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1.
Nature ; 615(7952): 535-540, 2023 03.
Article in English | MEDLINE | ID: mdl-36859551

ABSTRACT

Energy transfer from light-harvesting ketocarotenoids to the light-driven proton pump xanthorhodopsins has been previously demonstrated in two unique cases: an extreme halophilic bacterium1 and a terrestrial cyanobacterium2. Attempts to find carotenoids that bind and transfer energy to abundant rhodopsin proton pumps3 from marine photoheterotrophs have thus far failed4-6. Here we detected light energy transfer from the widespread hydroxylated carotenoids zeaxanthin and lutein to the retinal moiety of xanthorhodopsins and proteorhodopsins using functional metagenomics combined with chromophore extraction from the environment. The light-harvesting carotenoids transfer up to 42% of the harvested energy in the violet- or blue-light range to the green-light absorbing retinal chromophore. Our data suggest that these antennas may have a substantial effect on rhodopsin phototrophy in the world's lakes, seas and oceans. However, the functional implications of our findings are yet to be discovered.


Subject(s)
Aquatic Organisms , Phototrophic Processes , Proton Pumps , Rhodopsins, Microbial , Aquatic Organisms/metabolism , Aquatic Organisms/radiation effects , Bacteria/metabolism , Bacteria/radiation effects , Carotenoids/metabolism , Color , Cyanobacteria/metabolism , Cyanobacteria/radiation effects , Heterotrophic Processes/radiation effects , Light , Oceans and Seas , Phototrophic Processes/radiation effects , Proton Pumps/metabolism , Proton Pumps/radiation effects , Rhodopsins, Microbial/metabolism , Rhodopsins, Microbial/radiation effects , Zeaxanthins/metabolism , Zeaxanthins/radiation effects , Lutein/metabolism , Lutein/radiation effects , Metagenome , Lakes
2.
Appl Spectrosc ; 71(5): 866-878, 2017 May.
Article in English | MEDLINE | ID: mdl-27381353

ABSTRACT

We investigated a quantitative imaging of reduced scattering coefficients µs'( λ) and the absorption coefficients µa( λ) of in vivo cortical tissues in the range from visible to near-infrared (NIR) wavelengths based on diffuse reflectance spectral imaging technique. In this method, diffuse reflectance images of in vivo cortical tissue are acquired at nine wavelengths (500, 520, 540, 560, 570, 580, 600, 730, and 760 nm). A multiple regression analysis aided by the Monte Carlo simulation for the absorbance spectra is then utilized to estimate the optical coefficients of cortical tissue. This analysis calculates the concentration of oxygenated hemoglobin and that of deoxygenated hemoglobin, the scattering amplitude a and the scattering power b. The spectrum of absorption coefficient is deduced from the estimated concentrations of oxygenated hemoglobin and deoxygenated hemoglobin. The spectrum of reduced scattering coefficient is determined by the estimated scattering amplitude and scattering power. The particle size distribution of microstructure is calculated from the estimated scattering power b for evaluating the morphological change in brain tissue quantitatively. Animal experiments with in vivo exposed brain of rats demonstrated that the responses of the absorption properties to hyperoxic and anoxic conditions are in agreement with the expected well-known cortical hemodynamics. The average particle size was significantly reduced immediately after the onset of anoxia and then it was changed into an increase, which implied the swelling and shrinkage of the cellular and subcellular structures induced by loss of tissue viability in brain tissue.


Subject(s)
Cerebrovascular Circulation/physiology , Hemodynamics/physiology , Spectrum Analysis/methods , Animals , Brain/diagnostic imaging , Hypoxia, Brain/diagnostic imaging , Male , Monte Carlo Method , Particle Size , Rats , Rats, Wistar , Scattering, Radiation
3.
J Biomed Opt ; 20(5): 051026, 2015 May.
Article in English | MEDLINE | ID: mdl-25614979

ABSTRACT

In order to estimate multispectral images of the absorption and scattering properties in the cerebral cortex of in vivo rat brain, we investigated spectral reflectance images estimated by the Wiener estimation method using a digital RGB camera. A Monte Carlo simulation-based multiple regression analysis for the corresponding spectral absorbance images at nine wavelengths (500, 520, 540, 560, 570, 580, 600, 730, and 760 nm) was then used to specify the absorption and scattering parameters of brain tissue. In this analysis, the concentrations of oxygenated hemoglobin and that of deoxygenated hemoglobin were estimated as the absorption parameters, whereas the coefficient a and the exponent b of the reduced scattering coefficient spectrum approximated by a power law function were estimated as the scattering parameters. The spectra of absorption and reduced scattering coefficients were reconstructed from the absorption and scattering parameters, and the spectral images of absorption and reduced scattering coefficients were then estimated. In order to confirm the feasibility of this method, we performed in vivo experiments on exposed rat brain. The estimated images of the absorption coefficients were dominated by the spectral characteristics of hemoglobin. The estimated spectral images of the reduced scattering coefficients had a broad scattering spectrum, exhibiting a larger magnitude at shorter wavelengths, corresponding to the typical spectrum of brain tissue published in the literature. The changes in the estimated absorption and scattering parameters during normoxia, hyperoxia, and anoxia indicate the potential applicability of the method by which to evaluate the pathophysiological conditions of in vivo brain due to the loss of tissue viability.


Subject(s)
Brain/pathology , Hemoglobins/chemistry , Spectrum Analysis/methods , Animals , Cerebral Cortex/pathology , Computer Simulation , Computers , Diagnostic Imaging/methods , Hemodynamics , Hypoxia/pathology , Image Processing, Computer-Assisted , Inhalation , Light , Male , Monte Carlo Method , Oxygen/chemistry , Oxygen Consumption , Rats , Rats, Wistar , Regression Analysis , Scattering, Radiation
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