A Biomimetic One‐Stone‐Two‐Birds Hydrogel with Electroconductive, Photothermally Antibacterial and Bioadhesive Properties for Skin Tissue Regeneration and Mechanosensation Restoration DOI Open Access
Hua Wei, Houchao Jing, Can Cheng

et al.

Advanced Functional Materials, Journal Year: 2024, Volume and Issue: unknown

Published: Dec. 13, 2024

Abstract Severe skin wounds arising from burns, cancers, and accidents can damage the entire tissue structure, resulting in permanent somatosensory dysfunction patients. Although emerging hydrogel dressings have shown clinical potential for accelerating wound repair, use of an individual material to synchronously restore structure sensory function defective remains a challenge. Herein, multifunctional that combines electroconductive polydopamine‐capped graphene nanosheets (PrGOs) embedded dynamically crosslinked dual‐polysaccharide (xyloglucan chitosan) matrix network is presented. The fabricated hydrogels adjustable modulus be matched at site, owing dynamic Schiff‐based crosslinking as well facile photo‐triggered secondary crosslinking. Furthermore, photothermal activity PrGO elevate local temperature up ≈50 °C, significantly restraining bacterial growth. These two factors jointly promote regeneration tissue. Tissue adhesion also reported offers conformable robust interface detect quantify human movement physiological signals mimic system. This effective one‐stone‐for‐two‐birds simultaneously achieves multi‐signal sensing, promoting restoration and/or replacement damaged skins.

Language: Английский

MXene-derived Multifunctional Biomaterials: New Opportunities for Wound Healing DOI Creative Commons
Dong Luo, Huiqi Zhang, Xinyang Xuanyuan

et al.

Biomaterials Research, Journal Year: 2025, Volume and Issue: 29

Published: Jan. 1, 2025

The process of wound healing is frequently impeded by metabolic imbalances within the microenvironment. MXenes exhibit exceptional biocompatibility, biodegradability, photothermal conversion efficiency, conductivity, and adaptable surface functionalization, demonstrating marked potential in development multifunctional platforms for healing. Moreover, integration with other bioactive nanomaterials has been shown to enhance their therapeutic efficacy, paving way innovative approaches In this review, we provide a systematic exposition mechanisms through which facilitate offer comprehensive analysis current research landscape on MXene-based composites field. By delving into latest scientific discoveries, identify existing challenges future trajectories advancement MXenes. Our evaluation aims insightful guidance formulation more effective strategies.

Language: Английский

Citations

0

Photothermal-Responsive Gel-Sol Transition Hydrogel Dressing Accelerates Skin Wound Healing DOI
Yanjin Lu,

RuChen Hong,

Y.‐C. Weng

et al.

Published: Jan. 1, 2025

Language: Английский

Citations

0

Near-infrared-responsive copper-cerium bimetallic oxide nanozyme with antibacterial and antioxidant abilities for periodontitis therapy DOI
Xiaowen Li, H. Liang, Yonghui Huang

et al.

Colloids and Surfaces B Biointerfaces, Journal Year: 2025, Volume and Issue: unknown, P. 114685 - 114685

Published: April 1, 2025

Language: Английский

Citations

0

A near-infrared responsive hydrogel loaded with Prussian blue-based nanocarriers for CO gas therapy of infected wounds DOI
Yao Li,

Zhixue Zhang,

Haoran Jiang

et al.

Chemical Engineering Journal, Journal Year: 2025, Volume and Issue: unknown, P. 162544 - 162544

Published: April 1, 2025

Language: Английский

Citations

0

Novel Photothermal Graphene-Based Hydrogels in Biomedical Applications DOI Open Access
Alexa-Maria Croitoru, Anton Ficai, Anton Ficai

et al.

Polymers, Journal Year: 2024, Volume and Issue: 16(8), P. 1098 - 1098

Published: April 15, 2024

In the last decade, photothermal therapy (PTT) has attracted tremendous attention because it is non-invasive, shows high efficiency and antibacterial activity, minimizes drug side effects. Previous studies demonstrated that PTT can effectively inhibit growth of bacteria promotes cell proliferation, accelerating wound healing tissue regeneration. Among different NIR-responsive biomaterials, graphene-based hydrogels with properties are considered as best candidates for biomedical applications, due to their excellent properties. This review summarizes current advances in development innovative PTT-based applications. Also, information about potential applications therapies provided. These findings provide a great supporting biomedicine.

Language: Английский

Citations

3

Photothermal Fish Gelatin‐Graphene Microneedle Patches for Chronic Wound Treatment DOI
Junjie Zeng, Minhui Lu, Yu Wang

et al.

Small, Journal Year: 2024, Volume and Issue: unknown

Published: Sept. 9, 2024

Abstract Microneedles are demonstrated as an effective strategy for chronic wound treatment. Great endeavors devoted to developing microneedles with natural compositions and potent functions promote therapeutic effects healing. Herein, a novel graphene oxide‐integrated methacrylated fish gelatin (GO‐FGelMA) microneedle patch encapsulated bacitracin vascular endothelial growth factor (VEGF) is developed management. As the components porous structures of FGelMA, fabricated patches display satisfactory biocompatibility drug‐loading ability. Owing integration oxide, can realize promoted drug release via near‐infrared (NIR) irradiation. Besides, VEGF endow ability inhibit bacterial angiogenesis. It that GO‐FGelMA efficient exert positive influence on healing process through reduced inflammation, enhanced closure, improved tissue regeneration. Thus, it believed proposed drugs‐loaded will hold great potential in future

Language: Английский

Citations

2

Progress of AI assisted synthesis of polysaccharides-based hydrogel and their applications in biomedical field DOI
Fangyu Li, Lu Gan,

Xurui Yang

et al.

International Journal of Biological Macromolecules, Journal Year: 2024, Volume and Issue: 287, P. 138643 - 138643

Published: Dec. 10, 2024

Language: Английский

Citations

2

Smart Hydrogels for Tissue Regeneration DOI
Chaoming Xie,

Jie Xu,

Xinyi Wang

et al.

Macromolecular Bioscience, Journal Year: 2023, Volume and Issue: 24(3)

Published: Oct. 17, 2023

Abstract The rapid growth in the portion of aging population has led to a consequent increase demand for biomedical hydrogels, together with an assortment challenges that need be overcome this field. Smart hydrogels can autonomously sense and respond physiological/pathological changes tissue microenvironment continuously adapt response according dynamic spatiotemporal shifts conditions. This along other favorable properties, make smart excellent materials employing toward improving precision treatment age‐related diseases. key factor during hydrogel design is on accurately identifying characteristics natural tissues faithfully replicating composition, structure, biological functions these at molecular level. Such distinct physiological external factors such as temperature biologically active molecules, so they may turn actively promptly adjust their response, by regulating own effects, thereby promoting damaged repair. review summarizes strategies employed creation mechanisms, well applications field engineering; concludes briefly discussing relevant future prospects.

Language: Английский

Citations

6

Enzyme-Mineralized PVASA Hydrogels with Combined Toughness and Strength for Bone Tissue Engineering DOI
Guangpeng Zhang, Xinying Wang, Guolong Meng

et al.

ACS Applied Materials & Interfaces, Journal Year: 2023, Volume and Issue: 16(1), P. 178 - 189

Published: Dec. 20, 2023

Enzymatic mineralization is an advanced method that often used to enhance the stiffness and strength of hydrogels, but accompanied by brittle behavior. Moreover, hydrogel systems with dense networks currently for enzymatic are not ideal materials bone repair applications. To address these issues, two usual poly(vinyl alcohol) (PVA) sodium alginate (SA), were selected form a double-network structure through repeated freeze–thawing ionic cross-linking, followed enzyme mineralization. The results demonstrated both improved mechanical biological properties even exhibited synergistic effects. mineralized PVASA hydrogels superior comprehensive properties, Young's modulus 1.03 MPa, storage 103 kPa, equilibrium swelling ratio 132%. In particular, did suffer toughness loss after mineralization, high value 1.86 MJ/m3. prepared also biocompatibility cell spreading area about 13 times PVA. It effectively promoted cellular osteogenic differentiation in vitro further formation new femur defect region vivo. Overall, enzyme-mineralized combined great potential tissue engineering

Language: Английский

Citations

4

Polydopamine Nanocarriers with Cascade-Activated Nitric Oxide Release Combined Photothermal Activity for the Therapy of Drug-Resistant Bacterial Infections DOI

Ting Cui,

Feiyang Xu, Jun Wang

et al.

ACS Infectious Diseases, Journal Year: 2024, Volume and Issue: 10(6), P. 2018 - 2031

Published: May 14, 2024

Antibiotic abuse leads to increased bacterial resistance, and the surviving planktonic bacteria aggregate secrete extracellular polymers form biofilms. Conventional antibacterial agents find it difficult penetrate biofilm, remove wrapped in it, produce an excellent therapeutic effect. In this study, a dual pH- NIR-responsive nanocomposite (A-Ca@PDA) was developed drug-resistant through cascade of catalytic nitric oxide (NO) release photothermal clearance. NO can melt outer package facilitating nanocomposites have better permeability. Thermal therapy further inhibits growth bacteria. The locally generated high temperature burst together aggravate biofilm collapse death after NIR irradiation. achieved remarkable conversion efficiency 47.5%, thereby exhibiting significant advancements energy conversion. exhibited efficacy inhibiting multidrug-resistant (MDR) Escherichia coli MDR Staphylococcus aureus, thus achieving inhibition rate >90%. Moreover, these significantly improved wound-healing process S. aureus-infected mice. Thus, novel offers strategy combat infections.

Language: Английский

Citations

1