bioRxiv Science⌕ Search

bioRxiv · 10.1101/2025.07.01.662647

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

Abstract

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

Source connections

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Svendsen, J. E., Asnes, C. L., Nightheart, S. R., Ford, M. R., Hajarizadeh, A., Oh, S. C., Hochstatter, H. B., O'Hara-Smith, J. R., Guldberg, R. E., Hettiaratchi, M. H.. 2025-07-05. Phased affinity-controlled delivery of vascular endothelial growth factor, fibroblast growth factor-2, and platelet derived growth factor enhances in vitro angiogenesis. https://doi.org/10.1101/2025.07.01.662647

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related preprints

Dynamic Compression Platform for Live Imaging of Scaffold-Transmitted Cellular Mechanoresponses

Mechanical characterization of biomaterial scaffolds is essential to evaluate their capacity to meet the functional demands of target tissues in tissue engineering and regenerative medicine applications. Scaffolds designed to interface with living tissues must support the transmission of mechanical cues to resident cells and stimulate mechanosignaling pathways that are essential to their function. In joints, bone and cartilage cells act as primary mechanosensors, converting mechanical stimuli into biochemical signals that regulate tissue homeostasis and remodelling. Therefore, evaluating cellular mechanoresponses to scaffold-transmitted compression in vitro can inform the development of functional tissue-engineered constructs. For example, poly({epsilon}-caprolactone) (PCL) scaffolds are highly relevant for bone and cartilage tissue engineering due to their biocompatibility, stable mechanical properties and slow degradation. Here, we applied a custom-built device to study compression-induced mechanosignaling in MC3T3-E1 pre-osteoblast cells. The device is composed of a polydimethylsiloxane (PDMS) pillar, a force-sensing load cell, and a piezoelectric linear track. A protocol is described in which MC3T3-E1 cells are repeatedly compressed, while in parallel live tracking of force measurements and live imaging of intracellular calcium dynamics in MC3T3-E1 cells are recorded. PCL scaffolds fabricated by melt electrowriting (MEW) were subsequently integrated into the platform. Scaffold-transmitted compression triggered dynamic increases in cytosolic calcium; in MC3T3-E1 cells located directly under the PCL microfibers, but also in cells located in the interfiber spaces. This device and workflow facilitate in vitro investigations of real-time cellular mechanoresponses to dynamic compression applied with biomaterial scaffolds, and provides a testing platform for evaluating the mechanotransductive properties of scaffolds intended for tissue engineering applications.

bioengineering↗

Ultrasound Tracking Reveals Progressive Regional Strain Differences in Human Achilles Tendons During Fatigue Loading

Ultrasound is commonly used to assess structural changes in symptomatic Achilles tendons, but quantitative biomechanical metrics for progressive tendon deterioration remain limited. The goal of this study was to develop and validate an automated ultrasound tracking algorithm for regional tendon deformation and evaluate strain progression in survived and ruptured tendons during fatigue loading. We hypothesized that maximum strain, average strain, and strain heterogeneity would exhibit different trajectories between groups. Ten cadaveric Achilles tendons underwent cyclic loading with stress tests every 500 cycles until rupture or 150,000 cycles. Ultrasound images acquired during stress tests were analyzed using an automated tracking algorithm to generate spatially resolved regional strain fields. Ultrasound-derived bulk strain was highly correlated with actuator-derived strain in survived (R^2 = 0.968 +/- 0.017) and ruptured tendons (R^2 = 0.972 +/- 0.014). Maximum and average longitudinal strains progressively diverged between groups across fatigue life (Group x FatigueLife: p = 0.003 and p < 0.0001, respectively). During the first 10,000 cycles, average strain decreased in survived tendons ({beta} = -0.0268%, p = 0.0215) but not ruptured tendons ({beta} = 0.0147%, p = 0.1197), with a significant Group x Cycle interaction (p = 0.0061). This study demonstrates that the algorithm quantified Achilles tendon deformation with high fidelity and enabled spatially resolved strain assessment throughout fatigue loading. Maximum and average strain followed different trajectories between groups, whereas strain heterogeneity did not. Early differences in tendon biomechanics suggest that regional strain behavior may change before pronounced differences in absolute magnitude develop.

bioengineering↗

Brain organoid computing for robotic decision-making

Biomimicry has inspired the evolution of robotics toward greater autonomy, adaptability, and symbiosis with humans and dynamic environments. However, current robotic systems still face major challenges in recapitulating the high-efficiency decision-making capabilities of the human brain under complex and dynamic conditions. Here, we present Brainobot, a biohybrid robotic system that establishes a brain organoid controller as a high-level robotic decision-making layer for closed-loop embodiment. By leveraging brain organoid reservoir computing, Brainobot interacts with dynamic environments by receiving and processing sensory inputs and generating motor actions. As a proof-of-concept demonstration, Brainobot is implemented in a humanoid robotic system to perform real-world tasks, including object grasping and laser chasing. Interestingly, Brainobot exhibits unique features, including cross-task adaptivity, high computing efficiency, and low energy consumption. Thus, our approach may provide insights for advancing robotic embodiment and understanding biological decision-making.

bioengineering↗