流感治疗的革命性变革:深入了解靶向给药系统。

IF 2.2 4区 医学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY
Sourav Ghosh, Sejuti Ray Chowdhury, Monosiz Rahaman, Biswajit Basu, Bhupendra Prajapati
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引用次数: 0

摘要

流感是由甲型和乙型流感病毒引起的一种传播性极强的呼吸道传染病,由于其突变率高、对现有抗病毒药物产生抗药性的能力强、传播速度快,因此对全球公共卫生构成持续威胁。目前的治疗方案包括四大类抗病毒药物--金刚烷类、神经氨酸酶抑制剂、RNA 依赖性 RNA 聚合酶抑制剂和聚合酶酸性核酸内切酶抑制剂--但由于耐药病毒株的出现、非特异性药物分布和不良副作用等原因而受到限制。此外,抗原漂移和转移往往会影响传统疫苗的效果,因此有必要开发替代治疗策略。本综述全面探讨了新型靶向给药系统在解决这些局限性和改善流感治疗方面的潜力。以纳米技术为基础的平台,包括脂质、聚合物、无机和混合纳米颗粒,通过提高生物利用度、靶向作用和控制释放来增强给药效果,从而最大限度地减少全身毒性并优化治疗效果。干粉吸入器(DPI)、雾化器和基于纳米技术的吸入配方等吸入给药系统可将抗病毒药物直接输送到呼吸道,确保快速起效并减少全身副作用。经皮给药方法,包括微针贴片和水凝胶系统,提供了非侵入性的替代方法,提高了患者的依从性,并能持续释放药物。此外,本综述还讨论了最近的创新成果,如反应性给药系统和能够同时给药多种治疗药物的多功能纳米颗粒,它们代表了抗击流感的重大进展。这些新方法有望提高靶向性和疗效,实现个性化治疗策略,从而改善季节性流感和大流行情况下的患者治疗效果。将这些先进的给药系统集成到临床实践中,可以彻底改变流感的治疗方法,为实现更有效、更安全的治疗提供一条充满希望的途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Revolutionizing Influenza Treatment: A Deep Dive into Targeted Drug Delivery Systems.

Influenza, a highly transmissible respiratory infection caused by influenza viruses A and B, poses a persistent threat to global public health due to its high mutation rate, ability to develop resistance to existing antiviral drugs, and capacity for rapid spread. Current treatment options, including four main classes of antiviral agents-adamantanes, neuraminidase inhibitors, RNA-dependent RNA polymerase inhibitors, and polymerase acidic endonuclease inhibitors- are limited by the emergence of drug-resistant viral strains, non-specific drug distribution, and adverse side effects. Moreover, the effectiveness of traditional vaccines is often compromised by antigenic drift and shift, necessitating the development of alternative therapeutic strategies. This review comprehensively explores the potential of novel targeted drug delivery systems to address these limitations and improve influenza management. Nanotechnology-based platforms, including lipid-based, polymer-based, inorganic, and hybrid nanoparticles, offer enhanced drug delivery through improved bioavailability, targeted action, and controlled release, thus minimizing systemic toxicity and optimizing therapeutic outcomes. Inhalation delivery systems such as dry powder inhalers (DPIs), nebulizers, and nanotechnology-based inhalation formulations provide direct delivery of antiviral agents to the respiratory tract, ensuring rapid onset of action with reduced systemic side effects. Transdermal delivery methods, including microneedle patches and hydrogel-based systems, offer non-invasive alternatives that enhance patient compliance and allow for sustained drug release. Furthermore, this review discusses recent innovations, such as responsive drug delivery systems and multifunctional nanoparticles capable of simultaneous delivery of multiple therapeutic agents, representing a significant advancement in the fight against influenza. These novel approaches promise improved targeting and efficacy and enable personalized treatment strategies, enhancing patient outcomes in both seasonal flu and pandemic scenarios. Integrating these advanced drug delivery systems into clinical practice could revolutionize the management of influenza, offering a promising pathway toward more effective and safer therapies.

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来源期刊
Current pharmaceutical biotechnology
Current pharmaceutical biotechnology 医学-生化与分子生物学
CiteScore
5.60
自引率
3.60%
发文量
203
审稿时长
6 months
期刊介绍: Current Pharmaceutical Biotechnology aims to cover all the latest and outstanding developments in Pharmaceutical Biotechnology. Each issue of the journal includes timely in-depth reviews, original research articles and letters written by leaders in the field, covering a range of current topics in scientific areas of Pharmaceutical Biotechnology. Invited and unsolicited review articles are welcome. The journal encourages contributions describing research at the interface of drug discovery and pharmacological applications, involving in vitro investigations and pre-clinical or clinical studies. Scientific areas within the scope of the journal include pharmaceutical chemistry, biochemistry and genetics, molecular and cellular biology, and polymer and materials sciences as they relate to pharmaceutical science and biotechnology. In addition, the journal also considers comprehensive studies and research advances pertaining food chemistry with pharmaceutical implication. Areas of interest include: DNA/protein engineering and processing Synthetic biotechnology Omics (genomics, proteomics, metabolomics and systems biology) Therapeutic biotechnology (gene therapy, peptide inhibitors, enzymes) Drug delivery and targeting Nanobiotechnology Molecular pharmaceutics and molecular pharmacology Analytical biotechnology (biosensing, advanced technology for detection of bioanalytes) Pharmacokinetics and pharmacodynamics Applied Microbiology Bioinformatics (computational biopharmaceutics and modeling) Environmental biotechnology Regenerative medicine (stem cells, tissue engineering and biomaterials) Translational immunology (cell therapies, antibody engineering, xenotransplantation) Industrial bioprocesses for drug production and development Biosafety Biotech ethics Special Issues devoted to crucial topics, providing the latest comprehensive information on cutting-edge areas of research and technological advances, are welcome. Current Pharmaceutical Biotechnology is an essential journal for academic, clinical, government and pharmaceutical scientists who wish to be kept informed and up-to-date with the latest and most important developments.
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