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Biointerphases|May 17, 2012
Self-assembled peptides: characterisation and in vivo responseDavid R Nisbet, Richard J WilliamsAdvanced Healthcare Materials|December 2, 2017
Dynamic and Responsive Growth Factor Delivery from Electrospun and Hydrogel Tissue Engineering MaterialsKiara F Bruggeman, Richard J Williams, David R NisbetAPL Bioengineering|May 10, 2019
Review: Biomaterial systems to resolve brain inflammation after traumatic injuryFrancesca L Maclean, Malcolm K Horne, Richard J Williams, et al.Gels (Basel, Switzerland)|April 21, 2022
A Hydrogel as a Bespoke Delivery Platform for Stromal Cell-Derived Factor-1Yi Wang, Vanessa Penna, Richard J Williams, et al.Iscience|January 20, 2020
Biomimetic Materials and Their Utility in Modeling the 3-Dimensional Neural EnvironmentArianna Cembran, Kiara F Bruggeman, Richard J Williams, et al.Nanotechnology|August 13, 2016
Temporally controlled release of multiple growth factors from a self-assembling peptide hydrogelKiara F Bruggeman, Alexandra L Rodriguez, Clare L Parish, et al.Stem Cells and Development|November 19, 2015
Integrating Biomaterials and Stem Cells for Neural RegenerationFrancesca L Maclean, Alexandra L Rodriguez, Clare L Parish, et al.Advanced Materials (Deerfield Beach, Fla.)|October 5, 2018
A Programmed Anti-Inflammatory Nanoscaffold (PAIN) as a 3D Tool to Understand the Brain Injury ResponseFrancesca L Maclean, Georgina M Ims, Malcolm K Horne, et al.ACS Biomaterials Science & Engineering|January 20, 2021
Reducing Astrocytic Scarring after Traumatic Brain Injury with a Multifaceted Anti-Inflammatory Hydrogel SystemFrancesca L Maclean, Yi Wang, Rohan Walker, et al.Nanoscale|September 7, 2017
Temporally controlled growth factor delivery from a self-assembling peptide hydrogel and electrospun nanofibre composite scaffoldKiara F Bruggeman, Yi Wang, Francesca L Maclean, et al.Pageof 18