De Sá Magalhães Salomé, De Santis Emiliana, Hussein-Gore Saba, Colomb-Delsuc Mathieu, Keshavarz-Moore Eli
Department of Biochemical Engineering, University College London, UCL, London, United Kingdom.
National Physical Laboratory, NPL, Teddington, United Kingdom.
Front Mol Biosci. 2022 Nov 25;9:975054. doi: 10.3389/fmolb.2022.975054. eCollection 2022.
Transmission electron microscopy (TEM) is a gold standard analytical method for nanoparticle characterization and is playing a valuable role in virus-like particle (VLP) characterization extending to other biological entities such as viral vectors. A dedicated TEM facility is a challenge to both small and medium-sized enterprises (SMEs) and companies operating in low-and-middle income countries (LMICs) due to high start-up and running costs. A low-voltage TEM solution with assisted image acquisition and analysis such as the MiniTEM system, coupled with Vironova Imaging and Analysis Software (VIAS) could provide an affordable and practical alternative. The MiniTEM system has a small footprint and software that enables semi-automated data collection and image analysis workflows using built-in deep learning methods (convolutional neural networks) for automation in analysis, increasing speed of information processing and enabling scaling to larger datasets. In this perspective we outline the potential and challenges in the use of TEM as mainstream analytical tool in manufacturing settings. We highlight the rationale and preliminary findings from our proof-of-concept study aiming to develop a method to assess critical quality attributes (CQAs) of VLPs and facilitate adoption of TEM in manufacturing settings. In our study we explored all the steps, from sample preparation to data collection and analysis using synthetic VLPs as model systems. The applicability of the method in product development was verified at pilot-scale during the technology transfer of dengue VLPs development from a university setting to an LMIC- based vaccine manufacturing company, demonstrating the applicability of this analytical technique to VLP vaccine characterization.
透射电子显微镜(TEM)是用于纳米颗粒表征的金标准分析方法,在病毒样颗粒(VLP)表征中发挥着重要作用,其应用范围已扩展到其他生物实体,如病毒载体。由于启动和运行成本高昂,专门的TEM设施对中小企业(SME)以及在低收入和中等收入国家(LMIC)运营的公司来说都是一项挑战。一种具有辅助图像采集和分析功能的低电压TEM解决方案,如MiniTEM系统,再结合Vironova成像与分析软件(VIAS),可以提供一种经济实惠且实用的替代方案。MiniTEM系统占地面积小,其软件能够使用内置的深度学习方法(卷积神经网络)实现半自动数据收集和图像分析工作流程,从而实现分析自动化,提高信息处理速度,并能够扩展到更大的数据集。在此观点中,我们概述了将TEM用作制造环境中的主流分析工具所面临的潜力和挑战。我们强调了概念验证研究的基本原理和初步结果,该研究旨在开发一种评估VLP关键质量属性(CQA)的方法,并促进TEM在制造环境中的应用。在我们的研究中,我们以合成VLP作为模型系统,探索了从样品制备到数据收集与分析的所有步骤。在登革热VLP从大学环境向一家基于LMIC的疫苗制造公司进行技术转移的中试规模阶段,验证了该方法在产品开发中的适用性,证明了这种分析技术在VLP疫苗表征中的适用性。