Immobilization of Electroporated Cells for Fabrication of Cellular Biosensors: Physiological Effects of the Shape of Calcium Alginate Matrices and Foetal Calf Serum
<p>Effect of supplementation of 20% (v/v) FCS to the nutrient medium on the proliferation of electroporated Vero cells <span class="html-italic">in suspension</span> (black columns: day 1, white columns: day 2, gray columns: day 7) (<span class="html-italic">n</span> = 10 replications and error bars represent standard errors of the average value of all replications).</p> ">
<p>Effect of the shape of the immobilization matrix and the addition of 20% (v/v) FCS on the proliferation of electroporated Vero cells (electroinsertion of SOD, <span class="html-italic">n</span> = 10 replications and error bars represent standard errors of the weekly average value of all replications).</p> ">
<p>Effect of the shape of the immobilization matrix and the addition of 20% (v/v) FCS on the death of electroporated Vero cells, as indicated by trypan blue staining (electroinsertion of SOD. Percentage of dead cells which absorb the stain/cell density. <span class="html-italic">n</span>=10 replications and error bars represent standard errors of the weekly average value of all replications).</p> ">
Abstract
:1. Introduction
2. Experimental Section
2.1. Cell culture
2.1.1. Electroporation
2.1.2. Cell immobilization
- Ca–Alginate Thin Layer (TL). Following a modified procedure of the method described by De Backer et al. [15] and Kintzios et al. [10], one milliliter of cell suspension (electroporated or control) was mixed with 4% (w/v) sodium alginate solution (3 mL), then transferred on a filter paper (with a 5 cm diameter) soaked in a Petri dish in 0.8 M CaCl2 (1.5 mL). The resulting calcium alginate gel membrane, with dimensions 4 mm × 6 mm × 0.5 mm and containing cells, was solidified within 2–3 min and was 1 mm thick.
- Ca–Alginate Spherical Beads (SB). cell suspension (electroporated or control, 1 mL) was mixed with 4% (w/v) sodium alginate solution (3 mL) and then the mixture was added dropwise, by means of a 22G syringe, to 0.8 M CaCl2. Each of the resulting calcium alginate beads had an approximate diameter of 2.5–3 mm.
2.1.3. Cell storage in alginate gels
2.2. Optical microscopy assays
2.3. Chemicals
3. Results and Discussion
4. Conclusions
Acknowledgments
References
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Katsanakis, N.; Katsivelis, A.; Kintzios, S. Immobilization of Electroporated Cells for Fabrication of Cellular Biosensors: Physiological Effects of the Shape of Calcium Alginate Matrices and Foetal Calf Serum. Sensors 2009, 9, 378-385. https://doi.org/10.3390/s90100378
Katsanakis N, Katsivelis A, Kintzios S. Immobilization of Electroporated Cells for Fabrication of Cellular Biosensors: Physiological Effects of the Shape of Calcium Alginate Matrices and Foetal Calf Serum. Sensors. 2009; 9(1):378-385. https://doi.org/10.3390/s90100378
Chicago/Turabian StyleKatsanakis, Nikos, Andreas Katsivelis, and Spiridon Kintzios. 2009. "Immobilization of Electroporated Cells for Fabrication of Cellular Biosensors: Physiological Effects of the Shape of Calcium Alginate Matrices and Foetal Calf Serum" Sensors 9, no. 1: 378-385. https://doi.org/10.3390/s90100378
APA StyleKatsanakis, N., Katsivelis, A., & Kintzios, S. (2009). Immobilization of Electroporated Cells for Fabrication of Cellular Biosensors: Physiological Effects of the Shape of Calcium Alginate Matrices and Foetal Calf Serum. Sensors, 9(1), 378-385. https://doi.org/10.3390/s90100378