Abstract
Phototropins (phot1 and phot2, formerly designated nph1 and npl1) are blue-light receptors that mediate phototropism, blue light-induced chloroplast relocation, and blue light-induced stomatal opening in Arabidopsis. Phototropins contain two light, oxygen, or voltage (LOV) domains at their N termini (LOV1 and LOV2), each a binding site for the chromophore flavin mononucleotide (FMN). Their C termini contain a serine/threonine protein kinase domain. Here, we examine the kinetic properties of the LOV domains of Arabidopsis phot1 and phot2, rice (Oryza sativa) phot1 and phot2, and Chlamydomonas reinhardtii phot. When expressed in Escherichia coli, purified LOV domains from all phototropins examined bind FMN tightly and undergo a self-contained photocycle, characterized by fluorescence and absorption changes induced by blue light (T. Sakai, T. Kagawa, M. Kasahara, T.E. Swartz, J.M. Christie, W.R. Briggs, M. Wada, K. Okada [2001] Proc Natl Acad Sci USA 98: 6969-6974; M. Salomon, J.M. Christie, E. Knieb, U. Lempert, W.R. Briggs [2000] Biochemistry 39: 9401-9410). The photocycle involves the light-induced formation of a cysteinyl adduct to the C(4a) carbon of the FMN chromophore, which subsequently breaks down in darkness. In each case, the relative quantum efficiencies for the photoreaction and the rate constants for dark recovery of LOV1, LOV2, and peptides containing both LOV domains are presented. Moreover, the data obtained from full-length Arabidopsis phot1 and phot2 expressed in insect cells closely resemble those obtained for the tandem LOV-domain fusion proteins expressed in E. coli. For both Arabidopsis and rice phototropins, the LOV domains of phot1 differ from those of phot2 in their reaction kinetic properties and relative quantum efficiencies. Thus, in addition to differing in amino acid sequence, the phototropins can be distinguished on the basis of the photochemical cycles of their LOV domains. The LOV domains of C. reinhardtii phot also undergo light-activated spectral changes consistent with cysteinyl adduct formation. Thus, the phototropin family extends over a wide evolutionary range from unicellular algae to higher plants.
MeSH Terms
Animals
Arabidopsis/metabolism
Arabidopsis Proteins/genetics,metabolism,radiation effects
Binding Sites/radiation effects
Biological Transport
Chlamydomonas reinhardtii/metabolism
Chloroplasts/physiology,radiation effects
Cryptochromes
Darkness
Drosophila Proteins
Escherichia coli/genetics
Eye Proteins
Flavin Mononucleotide/metabolism,radiation effects
Flavoproteins/metabolism,radiation effects
Fluorescence
Gene Expression Regulation
Insecta/cytology,genetics
Kinetics
Light
Oryza/metabolism
Phosphoproteins/genetics,metabolism,radiation effects
Photochemistry
Photoreceptor Cells, Invertebrate
Photosynthetic Reaction Center Complex Proteins/metabolism,radiation effects
Phototropism
Protein Binding
Protein Serine-Threonine Kinases
Receptors, G-Protein-Coupled
Recombinant Fusion Proteins/metabolism,radiation effects
Chemicals
Arabidopsis Proteins
CRY1 protein, Arabidopsis
Cryptochromes
Drosophila Proteins
Eye Proteins
Flavoproteins
PHOT2 protein, Arabidopsis
Phosphoproteins
Photosynthetic Reaction Center Complex Proteins
Receptors, G-Protein-Coupled
Recombinant Fusion Proteins
cry protein, Drosophila
Flavin Mononucleotide
NPH1 protein, Arabidopsis
Protein Serine-Threonine Kinases
Authors & Affiliations
13 authors, click to expand affiliations / ORCID
Kasahara Masahiro
National Institute for Basic Biology, Okazaki 444-8585, Japan.
Swartz Trevor E
Olney Margaret A
Onodera Akihiko
Mochizuki Nobuyoshi
Fukuzawa Hideya
Asamizu Erika
Tabata Satoshi
Kanegae Hiromi
Takano Makoto
Christie John M
Nagatani Akira
Briggs Winslow R
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