Mechanically guided cell fate determination in early development.
Delan N AlasaadiRoberto MayorPublished in: Cellular and molecular life sciences : CMLS (2024)
Cell fate determination, a vital process in early development and adulthood, has been the focal point of intensive investigation over the past decades. Its importance lies in its critical role in shaping various and diverse cell types during embryonic development and beyond. Exploration of cell fate determination started with molecular and genetic investigations unveiling central signaling pathways and molecular regulatory networks. The molecular studies into cell fate determination yielded an overwhelming amount of information invoking the notion of the complexity of cell fate determination. However, recent advances in the framework of biomechanics have introduced a paradigm shift in our understanding of this intricate process. The physical forces and biochemical interplay, known as mechanotransduction, have been identified as a pivotal drive influencing cell fate decisions. Certainly, the integration of biomechanics into the process of cell fate pushed our understanding of the developmental process and potentially holds promise for therapeutic applications. This integration was achieved by identifying physical forces like hydrostatic pressure, fluid dynamics, tissue stiffness, and topography, among others, and examining their interplay with biochemical signals. This review focuses on recent advances investigating the relationship between physical cues and biochemical signals that control cell fate determination during early embryonic development.
Keyphrases
- cell fate
- solid phase extraction
- molecularly imprinted
- mental health
- physical activity
- signaling pathway
- transcription factor
- gene expression
- depressive symptoms
- single molecule
- mesenchymal stem cells
- dna methylation
- bone marrow
- machine learning
- stem cells
- artificial intelligence
- health information
- deep learning
- case control
- finite element