In this study, we investigated whether multipotent (human-bone-marrow-derived mesenchymal stem cells [hBM-MSCs]) and pluripotent stem cells (murine-induced pluripotent stem cells [iPSCs] and murine embryonic stem cells [ESCs]) respond to nanocomposite fibrous mats of poly(L-lactic acid) (PLLA) loaded with 1 or 8 wt % of calcium-deficient nanohydroxyapatite (d-HAp). Remarkably, the dispersion of different amounts of d-HAp to PLLA produced a set of materials (PLLA/d-HAp) with similar architectures and tunable mechanical properties. After 3 weeks of culture in the absence of soluble osteogenic factors, we observed the expression of osteogenic markers, including the deposition of bone matrix proteins, in multi/pluripotent cells only grown on PLLA/d-HAp nanocomposites, whereas the osteogenic differentiation was absent on stem-cell-neat PLLA cultures. Interestingly, this phenomenon was confined only in hBM-MSCs, murine iPSCs, and ESCs grown on direct contact with the PLLA/d-HAp mats. Altogether, these results indicate that the osteogenic differentiation effect of these electrospun PLLA/d-HAp nanocomposites was independent of the stem cell type and highlight the direct interaction of stem cell-polymeric nanocomposite and the mechanical properties acquired by the PLLA/d-HAp nanocomposites as key steps for the differentiation process.

Tuning multi/pluri-potent stem cell fate by electrospun poly(L-lactic acid)-calcium-deficient hydroxyapatite nanocomposite mats / D'Angelo, F; Armentano, I; Cacciotti, I; Tiribuzi, R; Quattrocelli, M; Del Gaudio, C; Fortunati, E; Saino, Enrica; Caraffa, A; Cerulli, Gg; Visai, Livia; Kenny, Jm; Sampaolesi, Maurilio; Bianco, A; Martino, S; Orlacchio, A.. - In: BIOMACROMOLECULES. - ISSN 1525-7797. - 13:5(2012), pp. 1350-1360. [10.1021/bm3000716]

Tuning multi/pluri-potent stem cell fate by electrospun poly(L-lactic acid)-calcium-deficient hydroxyapatite nanocomposite mats

SAMPAOLESI, MAURILIO;
2012

Abstract

In this study, we investigated whether multipotent (human-bone-marrow-derived mesenchymal stem cells [hBM-MSCs]) and pluripotent stem cells (murine-induced pluripotent stem cells [iPSCs] and murine embryonic stem cells [ESCs]) respond to nanocomposite fibrous mats of poly(L-lactic acid) (PLLA) loaded with 1 or 8 wt % of calcium-deficient nanohydroxyapatite (d-HAp). Remarkably, the dispersion of different amounts of d-HAp to PLLA produced a set of materials (PLLA/d-HAp) with similar architectures and tunable mechanical properties. After 3 weeks of culture in the absence of soluble osteogenic factors, we observed the expression of osteogenic markers, including the deposition of bone matrix proteins, in multi/pluripotent cells only grown on PLLA/d-HAp nanocomposites, whereas the osteogenic differentiation was absent on stem-cell-neat PLLA cultures. Interestingly, this phenomenon was confined only in hBM-MSCs, murine iPSCs, and ESCs grown on direct contact with the PLLA/d-HAp mats. Altogether, these results indicate that the osteogenic differentiation effect of these electrospun PLLA/d-HAp nanocomposites was independent of the stem cell type and highlight the direct interaction of stem cell-polymeric nanocomposite and the mechanical properties acquired by the PLLA/d-HAp nanocomposites as key steps for the differentiation process.
2012
murine-induced pluripotent stem cells; murine embryonic stem cells; calcium-deficient nanohydroxyapatite (d-HAp); human-bone-marrow-derived mesenchymal stem cells; PLLA
01 Pubblicazione su rivista::01a Articolo in rivista
Tuning multi/pluri-potent stem cell fate by electrospun poly(L-lactic acid)-calcium-deficient hydroxyapatite nanocomposite mats / D'Angelo, F; Armentano, I; Cacciotti, I; Tiribuzi, R; Quattrocelli, M; Del Gaudio, C; Fortunati, E; Saino, Enrica; Caraffa, A; Cerulli, Gg; Visai, Livia; Kenny, Jm; Sampaolesi, Maurilio; Bianco, A; Martino, S; Orlacchio, A.. - In: BIOMACROMOLECULES. - ISSN 1525-7797. - 13:5(2012), pp. 1350-1360. [10.1021/bm3000716]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1581827
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