Sperm swimming at low Reynolds number have strong hydrodynamic interactions when their concentration is high in vivo or near substrates in vitro. The beating tails not only propel the sperm through a fluid, but also create flow fields through which sperm interact with each other. We study the hydrodynamic interaction and cooperation of sperm embedded in a two-dimensional fluid by using a particle-based mesoscopic simulation method, multiparticle collision dynamics. We analyze the sperm behavior by investigating the relationship between the beating-phase difference and the relative sperm position, as well as the energy consumption. Two effects of hydrodynamic interaction are found, synchronization and attraction. With these hydrodynamic effe...
Sperm cells undergo complex interactions with external environments, such as a solid-boundary, fluid...
We have numerically investigated sperm clustering behaviours, modelling cells as superpositions of r...
Mammalian sperm cells manage locomotion by the movement of their flagella. Dynein motors inside the ...
The journey of mammalian spermatozoa in nature is well-known to be reliant on their individual motil...
AbstractSperm are propelled by an actively beating tail, and display a wide variety of swimming patt...
Sperm are propelled by an actively beating tail, and display a wide variety of swimming patterns. Wh...
Sperm are propelled by an actively beating tail, and display a wide variety of swimming patterns. Wh...
The hydrodynamic behaviors of sperms in confined spaces (e.g. Poiseuille flow and quiescent flow bet...
Although hydrodynamic interactions and cooperative swimming of mammalian sperm are observed, the key...
Swimming cells and microorganisms are as diverse in their collective dynamics as they are in their i...
Various locomotion strategies employed by microorganisms are observed in complex biological environm...
Les microorganismes présentent des comportements collectifs qui émergent des interactions qui se pro...
Remarkably, mammalian sperm maintain a substantive proportion of their progressive swimming speed wi...
The simulation of 1000 swimmers with fixed undulation frequencies starting from a polar configuratio...
Abstract We have numerically investigated sperm clustering behaviours, modelling cells as superposit...
Sperm cells undergo complex interactions with external environments, such as a solid-boundary, fluid...
We have numerically investigated sperm clustering behaviours, modelling cells as superpositions of r...
Mammalian sperm cells manage locomotion by the movement of their flagella. Dynein motors inside the ...
The journey of mammalian spermatozoa in nature is well-known to be reliant on their individual motil...
AbstractSperm are propelled by an actively beating tail, and display a wide variety of swimming patt...
Sperm are propelled by an actively beating tail, and display a wide variety of swimming patterns. Wh...
Sperm are propelled by an actively beating tail, and display a wide variety of swimming patterns. Wh...
The hydrodynamic behaviors of sperms in confined spaces (e.g. Poiseuille flow and quiescent flow bet...
Although hydrodynamic interactions and cooperative swimming of mammalian sperm are observed, the key...
Swimming cells and microorganisms are as diverse in their collective dynamics as they are in their i...
Various locomotion strategies employed by microorganisms are observed in complex biological environm...
Les microorganismes présentent des comportements collectifs qui émergent des interactions qui se pro...
Remarkably, mammalian sperm maintain a substantive proportion of their progressive swimming speed wi...
The simulation of 1000 swimmers with fixed undulation frequencies starting from a polar configuratio...
Abstract We have numerically investigated sperm clustering behaviours, modelling cells as superposit...
Sperm cells undergo complex interactions with external environments, such as a solid-boundary, fluid...
We have numerically investigated sperm clustering behaviours, modelling cells as superpositions of r...
Mammalian sperm cells manage locomotion by the movement of their flagella. Dynein motors inside the ...