Department of Biochemistry and Biotechnology , Center for Research and Advanced Studies Irapuato , Kilómetro 9.6 Libramiento Norte Carretera Irapuato-León , 36824 Irapuato , Guanajuato , Mexico.
CONACYT Potosino Institute of Scientific and Technological Research, National Supercomputing Center , Camino a la Presa San José 2055 , Colonia Lomas 4ta Sección, 78216 San Luis Potosí , Mexico.
Anal Chem. 2019 Feb 19;91(4):2734-2743. doi: 10.1021/acs.analchem.8b04406. Epub 2019 Jan 30.
Secondary metabolites of plants have important biological functions, which often depend on their localization in tissues. Ideally, a fresh untreated material should be directly analyzed to obtain a realistic view of the true sample chemistry. Therefore, there is a large interest for ambient mass-spectrometry-based imaging (MSI) methods. Our aim was to simplify this technology and to find an optimal combination of desorption/ionization principles for a fast ambient MSI of macroscopic plant samples. We coupled a 405 nm continuous wave (CW) ultraviolet (UV) diode laser to a three-dimensionally (3D) printed low-temperature plasma (LTP) probe. By moving the sample with a RepRap-based sampling stage, we could perform imaging of samples up to 16 × 16 cm. We demonstrate the system performance by mapping mescaline in a San Pedro cactus ( Echinopsis pachanoi) cross section, tropane alkaloids in jimsonweed ( Datura stramonium) fruits and seeds, and nicotine in tobacco ( Nicotiana tabacum) seedlings. In all cases, the anatomical regions of enriched compound concentrations were correctly depicted. The modular design of the laser desorption (LD)-LTP MSI platform, which is mainly assembled from commercial and 3D-printed components, facilitates its adoption by other research groups. The use of the CW-UV laser for desorption enables fast imaging measurements. A complete tobacco seedling with an image size of 9.2 × 15.0 mm was analyzed at a pixel size of 100 × 100 μm (14 043 mass scans), in less than 2 h. Natural products can be measured directly from native tissues, which inspires a broad use of LD-LTP MSI in plant chemistry studies.
植物次生代谢物具有重要的生物学功能,其功能往往取决于它们在组织中的定位。理想情况下,应直接分析未经处理的新鲜材料,以真实反映样品的化学性质。因此,人们对基于大气压力质谱成像(MSI)的方法产生了浓厚的兴趣。我们的目标是简化该技术,并找到最佳的解吸/电离原理组合,以便快速对宏观植物样品进行大气 MSI。我们将 405nm 连续波(CW)紫外(UV)二极管激光器与三维(3D)打印低温等离子体(LTP)探头耦合。通过使用基于 RepRap 的取样台移动样品,我们可以对最大 16×16cm 的样品进行成像。我们通过对圣佩德罗仙人球(Echinopsis pachanoi)横截面上的三甲氧苯乙胺、曼陀罗果实和种子中的托烷生物碱以及烟草(Nicotiana tabacum)幼苗中的尼古丁进行成像,证明了该系统的性能。在所有情况下,均正确描绘了富含化合物浓度的解剖区域。激光解吸(LD)-LTP MSI 平台的模块化设计主要由商业和 3D 打印组件组装而成,便于其他研究小组采用。CW-UV 激光的解吸作用可实现快速成像测量。以 100×100μm(14043 个质量扫描)的像素大小,在不到 2 小时的时间内,对 9.2×15.0mm 的完整烟草幼苗进行了分析。可直接从天然组织中测量天然产物,这激发了 LD-LTP MSI 在植物化学研究中的广泛应用。