The combination of biomaterials with stem cells is a promising therapeutic strategy to repair traumatic injuries in the central nervous system, and human bone marrow mesenchymal stem cells (BMSCs) offer a clinically translatable option among other possible sources of stem cells. We report here on the use of a supramolecular bioactive material based on a peptide amphiphile (PA), displaying a laminin-mimetic IKVAV sequence to drive neural transdifferentiation of human BMSCs. The IKVAV-PA self-assembles into supramolecular nanofibers that induce neuroectodermal lineage commitment after 1 week, as evidenced by the upregulation of the neural progenitor gene nestin (NES) and glial fibrillary acidic protein (GFAP). After 2 weeks, the bioactive IKV...
Human bone marrow-derived mesenchymal stem cells (MSCs) have multi-lineage differentiation potential...
Engineering of biomaterials with specific biological properties has gained momentum as a means to co...
Self-assembled peptide nanofibers form three-dimensional networks that are quite similar to fibrous ...
Due to the delicacy and complexity of the CNS, little spontaneous regeneration, repair or healing oc...
To date, spinal cord injury (SCI) has remained an incurable disaster. The use of self-assembling pep...
Biomaterials hold great promise in helping the adult brain regenerate and rebuild after trauma. Pept...
Neurotraumatic injuries result in an irreplaceable cell loss and concomitant deficit in motor and se...
Aim: We aimed to set up a self-standing, biomimetic scaffold system able to induce and support per s...
Astroglial scaring and limited neurogenesis are two problematic issues in recovery of spinal cord in...
Neural progenitor cells were encapsulated in vitro within a three-dimensional network of nanofibers ...
Spinal cord injury (SCI) in humans stayed a ruining and healless disorder. Since longer laminin moti...
Neural progenitor cells were encapsulated in vitro within a three-dimensional network of nanofibers ...
Summary: Engineering of biomaterials with specific biological properties has gained momentum as a me...
The central nervous system has a limited capacity to regenerate, and thus, traumatic injuries or dis...
Self-assembled peptide nanofibers form three-dimensional networks that are quite similar to fibrous ...
Human bone marrow-derived mesenchymal stem cells (MSCs) have multi-lineage differentiation potential...
Engineering of biomaterials with specific biological properties has gained momentum as a means to co...
Self-assembled peptide nanofibers form three-dimensional networks that are quite similar to fibrous ...
Due to the delicacy and complexity of the CNS, little spontaneous regeneration, repair or healing oc...
To date, spinal cord injury (SCI) has remained an incurable disaster. The use of self-assembling pep...
Biomaterials hold great promise in helping the adult brain regenerate and rebuild after trauma. Pept...
Neurotraumatic injuries result in an irreplaceable cell loss and concomitant deficit in motor and se...
Aim: We aimed to set up a self-standing, biomimetic scaffold system able to induce and support per s...
Astroglial scaring and limited neurogenesis are two problematic issues in recovery of spinal cord in...
Neural progenitor cells were encapsulated in vitro within a three-dimensional network of nanofibers ...
Spinal cord injury (SCI) in humans stayed a ruining and healless disorder. Since longer laminin moti...
Neural progenitor cells were encapsulated in vitro within a three-dimensional network of nanofibers ...
Summary: Engineering of biomaterials with specific biological properties has gained momentum as a me...
The central nervous system has a limited capacity to regenerate, and thus, traumatic injuries or dis...
Self-assembled peptide nanofibers form three-dimensional networks that are quite similar to fibrous ...
Human bone marrow-derived mesenchymal stem cells (MSCs) have multi-lineage differentiation potential...
Engineering of biomaterials with specific biological properties has gained momentum as a means to co...
Self-assembled peptide nanofibers form three-dimensional networks that are quite similar to fibrous ...