3D-printed biodegradable polymer scaffolds for tissue engineering: An overview, current stage and future perspectives DOI

Yu-Yao Liu,

Mónica Echeverry‐Rendón

Next Materials, Год журнала: 2025, Номер 8, С. 100647 - 100647

Опубликована: Апрель 16, 2025

Язык: Английский

Microwave-assisted synthesis of crosslinked ureido chitosan for hemostatic applications DOI
Kartik Ravishankar,

Shelly Km,

Sreelekshmi Sreekumar

и другие.

International Journal of Biological Macromolecules, Год журнала: 2024, Номер 260, С. 129648 - 129648

Опубликована: Янв. 21, 2024

Язык: Английский

Процитировано

5

A Structural, Morphological, and Corrosion Study of 316L Stainless Steel Coated With Hydroxyapatite, Chitosan, Nano‐MgO, and 3‐Aminopropyl Trimethoxysilane via Electrophoretic Deposition DOI Creative Commons

Anees Kadhim Tayyeh,

Ahmed F. Hasan

Journal of Nanotechnology, Год журнала: 2025, Номер 2025(1)

Опубликована: Янв. 1, 2025

This study presents the electrophoretic deposition (EPD) of hydroxyapatite (HAP), chitosan (CS), magnesium oxide (MgO) and silane coupling agent (KH‐550) coatings on 316L stainless steel substrates to improve their corrosion protective properties for intended biomedical applications. In addition, this work differentiates itself by analyzing effects varying anodization times (5, 10, 15 min) surface characteristics, with a particular focus roughness, zeta potential suspension, coating thickness. The results show that root‐mean‐square roughness (Sq) arithmetic mean (Sa) escalated from 78.18 nm 67.14 uncoated base metal 421.7 364.7 nm, respectively, after min anodization. Stable suspension was indicated −39.8 mV. As time increased, thickness reached 14.14 μm min. atomic force microscopy (AFM) analysis used assess adhesion bond strengths HAP–CS–MgO composites coated at different surface. composite 10 exhibited most substantial −0.5271 nN, indicating highest reliability stability in bonding interactions. KH‐550 concentration 0.0793 g/mL demonstrated lowest rate 0.02933 mm/year, superior resistance, along −1.0 nN 117.5 μm.

Язык: Английский

Процитировано

0

Application and progress of inorganic composites in haemostasis: a review DOI

Hanjie Shao,

Xiang Wu, Junjie Deng

и другие.

Journal of Materials Science, Год журнала: 2024, Номер 59(17), С. 7169 - 7192

Опубликована: Апрель 4, 2024

Язык: Английский

Процитировано

4

Preparation and properties of chitosan/gelatin film containing capsaicinoid for hemostasis and antibacterial DOI Creative Commons

Phanlob Chankachang,

Sakdiphon Thiansem,

Anucha Raksanti

и другие.

Colloids and Surfaces A Physicochemical and Engineering Aspects, Год журнала: 2024, Номер 694, С. 134078 - 134078

Опубликована: Апрель 26, 2024

Blood loss resulting from accidents or surgery is a worrying health problem. This because hemorrhage can occur and cause death. Therefore, the development of safe effective hemostatic materials important. Hemostatic agents (Ha) made composite chitosan, gelatin, glycerol mixtures capsaicinoids (Cap) at various compositions 0, 1, 2, 4, 6 12 wt%. The films forming were prepared by casting with aim obtaining an environmentally friendly material for intraoperative hemostasis. characterizations samples performed physicochemical, morphological, hemostasis test, functional groups, antibacterial, mechanical properties evaluated. received are flexible transparent. It was found that wt% Cap showed optimization in stopping bleeding, content optimized antibacterial both Staphylococcusaureus Escherichia coli.The results show addition into chitosan/gelatin film basedHa has high potential as product, there very interesting trend future.

Язык: Английский

Процитировано

4

Insights into depolymerization of chitosan using acid hydrolysis, direct photolysis, and photocatalysis: A review DOI Creative Commons

Nurul Amanina A. Suhaimi,

Nur Batrisyia Amirul,

A. Hasman

и другие.

Results in Chemistry, Год журнала: 2025, Номер unknown, С. 102044 - 102044

Опубликована: Янв. 1, 2025

Язык: Английский

Процитировано

0

Zinc oxide nanoparticle-embedded tannic acid/chitosan-based sponge: A highly absorbent hemostatic agent with enhanced antimicrobial activity DOI
Mehdi Abedi, Mohsen Arbabi,

Razieh Gholampour

и другие.

International Journal of Biological Macromolecules, Год журнала: 2025, Номер unknown, С. 140337 - 140337

Опубликована: Янв. 1, 2025

Язык: Английский

Процитировано

0

Graphene Reinforced Chitosan Nanocomposites for Drug Delivery DOI
Ratan Priya, Seung Yun Nam, Wan‐Seob Cho

и другие.

Опубликована: Янв. 1, 2025

Язык: Английский

Процитировано

0

ROS-responsive nucleobase conjugated chitosan: Synthesis and evaluations for biomedical applications DOI
Neeraj Kulkarni, Govinda Shivaji Jadhav,

Pranav Ravindra Kombe

и другие.

Carbohydrate Polymers, Год журнала: 2025, Номер 356, С. 123353 - 123353

Опубликована: Фев. 7, 2025

Язык: Английский

Процитировано

0

Prospects of Biodegradable Material: Sustainable and Patient-Centric Approach in the Realm of Biomedical Engineering DOI
Dhanalekshmi Unnikrishnan Meenakshi,

Alka Ahuja,

Nandakumar Selvasudha

и другие.

Опубликована: Янв. 1, 2025

Язык: Английский

Процитировано

0

Hemostatic Biopolymers: A Natural Approach for Revolutionizing Blood Loss Control DOI
Supriya Shidhaye,

Priyanka Singanwad,

Mayuri Gajghate

и другие.

Polymer-Plastics Technology and Materials, Год журнала: 2025, Номер unknown, С. 1 - 22

Опубликована: Фев. 19, 2025

Язык: Английский

Процитировано

0