The work presented within the thesis concern the fabrication of biomimetic nanostructured biomaterial thin films by pulsed laser techniques and their evaluation from the physico-chemical and biological (cellular biocompatibility, proliferation and differentiation) points of view. The aim is to develop a new method for coating the osseous implants by advanced pulsed laser techniques (PLD – pulsed laser deposition and MAPLE – matrix assisted pulsed laser evaporation). These techniques are used for the fabrication of a biphasic system composed of hydroxyapatite (HA) nanoparticules associated with large adhesion proteins as e.g. fibronectin (FN) and vitronectin (VN) deposited on a titanium substrate. The metallic substrate will allow keeping the mechanical rigidity; the hydroxyapatite will favor the bio-integration in the osseous tissue while the proteins will accelerate the cellular adhesion. The main objective is to speed up the cellular adhesion and the formation of new tissue around the implant. The cellular proliferation and differentiation studies demonstrated a predisposal to cell proliferation induced by the VN coatings and to cell differentiation by FN. The significant effects on the cell adhesion, proliferation and differentiation observed in our studies are of great importance for the mechanical stability phase of the implant. The layers HA/proteins deposited by laser could reduce the time of this phase.