Histopathological modeling of status epilepticus-induced brain damage based on in vivo diffusion tensor imaging in rats

被引:1
作者
Molina, Isabel San Martin [1 ]
Salo, Raimo A. [1 ]
Grohn, Olli [1 ]
Tohka, Jussi [1 ]
Sierra, Alejandra [1 ]
机构
[1] Univ Eastern Finland, AI Virtanen Inst Mol Sci, Kuopio, Finland
基金
芬兰科学院;
关键词
cell counting; diffusion tensor imaging; predictive modeling; structure tensor analysis; astrocyte morphology; HISTOLOGICAL VALIDATION; AXONAL INJURY; MRI; ORIENTATION; TISSUE; PILOCARPINE; MICROSCOPY; ROBUST; MICROSTRUCTURE; OPTIMIZATION;
D O I
10.3389/fnins.2022.944432
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Non-invasive magnetic resonance imaging (MRI) methods have proved useful in the diagnosis and prognosis of neurodegenerative diseases. However, the interpretation of imaging outcomes in terms of tissue pathology is still challenging. This study goes beyond the current interpretation of in vivo diffusion tensor imaging (DTI) by constructing multivariate models of quantitative tissue microstructure in status epilepticus (SE)-induced brain damage. We performed in vivo DTI and histology in rats at 79 days after SE and control animals. The analyses focused on the corpus callosum, hippocampal subfield CA3b, and layers V and VI of the parietal cortex. Comparison between control and SE rats indicated that a combination of microstructural tissue changes occurring after SE, such as cellularity, organization of myelinated axons, and/or morphology of astrocytes, affect DTI parameters. Subsequently, we constructed a multivariate regression model for explaining and predicting histological parameters based on DTI. The model revealed that DTI predicted well the organization of myelinated axons (cross-validated R = 0.876) and astrocyte processes (cross-validated R = 0.909) and possessed a predictive value for cell density (CD) (cross-validated R = 0.489). However, the morphology of astrocytes (cross-validated R > 0.05) was not well predicted. The inclusion of parameters from CA3b was necessary for modeling histopathology. Moreover, the multivariate DTI model explained better histological parameters than any univariate model. In conclusion, we demonstrate that combining several analytical and statistical tools can help interpret imaging outcomes to microstructural tissue changes, opening new avenues to improve the non-invasive diagnosis and prognosis of brain tissue damage.
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页数:18
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