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结合表面敏感显微镜技术分析神经装置植入后的生物组织。

Combining surface-sensitive microscopies for analysis of biological tissues after neural device implantation.

作者信息

De Carvalho Amanda G, Barnes Jean-Paul, Renault Olivier, Mariolle Denis, Gaude Christophe, Ratel David, Galtayries Anouk

机构信息

Univ. Grenoble Alpes, CEA, LETI, F-38000 Grenoble, France.

Univ. Grenoble Alpes, CEA, LETI, Clinatec, F-38000 Grenoble, France.

出版信息

Biointerphases. 2020 Jun 26;15(3):031016. doi: 10.1116/6.0000110.

Abstract

In order to address the complexity of chemical analysis of biological systems, time-of-flight secondary ion mass spectrometry (ToF-SIMS), x-ray photoelectron spectroscopy (XPS), and x-ray photoemission electron microscopy (XPEEM) were used for combined surface imaging of a biological tissue formed around a surface neural device after implantation on a nonhuman primate brain. Results show patterns on biological tissue based on extracellular matrix (ECM) and phospholipid membrane (PM) molecular fragments, which were contrasted through principal component analysis of ToF-SIMS negative spectrum. This chemical differentiation may indicate severe inflammation on tissue with an early case of necrosis. Quantification of the elemental composition and the chemical bonding states on both ECM-rich and PM-rich features was possible through XPS analysis from survey and high-resolution spectra, respectively. Variable amounts of carbon (68%-80.5%), nitrogen (10%-2.4%), and oxygen (20.8%-16.5%) were detected on the surface of the biological tissue. Chlorine, phosphorous sodium, and sulfur were also identified in lower extends. Besides that, analysis of the C 1s high-resolution spectra for the same two regions (ECM and PM ones) showed that a compromise between C-C (41.8 at. %) and C-N/C-O (35.6 at. %) amounts may indicate a strong presence of amino acids and proteoglycans on the ECM fragment-rich region, while the great amount of C-C (70.1 at. %) on the PM fragment-rich region is attributed to the large chains of fatty acids connected to phospholipid molecules. The micrometer-scale imaging of these chemical states on tissue was accomplished through XPEEM analysis. The C-C presence was found uniformly distributed across the entire analyzed area, while C-N/C-O and C=O were in two distinct regions. The combination of ToF-SIMS, XPS, and XPEEM is shown here as a powerful, noninvasive approach to map out elemental and chemical properties of biological tissues, i.e., identification of chemically distinct regions, followed by quantification of the surface chemical composition in each distinct region.

摘要

为了解决生物系统化学分析的复杂性,采用飞行时间二次离子质谱(ToF-SIMS)、X射线光电子能谱(XPS)和X射线光电子发射显微镜(XPEEM)对植入非人灵长类动物大脑表面的神经装置周围形成的生物组织进行联合表面成像。结果显示了基于细胞外基质(ECM)和磷脂膜(PM)分子片段的生物组织模式,通过ToF-SIMS负谱的主成分分析进行了对比。这种化学分化可能表明组织存在严重炎症并伴有早期坏死情况。通过分别对XPS全谱和高分辨谱进行分析,可以对富含ECM和富含PM的特征上的元素组成和化学键合状态进行定量。在生物组织表面检测到了不同含量的碳(68%-80.5%)、氮(10%-2.4%)和氧(20.8%-16.5%)。还检测到了含量较低的氯、磷、钠和硫。除此之外,对同一两个区域(ECM和PM区域)的C 1s高分辨谱分析表明,C-C(41.8原子%)和C-N/C-O(35.6原子%)含量之间的平衡可能表明在富含ECM片段的区域存在大量氨基酸和蛋白聚糖,而在富含PM片段的区域大量的C-C(70.1原子%)则归因于与磷脂分子相连的长链脂肪酸。通过XPEEM分析实现了对组织上这些化学状态的微米级成像。发现C-C均匀分布在整个分析区域,而C-N/C-O和C=O分布在两个不同区域。ToF-SIMS、XPS和XPEEM的结合在此展示了一种强大的非侵入性方法,用于绘制生物组织的元素和化学性质,即识别化学性质不同的区域,然后对每个不同区域的表面化学成分进行定量。

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