Process for printing 3D tissue culture models
A process for producing a 3D tissue culture model by (a) printing a drop of bio-ink to a substrate; (b) printing a drop of activator to the drop of bio-ink to form a hydrogel droplet; (c) repeating steps (a) and (b) in any order to form a hydrogel mold adapted to receive a drop containing cells; (d) printing a drop containing cells to the hydrogel mold; and (e) repeating steps (a) and (b) in any order to form a 3D tissue culture model comprising the cells encapsulated in the hydrogel mold.
1. A process for producing a 3D tissue culture model, the process comprising:
(a) printing a drop of bio-ink to a substrate;
(b) printing a drop of activator to the drop of bio-ink to form a hydrogel droplet;
(c) repeating steps (a) and (b) in any order to form a hydrogel mold adapted to receive a drop containing cells;
(d) printing a drop containing cells having a cell concentration of 10 7 cells/ml or greater to the hydrogel mold; and
(e) repeating steps (a) and (b) in any order to form a 3D tissue culture model comprising the cells wholly encapsulated in the hydrogel mold formed by the printing steps;
wherein the printing is carried out using a bioprinter having a drop-on-demand droplet dispensing system; and wherein the 3D tissue culture model has high cell viability.
2. The process according to claim 1 wherein step (d) comprises printing a drop of cell-ink containing cells to the hydrogel mold.
3. The process according to claim 1 wherein step (d) comprises printing a drop of bio-ink containing cells and printing a drop of activator to the drop of bio-ink containing cells before step (e).
4. The process according to claim 1 wherein the substrate is suitable for containing, holding or growing cells.
5. The process according to claim 4 wherein the substrate is selected from microtitre plate of different well configurations (6, 24, 48 and 96-well), microtitre plate with coverslip bottom of different well configuration (6, 24, 48 and 96-well), fluorodish, chamber slides of different chamber configuration (1, 2, 4, 8 and 16), coverslips or microscope slides.
6. The process according to claim 1 wherein the bio-ink is compatible with cells that can form a hydrogel when exposed to a suitable activator.
7. The process according to claim 6 wherein the bio-ink comprises a synthetic macromolecule, polymer carrying amine-reactive functionalities, polymer having thiol-reactive functionalities, polymer containing fructose, sucrose or glucose functionality, non-ionic polymer, polyelectrolyte, or natural macromolecule.
8. The process according to claim 7 wherein the synthetic macromolecule is a polysaccharide, the polymer carrying amine-reactive functionalities is aldehyde, epoxy, N-hydroxysuccinimide (NHS) or 2-vinyl-4,4-dimethylazlactone (VDM), the thiol-reactive functionalities are alkenes, alkynes, azides, halogens or cyanates, the non-ionic polymer is poly(ethylene glycol) (PEG), poly(hydroxyethyl methacrylate (PHEMA), poly(ε-caprolactone) (PCL), poly(vinyl alcohol) (PVA), poly(NIPAAM) and poly(propylene fumarate) (PPF) or derivatives, the natural macromolecule is alginate, chitosan, hyaluronic acid, agarose, glycosaminoglycan or methylcellulose, protein, gelatin, fibrin, collagen or basement membrane extract.
9. The process according to claim 1 wherein the activator is selected to form the bio-ink into a hydrogel.
10. The process according to claim 9 wherein the activator comprises inorganic salts, or photoinitiators.
11. The process according to claim 10 wherein the inorganic salts are barium chloride, calcium carbonate, calcium chloride, sodium chloride, magnesium sulphate or sodium hydroxide, the photoinitiators are 2,2-dimethoxy-2-phenylacetophenone (DMPA) and Irgacure.
12. The process according to claim 11 wherein the bio-ink is alginate and the activator is calcium chloride.
13. The process according to claim 2 wherein the cell-ink is selected from gellan gum, a neutral, highly branched, high-mass, hydrophilic polysaccharide (FICOLL), dextran, glycerol, alginate, methylcellulose or poly(vinylpyrrolidone) (PVP).
14. The process according to claim 13 wherein the cell-ink is gellan gum.
15. The process according to claim 13 wherein the cell-ink is a neutral, highly branched, high-mass, hydrophilic polysaccharide (FICOLL).
16. The process according to claim 1 further comprising incubating the cells encapsulated in the hydrogel mold at a temperature and conditions to allow or maintain cell growth or spheroid formation.
17. The process according to claim 1 wherein the 3D tissue culture model is a cellular spheroid.
18. The process according to claim 1 wherein the cell concentration is 250×10 6 cells/ml.
19. The process according to claim 1 wherein the cell concentration is up to 450×10 6 cells/ml.
20. The process according to claim 1 wherein the cell viability is 95% or greater.