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Communication Dans Un Congrès Année : 2022

Combination of two laser processes for the creation of relevant bio-models for therapeutical applications

Résumé

Combination of two laser processes for the creation of relevant bio-models for therapeutical applications Lucas Duvert1, Adrien Casanova1, Jérôme D Robin2, Frédérique Magdinier2, Anne-Patricia Alloncle1 1Aix-Marseille University, CNRS, LP3 UMR 7341, Campus de Luminy, Case 917, 13288, Marseille cedex 9, France 2Aix-Marseille University, INSERM, MMG, Marseille Medical Genetics, 13385 Marseille, France Printing techniques applied to biology have begun to develop in the 2000s and have since been greatly improved and perfected. Based on interdisciplinary approaches they make use of cell biology, chemistry, engineering and a combination of sophisticated protocols to create organized 2D or 3D patterns of biomaterials or living cells. Their applications range from tissue engineering, organ creation to regenerative medicine and new drug discovery. In this context, at LP3 and in close collaboration with MMG, we took advantage of our experience on the Laser-Induced Forward Transfer (LIFT) technique (previously developed for electronic purpose) to print bio-inks containing living cells for the creation of in vitro bio-models and more specifically for the optimization of the differentiation of stem cells in the future objective neuromuscular junctions (NMJ). LIFT is a two-part printing method using laser-matter interaction to transfer tiny amounts of material from a thin donor film to a receptor substrate, both separated by a few hundreds of micrometres. A short laser pulse induces the formation of a controlled jet propagating perpendicularly to the donor substrate. The bio-ink previously spread as a thin film (few tens of microns) on this donor substrate is thus collected as a droplet on the receiver. This method allows us to precisely control the amount and the location of the targeted material deposited and, by extension, the number of living cells printed. In contrary to conventional bio-printing methods using extrusion or ink-jet systems, LIFT is a nozzle-free process that allows the use of a large range of bio-inks viscosity and a high cell concentration without clogging. Here, we will present the LIFT process and its optimisation allowing us to achieve a controlled, reliable, precise printing of muscular progenitors and ensuring a high post-printing cell survival rate followed by proliferation. The cell survival rate will be controlled by fluorescence staining of printed cells and the monitoring of the cell development over several days. In parallel with the optimisation of the LIFT process, a laser surface structuring technique is currently being developed to topographically modify the surface of the receiver substrate to improve the survival rate, the proliferation and even the differentiation of the printed cells. Two different kinds of structuration have been investigated: (i) the creation of micro-channels to guide the growth of muscle progenitors to force them to stretch and should thus promote their differentiation into myotubes and (ii) the creation of nano- porosity at the surface of the receiver to make them better suited for cell development.
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hal-03842354 , version 1 (21-03-2023)

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  • HAL Id : hal-03842354 , version 1

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Lucas Duvert, Adrien Casanova, Jérôme Robin-Ducellier, Frédérique Magdinier, Philippe Delaporte, et al.. Combination of two laser processes for the creation of relevant bio-models for therapeutical applications. Symposium annuel MARMARA, Jun 2022, Marseille, France. ⟨hal-03842354⟩
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