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1.
J Mol Cell Cardiol ; 74: 231-9, 2014 Sep.
Article in English | MEDLINE | ID: mdl-25009075

ABSTRACT

The translation of cell-based therapies for ischemic tissue repair remains limited by several factors, including poor cell survival and limited target site retention. Advances in nanotechnology enable the development of specifically designed delivery matrices to address these limitations and thereby improve the efficacy of cell-based therapies. Given the relevance of integrin signaling for cellular homeostasis, we developed an injectable, bioactive peptide-based nanofiber matrix that presents an integrin-binding epitope derived from fibronectin, and evaluated its feasibility as a supportive artificial matrix for bone marrow-derived pro-angiogenic cells (BMPACs) used as a therapy in ischemic tissue repair. Incubation of BMPACs with these peptide nanofibers in vitro significantly attenuated apoptosis while enhancing proliferation and adhesion. Pro-angiogenic function was enhanced, as cells readily formed tubes. These effects were, in part, mediated via p38, and p44/p42 MAP kinases, which are downstream pathways of focal adhesion kinase. In a murine model of hind limb ischemia, an intramuscular injection of BMPACs within this bioactive peptide nanofiber matrix resulted in greater retention of cells, enhanced capillary density, increased limb perfusion, reduced necrosis/amputation, and preserved function of the ischemic limb compared to treatment with cells alone. This self-assembling, bioactive peptide nanofiber matrix presenting an integrin-binding domain of fibronectin improves regenerative efficacy of cell-based strategies in ischemic tissue by enhancing cell survival, retention, and reparative functions.


Subject(s)
Bone Marrow Cells/cytology , Epitopes/metabolism , Fibronectins/metabolism , Ischemia/therapy , Nanofibers/administration & dosage , Peptides/administration & dosage , Animals , Biocompatible Materials , Bone Marrow Cells/metabolism , Cell Survival , Cell- and Tissue-Based Therapy/methods , Epitopes/chemistry , Fibronectins/chemistry , Gene Expression , Hindlimb/blood supply , Hindlimb/drug effects , Hindlimb/injuries , Integrins/metabolism , Ischemia/pathology , Male , Mice , Mitogen-Activated Protein Kinase 1/genetics , Mitogen-Activated Protein Kinase 1/metabolism , Mitogen-Activated Protein Kinase 3/genetics , Mitogen-Activated Protein Kinase 3/metabolism , Nanofibers/chemistry , Neovascularization, Physiologic , Peptides/chemical synthesis , Peptides/metabolism , Protein Binding , p38 Mitogen-Activated Protein Kinases/genetics , p38 Mitogen-Activated Protein Kinases/metabolism
2.
Proc Natl Acad Sci U S A ; 108(33): 13438-43, 2011 Aug 16.
Article in English | MEDLINE | ID: mdl-21808036

ABSTRACT

There is great demand for the development of novel therapies for ischemic cardiovascular disease, a leading cause of morbidity and mortality worldwide. We report here on the development of a completely synthetic cell-free therapy based on peptide amphiphile nanostructures designed to mimic the activity of VEGF, one of the most potent angiogenic signaling proteins. Following self-assembly of peptide amphiphiles, nanoscale filaments form that display on their surfaces a VEGF-mimetic peptide at high density. The VEGF-mimetic filaments were found to induce phosphorylation of VEGF receptors and promote proangiogenic behavior in endothelial cells, indicated by an enhancement in proliferation, survival, and migration in vitro. In a chicken embryo assay, these nanostructures elicited an angiogenic response in the host vasculature. When evaluated in a mouse hind-limb ischemia model, the nanofibers increased tissue perfusion, functional recovery, limb salvage, and treadmill endurance compared to controls, which included the VEGF-mimetic peptide alone. Immunohistological evidence also demonstrated an increase in the density of microcirculation in the ischemic hind limb, suggesting the mechanism of efficacy of this promising potential therapy is linked to the enhanced microcirculatory angiogenesis that results from treatment with these polyvalent VEGF-mimetic nanofibers.


Subject(s)
Angiogenic Proteins/therapeutic use , Ischemia/drug therapy , Nanostructures/chemistry , Vascular Endothelial Growth Factor A/physiology , Wound Healing/drug effects , Angiogenic Proteins/chemistry , Animals , Cell Line , Chick Embryo , Endothelium, Vascular , Humans , Mice , Molecular Mimicry , Nanostructures/therapeutic use , Neovascularization, Physiologic/drug effects
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