Zehrer Ando Christian, Martin-Villalba Ana, Diederich Benedict, Ewers Helge
Institut für Chemie und Biochemie, Freie Universität Berlin, Berlin, Germany.
Department of Molecular Neurobiology, German Cancer Research Cente, Heidelberg, Germany.
Elife. 2024 Mar 4;12:RP89826. doi: 10.7554/eLife.89826.
Fluorescence microscopy is a fundamental tool in the life sciences, but the availability of sophisticated equipment required to yield high-quality, quantitative data is a major bottleneck in data production in many laboratories worldwide. This problem has long been recognized and the abundancy of low-cost electronics and the simplification of fabrication through 3D-printing have led to the emergence of open-source scientific hardware as a research field. Cost effective fluorescence microscopes can be assembled from cheaply mass-produced components, but lag behind commercial solutions in image quality. On the other hand, blueprints of sophisticated microscopes such as light-sheet or super-resolution systems, custom-assembled from high quality parts, are available, but require a high level of expertise from the user. Here, we combine the UC2 microscopy toolbox with high-quality components and integrated electronics and software to assemble an automated high-resolution fluorescence microscope. Using this microscope, we demonstrate high resolution fluorescence imaging for fixed and live samples. When operated inside an incubator, long-term live-cell imaging over several days was possible. Our microscope reaches single molecule sensitivity, and we performed single particle tracking and SMLM super-resolution microscopy experiments in cells. Our setup costs a fraction of its commercially available counterparts but still provides a maximum of capabilities and image quality. We thus provide a proof of concept that high quality scientific data can be generated by lay users with a low-budget system and open-source software. Our system can be used for routine imaging in laboratories that do not have the means to acquire commercial systems and through its affordability can serve as teaching material to students.
荧光显微镜是生命科学中的一项基础工具,但要获得高质量的定量数据,所需的精密设备在全球许多实验室的数据生产中是一个主要瓶颈。这个问题早已得到认识,低成本电子产品的丰富以及通过3D打印实现的制造简化,导致了开源科学硬件作为一个研究领域的出现。具有成本效益的荧光显微镜可以由大量廉价生产的部件组装而成,但在图像质量上落后于商业解决方案。另一方面,诸如光片或超分辨率系统等精密显微镜的蓝图,由高质量部件定制组装而成,虽然有,但需要用户具备高水平的专业知识。在此,我们将UC2显微镜工具箱与高质量部件以及集成电子设备和软件相结合,组装出一台自动化高分辨率荧光显微镜。使用这台显微镜,我们展示了对固定样本和活样本的高分辨率荧光成像。当在培养箱内操作时,能够进行长达数天的长期活细胞成像。我们的显微镜达到了单分子灵敏度,并且我们在细胞中进行了单粒子追踪和SMLM超分辨率显微镜实验。我们的装置成本仅为同类商业产品的一小部分,但仍具备最大程度的功能和图像质量。因此,我们提供了一个概念验证,即普通用户可以使用低成本系统和开源软件生成高质量的科学数据。我们的系统可用于那些没有能力购置商业系统的实验室进行常规成像,并且由于其价格可承受,还能作为学生的教学材料。