Machine Learning in Automated Monitoring of Metabolic Changes Accompanying the Differentiation of Adipose-Tissue-Derived Human Mesenchymal Stem Cells Employing 1 H- 1 H TOCSY NMR.
Lubaba MigdadiNour ShararHanan JafarAhmad TelfahRoland HergenröderChristian WöhlerPublished in: Metabolites (2023)
The ability to monitor the dynamics of stem cell differentiation is a major goal for understanding biochemical evolution pathways. Automating the process of metabolic profiling using 2D NMR helps us to understand the various differentiation behaviors of stem cells, and therefore sheds light on the cellular pathways of development, and enhances our understanding of best practices for in vitro differentiation to guide cellular therapies. In this work, the dynamic evolution of adipose-tissue-derived human Mesenchymal stem cells (AT-derived hMSCs) after fourteen days of cultivation, adipocyte and osteocyte differentiation, was inspected based on 1 H- 1 H TOCSY using machine learning. Multi-class classification in addition to the novelty detection of metabolites was established based on a control hMSC sample after four days' cultivation and we successively detected the changes of metabolites in differentiated MSCs following a set of 1 H- 1 H TOCSY experiments. The classifiers Kernel Null Foley-Sammon Transform and Kernel Density Estimation achieved a total classification error between 0% and 3.6% and false positive and false negative rates of 0%. This approach was successfully able to automatically reveal metabolic changes that accompanied MSC cellular evolution starting from their undifferentiated status to their prolonged cultivation and differentiation into adipocytes and osteocytes using machine learning supporting the research in the field of metabolic pathways of stem cell differentiation.
Keyphrases
- adipose tissue
- machine learning
- mesenchymal stem cells
- stem cells
- endothelial cells
- deep learning
- umbilical cord
- insulin resistance
- high fat diet
- magnetic resonance
- healthcare
- primary care
- ms ms
- artificial intelligence
- bone marrow
- single cell
- solid state
- high throughput
- genome wide
- type diabetes
- dna methylation
- metabolic syndrome
- quantum dots
- high fat diet induced
- pluripotent stem cells
- label free