Li Xiangtang, Hu Hang, Yang Manxi, Laskin Julia
Department of Chemistry, Purdue University, West Lafayette, Indiana 47907, United States.
Anal Chem. 2025 Feb 18;97(6):3207-3212. doi: 10.1021/acs.analchem.4c06087. Epub 2025 Feb 4.
Mass spectrometry imaging (MSI) using nanospray desorption electrospray ionization (nano-DESI) has been extensively used for label-free mapping of hundreds of molecules in biological samples with minimal sample pretreatment. While both nano-DESI probes made of two fused silica capillaries and glass microfluidic probes (MFP) have been developed for imaging biological tissues with high spatial resolution, MFPs significantly enhance the robustness and throughput of nano-DESI MSI experiments. Despite their advantages, the fabrication of glass microfluidic devices is costly and requires specialized equipment or cleanroom facilities. Meanwhile, plastic microfluidic devices often suffer from limited solvent compatibility and low fabrication precision, restricting their achievable spatial resolution. To overcome these limitations, we have developed a low-cost microfluidic probe made from cyclic olefin copolymer (COC), a widely used thermoplastic material known for its excellent chemical resistance. The probe is fabricated using wire imprinting and thermal bonding in a standard laboratory setting. We estimate the achievable spatial resolution of the COC-MFP of 5-7 μm and demonstrate its robustness by imaging a large (20.0 mm × 9.5 mm) human kidney tissue section with high sensitivity. This affordable thermoplastic probe makes high spatial resolution nano-DESI MSI more accessible, broadening its applications in the scientific community.
使用纳米喷雾解吸电喷雾电离(nano-DESI)的质谱成像(MSI)已被广泛用于在几乎无需样品预处理的情况下对生物样品中的数百种分子进行无标记映射。虽然由两个熔融石英毛细管制成的纳米DESI探针和玻璃微流控探针(MFP)都已被开发用于对生物组织进行高空间分辨率成像,但MFP显著提高了纳米DESI MSI实验的稳健性和通量。尽管它们具有优势,但玻璃微流控装置的制造成本高昂,需要专门的设备或洁净室设施。同时,塑料微流控装置通常存在溶剂兼容性有限和制造精度低的问题,限制了其可实现的空间分辨率。为了克服这些限制,我们开发了一种由环烯烃共聚物(COC)制成的低成本微流控探针,COC是一种广泛使用的热塑性材料,以其优异的耐化学性而闻名。该探针是在标准实验室环境中使用丝网压印和热键合制造的。我们估计COC-MFP可实现的空间分辨率为5-7μm,并通过对一个大尺寸(20.0 mm×9.5 mm)的人类肾脏组织切片进行高灵敏度成像来证明其稳健性。这种经济实惠的热塑性探针使高空间分辨率的纳米DESI MSI更容易实现,拓宽了其在科学界的应用。