How microorganisms interact with their environment and with their conspecifics depends strongly on their mechanical properties, on the hydrodynamic signatures they generate while swimming and on fluid flows in their environment. The rich fluid-structure interaction between flagella – the appendages microorganisms use for propulsion – and the surrounding flow, has broad reaching effects for both eukaryotic and prokaryotic microorganisms. Here, we discuss selected recent advances in our understanding of the physical ecology of microorganisms, which have hinged on the ability to directly interrogate the movement of individual cells and their swimming appendages, in precisely controlled fluid environments, and to image them at appropriately fas...
Unicellular microscopic organisms living in aqueous environments outnumber all other creatures on Ea...
International audienceTo survive in harsh conditions, motile bacteria swim in complex environment an...
In this thesis, we explore different topics in the broad field of microscale swimming, focussing on ...
How microorganisms interact with their environment and with their conspecifics depends strongly on t...
Bacteria predate plants and animals by billions of years. Today, they are the world’s smallest cells...
Experiments and mathematical modeling show that complex flows driven by unexpected flagellar arrange...
Microscopic-scale swimming has been a very active area of research in the last couple of decades. Th...
Microbial life pervades our planet, and many species evolved the ability to propel themselves in the...
International audienceMany bacteria use rotating helical flagella in swimming motility. In search fo...
Bacterial swimming and chemotaxis serves as a model system for understanding information processing ...
This thesis investigates bacterial motility from the mechanism permitting individual selfpropulsion ...
Swimming bacteria with helical flagella are self-propelled micro-swimmers in nature, and the swimmin...
To survive in harsh conditions, motile bacteria swim in complex environments and respond to the surr...
To survive in harsh conditions, motile bacteria swim in complex environments and respond to the surr...
Cellular appendages such as cilia and flagella represent universal tools enabling cells and microbes...
Unicellular microscopic organisms living in aqueous environments outnumber all other creatures on Ea...
International audienceTo survive in harsh conditions, motile bacteria swim in complex environment an...
In this thesis, we explore different topics in the broad field of microscale swimming, focussing on ...
How microorganisms interact with their environment and with their conspecifics depends strongly on t...
Bacteria predate plants and animals by billions of years. Today, they are the world’s smallest cells...
Experiments and mathematical modeling show that complex flows driven by unexpected flagellar arrange...
Microscopic-scale swimming has been a very active area of research in the last couple of decades. Th...
Microbial life pervades our planet, and many species evolved the ability to propel themselves in the...
International audienceMany bacteria use rotating helical flagella in swimming motility. In search fo...
Bacterial swimming and chemotaxis serves as a model system for understanding information processing ...
This thesis investigates bacterial motility from the mechanism permitting individual selfpropulsion ...
Swimming bacteria with helical flagella are self-propelled micro-swimmers in nature, and the swimmin...
To survive in harsh conditions, motile bacteria swim in complex environments and respond to the surr...
To survive in harsh conditions, motile bacteria swim in complex environments and respond to the surr...
Cellular appendages such as cilia and flagella represent universal tools enabling cells and microbes...
Unicellular microscopic organisms living in aqueous environments outnumber all other creatures on Ea...
International audienceTo survive in harsh conditions, motile bacteria swim in complex environment an...
In this thesis, we explore different topics in the broad field of microscale swimming, focussing on ...