BME "Lendület" Chemical Nanosensors Research Group, Department of Inorganic and Analytical Chemistry, Budapest University of Technology and Economics, Műegyetem rkp. 3, Budapest 1111, Hungary.
Center for Visualizing Catalytic Processes (VISION), Department of Physics, Technical University of Denmark, Fysikvej 307, Kongens Lyngby 2800, Denmark.
ACS Sens. 2024 Apr 26;9(4):1763-1774. doi: 10.1021/acssensors.3c01941. Epub 2024 Apr 12.
Chemical dynamics in biological samples are seldom stand-alone processes but represent the outcome of complicated cascades of interlinked reaction chains. In order to understand these processes and how they correlate, it is important to monitor several parameters simultaneously at high spatial and temporal resolution. Hyperspectral imaging is a promising tool for this, as it provides broad-range spectral information in each pixel, enabling the use of multiple luminescent indicator dyes, while simultaneously providing information on sample structures and optical properties. In this study, we first characterized pH- and O-sensitive indicator dyes incorporated in different polymer matrices as optical sensor nanoparticles to provide a library for (hyperspectral) chemical imaging. We then demonstrate the successful combination of a pH-sensitive indicator dye (HPTS(DHA)), an O-sensitive indicator dye (PtTPTBPF), and two reference dyes (perylene and TFPP), incorporated in polymer nanoparticles for multiparameter chemical imaging of complex natural samples such as green algal biofilms () and seagrass leaves () with high background fluorescence. We discuss the system-specific challenges and limitations of our approach and further optimization possibilities. Our study illustrates how multiparameter chemical imaging with hyperspectral read-out can now be applied on natural samples, enabling the alignment of several chemical parameters to sample structures.
生物样本中的化学动力学过程很少是独立的,而是代表了一系列相互关联的反应链的复杂级联的结果。为了理解这些过程以及它们之间的相互关系,重要的是要以高时空分辨率同时监测多个参数。高光谱成像是一种很有前途的工具,因为它在每个像素中提供了广泛的光谱信息,能够同时使用多种发光指示剂染料,同时提供关于样品结构和光学性质的信息。在本研究中,我们首先将 pH 和 O 敏感指示剂染料分别掺入不同的聚合物基质中,以形成光学传感器纳米颗粒,从而为(高光谱)化学成像提供了一个库。然后,我们成功地将 pH 敏感指示剂染料(HPTS(DHA))、O 敏感指示剂染料(PtTPTBPF)和两种参考染料(苝和 TFPP)结合在聚合物纳米颗粒中,用于对复杂的天然样品(如绿藻生物膜和海草叶片)进行多参数化学成像,这些样品具有高背景荧光。我们讨论了我们方法的系统特定的挑战和局限性,以及进一步的优化可能性。我们的研究说明了如何在天然样品上应用具有高光谱读出功能的多参数化学成像,从而能够将几个化学参数与样品结构对齐。