Have a personal or library account? Click to login
Fluorescence lifetime imaging of red yeast Cystofilobasidium capitatum during growth Cover

Fluorescence lifetime imaging of red yeast Cystofilobasidium capitatum during growth

Open Access
|Apr 2018

References

  1. Irimia-Vladu M, Głowacki E, Voss G, Bauer S, Sariciftci N. Green and biodegradable electronics. Mater Today 2012; 15:340-346.10.1016/S1369-7021(12)70139-6
  2. Irimia-Vladu M, Troshin P, Reisinger M, et al. Environmentaly sustainable organic field effect transistors. Organic Electronics 2010; 11:1974-1990.10.1016/j.orgel.2010.09.007
  3. Marova I, Carnecka M, Halienova A, Breierova E, Koci R. Production of Carotenoid-/Ergosterol-Supplemented Biomass by Red Yeast Rhodotorula glutinis Grown Under External Stress. Food Technol Biotechnol 2010; 48:56-61.
  4. Frengova G, Beshkova D. Carotenoids from Rhodotorula and Phaffia: yeasts of biotechnological importance. J Ind Microbiol Biotechnol 2009; 36:163-180.1898237010.1007/s10295-008-0492-9
  5. Kandori H, Sasabe H, MimuroI M. Direct Determination of a Lifetime of the S2 State of Beta-Carotene by Femtosecond Time-Resolved Fluorescence Spectroscopy. J Am Chem Soc 1994; 116:2671-2672.10.1021/ja00085a078
  6. Xia S, Tan C, Zhang Y, Abbas S, Feng B, Zhang X, Qin F. Modulating effect of lipid bilayer–carotenoid interactions on the property of liposome encapsulation. Colloids and Surfaces B: Biointerfaces 2015; 128:172-180.10.1016/j.colsurfb.2015.02.004
  7. Schlee C, Miedl M, Leiper K, Stewart G. The Potential of Confocal Imaging for Measuring Physiological Changes in Brewer’s Yeast. J Inst Brew 2006; 112:134-14710.1002/j.2050-0416.2006.tb00243.x
  8. Murphy D. The biogenesis and functions of lipid bodies in animals, plants and microorganisms. Prog Lipid Res 2001; 40:325-438.10.1016/S0163-7827(01)00013-311470496
  9. Murphy S, Martin S, Parton R. Lipid droplet-organelle interactions; sharing the fats. Biochimica et Biophysica Acta (BBA) - Molecular and Cell Biology of Lipids 2009; 1791:441-447.10.1016/j.bbalip.2008.07.004
  10. Fujimoto T, Ohsaki Y, Cheng J, Suzuki M, Shinohara Y. Lipid droplets: a classic organelle with new outfits. Histochem Cell Biol 2008; 130:263-279.10.1007/s00418-008-0449-018546013
  11. Radulovic M, Knittelfelder O, Cristobal-Sarramian A, Kolb D, Wolinski H, Kohlwein S. The emergence of lipid droplets in yeast: current status and experimental approaches. Curr Genet 2013; 59:231-242.10.1007/s00294-013-0407-924057105
  12. Fei W, Shiu G, Zhang Y, Krahmer N, Ferguson C. A Role for Phosphatidic Acid in the Formation of “Supersized” Lipid Droplets. PLoS Genet 2011; 7:e1002201.10.1371/journal.pgen.100220121829381
  13. Rani S, Saha S, Rajasekharan R. A soluble diacylglycerol acyltransferase is involved in triacylglycerol biosynthesis in the oleaginous yeast Rhodotorula glutinis Microbiology 2012; 159:155-166.23103975
  14. An G.H, Suh O.S, Kwon H.C, Kim K, Johnson E.A. Quantification of carotenoids in cells of Phaffia rhodozyma by autofluorescence. Biotechnol Lett 2000; 22:1031-1034.10.1023/A:1005614010003
  15. Petrik S, Marova I, Haronikova A, Kostovova I, Breierova E. Production of biomass, carotenoid and other lipid metabolites by several red yeast strains cultivated on waste glycerol from biofuel production – a comparative screening study. Ann Microbiol 2013; 63:1537-1551.10.1007/s13213-013-0617-x
  16. Schneckenburger H. Fluorescence decay kinetics and imaging of NAD(P)H and flavins as metabolic indicators. Opt Eng 1992; 31:1447-1451.10.1117/12.57704
  17. Fabregas J, Dominguez A, Maseda A, Otero A.: Interactions between irradiance and nutrient availability during astaxanthin accumulation and degradation in Haematococcus pluvialis Appl Microbiol Biotechnol 2003; 61:545-551.1276457110.1007/s00253-002-1204-4
  18. Cutzu R, Clemente A, Reis A, Nobre B, Mannazzu I, Roseiro J, Lopes da Silva T.: Assessment of β-carotene content, cell physiology and morphology of the yellow yeast Rhodotorula glutinis mutant 400A15 using flow cytometry. J Ind Microbiol 2013; 40:865-875.
  19. Freitas C, Nobre B, Gouveia L, Roseiro J, Reis A, Lopes da Silva T.: New at-line flow cytometric protocols for determining carotenoid content and cell viability during Rhodosporidium toruloides NCYC 921 batch growth. Process Biochem 2014; 49: 554-562.10.1016/j.procbio.2014.01.022
  20. Freitas C, Parreira T, Roseiro J, Reis A, Lopes da Silva T.: Selecting low-cost carbon sources for carotenoid and lipid production by the pink yeast Rhodosporidium toruloides NCYC 921 using flow cytometry. Bioresour Technolog 2014; 158:355-359.10.1016/j.biortech.2014.02.071
Language: English
Page range: 114 - 120
Published on: Apr 25, 2018
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2018 Martin Vanek, Filip Mravec, Martin Szotkowski, Dana Byrtusova, Andrea Haronikova, Milan Certik, Volha Shapaval, Ivana Marova, published by European Biotechnology Thematic Network Association
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.