Load-bearing fibrous tissues, like tendons, have remarkable strength with high water content (∼60%) due to the anisotropic network of collagen fibers. However, the scalability of biomimetic anisotropic hydrogels is limited by time-intensive fabrication processes involving cross-linking and stretching, often spanning several hours to days. Here, we present a rapid, scalable approach for fabricating tendon-mimetic hydrogel fibers within 1 min using the synergistic engineering of cyano--aramid nanofibers (CY-ANFs) and poly(vinyl alcohol) (PVA). Through continuous air-gap spinning, the formation of the anisotropic CY-ANF network drives instant gelation, producing hundreds of meters of hydrogel fibers without additional gelation treatment. From the perspective of properties, the hydrophilic PVA matrix affords flexibility, while the hydrophobic CY-ANF network provides a nonswelling feature and load-bearing ability, resulting in ultrastrong, water-rich hydrogel fibers. These hydrogel fibers exhibit a water content exceeding 80 wt %, along with exceptional strength (∼17.9 MPa), surpassing the mechanical properties of natural tendons (strength and modulus of approximately 10 and 100 MPa, respectively). Lengthy hydrogel fibers are integrated into larger-sized fabrics by knitting or weaving while also possessing strain-sensing capabilities. With excellent biocompatibility, these hydrogel fibers are promising candidates for artificial fibrous tissues and various biotechnological applications.
Download full-text PDF |
Source |
---|---|
http://dx.doi.org/10.1021/acsnano.4c18686 | DOI Listing |
Adv Mater
March 2025
Department of Chemistry, Hanyang University, Seoul, 04763, Republic of Korea.
Migration of implanted self-expandable metallic stent (SEMS) in the malignant or benign esophageal stricture is a common complication but not yet resolved. Herein, this research develops a hydrogel-impregnated robust interlocking nano connector (HiRINC) to ensure adhesion and reduce the mechanical mismatch between SEMSs and esophageal tissues. Featuring a network-like porous layer, HiRINC significantly enhances adhesion and energy dissipation during esophageal peristalsis by utilizing mechanical interlocking and increasing hydrogen bonding sites, thereby securing SEMS to tissues.
View Article and Find Full Text PDFJ Appl Biomater Funct Mater
March 2025
Kerman Neuroscience Research Center, Institute of Neuropharmacology, Kerman University of Medical Sciences, Kerman, Iran.
Peripheral nerve tissue engineering is a field that uses cells, growth factors and biological scaffold material to provide a nutritional and physical support in the repair of nerve injuries. The specific properties of injectable human amniotic membrane-derived hydrogel including growth factors as well as anti-inflammatory and neuroprotective agents make it an ideal tool for nerve tissue repair, and metformin may also aid in nerve regeneration. The aim of this study was to investigate the effects of hydrogel derived from amniotic membrane (AM) along with metformin (MET) administration in the repair of sciatic nerve injury in male rats.
View Article and Find Full Text PDFMater Today Bio
April 2025
Department of Orthopaedics, Union Hospital, Tongji Medical College, Huazhong University of Science & Technology, 1277 Jiefang Avenue, Wuhan, 430022, China.
Diabetic infected bone defect remains a great challenge in clinical practice, with delayed healing characterized by bacterial infection and cellular disfunction caused by oxidative stress. Hence, a novel self-healing multifunctional Ag@PEG-4OI/EXO hydrogel is introduced for improving healing of diabetic infected bone defect. 4-octyl itaconate, a derivative of the metabolite itaconate, has been proved that which performs antioxidant and mitochondria-protected properties.
View Article and Find Full Text PDFNat Commun
March 2025
State Key Lab of Metal Matrix Composites, School of Materials Science and Engineering and Zhangjiang Institute for Advanced Study, Shanghai Jiao Tong University, Shanghai, China.
Physical hydrogels, three-dimensional polymer networks with reversible cross-linking, have been widely used in many developments throughout the history of mankind. However, physical hydrogels face significant challenges in applications due to wound rupture and low elasticity. Some self-heal wounds with strong ionic bond throughout the network but struggle to immediately recover during cyclic operation.
View Article and Find Full Text PDFWorld J Stem Cells
February 2025
Department of Endocrinology, General Hospital of the Western Theater Command, Chengdu 610038, Sichuan Province, China.
Background: Burn wound management is challenging, and while mesenchymal stem cell-derived exosomes show therapeutic potential, optimal delivery methods are unclear.
Aim: To study chitosan (CS)-αβ-glycerophosphate (CS-αβ-GP) hydrogel crosslinked with adipose-derived stem cell exosomes (ASC-Exos) for healing deep burn injuries.
Methods: Rats with deep burn injuries were divided into the CS + ASCs-Exos group, the ASCs-Exos group, the CS group, and the control group.
Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!