Faculty of Pharmacy, University of Helsinki, P.O. Box 56, 00014, Helsinki, Finland.
J Am Soc Mass Spectrom. 2017 Jun;28(6):1060-1065. doi: 10.1007/s13361-016-1578-7. Epub 2017 Jan 11.
In mass spectrometry imaging of tissues, the size of structures that can be distinguished is determined by the spatial resolution of the imaging technique. Here, the spatial resolution of IR laser ablation is markedly improved by increasing the distance between the laser and the focusing lens. As the distance between the laser and the lens is increased from 1 to 18 m, the ablation spot size decreases from 440 to 44 μm. This way, only the collimated center of the divergent laser beam is directed on the focusing lens, which results in better focusing of the beam. Part of the laser energy is lost at longer distance, but this is compensated by focusing of the radiation to a smaller area on the sample surface. The long distance can also be achieved by a set of mirrors, between which the radiation travels before it is directed to the focusing lens and the sample. This method for improving the spatial resolution can be utilized in mass spectrometry imaging of tissues by techniques that utilize IR laser ablation, such as laser ablation electrospray ionization, laser ablation atmospheric pressure photoionization, and matrix-assisted laser desorption electrospray ionization. Graphical Abstract ᅟ.
在组织的质谱成像中,可以区分的结构的大小取决于成像技术的空间分辨率。在这里,通过增加激光和聚焦透镜之间的距离,显著提高了红外激光烧蚀的空间分辨率。当激光和透镜之间的距离从 1 米增加到 18 米时,烧蚀斑点的尺寸从 440 减小到 44 μm。这样,只有发散激光束的准直中心被引导到聚焦透镜上,从而使光束更好地聚焦。在较长的距离处会损失一部分激光能量,但这可以通过将辐射聚焦到样品表面上较小的区域来补偿。通过一组镜子也可以实现长距离,在将辐射引导至聚焦透镜和样品之前,辐射在这些镜子之间传播。这种提高空间分辨率的方法可用于利用红外激光烧蚀的技术进行组织的质谱成像,例如激光烧蚀电喷雾电离、激光烧蚀大气压光电离和基质辅助激光解吸电喷雾电离。