增强透皮微针平台的疫苗稳定性。

IF 5.7 3区 医学 Q1 MEDICINE, RESEARCH & EXPERIMENTAL
Suman Pahal, Feifei Huang, Parbeen Singh, Nidhi Sharma, Hoang-Phuc Pham, Thi Bao Tram Tran, Aseno Sakhrie, Hasan Akbaba, Thanh Duc Nguyen
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引用次数: 0

摘要

微米级针头,即所谓的微针头(MNs),为有效的皮内免疫提供了一种微创、几乎无痛和用户友好的方法。维持抗原和疗法的稳定性是生产疫苗或载药MNs的主要挑战。MNs贴片的制造涉及环境或更高温度和各种物理机械应力的过程,这些过程可能影响敏感生物制剂或疫苗的治疗效果。因此,至关重要的是开发技术,以保护疫苗和其他生物有效载荷在MNs内。尽管越来越多的研究对将纳米颗粒作为提供疫苗的有效工具感兴趣,但目前还没有综合考虑保持疫苗有效载荷热稳定性的策略和努力,以确保纳米颗粒制造的兼容性。讨论深入探讨了稳定疫苗配方中抗原的各种物理和化学方法,这些方法随后被整合到MNs基质中。主要重点是全面审查与转化耐热MNs疫苗用于临床应用相关的挑战,同时考虑一种安全、具有成本效益的方法和监管路线图。最近的尖端进展,促进灵活和可扩展的制造稳定的纳米粒子贴片已被强调。总之,稳定疫苗和治疗方法用于纳米粒子应用的能力可以加强各种药物和疫苗的有效性、安全性和用户合规性,可能对全球公共卫生产生重大影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhancing vaccine stability in transdermal microneedle platforms.

Micron-scale needles, so-called microneedles (MNs) offer a minimally invasive, nearly painless, and user-friendly method for effective intradermal immunization. Maintaining the stability of antigens and therapeutics is the primary challenge in producing vaccine or drug-loaded MNs. The manufacturing of MNs patches involves processes at ambient or higher temperatures and various physio-mechanical stresses that can impact the therapeutic efficacy of sensitive biologics or vaccines. Therefore, it is crucial to develop techniques that safeguard vaccines and other biological payloads within MNs. Despite growing research interest in deploying MNs as an efficient tool for delivering vaccines, there is no comprehensive review that integrates the strategies and efforts to preserve the thermostability of vaccine payloads to ensure compatibility with MNs fabrication. The discussion delves into various physical and chemical approaches for stabilizing antigens in vaccine formulations, which are subsequently integrated into the MNs matrix. The primary focus is to comprehensively examine the challenges associated with the translation of thermostable vaccine MNs for clinical applications while considering a safe, cost-effective approach with a regulatory roadmap. The recent cutting-edge advances facilitating flexible and scalable manufacturing of stabilized MNs patches have been emphasized. In conclusion, the ability to stabilize vaccines and therapeutics for MNs applications could bolster the effectiveness, safety and user-compliance for various drugs and vaccines, potentially offering a substantial impact on global public health.

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来源期刊
Drug Delivery and Translational Research
Drug Delivery and Translational Research MEDICINE, RESEARCH & EXPERIMENTALPHARMACOL-PHARMACOLOGY & PHARMACY
CiteScore
11.70
自引率
1.90%
发文量
160
期刊介绍: The journal provides a unique forum for scientific publication of high-quality research that is exclusively focused on translational aspects of drug delivery. Rationally developed, effective delivery systems can potentially affect clinical outcome in different disease conditions. Research focused on the following areas of translational drug delivery research will be considered for publication in the journal. Designing and developing novel drug delivery systems, with a focus on their application to disease conditions; Preclinical and clinical data related to drug delivery systems; Drug distribution, pharmacokinetics, clearance, with drug delivery systems as compared to traditional dosing to demonstrate beneficial outcomes Short-term and long-term biocompatibility of drug delivery systems, host response; Biomaterials with growth factors for stem-cell differentiation in regenerative medicine and tissue engineering; Image-guided drug therapy, Nanomedicine; Devices for drug delivery and drug/device combination products. In addition to original full-length papers, communications, and reviews, the journal includes editorials, reports of future meetings, research highlights, and announcements pertaining to the activities of the Controlled Release Society.
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