The Optimization of Pressure-Assisted Microsyringe (PAM) 3D Printing Parameters for the Development of Sustainable Starch-Based Patches

Author:

Pérez Gutiérrez Carmen Laura12,Cottone Francesco3ORCID,Pagano Cinzia1ORCID,Di Michele Alessandro3ORCID,Puglia Debora4ORCID,Luzi Francesca5ORCID,Dominici Franco4ORCID,Sinisi Rossella1,Ricci Maurizio1ORCID,Viseras Iborra César Antonio2ORCID,Perioli Luana1ORCID

Affiliation:

1. Department of Pharmaceutical Sciences, University of Perugia, 06123 Perugia, Italy

2. Department of Pharmacy and Pharmaceutical Technology, Faculty of Pharmacy, University of Granada, 18071 Granada, Spain

3. Department of Physics and Geology, University of Perugia, 06123 Perugia, Italy

4. Civil and Environmental Engineering Department, University of Perugia, UdR INSTM, 05100 Terni, Italy

5. Department of Materials, Environmental Sciences and Urban Planning (SIMAU), 60131 Ancona, Italy

Abstract

The aim of this work was to develop sustainable patches for wound application, using the biopolymer starch, created using a low-cost 3D printing PAM device. The composition of a starch gel was optimized for PAM extrusion: corn starch 10% w/w, β-glucan water suspension (filler, 1% w/w), glycerol (plasticizer, 29% w/w), and water 60% w/w. The most suitable 3D printing parameters were optimized as well (nozzle size 0.8 mm, layer height 0.2 mm, infill 100%, volumetric flow rate 3.02 mm3/s, and print speed 15 mm/s). The suitable conditions for post-printing drying were set at 37 °C for 24 h. The obtained patch was homogenous but with low mechanical resistance. To solve this problem, the starch gel was extruded over an alginate support, which, after drying, becomes an integral part of the product, constituting the backing layer of the final formulation. This approach significantly improved the physicochemical and post-printing properties of the final bilayer patch, showing suitable mechanical properties such as elastic modulus (3.80 ± 0.82 MPa), strength (0.92 ± 0.08 MPa), and deformation at break (50 ± 1%). The obtained results suggest the possibility of low-cost production of patches for wound treatment by additive manufacturing technology.

Funder

European Union—NextGenerationEU under the Italian Ministry of University and Research (MUR) National Innovation Ecosystem

Università degli Studi di Perugia and MUR

Publisher

MDPI AG

Subject

Polymers and Plastics,General Chemistry

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