Injectable hydrogels represent a promising strategy for minimally invasive regenerative medicine, enabling the delivery of biomimetic microenvironments directly to irregular tissue defects. Here, we present a multi-responsive, ECM-like injectable hydrogel based on κ/λ-carrageenan, hyaluronic acid, and type I collagen, designed to combine ion-triggered gelation with ultrasound-activated piezoelectric functionality. Gelation occurs rapidly upon exposure to physiological ions, allowing straightforward injection through fine-gauge needles without the need for external crosslinkers or harsh conditions. The incorporation of submicrometric barium titanate particles confers piezoelectric responsiveness, enabling the conversion of ultrasound-induced mechanical stimuli into localised electrical cues. The resulting hydrogels exhibit mechanical properties (Young's modulus 4–9 kPa) and viscoelastic behaviour comparable to native soft tissues, alongside a highly interconnected porous architecture suitable for mass transport and cell infiltration.In vitro studies demonstrate cytocompatibility with fibroblasts, myoblasts, neuronal-like cells, and macrophages, supporting cell viability and proliferation while promoting a pro-regenerative macrophage phenotype. Preliminary ultrasound stimulation experiments confirm that piezoelectric activation does not impair cell viability, establishing a safe basis for future functional investigations.Overall, this work introduces a user-friendly, cost-effective, and multifunctional injectable hydrogel platform with potential for minimally invasive and remotely activated regenerative therapies.

Rossi, A., Ravaglia, N., Arienti, F., Galizia, P., Labardi, M., Baldisserri, C., et al. (2026). Injectable carrageenan-based hydrogel with piezoelectric particles for potential regenerative applications. INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 381(Pt 1), 153953-153953 [10.1016/j.ijbiomac.2026.153953].

Injectable carrageenan-based hydrogel with piezoelectric particles for potential regenerative applications

Arienti, Federica;Angelini, Sabrina;
2026

Abstract

Injectable hydrogels represent a promising strategy for minimally invasive regenerative medicine, enabling the delivery of biomimetic microenvironments directly to irregular tissue defects. Here, we present a multi-responsive, ECM-like injectable hydrogel based on κ/λ-carrageenan, hyaluronic acid, and type I collagen, designed to combine ion-triggered gelation with ultrasound-activated piezoelectric functionality. Gelation occurs rapidly upon exposure to physiological ions, allowing straightforward injection through fine-gauge needles without the need for external crosslinkers or harsh conditions. The incorporation of submicrometric barium titanate particles confers piezoelectric responsiveness, enabling the conversion of ultrasound-induced mechanical stimuli into localised electrical cues. The resulting hydrogels exhibit mechanical properties (Young's modulus 4–9 kPa) and viscoelastic behaviour comparable to native soft tissues, alongside a highly interconnected porous architecture suitable for mass transport and cell infiltration.In vitro studies demonstrate cytocompatibility with fibroblasts, myoblasts, neuronal-like cells, and macrophages, supporting cell viability and proliferation while promoting a pro-regenerative macrophage phenotype. Preliminary ultrasound stimulation experiments confirm that piezoelectric activation does not impair cell viability, establishing a safe basis for future functional investigations.Overall, this work introduces a user-friendly, cost-effective, and multifunctional injectable hydrogel platform with potential for minimally invasive and remotely activated regenerative therapies.
2026
Rossi, A., Ravaglia, N., Arienti, F., Galizia, P., Labardi, M., Baldisserri, C., et al. (2026). Injectable carrageenan-based hydrogel with piezoelectric particles for potential regenerative applications. INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 381(Pt 1), 153953-153953 [10.1016/j.ijbiomac.2026.153953].
Rossi, Arianna; Ravaglia, Noemi; Arienti, Federica; Galizia, Pietro; Labardi, Massimiliano; Baldisserri, Carlo; Mancinelli, Rosa; Angelini, Sabrina; M...espandi
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11585/1080873
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