A Critical Look at Heavy Ion Beam Irradiation for Vaccine Development.

Payman Rafiepour, Seyed Mohammad Javad Mortazavi, Lembit Sihver
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Abstract

Recent studies offer valuable insights into viral inactivation for vaccine development. Schulze et al. have demonstrated the potential of heavy ion beam irradiation to create effective vaccines, which is particularly relevant in the context of airborne pandemics. Notably, the success in immunizing mice via intranasal administration with the inactivated influenza virus is encouraging, especially given the genetic similarities between influenza and SARS-CoV-2. However, the study raises important considerations. While heavy ion treatment shows advantages, there are concerns about viral inactivation completeness and the potential for surviving viruses, albeit at extremely low levels. Prolonged irradiation times and the risk of selective pressure leading to the evolution of resistant variants are highlighted. Biosafety concerns regarding accidental lab escape of resistant strains are crucial, emphasizing the need for caution during experiments. Moreover, limitations in Monte Carlo simulations of virus irradiation are discussed, pointing out the need for more comprehensive studies to assess the impact of secondary particles on virus inactivation under realistic irradiation conditions. Given these considerations, while the study presents a promising approach for vaccine development, further research is essential to address potential drawbacks and optimize the method for safe and effective application.

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批判性看待重离子束辐照疫苗开发。
最近的研究为疫苗开发中的病毒灭活提供了宝贵的见解。Schulze 等人证明了重离子束辐照在制造有效疫苗方面的潜力,这与空气传播的大流行病尤其相关。值得注意的是,通过鼻内注射灭活流感病毒对小鼠进行免疫的成功令人鼓舞,特别是考虑到流感和 SARS-CoV-2 在基因上的相似性。不过,这项研究也提出了一些重要的考虑因素。虽然重离子处理显示出优势,但病毒灭活的彻底性和病毒存活的可能性(尽管水平极低)也令人担忧。延长辐照时间以及选择性压力导致耐药变种进化的风险也得到了强调。耐药菌株在实验室意外逃逸的生物安全问题至关重要,这强调了在实验过程中谨慎行事的必要性。此外,还讨论了蒙特卡洛病毒辐照模拟的局限性,指出需要进行更全面的研究,以评估二次粒子在实际辐照条件下对病毒灭活的影响。鉴于这些考虑因素,虽然该研究为疫苗开发提供了一种前景广阔的方法,但进一步的研究对于解决潜在的缺陷和优化该方法以实现安全有效的应用至关重要。
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来源期刊
Journal of Biomedical Physics and Engineering
Journal of Biomedical Physics and Engineering Medicine-Radiology, Nuclear Medicine and Imaging
CiteScore
2.90
自引率
0.00%
发文量
64
审稿时长
10 weeks
期刊介绍: The Journal of Biomedical Physics and Engineering (JBPE) is a bimonthly peer-reviewed English-language journal that publishes high-quality basic sciences and clinical research (experimental or theoretical) broadly concerned with the relationship of physics to medicine and engineering.
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