Advances in nano silver-based biomaterials and their biomedical applications

Q1 Medicine Engineered regeneration Pub Date : 2024-07-02 DOI:10.1016/j.engreg.2024.07.001
Punuri Jayasekhar Babu , Akriti Tirkey , Abraham Abbey Paul , Kathelina Kristollari , Jugal Barman , Kingshuk Panda , Neha Sinha , Birudu Ravi Babu , Robert S. Marks
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Abstract

Silver nanoparticles are among the most widely researched and used for nanotechnology-derived structures due to their extraordinary inherent optical properties, chemical stability, catalytic activity, and high conductivity. These idiosyncratic properties can be attributed to their unique physico-chemical characteristics, such as ultrafine sizes, high surface area, diverse shapes, and strong localized surface plasmon resonance. These distinctive features can be tailored using various physical, chemical, and biological synthesis methods. Various physical techniques are viable for producing silver nanoparticles on a large scale, but they suffer from drawbacks such as high-power consumption, expensive set-up, and limited control over nanoparticle size distribution. Chemical methods provide benefits like high yield, consistent shape and size distribution, and cost efficiency, but the residual toxicity of the chemicals involved hinders their biological applications. Biological synthesis approaches effectively overcome the limitations of both physical and chemical methods by eliminating the need for hazardous chemicals, requiring less energy, enabling diverse nanoparticle morphologies, and offering eco-friendliness and exceptional biocompatibility. The novel and promising properties of nanosilver-based biomaterials have been demonstrated to be suitable for a wide range of pharmacological and therapeutic biomedical applications. Their extensive application in wound healing, dentistry, cardiovascular disease treatment, nerve tissue engineering, cancer treatment, and biosensing can be attributed to their inherent antimicrobial and antibiofilm activity, antithrombotic properties, potential for nerve regeneration, photothermal conversion efficiency and sensitivity, respectively. This review discusses the different methods employed for synthesising silver nanoparticles and focuses on using nanosilver-based biomaterials for various biomedical applications.

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纳米银基生物材料及其生物医学应用的进展
银纳米粒子具有非凡的固有光学特性、化学稳定性、催化活性和高导电性,是研究和应用最广泛的纳米技术衍生结构之一。这些独特的性能可归因于其独特的物理化学特性,如超细尺寸、高表面积、形状多样以及强烈的局部表面等离子体共振。这些独特的特性可以通过各种物理、化学和生物合成方法来定制。各种物理技术都可用于大规模生产银纳米粒子,但它们都有一些缺点,如功耗高、设置昂贵以及对纳米粒子尺寸分布的控制有限。化学方法具有产量高、形状和尺寸分布一致、成本效益高的优点,但其中涉及的化学物质的残留毒性阻碍了它们在生物领域的应用。生物合成方法有效地克服了物理和化学方法的局限性,无需使用有害化学物质,能耗更低,纳米粒子形态多样,具有生态友好性和优异的生物兼容性。纳米银基生物材料的新颖性和前景广阔的特性已被证明适用于广泛的药理和治疗生物医学应用。纳米银在伤口愈合、牙科、心血管疾病治疗、神经组织工程、癌症治疗和生物传感方面的广泛应用分别归功于其固有的抗微生物和抗生物膜活性、抗血栓特性、神经再生潜力、光热转换效率和灵敏度。本综述讨论了合成银纳米粒子的不同方法,并重点介绍了将纳米银基生物材料用于各种生物医学应用的情况。
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来源期刊
Engineered regeneration
Engineered regeneration Biomaterials, Medicine and Dentistry (General), Biotechnology, Biomedical Engineering
CiteScore
22.90
自引率
0.00%
发文量
0
审稿时长
33 days
期刊最新文献
A patch comprising human umbilical cord-derived hydrogel and mesenchymal stem cells promotes pressure ulcer wound healing Cochlear implant/MXene-based electroacoustic stimulation modulates the growth and maturation of spiral ganglion neurons Advancing engineered approaches for sustainable wound regeneration and repair: Harnessing the potential of green synthesized silver nanoparticles Advances in nano silver-based biomaterials and their biomedical applications Comparison of two hemostatic skin adhesive dressings, incorporating multi-metal bioactive glass
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