specific aims): The investigator proposes to continue her research effort in understanding how phytochrome regulates gene expression. In the past, this investigator has successfully identified several promoter elements involved in phytochrome control of transription activity in both positively and negatively light regulated genes in Lemna and Arabidopsis. Further, a gene encodes a defined DNA element-binding protein CA1 have been cloned and one of its putative interactive partner, a CKII beta subunit, have been isolated using yeast two hybrid screen. The proposed work continues and expands those studies in three major areas. First, investigation of the regulation and function of CA1, a transcription factor that binds to a region of the Arabidopsis Lhcb1*3 that is necessary for phytochrome regulation. This will be achieved by investigating: (1) the expression, activity, cellular localization and their possible light regulation mediated by phytochrome; (2) possible covalent modification involved in light control of CA1 activity mediated by phytochrome; (3) significance of CA1 interaction with beta subunit of CKII, and (4) characterization of the phenotypic effects of CA1 overexpression. The second area (Objectives 2, 3, and 4) will be further analysis of promoter characterization and transcription factors identification. Specifically, previous experiment suggested that there are other regions in Arabidopsis Lhcb1*3 promoter beside CA1-binding site is also important for its phytochrome modulation. Two regions with sequence similarity to other phytochrome responsive elements will be focused on in future analysis. Also, transcription factors with capability to interact with the defined lemna Lhcb2*1 promoter's phytochrome regulatory regions will be identified, in addition to identify additional phytochrome regulatory regions in the same promoter. Further, homologous and heterologous transient assay systems will be developed for investigating the in vivo interactions of the transcription factors and the promoters they bind. The third major aspect of the investigation is the isolation and characterization of mutants in the phytochrome signaling pathway of Arabidopsis that specifically affect the phytochrome regulation of transcription of Lhcb genes. For this purpose, a Lhcb promoter-Nitrate reductase fusion has been used as a counter-selection and some promising putative mutant lines have been isolated. The investigator proposes to not only characterize those available mutants, but further isolate and characterize new mutants. The eventual goal here is to clone and characterize the genes identified.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
5R01GM023167-24
Application #
6018467
Study Section
Molecular Cytology Study Section (CTY)
Program Officer
Anderson, James J
Project Start
1976-06-01
Project End
2002-02-28
Budget Start
1999-08-01
Budget End
2002-02-28
Support Year
24
Fiscal Year
1999
Total Cost
Indirect Cost
Name
University of California Los Angeles
Department
Biochemistry
Type
Schools of Arts and Sciences
DUNS #
119132785
City
Los Angeles
State
CA
Country
United States
Zip Code
90095
Liu, Hongtao; Wang, Qin; Liu, Yawen et al. (2013) Arabidopsis CRY2 and ZTL mediate blue-light regulation of the transcription factor CIB1 by distinct mechanisms. Proc Natl Acad Sci U S A 110:17582-7
Lu, Sheen X; Webb, Candace J; Knowles, Stephen M et al. (2012) CCA1 and ELF3 Interact in the control of hypocotyl length and flowering time in Arabidopsis. Plant Physiol 158:1079-88
Lu, Sheen X; Knowles, Stephen M; Webb, Candace J et al. (2011) The Jumonji C domain-containing protein JMJ30 regulates period length in the Arabidopsis circadian clock. Plant Physiol 155:906-15
Bu, Qingyun; Zhu, Ling; Dennis, Michael D et al. (2011) Phosphorylation by CK2 enhances the rapid light-induced degradation of phytochrome interacting factor 1 in Arabidopsis. J Biol Chem 286:12066-74
Lu, Sheen X; Tobin, Elaine M (2011) Chromatin remodeling and the circadian clock: Jumonji C-domain containing proteins. Plant Signal Behav 6:810-4
Lu, Sheen X; Liu, Hongtao; Knowles, Stephen M et al. (2011) A role for protein kinase casein kinase2 *-subunits in the Arabidopsis circadian clock. Plant Physiol 157:1537-45
Lu, Sheen X; Knowles, Stephen M; Andronis, Christos et al. (2009) CIRCADIAN CLOCK ASSOCIATED1 and LATE ELONGATED HYPOCOTYL function synergistically in the circadian clock of Arabidopsis. Plant Physiol 150:834-43
Gardner, Gary; Lin, Chentao; Tobin, Elaine M et al. (2009) Photobiological properties of the inhibition of etiolated Arabidopsis seedling growth by ultraviolet-B irradiation. Plant Cell Environ 32:1573-83
Andronis, Christos; Barak, Simon; Knowles, Stephen M et al. (2008) The clock protein CCA1 and the bZIP transcription factor HY5 physically interact to regulate gene expression in Arabidopsis. Mol Plant 1:58-67
Knowles, Stephen M; Lu, Sheen X; Tobin, Elaine M (2008) Testing time: can ethanol-induced pulses of proposed oscillator components phase shift rhythms in Arabidopsis? J Biol Rhythms 23:463-71

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