TY - JOUR
T1 - A Design of Experiment (DOE) approach to correlate PLA-PCL electrospun fibers diameter and mechanical properties for soft tissue regeneration purposes
AU - Pisani, Silvia
AU - Genta, Ida
AU - Dorati, Rossella
AU - Modena, Tiziana
AU - Chiesa, Enrica
AU - Bruni, Giovanna
AU - Benazzo, Marco
AU - Conti, Bice
N1 - Funding Information:
All persons who have made substantial contributions to the work reported in the manuscript (e.g. technical help, writing and editing assistance, general support), but who do not meet the criteria for authorship, are named in the Acknowledgements and have given us their written permission to be named. If we have not included an Acknowledgements, then that indicates that we have not received substantial contributions from non-authors.
Publisher Copyright:
© 2022 Elsevier B.V.
PY - 2022/2
Y1 - 2022/2
N2 - Many parameters are involved in electrospun fibers development; depending on application field fibers have to exhibit defined properties regarding fibers diameter and mechanical properties. A valid method to study and predict electrospinning parameters interactions is Design of Experiment (DOE) approach. DOE method takes into account the interaction between various selected parameters using a linear regression and analysis of variance (ANOVA) mathematical models. Moreover, from DOE design is possible to achieve a test model prediction obtaining equations useful to calculate in advance values of desired output. In this work poly-L-lactide-poly-ε-caprolactone (PLA-PCL) 70:30 ratio electrospun fibers were selected as model to obtain a DOE design considering as independent parameters: polymeric solution concentration (w/v%), needle (gauge) and spinning time (min). As design output or dependent variables were selected fibers diameter (μm) and elongation %. To confirm validity of DOE, predictive equations obtained from model were used to calculate fibers diameter and elongation % and compared with experimental results obtained for PLA-PCL 20%w/v electrospun matrix obtained using 25G needle and electrospun for 20 min. Results calculated from predictive model (Fibers diameter:1.101 μm; Elongation %: 111.96%) were experimentally confirmed (Fibers diameter: 1.05 ± 0.26 μm; Elongation %: 143 ± 32.9%).
AB - Many parameters are involved in electrospun fibers development; depending on application field fibers have to exhibit defined properties regarding fibers diameter and mechanical properties. A valid method to study and predict electrospinning parameters interactions is Design of Experiment (DOE) approach. DOE method takes into account the interaction between various selected parameters using a linear regression and analysis of variance (ANOVA) mathematical models. Moreover, from DOE design is possible to achieve a test model prediction obtaining equations useful to calculate in advance values of desired output. In this work poly-L-lactide-poly-ε-caprolactone (PLA-PCL) 70:30 ratio electrospun fibers were selected as model to obtain a DOE design considering as independent parameters: polymeric solution concentration (w/v%), needle (gauge) and spinning time (min). As design output or dependent variables were selected fibers diameter (μm) and elongation %. To confirm validity of DOE, predictive equations obtained from model were used to calculate fibers diameter and elongation % and compared with experimental results obtained for PLA-PCL 20%w/v electrospun matrix obtained using 25G needle and electrospun for 20 min. Results calculated from predictive model (Fibers diameter:1.101 μm; Elongation %: 111.96%) were experimentally confirmed (Fibers diameter: 1.05 ± 0.26 μm; Elongation %: 143 ± 32.9%).
KW - Design of experiments (DOE)
KW - Electrospinning
KW - Mechanical properties
KW - Nanofibers
KW - Poly-L-lactide-poly-ε-caprolactone
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U2 - 10.1016/j.jddst.2021.103060
DO - 10.1016/j.jddst.2021.103060
M3 - Article
AN - SCOPUS:85122694623
SN - 1773-2247
VL - 68
JO - Journal of Drug Delivery Science and Technology
JF - Journal of Drug Delivery Science and Technology
M1 - 103060
ER -