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With Growth Factors, Force-Responsive Biomaterials Heal Tissue

Scaffolds attached to force-activated aptamers use cellular pulling forces to release wound-healing growth factors at low doses.

WHAT YOU NEED TO KNOW
  • TrAPs use cellular pulling forces on peptide handles to unfold aptamers and trigger growth factor release.
  • System demonstrated efficacy in rat femoral defects, mouse skin, and ex vivo human skin.
  • Harvests endogenous biologics from cells and blood lysate at doses orders of magnitude below clinical standards.
  • Unmodified oligonucleotide aptamers retained functionality in enzyme-rich wound environments.

Biomaterial scaffolds using traction-force-activated aptamers can repair damaged tissue by harvesting and releasing growth factors in response to cellular mechanical forces, according to reporting in Nature Materials.

Current clinical strategies rely on passive drug delivery or external triggers, which often require high doses of recombinant protein. The newly demonstrated traction-force-activated payloads, or TrAPs, attach inhibitory aptamers to biomaterial scaffolds. One end of the aptamer anchors to the scaffold, while the other connects to a cell-adhesive peptide handle such as RGD. When cells pull on the handle during adhesion and migration, the mechanical force unfolds the aptamer, releasing and activating the bound growth factor locally.

Tissue repair testing

In tests involving a six-millimeter femoral defect in rats, collagen sponges functionalized with vascular endothelial growth factor A TrAPs promoted significantly larger blood vessels after three weeks compared to control sponges and scrambled non-adhesive constructs. The system also demonstrated tissue repair modulation in mouse skin in vivo and human skin ex vivo.

The platform operates without requiring exogenous triggers, manufactured recombinant proteins, or cold-chain logistics. Empty TrAPs successfully harvested, concentrated, and redelivered multiple endogenous growth factors—including VEGF-A, hepatocyte growth factor, platelet-derived growth factor-BB, and fibroblast growth factor-2—from human primary cells and blood lysate at doses orders of magnitude lower than current clinical standards.

Unmodified oligonucleotide aptamers retained their binding functionality inside enzyme-rich wound environments. High-affinity binding held the growth factors in an inhibited state, preventing background signaling from passive diffusion even as the underlying carrier scaffold degraded.

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