Rapid Molecular Evaluation of Human Kidney Tissue Sections by In Situ Mass Spectrometry and Machine Learning to Classify the Nephrotic Syndrome

被引:9
作者
Mondal, Supratim [1 ]
Singh, Mithlesh Prasad [1 ]
Kumar, Anubhav [1 ]
Chattopadhyay, Sutirtha [1 ]
Nandy, Abhijit [1 ]
Sthanikam, Yeswanth [1 ]
Pandey, Uddeshya [1 ]
Koner, Debasish [1 ]
Marisiddappa, Limesh [1 ,2 ]
Banerjee, Shibdas [1 ]
机构
[1] Indian Inst Sci Educ & Res Tirupati, Dept Chem, Tirupati 517507, India
[2] St Johns Med Coll Hosp, Dept Nephrol, Bangalore 560034, India
关键词
glomerular diseases; renal biopsy; desorption electrospray; lipid profile; support vector machine; diagnosis; RENAL LIPID-METABOLISM; LIPOPROTEIN METABOLISM; SYNDROME MECHANISMS; DISORDERS; DIAGNOSIS; CANCER; NORMALIZATION; DISEASE;
D O I
10.1021/acs.jproteome.2c00768
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Nephrotic syndrome (NS) is classified based on morphological changes of glomeruli in biopsied kidney tissues evaluated by time-consuming microscopy methods. In contrast, we employed desorption electrospray ionization mass spectrometry (DESI-MS) directly on renal biopsy specimens obtained from 37 NS patients to rapidly differentiate lipid profiles of three prevalent forms of NS: IgA nephropathy (n = 9), membranous glomerulonephritis (n = 7), and lupus nephritis (n = 8), along with other types of glomerular diseases (n = 13). As we noted molecular heterogeneity in regularly spaced renal tissue regions, multiple sections from each biopsy specimen were collected, providing a total of 973 samples for investigation. Using multivariate analysis, we report differential expressions of glycerophospholipids, sphingolipids, and glycerolipids among the above four classes of NS kidneys, which were otherwise overlooked in several past studies correlating lipid abnormalities with glomerular diseases. We developed machine learning (ML) models with the top 100 features using the support vector machine, which enabled us to discriminate the concerned glomerular diseases with 100% overall accuracy in the training, validation, and holdout test set. This DESI-MS/ML-based tissue analysis can be completed in a few minutes, in sharp contrast to a daylong procedure followed in the conventional histopathology of NS.
引用
收藏
页码:967 / 976
页数:10
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