Green bioprinting: Viability and growth analysis of microalgae immobilized in 3D‐plotted hydrogels versus suspension cultures
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Thomas Bley | Jost Weber | Anja Lode | Michael Gelinsky | Felix Krujatz | A. Lode | M. Gelinsky | J. Weber | T. Bley | F. Krujatz | Sophie Brüggemeier | Kathleen Schütz | Julius Kramer | K. Schütz | S. Brüggemeier | J. Kramer | Kathleen Schütz
[1] H. Iwahashi,et al. A Simple and Rapid Dual‑fluorescence Viability Assay for Microalgae , 2004 .
[2] Sashenka Fierro,et al. Nitrate and phosphate removal by chitosan immobilized Scenedesmus. , 2008, Bioresource technology.
[3] P. Pribyl,et al. Flow cytometry for the development of biotechnological processes with microalgae. , 2013, Biotechnology advances.
[4] Hong-Ying Hu,et al. Growth and lipid accumulation properties of a freshwater microalga Scenedesmus sp. under different cultivation temperature. , 2011, Bioresource technology.
[5] A. Krieger-Liszkay,et al. Photoinhibition: molecular mechanisms and physiological significance. , 2011, Physiologia plantarum.
[6] Man Kee Lam,et al. Immobilization as a feasible method to simplify the separation of microalgae from water for biodiesel production. , 2012 .
[7] C. Bertino,et al. Viability of the marine microalga Tetraselmis suecica grown free and immobilized in alginate beads , 1998, Aquaculture International.
[8] Milan Straškraba,et al. Effect of photoinhibition on algal photosynthesis: a dynamic model , 2000 .
[9] G. Cuniberti,et al. Biotechnological hydrogen production by photosynthesis , 2014 .
[10] C. M. Yentsch,et al. Rapid analytical technique for the assessment of cell metabolic activity in marine microalgae. , 1989, Cytometry.
[11] A. Rubin,et al. Membrane lipid peroxidation, cell viability and Photosystem II activity in the green alga Chlorella pyrenoidosa subjected to various stress conditions , 1998 .
[12] René H. Wijffels,et al. Effects of shear stress on the microalgae Chaetoceros muelleri , 2010, Bioprocess and biosystems engineering.
[13] Thomas Bley,et al. Green bioprinting: Fabrication of photosynthetic algae‐laden hydrogel scaffolds for biotechnological and medical applications , 2015 .
[14] I. Moreno-Garrido. Microalgae immobilization: current techniques and uses. , 2008, Bioresource technology.
[15] Yoshitomo Watanabe,et al. High photosynthetic productivity of green microalga Chlorella sorokiniana , 2000, Applied biochemistry and biotechnology.
[16] Singh Yashverry. Photosynthetic activity, and lipid and hydrocarbon production by alginate-immobilized cells of Botryococcus in relation to growth phase , 2003 .
[17] P. Spolaore,et al. Commercial applications of microalgae. , 2006, Journal of bioscience and bioengineering.
[18] A. Pacheco,et al. Assessment of microalgae viability employing insulator-based dielectrophoresis , 2011 .
[19] Klaus Hellgardt,et al. Effect of the light regime and phototrophic conditions on growth of the H2-producing green alga Chlamydomonas reinhardtii , 2012 .
[20] L. Peperzak,et al. FLOW CYTOMETRIC APPLICABILITY OF FLUORESCENT VITALITY PROBES ON PHYTOPLANKTON 1 , 2011, Journal of phycology.
[21] M. Lenjou,et al. Flow cytometric analysis of the cadmium-exposed green alga Chlamydomonas reinhardtii (Chlorophyceae) , 2009 .
[22] D. Voltolina,et al. Growth of Synechococcus sp. immobilized in chitosan with different times of contact with NaOH , 2006, Journal of Applied Phycology.
[23] J. Navarro,et al. Glycerol production byDunaliella tertiolecta immobilized within Ca-alginate beads , 1986, Biotechnology Letters.
[24] Elizabeth H. Harris,et al. The Chlamydomonas Sourcebook: A Comprehensive Guide to Biology and Laboratory Use , 1989 .
[25] R. Prado,et al. Screening acute cytotoxicity biomarkers using a microalga as test organism. , 2012, Ecotoxicology and environmental safety.
[26] D. Veal,et al. A flow-cytometric method for determination of yeast viability and cell number in a brewery. , 2003, FEMS yeast research.
[27] J. Pires,et al. The effect of light supply on microalgal growth, CO2 uptake and nutrient removal from wastewater , 2014 .
[28] Gokare A. Ravishankar,et al. Biotransformation of codeine to morphine in freely suspended cells and immobilized cultures of Spirulina platensis , 1999 .
[29] A. Converti,et al. EFFECT OF TEMPERATURE AND NITROGEN CONCENTRATION ON THE GROWTH AND LIPID CONTENT OF NANNOCHLOROPSIS OCULATA AND CHLORELLA VULGARIS FOR BIODIESEL PRODUCTION , 2009 .
[30] J. Stauber,et al. Applications of flow cytometry to ecotoxicity testing using microalgae. , 2002, Trends in biotechnology.
[31] Clemens Posten,et al. Design principles of photo‐bioreactors for cultivation of microalgae , 2009 .
[32] P. Suarez‐Bregua,et al. Flow cytometric analysis to evaluate physiological alterations in herbicide-exposed Chlamydomonas moewusii cells , 2012, Ecotoxicology.
[33] Liandong Zhu,et al. Microalgal biofuels: Flexible bioenergies for sustainable development , 2014 .
[34] Myra N. Chávez,et al. Development of photosynthetic biomaterials for in vitro tissue engineering. , 2014, Acta biomaterialia.
[35] H. D. Kumar,et al. Use of natural polymers as immobilizing agents and effects on the growth of Dunaliella salina and its glycerol production , 1999 .
[36] G. Markou,et al. Microalgae for high-value compounds and biofuels production: a review with focus on cultivation under stress conditions. , 2013, Biotechnology advances.
[37] Thomas Bley,et al. Origin and analysis of microbial population heterogeneity in bioprocesses. , 2010, Current opinion in biotechnology.
[38] R. O. Cañizares-Villanueva,et al. Heavy metal detoxification in eukaryotic microalgae. , 2006, Chemosphere.
[39] S. Venkata Mohan,et al. Temperature induced stress influence on biodiesel productivity during mixotrophic microalgae cultivation with wastewater. , 2014, Bioresource technology.
[40] S. Hanada,et al. Estimating the viability of Chlorella exposed to oxidative stresses based around photocatalysis , 2013 .
[41] C. Ugwu,et al. Influence of irradiance, dissolved oxygen concentration, and temperature on the growth of Chlorella sorokiniana , 2007, Photosynthetica.
[42] D. Kletsas,et al. Rapid assessment of the physiological status of Streptococcus macedonicus by flow cytometry and fluorescence probes. , 2006, International journal of food microbiology.