Untangling the fusion of spatial omics and mechanobiology
Abstract
Cellular biophysical properties are increasingly linked to disease development, including muscular dystrophy, cancer, glaucoma, and other conditions. Transcription profiles of various types have been utilized to elucidate the relationship between genes and their regulatory functions. While spatial transcriptomics creates high-resolution maps of gene regulation in tissues, it does not capture the mechanically coordinated responses of cells based on their transcriptional profiles and cell locations. Mechanobiology, on the other hand, studies how cells perceive and respond to forces but lacks genomic information. In this paper, we explore the emergence of an integrative platform called spatial mechano-transcriptomics. This method combines spatial transcriptomic and mechanical data from the same cells within a timeframe suitable for diagnostic procedures. Spatial mechano-transcriptomics examines the relationship between physical properties, including cell membrane stiffness, and differences in the cell's transcription profile, which could be used to predict disease states. Integrating spatial and mechanical observations has the potential to revolutionize precision diagnostics and lead to the development of new therapeutics, resulting in significant advances in biomedical research.