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Eukaryotic cell dynamics from crawlers to swimmers
- Source :
- WIREs Computational Molecular Science. 9
- Publication Year :
- 2018
- Publisher :
- Wiley, 2018.
-
Abstract
- Movement requires force transmission to the environment, and motile cells are robustly, though not elegantly, designed nanomachines that often can cope with a variety of environmental conditions by altering the mode of force transmission used(). As with humans, the available modes range from momentary attachment to a substrate when crawling, to shape deformations when swimming, and at the cellular level this involves sensing the mechanical properties of the environment and altering the mode appropriately. While many types of cells can adapt their mode of movement to their microenvironment (ME)(), our understanding of how they detect, transduce and process information from the ME to determine the optimal mode is still rudimentary. The shape and integrity of a cell is determined by its cytoskeleton (CSK), and thus the shape changes that may be required to move involve controlled remodeling of the CSK. Motion in vivo is often in response to extracellular signals, which requires the ability to detect such signals and transduce them into the shape changes and force generation needed for movement. Thus the nanomachine is complex, and while much is known about individual components involved in movement, an integrated understanding of motility in even simple cells such as bacteria is not at hand. In this review we discuss recent advances in our understanding of cell motility and some of the problems remaining to be solved.
- Subjects :
- Force generation
010304 chemical physics
Computer science
Dynamics (mechanics)
Motility
Crawling
Cellular level
010402 general chemistry
01 natural sciences
Biochemistry
Article
0104 chemical sciences
Computer Science Applications
Computational Mathematics
Transmission (telecommunications)
0103 physical sciences
Materials Chemistry
Process information
Physical and Theoretical Chemistry
Neuroscience
Eukaryotic cell
Subjects
Details
- ISSN :
- 17590884 and 17590876
- Volume :
- 9
- Database :
- OpenAIRE
- Journal :
- WIREs Computational Molecular Science
- Accession number :
- edsair.doi.dedup.....091b375b61eef90ad0ede9768f7c7be3