Wound Repair Breakthrough: Protein Coacervates Engineered Into Adhesive for “Unprecedented” Skin Repair Speed

09/29/2023
Wound Repair Breakthrough Protein Coacervates Engineered Into Adhesive for Unprecedented Skin Repair Speed image

The potential applications of this novel adhesive extend beyond wound healing and tissue repair. 

A team of researchers from China is developing a novel biocomposite adhesive that may revolutionize wound management and tissue repair, according to a study in Engineering.

Adhesives have long been recognized as a valuable tool in biomedical engineering. However, current adhesive systems face challenges in achieving strong and durable adhesion, limiting their effectiveness in wound healing. Additionally, conventional chemical adhesives lack the ability to adapt to dynamic changes in the wound environment, hindering tissue regeneration.

In response to these challenges, the research team engineered an extracellular matrix (ECM)-derived biocomposite adhesive that overcomes the limitations of existing adhesives. By harnessing liquid–liquid phase separation and leveraging supramolecular interactions between chimeric protein and natural DNA, the researchers achieved a reinforced adhesion performance in the biocomposite adhesive.

The newly developed adhesive demonstrates exceptional adhesion and sealing behaviors, surpassing its reported counterparts with a sheared adhesion strength of approximately 18 MPa. The engineered bioderived components not only enhance adhesion but also promote cell proliferation and migration, enabling real-time in situ skin regeneration.

The research team’s approach involved actively introducing biological components and employing a rational design process to create the adhesive. Liquid–liquid phase separation, driven by electrostatic complexation between a chimeric epidermal growth factor (EGF), elastin-like protein, and natural DNA, facilitated the assembly of the adhesive. The resulting adhesive demonstrated exceptional adhesion on various substrates, including glass, ceramic, aluminum, steel, and soft tissues such as liver, muscle, and porcine skin.

The adhesive’s remarkable adhesion strength of (18.9 ± 0.9) MPa on steel substrates and adhesion energy of (40.0 ± 5.3) J·m−2 on pigskin surpassed many reported adhesives. Furthermore, the adhesive exhibited hemostatic behavior, promoted cell proliferation and migration, remodeled the ECM, and accelerated in situ skin regeneration.

The potential applications of this novel adhesive extend beyond wound healing and tissue repair. The research team believes that the unique fabrication strategy holds great promise in the design of next-generation functionalized bioadhesives for broader applications, including bioelectronics and wearable health systems.

CAPTION: (a) Schematic diagram of ECM composition. Elastin and growth factor are important components of the ECM. (b) Construction and expression of the protein. (c) Preparation of the EED adhesive via bio-inspired noncovalent interactions. (d) Surface morphology of the freeze-dried EED adhesive. (e) Schematic representation of the EED adhesive for adhesion/EGF healing combination therapy (scale bar: 1 cm).

CREDIT: Ming Li et al.

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