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Ford, M. R.

Publications and source records attributed to Ford, M. R..

3 recordsLinked to original sources

Phased affinity-controlled delivery of vascular endothelial growth factor, fibroblast growth factor-2, and platelet derived growth factor enhances in vitro angiogenesis

Angiogenesis, the growth of vasculature from existing blood vessels, requires the coordinated secretion of multiple angiogenic growth factors that each stimulate the cellular recruitment, patterning, and morphogenesis inherent to vascular network formation. Among these secreted factors, vascular endothelial growth factor (VEGF), fibroblast growth factor-2 (FGF-2), and platelet derived growth factor (PDGF) amplify key stages of angiogenesis. Disruptions in their secretion have been implicated in poor vascular network formation. Current methods for exploring variations in the phased presentation of multiple different proteins are limited, which has restricted our ability to explore the effect of growth factor timing on angiogenesis. To address this knowledge gap, we developed affibodies, which are alpha-helical binding proteins, to phase the release of VEGF-165, FGF-2, and PDGF-BB from a single delivery vehicle via specific protein-affibody affinity interactions. We used yeast surface display to engineer three VEGF-, three FGF-2-, and two PDGF-specific affibodies with a wide range of affinities for their target proteins spanning dissociation constants of 3.08 {+/-} 0.21 nM to 4550 {+/-} 590 nM. We demonstrated that the cumulative release of VEGF and FGF-2 is inversely correlated with the strength of the protein-affibody affinity interaction and that hydrogels containing multiple protein-specific affibodies can control the release of VEGF, FGF-2, and PDGF, largely in accordance with the strength of the affinity interactions. Using a rat-derived intact microvascular fragment model of in vitro angiogenesis, we revealed that sequential delivery of soluble VEGF, followed by FGF-2, and then PDGF enhances vascular network length by 2.8-fold and branching by 4.1-fold compared to untreated MVFs. We then designed an affibody-conjugated polyethylene glycol maleimide (PEG-MAL) hydrogel to mimic this sequence of protein delivery, resulting in a 3.0-fold increase in vascular network length and a 2.3-fold increase in vascular branching compared to all other hydrogel compositions and the sequential delivery of soluble growth factors. Changing temporal growth factor presentation with affibody-conjugated hydrogels altered the expression of key angiogenic genes involved in vessel stabilization and destabilization and matrix remodeling. Perivascular coverage measured by the colocalization of lectin and alpha smooth muscle actin staining was similar between all treatment groups, suggesting pericyte recruitment to stabilize expanded vascular networks created by the soluble and affibody-mediated delivery of the optimal sequence of proteins. Overall, this work establishes a new biomaterial platform for modulating the timing of growth factor delivery, enabling the exploration of how temporal variations in protein secretion impact regeneration and development. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=127 SRC="FIGDIR/small/662647v2_ufig1.gif" ALT="Figure 1"> View larger version (41K): org.highwire.dtl.DTLVardef@471657org.highwire.dtl.DTLVardef@10bc491org.highwire.dtl.DTLVardef@1961f9dorg.highwire.dtl.DTLVardef@f5b8ba_HPS_FORMAT_FIGEXP M_FIG C_FIG

bioengineering↗

Applying computational protein design to engineer affibodies for affinity-controlled delivery of vascular endothelial growth factor and platelet-derived growth factor

Effective angiogenesis requires the coordinated presentation of vascular endothelial growth factor (VEGF) and platelet-derived growth factor (PDGF), which play competing roles in stimulating vascular outgrowth and stabilization. Dysregulation in VEGF and PDGF secretion are implicated in abnormal vascular structures, poor vessel stability, and inadequate tissue repair. Current biomaterial delivery vehicles for these proteins have a limited ability to precisely control the kinetics of protein release, preventing systematic exploration of their temporal effects. Here, we combined yeast surface display and computational protein design to engineer eight VEGF-specific and PDGF-specific protein binders called affibodies with a broad range of affinities (dissociation constants = 2.23-9260 nM) for affinity-controlled protein release. Starting from one VEGF- and one PDGF-specific affibody discovered from yeast surface display, computational modeling was used to select disruptive mutations to create VEGF-specific affibodies with lower affinities for VEGF and expand the affinity range of PDGF-specific affibodies. In both cases, the specificity of the affibodies for their target protein was either maintained or enhanced. Soluble protein-specific affibodies modulated protein bioactivity as evidenced by changes in VEGF-induced endothelial cell proliferation and luminescent output of a PDGF-responsive fibroblast cell line. Affibody-conjugated polyethylene glycol maleimide (PEG-mal) hydrogels sustained VEGF and PDGF release compared to hydrogels without affibodies, enabling tunability of protein release over 7 days. VEGF and PDGF released from affibody-conjugated hydrogels exhibited higher bioactivity compared to proteins released from hydrogels without affibodies, highlighting the potential of these engineered affinity interactions to prolong protein bioactivity. This work underscores the power of computational protein design to enhance biomaterial functionality, creating a platform for tunable protein delivery to support angiogenesis and tissue repair.

bioengineering↗

Statistical Optimization of Hydrazone-Crosslinked Hyaluronic Acid Hydrogels for Protein Delivery

Hydrazone-crosslinked hydrogels are attractive protein delivery vehicles for regenerative medicine. However, each regenerative medicine application requires unique hydrogel properties to achieve an ideal outcome. The properties of a hydrogel can be impacted by numerous factors involved in its fabrication. We used design of experiments (DoE) statistical modeling to efficiently optimize the physicochemical properties of a hyaluronic acid (HA) hydrazone-crosslinked hydrogel for protein delivery for bone regeneration. We modified HA with either adipic acid dihydrazide (HA-ADH) or aldehyde (HA-Ox) functional groups and used DoE to evaluate the interactions of three input variables, the molecular weight of HA (40 or 100 kDa), the concentration of HA-ADH (1-3% w/v), and the concentration of HA-Ox (1-3% w/v), on three output responses, gelation time, compressive modulus, and hydrogel stability over time. We identified 100 kDa HA-ADH3.0HA-Ox2.33 as an optimal hydrogel that met all of our design criteria, including displaying a gelation time of 3.7 minutes, compressive modulus of 62.1 Pa, and minimal mass change over 28 days. For protein delivery, we conjugated affinity proteins called affibodies that were specific to the osteogenic protein bone morphogenetic protein-2 (BMP-2) to HA hydrogels and demonstrated that our platform could control the release of BMP-2 over 28 days. Ultimately, our approach demonstrates the utility of DoE for optimizing hydrazone-crosslinked HA hydrogels for protein delivery. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=75 SRC="FIGDIR/small/549125v1_ufig1.gif" ALT="Figure 1"> View larger version (22K): org.highwire.dtl.DTLVardef@bd1a4org.highwire.dtl.DTLVardef@1f0766borg.highwire.dtl.DTLVardef@1eea01corg.highwire.dtl.DTLVardef@151bd6b_HPS_FORMAT_FIGEXP M_FIG C_FIG

bioengineering↗