Synthetic nanostructured materials incorporating both organic and inorganic components offer a unique, powerful, and versatile class of materials for widespread applications due to the distinct, yet complementary, nature of the intrinsic properties of the different constituents. We report a supramolecular system based on synthetic nanoclay (Laponite, Lap) and peptide amphiphiles (PAs, PAH3) rationally designed to coassemble into nanostructured hydrogels with high structural integrity and a spectrum of bioactivities. Spectroscopic and scattering techniques and molecular dynamic simulation approaches were harnessed to confirm that PAH3 nanofibers electrostatically adsorbed and conformed to the surface of Lap nanodisks. Electron and atomic force microscopies also confirmed an increase in diameter and surface area of PAH3 nanofibers after coassembly with Lap. Dynamic oscillatory rheology revealed that the co-assembled PAH3-Lap hydrogels displayed high stiffness and robust self-healing behavior while gas adsorption analysis confirmed a hierarchical and heterogeneous porosity. Furthermore, this distinctive structure within the three-dimensional (3D) matrix provided spatial confinement for the nucleation and hierarchical organization of high-aspect ratio hydroxyapatite nanorods into well-defined spherical clusters within the 3D matrix. Applicability of the organic-inorganic PAH3-Lap hydrogels was assessed in vitro using human bone marrow-derived stromal cells (hBMSCs) and ex vivo using a chick chorioallantoic membrane (CAM) assay. The results demonstrated that the organic-inorganic PAH3-Lap hydrogels promote human skeletal cell proliferation and, upon mineralization, integrate with the CAM, are infiltrated by blood vessels, stimulate extracellular matrix production, and facilitate extensive mineral deposition relative to the controls.

De novo design of functional coassembling organic-inorganic hydrogels for hierarchical mineralization and neovascularization / Okesola, Bo; Mendoza-Martinez, Ak; Cidonio, G; Derkus, B; Boccorh, Dk; de la Pena, Do; Elsharkawy, S; Wu, Yh; Dawson, Ji; Wark, Aw; Knani, D; Adams, Dj; Oreffo, Roc; Mata, A. - In: ACS NANO. - ISSN 1936-0851. - 15:7(2021), pp. 11202-11217. [10.1021/acsnano.0c09814 EA JUN 2021]

De novo design of functional coassembling organic-inorganic hydrogels for hierarchical mineralization and neovascularization

Cidonio G;
2021

Abstract

Synthetic nanostructured materials incorporating both organic and inorganic components offer a unique, powerful, and versatile class of materials for widespread applications due to the distinct, yet complementary, nature of the intrinsic properties of the different constituents. We report a supramolecular system based on synthetic nanoclay (Laponite, Lap) and peptide amphiphiles (PAs, PAH3) rationally designed to coassemble into nanostructured hydrogels with high structural integrity and a spectrum of bioactivities. Spectroscopic and scattering techniques and molecular dynamic simulation approaches were harnessed to confirm that PAH3 nanofibers electrostatically adsorbed and conformed to the surface of Lap nanodisks. Electron and atomic force microscopies also confirmed an increase in diameter and surface area of PAH3 nanofibers after coassembly with Lap. Dynamic oscillatory rheology revealed that the co-assembled PAH3-Lap hydrogels displayed high stiffness and robust self-healing behavior while gas adsorption analysis confirmed a hierarchical and heterogeneous porosity. Furthermore, this distinctive structure within the three-dimensional (3D) matrix provided spatial confinement for the nucleation and hierarchical organization of high-aspect ratio hydroxyapatite nanorods into well-defined spherical clusters within the 3D matrix. Applicability of the organic-inorganic PAH3-Lap hydrogels was assessed in vitro using human bone marrow-derived stromal cells (hBMSCs) and ex vivo using a chick chorioallantoic membrane (CAM) assay. The results demonstrated that the organic-inorganic PAH3-Lap hydrogels promote human skeletal cell proliferation and, upon mineralization, integrate with the CAM, are infiltrated by blood vessels, stimulate extracellular matrix production, and facilitate extensive mineral deposition relative to the controls.
2021
biomineralization; coassembly; laponite; multicomponent biomaterials; nanocomposite hydrogels; peptide amphiphiles; supramolecular
01 Pubblicazione su rivista::01a Articolo in rivista
De novo design of functional coassembling organic-inorganic hydrogels for hierarchical mineralization and neovascularization / Okesola, Bo; Mendoza-Martinez, Ak; Cidonio, G; Derkus, B; Boccorh, Dk; de la Pena, Do; Elsharkawy, S; Wu, Yh; Dawson, Ji; Wark, Aw; Knani, D; Adams, Dj; Oreffo, Roc; Mata, A. - In: ACS NANO. - ISSN 1936-0851. - 15:7(2021), pp. 11202-11217. [10.1021/acsnano.0c09814 EA JUN 2021]
File allegati a questo prodotto
File Dimensione Formato  
okesola_de-novo_2021.pdf

accesso aperto

Note: https://pubs.acs.org/doi/10.1021/acsnano.0c09814
Tipologia: Versione editoriale (versione pubblicata con il layout dell'editore)
Licenza: Creative commons
Dimensione 3.36 MB
Formato Adobe PDF
3.36 MB Adobe PDF

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1709266
Citazioni
  • ???jsp.display-item.citation.pmc??? 9
  • Scopus 36
  • ???jsp.display-item.citation.isi??? 36
social impact