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Review Critical reviews in analytical chemistry. 2025 May 15:1-20. doi: 10.1080/10408347.2025.2502581 Q15.22025

Advancing Biosensing Frontiers Through Gold Nanoparticle Engineering: Synthesis Strategies and Detection Paradigms

通过金纳米颗粒工程推进生物传感前沿:合成策略和检测范式 翻译改进

Geetanjali Saini  1, Parneet Sheoran  1, Madhu Jangra  1, Anjum Gahlaut  1, Vikas Raj  1

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  • 1 Centre for Biotechnology, Maharshi Dayanand University, Rohtak, Haryana, India.
  • DOI: 10.1080/10408347.2025.2502581 PMID: 40375431

    摘要 中英对照阅读

    Gold Nanoparticles (GNPs) play a pivotal role in nanobiotechnology because of their distinct physicochemical traits, such as optical properties, compatibility with biological systems, and their ability to be easily functionalized. The top-down and bottom-up approaches are for the synthesis of GNPs. There are various chemical, physical, and green synthesis techniques, such as chemical reduction, seed-mediated growth, physical ablation method, pyrolysis, sputtering, etc. are some methods for the synthesis of GNPs. The use of plants, algae, fungi, and other microorganisms has recently arisen as a new approach for the eco-friendly synthesis with precise control over NP size, shape, and surface properties. The functionalization strategies involving biomolecules, polymers, and ligands enhance their stability and target specificity, facilitating their integration into biosensors. The detection of biomolecules, pathogens, and environmental toxins with high sensitivity and accuracy is facilitated by multiple signals such as localized surface plasmon resonance (LSPR), alterations in color, and electrochemical characteristics. Furthermore, their role in point-of-care diagnostics, drug delivery, and imaging underscores their versatility in biomedical applications. This review provides a comprehensive overview of recent advancements in the synthesis, functionalization, and GNPs-based biosensors. In addition, the review highlights recent advancements, challenges, and future prospects of GNPs in biosensing and nanomedicine, offering an understanding of diagnostics and therapeutic monitoring. The key challenges include stability, reproducibility, and scalability, and the future focuses on green synthesis with enhanced sensitivity and multiplexed biosensing applications.

    Keywords: Biosensors; functionalization; gold nanoparticles; green synthesis.

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    金纳米颗粒(GNPs)在纳米生物技术中扮演着至关重要的角色,因为它们具有独特的理化特性,例如光学性质、与生物系统的兼容性以及易于功能化的特性。GNPs的合成采用自上而下和自下而上的方法。有许多化学、物理和绿色合成技术可用于GNPs的合成,包括化学还原法、种子介导生长法、物理消融法、热解法、溅射等。最近,利用植物、藻类、真菌和其他微生物进行生态友好的合成成为了一种新的方法,并且可以精确控制纳米颗粒的尺寸、形状和表面性质。涉及生物分子、聚合物和配体的功能化策略增强了它们的稳定性和靶向特异性,使其能够集成到生物传感器中。局部表面等离子共振(LSPR)、颜色变化以及电化学特性等多种信号促进了对生物分子、病原体和环境毒素的高度灵敏和准确检测。此外,在即时诊断、药物递送和成像中的作用突显了其在生物医学应用中的多功能性。本综述提供了GNPs合成、功能化及基于GNPs的生物传感器方面最近进展的一个全面概述。此外,该综述还强调了GNPs在生物传感和纳米医学方面的最新进展、挑战和未来前景,为诊断和治疗监测提供了一种理解。关键挑战包括稳定性、重现性和可扩展性,并且未来的重点在于绿色合成以及具有增强灵敏度的多路复用生物传感器应用。

    关键词:生物传感器;功能化;金纳米颗粒;绿色合成。

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    期刊名:Critical reviews in analytical chemistry

    缩写:CRIT REV ANAL CHEM

    ISSN:1040-8347

    e-ISSN:1547-6510

    IF/分区:5.2/Q1

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