| Literature DB >> 31889099 |
Minako Hirano1, Masumi Takebe2, Tomoya Ishido3, Toru Ide3, Shigeru Matsunaga4.
Abstract
Photoactivated adenylyl cyclase (PAC) is a unique protein that, upon blue light exposure, catalyzesEntities:
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Year: 2019 PMID: 31889099 PMCID: PMC6937261 DOI: 10.1038/s41598-019-56721-3
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Structure of OaPAC, and amino acid sequences of the C-terminal region of PACs and their mutants. (a) Schematic representation of OaPAC. (b) Amino acid sequences of the C-terminal region of OaPAC (NCBI, WP_015149803.1), deletion mutants of OaPAC (Oa-363, Oa-360, Oa-357, Oa-354, Oa-351, and Oa-348), bPAC (GenBank: GU461306.2), bPAC mutant (bPAC + 15), and PAC α-chain from Euglena gracilis (PACα). Amino acids highlighted in yellow represent conserved ones.
Figure 2C-terminal deletion mutants showed high photoactivity. HEK cells expressing WT, Oa-360, and Oa-348 were exposed to blue light, and the resulting cAMP-dependent luminescence was detected. (a) Representative sequential luminescence images after illumination. The inset shows quantitative plots of luminescence intensities after exposure to blue light at 4.5 × 102 µmol m−2 s−1 for 20 s. Under the same irradiation condition (4.5 × 102 µmol m−2 s−1 for 20 s), the luminescence of Oa-348 and Oa-360 was obviously high, while that of the WT was mostly undetectable. The luminescence of the WT was clearly detected by longer exposure to more intense blue light (5.7 × 103 µmol m−2 s−1, 60 s). (b) Time course of cAMP-dependent luminescence intensities (left) and integrated luminescence intensities (right) at indicated blue light intensities. C-terminal deletion mutants were activated by weaker blue light intensities, and they produced a larger amount of cAMP than the WT.
Figure 3The nine amino acids at the C-terminal critically affect the photoactivity. Dose-response curves for the photoactivities of PACs. cAMP-dependent luminescence of each cell was measured, and the total cAMP-dependent luminescence of each cell was normalized to their expression. Data were collected from different cells, and normalized luminescence was plotted against irradiated intensities. PACs with shorter C-terminal regions produced larger amounts of cAMP. However, the deletion of more than nine amino acids did not further increase their activities. Bars indicate mean ± S.D. (n ≥ 25).
Figure 4The C-terminal region of OaPAC did not affect the activity of bPAC. HEK cells expressing bPAC or bPAC + 15 were illuminated with blue light, and the cAMP yield was detected as luminescence. (a) Representative cAMP-dependent luminescence every 1 minute after blue light illumination is shown at indicated intensities. (b) Normalized total cAMP-dependent luminescence of bPAC and bPAC + 15 versus blue light intensities is shown. Data were collected from different cells. Bars indicate mean ± S.D. (n ≥ 21).
Figure 5The C-terminal region did not influence the structural changes in the BLUF domain. Structural changes in the BLUF domain, depending on blue-light irradiation, were detected by recording the absorption spectra. (a) OaPAC WT and mutants were irradiated with blue light for 20 s, and immediately after, absorption spectra were recorded every 0.4 s. (b) Representative absorption spectra of the WT, Oa-360, and Oa-348 at irradiation intensity of 4.5 × 102 µmol m−2 s−1. Spectra after every 1.2 s are shown in the indicated color in (a). (c) Absorption differences between light-adapted states and dark-adapted states at 492 nm for each irradiated intensity. Bars indicate mean ± S.D. (n ≥ 3). Absorption differences were analyzed using one-way ANOVA (4.9 × 10 µmol m−2 s−1; F (6, 14) = 14.008, P < 0.0001. 1.4 × 102 µmol m−2 s−1; F (6, 17) = 42.151, P < 0.0001. 4.5 × 102 µmol m−2 s−1; F (6, 43) = 279.281, P < 0.0001) followed by the Tukey–Kramer test (*P < 0.05; ** P < 0.01; ***P < 0.0001 vs. WT). (d) Time constants of structural changes from light-adapted states to the dark-adapted states at 492 nm for each irradiated intensity. Bars indicate mean ± S.D. (n ≥ 3). The time constants of rates were analyzed using one-way ANOVA, and no statistically significant difference was found between the WT and mutants (4.9 × 10 µmol m−2 s−1; F (6, 14) = 1.776, P = 0.176. 1.4 × 102 μmol m−2 s−1; F (6, 17) = 1.103, P = 0.401. 4.5 × 102 µmol m−2 s−1; F (6, 43) = 0.294, P = 0.936).
Figure 6Model of inhibition of adenylyl cyclase activity by the C-terminal region. (a) The C-terminal region inhibits the conformational changes of the AC domain, thereby preventing cAMP production from ATP. (b) The C-terminal region inhibits ATP binding to the active site.