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消毒过程中N95口罩上UV-C剂量与新冠病毒灭活情况的映射关系

Mapping of UV-C dose and SARS-CoV-2 viral inactivation across N95 respirators during decontamination.

作者信息

Geldert Alisha, Su Alison, Roberts Allison W, Golovkine Guillaume, Grist Samantha M, Stanley Sarah A, Herr Amy E

机构信息

The UC Berkeley - UCSF Graduate Program in Bioengineering, University of California Berkeley, 308B Stanley Hall, Mailcode 1762, Berkeley, CA, 94720, USA.

Department of Molecular and Cell Biology, University of California Berkeley, Berkeley, CA, 94720, USA.

出版信息

Sci Rep. 2021 Oct 13;11(1):20341. doi: 10.1038/s41598-021-98121-6.

Abstract

During public health crises like the COVID-19 pandemic, ultraviolet-C (UV-C) decontamination of N95 respirators for emergency reuse has been implemented to mitigate shortages. Pathogen photoinactivation efficacy depends critically on UV-C dose, which is distance- and angle-dependent and thus varies substantially across N95 surfaces within a decontamination system. Due to nonuniform and system-dependent UV-C dose distributions, characterizing UV-C dose and resulting pathogen inactivation with sufficient spatial resolution on-N95 is key to designing and validating UV-C decontamination protocols. However, robust quantification of UV-C dose across N95 facepieces presents challenges, as few UV-C measurement tools have sufficient (1) small, flexible form factor, and (2) angular response. To address this gap, we combine optical modeling and quantitative photochromic indicator (PCI) dosimetry with viral inactivation assays to generate high-resolution maps of "on-N95" UV-C dose and concomitant SARS-CoV-2 viral inactivation across N95 facepieces within a commercial decontamination chamber. Using modeling to rapidly identify on-N95 locations of interest, in-situ measurements report a 17.4 ± 5.0-fold dose difference across N95 facepieces in the chamber, yielding 2.9 ± 0.2-log variation in SARS-CoV-2 inactivation. UV-C dose at several on-N95 locations was lower than the lowest-dose locations on the chamber floor, highlighting the importance of on-N95 dose validation. Overall, we integrate optical simulation with in-situ PCI dosimetry to relate UV-C dose and viral inactivation at specific on-N95 locations, establishing a versatile approach to characterize UV-C photoinactivation of pathogens contaminating complex substrates such as N95s.

摘要

在诸如新冠疫情这样的公共卫生危机期间,为缓解N95口罩短缺的情况,已采用紫外线C(UV-C)对N95口罩进行消毒以便紧急重复使用。病原体光灭活效果关键取决于UV-C剂量,该剂量与距离和角度有关,因此在消毒系统内的N95口罩表面上差异很大。由于UV-C剂量分布不均匀且依赖于系统,以足够的空间分辨率在N95口罩上表征UV-C剂量以及由此产生的病原体灭活情况是设计和验证UV-C消毒方案的关键。然而,在N95口罩整个面罩上对UV-C剂量进行可靠量化存在挑战,因为很少有UV-C测量工具具备足够的(1)小尺寸、灵活的外形,以及(2)角度响应。为填补这一空白,我们将光学建模和定量光致变色指示剂(PCI)剂量测定法与病毒灭活试验相结合,以生成商业消毒室内N95口罩整个面罩上“N95口罩上”的UV-C剂量以及伴随的新冠病毒灭活情况的高分辨率图谱。利用建模快速识别N95口罩上感兴趣的位置,现场测量结果显示,消毒室内N95口罩整个面罩上的剂量差异为17.4±5.0倍,导致新冠病毒灭活有2.9±0.2个对数级的变化。N95口罩上几个位置的UV-C剂量低于消毒室地面上剂量最低的位置,这突出了对N95口罩上剂量进行验证的重要性。总体而言,我们将光学模拟与现场PCI剂量测定法相结合,以关联特定N95口罩上位置的UV-C剂量和病毒灭活情况,建立了一种通用方法来表征污染诸如N95口罩等复杂基质的病原体的UV-C光灭活情况。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1f8e/8514565/bbe7164d03fb/41598_2021_98121_Fig1_HTML.jpg

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