. The war of the whorls: genetic interactions controlling flower development.
    Nature. 1991 Sep 5;353(6339):31-7 PMID: 1715520
  72. Specific interactions between the K domains of AG and AGLs, members of the MADS domain family of DNA binding proteins.
    Plant J. 1997 Nov;12(5):999-1010 PMID: 9418042
Article Info
Journal
Plant physiology
Abbr.
Plant Physiol
ISSN
0032-0889
Published
2004-08-00
Epub
2004-00-06
Pages
2207-19
Language
English
Region
United States
NLM ID
0401224
PMCID
PMC520791
Subset
IM
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