Neděla Vilém, Tihlaříková Eva, Maxa Jiří, Imrichová Kamila, Bučko Marek, Gemeiner Peter
Environmental electron microscopy group, Institute of Scientific Instruments of ASCR, Královopolská 147, 61264 Brno, Czech Republic.
Environmental electron microscopy group, Institute of Scientific Instruments of ASCR, Královopolská 147, 61264 Brno, Czech Republic.
Ultramicroscopy. 2020 Apr;211:112954. doi: 10.1016/j.ultramic.2020.112954. Epub 2020 Jan 28.
We present a complex analysis and optimisation of dynamic conditions in the environmental scanning electron microscope (ESEM) to allow in-situ observation of extremely delicate wet bio-polymeric spherical particles in their native state. According to the results of gas flow and heat transfer simulations, we were able to develop an improved procedure leading to thermodynamic equilibrium between the sample and chamber environment. To quantify and hence minimise the extent of any sample deformation during specimen chamber pumping, a strength-stress analysis is used. Monte Carlo simulations of beam-gas, -water, and -sample interactions describe beam scattering, absorbed energy, interaction volume and the emission of signal electrons in the ESEM. Finally, we discuss sample damage as a result of drying and the production of beam-induced free radicals. Based on all experimental and simulation results we introduce a Delicate Sample Observation Strategy for the ESEM. We show how this strategy can be applied to the characterization of polyelectrolyte complex spherical particles containing immobilized recombinant cells E. coli overexpressing cyclohexanone monooxygenase, used as a model biocatalyst. We present the first native-state electron microscopy images of the viscous core of a halved polyelectrolyte complex capsule containing living cells.
我们对环境扫描电子显微镜(ESEM)中的动态条件进行了复杂的分析和优化,以实现对极其脆弱的天然状态下的湿生物聚合物球形颗粒进行原位观察。根据气流和传热模拟结果,我们得以开发出一种改进方法,使样品与腔室环境达到热力学平衡。为了量化并尽量减少样品腔抽气过程中样品的变形程度,我们采用了强度-应力分析。对电子束与气体、水和样品相互作用的蒙特卡罗模拟描述了ESEM中的电子束散射、吸收能量、相互作用体积以及信号电子的发射。最后,我们讨论了干燥导致的样品损伤以及电子束诱导自由基的产生。基于所有实验和模拟结果,我们为ESEM引入了一种精细样品观察策略。我们展示了该策略如何应用于对含有过表达环己酮单加氧酶的固定化重组大肠杆菌细胞的聚电解质复合球形颗粒的表征。我们展示了含有活细胞的半聚电解质复合胶囊粘性核心的首张天然状态电子显微镜图像。