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Meta-analyses of microarrays of Arabidopsis asymmetric leaves1 (as1), as2 and their modifying mutants reveal a critical role for the ETT pathway in stabilization of adaxial-abaxial patterning and cell division during leaf development.
- Source :
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Plant & cell physiology [Plant Cell Physiol] 2013 Mar; Vol. 54 (3), pp. 418-31. Date of Electronic Publication: 2013 Feb 08. - Publication Year :
- 2013
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Abstract
- It is necessary to use algorithms to analyze gene expression data from DNA microarrays, such as in clustering and machine learning. Previously, we developed the knowledge-based fuzzy adaptive resonance theory (KB-FuzzyART), a clustering algorithm suitable for analyzing gene expression data, to find clues for identifying gene networks. Leaf primordia form around the shoot apical meristem (SAM), which consists of indeterminate stem cells. Upon initiation of leaf development, adaxial-abaxial patterning is crucial for lateral expansion, via cellular proliferation, and the formation of flat symmetric leaves. Many regulatory genes that specify such patterning have been identified. Analysis by the KB-FuzzyART and subsequent molecular and genetic analyses previously showed that ASYMMETRIC LEAVES1 (AS1) and AS2 repress the expression of some abaxial-determinant genes, such as AUXIN RESPONSE FACTOR3 (ARF3)/ETTIN (ETT) and ARF4, which are responsible for defects in leaf adaxial-abaxial polarity in as1 and as2. In the present study, genetic analysis revealed that ARF3/ETT and ARF4 were regulated by modifier genes, BOBBER1 (BOB1) and ELONGATA3 (ELO3), together with AS1-AS2. We analyzed expression arrays with as2 elo3 and as2 bob1, and extracted genes downstream of ARF3/ETT by using KB-FuzzyART and molecular analyses. The results showed that expression of Kip-related protein (KRP) (for inhibitors of cyclin-dependent protein kinases) and Isopentenyltransferase (IPT) (for biosynthesis of cytokinin) genes were controlled by AS1-AS2 through ARF3/ETT and ARF4 functions, which suggests that the AS1-AS2-ETT pathway plays a critical role in controlling the cell division cycle and the biosynthesis of cytokinin around SAM to stabilize leaf development in Arabidopsis thaliana.
- Subjects :
- Algorithms
Alkyl and Aryl Transferases genetics
Alkyl and Aryl Transferases metabolism
Arabidopsis growth & development
Arabidopsis physiology
Arabidopsis Proteins metabolism
Cell Division
Cluster Analysis
DNA-Binding Proteins genetics
DNA-Binding Proteins metabolism
Gene Expression Profiling
Indoleacetic Acids metabolism
Meristem genetics
Meristem growth & development
Meristem physiology
Models, Molecular
Mutation
Nuclear Proteins genetics
Nuclear Proteins metabolism
Oligonucleotide Array Sequence Analysis
Phenotype
Plant Growth Regulators metabolism
Plant Leaves growth & development
Plant Leaves physiology
Plant Shoots genetics
Plant Shoots growth & development
Plant Shoots physiology
Transcription Factors genetics
Transcription Factors metabolism
Arabidopsis genetics
Arabidopsis Proteins genetics
Gene Expression Regulation, Plant
Plant Leaves genetics
Subjects
Details
- Language :
- English
- ISSN :
- 1471-9053
- Volume :
- 54
- Issue :
- 3
- Database :
- MEDLINE
- Journal :
- Plant & cell physiology
- Publication Type :
- Academic Journal
- Accession number :
- 23396601
- Full Text :
- https://doi.org/10.1093/pcp/pct027