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Recent advancements in implantable bioelectronic devices have increased the demand for biocompatible energy sources with long-term electrochemical and mechanical stability. Here, we present a tough hydrogel-based supercapacitor (THBS) fiber, fabricated via a thermal drawing process (TDP), that enables the integration of all components-electrodes, electrolyte, current collectors, and encapsulation-into a single, unified, and mechanically robust fiber-shaped architecture. Through thermal/mechanical optimization and the incorporation of self-healing properties, THBS fibers exhibit durable, high electrochemical performance under dynamic, high-curvature deformations mimicking in vivo physiological motions. Despite a thickness of only a few hundred microns, they maintain mechanical and electrochemical stability. Long-term functionality was confirmed over five weeks with minimal immune response. In vivo implantation demonstrated successful LED operation in a freely moving mouse, and successful optogenetic stimulation of both central and peripheral nervous systems. These results underscore the promise of THBS fibers as next-generation, fully biocompatible energy storage devices for advanced implantable bioelectronic systems.
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http://dx.doi.org/10.1038/s41467-025-63649-y | DOI Listing |
Adv Mater
September 2025
State Key Laboratory of Supramolecular Structure and Materials, College of Chemistry, Jilin University, Changchun, 130012, P. R. China.
Developing amphibious adhesives that combine high adhesion strength with on-demand erasability in both dry and wet environments remains a significant challenge. In this study, biomass-derived, amphibious, and erasable adhesives are fabricated by grafting 3-aminobenzoic acid and 3-aminobenzeneboronic acid onto epoxidized soybean oil (ESO), yielding ESO-Am adhesives. These adhesives are dynamically cross-linked with boroxines, hydrogen bonds, and hydrogen-bonded hydrophobic nanodomains.
View Article and Find Full Text PDFAdv Healthc Mater
September 2025
Department of Oral Biology, The Goldschleger School of Dental Medicine, Gray Faculty of Medical & Health Sciences, Tel Aviv University, Tel Aviv, 26745, ISRAEL.
Tissue regeneration is a complex biological process with limited self-repair capacity, necessitating engineered solutions to restore both mechanical integrity and biological functionality. In tissue engineering and regenerative medicine, 3D printing has emerged as a promising tool for fabricating scaffolds that mimic the natural extracellular matrix (ECM). However, many bioinks are derived from animal sources, posing risks of pathogen contamination and immune responses.
View Article and Find Full Text PDFAnticancer Agents Med Chem
September 2025
Noida Institute of Engineering and Technology (Pharmacy Institute), Greater Noida, Uttar Pradesh-201306, India.
Background: Lung cancer remains a leading cause of cancer-related deaths worldwide, with its incidence continuing to rise. Despite advancements in clinical treatments, their effectiveness is often restricted, emphasizing the need for novel therapeutic strategies. Natural products have long been explored for drug development, and among them, polysaccharides have gained significant attention due to their biocompatibility, biodegradability, and multiple biological functions.
View Article and Find Full Text PDFJ Pediatr Surg
September 2025
Hospital de Clínicas de Porto Alegre (HCPA), Rua Ramiro Barcelos, 2350, Santa Cecília, 90035-003, Porto Alegre, Rs, Brazil; Universidade Federal do Rio Grande do Sul (UFRGS), Rua Ramiro Barcelos, 2400, Santa Cecília, 90035-003, Porto Alegre, RS, Brazil.
Background: Obstructions of the tracheobronchial tree can result from various etiologies. Most cases of tracheal stenosis or tracheomalacia are associated with patient-specific anatomical and functional abnormalities, making treatment challenging. Despite progress in the development of tracheal support devices, the optimal or near-optimal stent design remains elusive.
View Article and Find Full Text PDFStem Cell Rev Rep
September 2025
Paris Cité University, INSERM UMR-S 970, Paris Cardiovascular Research Centre, Paris, France.
The transition from reconstructive to regenerative strategies in vascular surgery has intensified the need for grafts that are biocompatible, growth-capable, and resistant to thrombosis. Addressing this challenge, Park et al. introduce a groundbreaking method for engineering fully biological, endothelialized tissue-engineered vascular conduits (TEVCs) using decellularized human umbilical arteries (dHUAs) coated with human induced pluripotent stem cell-derived endothelial cells (hiPSC-ECs).
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