Umeå Centre for Molecular Medicine, Umeå University, Umeå, Sweden.
The Rolf Luft Research Center for Diabetes and Endocrinology, Karolinska Institutet, Stockholm, Sweden.
Sci Rep. 2017 Jul 27;7(1):6646. doi: 10.1038/s41598-017-07015-z.
Despite the dramatic increase in the prevalence of diabetes, techniques for in situ studies of the underlying pancreatic biochemistry are lacking. Such methods would facilitate obtaining mechanistic understanding of diabetes pathophysiology and aid in prognostic and/or diagnostic assessments. In this report we demonstrate how a multivariate imaging approach (orthogonal projections to latent structures - discriminant analysis) can be applied to generate full vibrational microspectroscopic profiles of pancreatic tissues. These profiles enable extraction of known and previously unrecorded biochemical alterations in models of diabetes, and allow for classification of the investigated tissue with regards to tissue type, strain and stage of disease progression. Most significantly, the approach provided evidence for dramatic alterations of the pancreatic biochemistry at the initial onset of immune-infiltration in the Non Obese Diabetic model for type 1 diabetes. Further, it enabled detection of a previously undocumented accumulation of collagen fibrils in the leptin deficient ob/ob mouse islets. By generating high quality spectral profiles through the tissue capsule of hydrated human pancreata and by in vivo Raman imaging of pancreatic islets transplanted to the anterior chamber of the eye, we provide critical feasibility studies for the translation of this technique to diagnostic assessments of pancreatic biochemistry in vivo.
尽管糖尿病的患病率显著增加,但缺乏用于原位研究潜在胰腺生物化学的技术。这些方法将有助于获得对糖尿病病理生理学的机制理解,并有助于预后和/或诊断评估。在本报告中,我们展示了如何应用多元成像方法(正交投影到潜在结构-判别分析)来生成胰腺组织的全振动微光谱轮廓。这些轮廓能够提取糖尿病模型中已知和以前未记录的生化变化,并允许根据组织类型、品系和疾病进展阶段对研究组织进行分类。最重要的是,该方法在 1 型糖尿病的非肥胖糖尿病模型中免疫浸润的初始阶段提供了胰腺生物化学显著改变的证据。此外,它还能够检测到以前未记录的瘦素缺陷 ob/ob 小鼠胰岛中胶原纤维的积累。通过在水合的人胰腺的组织胶囊中生成高质量的光谱轮廓,并对移植到眼睛前房的胰腺胰岛进行体内拉曼成像,我们为将该技术转化为体内胰腺生物化学的诊断评估提供了关键的可行性研究。