Mathematics in Medicine Program, Department of Medicine, Houston Methodist Research Institute, Houston, Texas, USA.
Department of Physiology and Biophysics, Weill Cornell Medical College, New York, New York, USA.
JCI Insight. 2023 Jul 10;8(13):e169860. doi: 10.1172/jci.insight.169860.
While the development of different vaccines slowed the dissemination of SARS-CoV-2, the occurrence of breakthrough infections has continued to fuel the COVID-19 pandemic. To secure at least partial protection in the majority of the population through 1 dose of a COVID-19 vaccine, delayed administration of boosters has been implemented in many countries. However, waning immunity and emergence of new variants of SARS-CoV-2 suggest that such measures may induce breakthrough infections due to intermittent lapses in protection. Optimizing vaccine dosing schedules to ensure prolonged continuity in protection could thus help control the pandemic. We developed a mechanistic model of immune response to vaccines as an in silico tool for dosing schedule optimization. The model was calibrated with clinical data sets of acquired immunity to COVID-19 mRNA vaccines in healthy and immunocompromised participants and showed robust validation by accurately predicting neutralizing antibody kinetics in response to multiple doses of COVID-19 mRNA vaccines. Importantly, by estimating population vulnerability to breakthrough infections, we predicted tailored vaccination dosing schedules to minimize breakthrough infections, especially for immunocompromised individuals. We identified that the optimal vaccination schedules vary from CDC-recommended dosing, suggesting that the model is a valuable tool to optimize vaccine efficacy outcomes during future outbreaks.
虽然不同疫苗的开发减缓了 SARS-CoV-2 的传播,但突破性感染的发生仍在继续推动 COVID-19 大流行。为了通过 COVID-19 疫苗的 1 剂至少在大多数人群中提供部分保护,许多国家已经实施了推迟加强针的接种。然而,免疫减弱和 SARS-CoV-2 的新变体的出现表明,由于保护间歇性中断,这些措施可能会导致突破性感染。优化疫苗接种方案以确保保护的持续延长,从而有助于控制大流行。我们开发了一种针对疫苗的免疫反应机制模型,作为优化剂量方案的计算工具。该模型使用了健康和免疫功能低下参与者对 COVID-19 mRNA 疫苗获得性免疫的临床数据集进行了校准,并通过准确预测 COVID-19 mRNA 疫苗多次接种后的中和抗体动力学,得到了稳健的验证。重要的是,通过估计人群对突破性感染的脆弱性,我们预测了定制的疫苗接种剂量方案,以最大限度地减少突破性感染,特别是对免疫功能低下的个体。我们发现,最佳的接种方案与 CDC 推荐的剂量方案不同,这表明该模型是在未来爆发期间优化疫苗效果的有价值工具。