Biological systems achieve precise control over ambient fluids through the self-organization of active protein structures including flagella, cilia, and cytoskeletal networks. In such active structures individual proteins consume chemical energy to generate force and motion at molecular length scales. Self-organization of protein components enables the control and modulation of fluid flow fields on micron scales. The physical principles underlying the organization and control of active-matter-driven fluid flows are poorly understood. Here, we apply an optically-controlled active-matter system composed of microtubule filaments and light-switchable kinesin motor proteins to analyze the emergence of persistent flow fields in a model active mat...
The cytoskeleton is a collection of protein assemblies that dynamically impose spatial structure in ...
Many cellular processes are driven by cytoskeletal assemblies. It remains unclear how cytoskeletal f...
Chemically or optically powered active matter plays an increasingly important role in materials desi...
Biological systems achieve precise control over ambient fluids through the self-organization of acti...
Living systems are capable of locomotion, reconfiguration and replication. To perform these tasks, c...
Active matter is a field that continues to grow in interest because of its widespread relevance to f...
Active matter is a growing interdisciplinary field of science that studies the collective motion of ...
In cellular phenomena, such as cytoplasmic streaming, molecular motors translocate along microtubule...
Microtubule-based active fluids exhibit turbulent-like autonomous flows, which are driven by the mol...
Microtubules and motor proteins form active filament networks that are critical for a variety of fun...
Motor-proteins are responsible for transport inside cells. Harnessing their activity is key towards ...
Flows over remarkably long distances are crucial to the functioning of many organisms, across all ki...
Dynamic lane formation and long-range active nematic alignment are reported using a geometry in whic...
The interior as well as the exterior of cells is governed by networks composed of fi- brous proteins...
The motion of microscopic objects is strongly affected by their surrounding environment. In quiescen...
The cytoskeleton is a collection of protein assemblies that dynamically impose spatial structure in ...
Many cellular processes are driven by cytoskeletal assemblies. It remains unclear how cytoskeletal f...
Chemically or optically powered active matter plays an increasingly important role in materials desi...
Biological systems achieve precise control over ambient fluids through the self-organization of acti...
Living systems are capable of locomotion, reconfiguration and replication. To perform these tasks, c...
Active matter is a field that continues to grow in interest because of its widespread relevance to f...
Active matter is a growing interdisciplinary field of science that studies the collective motion of ...
In cellular phenomena, such as cytoplasmic streaming, molecular motors translocate along microtubule...
Microtubule-based active fluids exhibit turbulent-like autonomous flows, which are driven by the mol...
Microtubules and motor proteins form active filament networks that are critical for a variety of fun...
Motor-proteins are responsible for transport inside cells. Harnessing their activity is key towards ...
Flows over remarkably long distances are crucial to the functioning of many organisms, across all ki...
Dynamic lane formation and long-range active nematic alignment are reported using a geometry in whic...
The interior as well as the exterior of cells is governed by networks composed of fi- brous proteins...
The motion of microscopic objects is strongly affected by their surrounding environment. In quiescen...
The cytoskeleton is a collection of protein assemblies that dynamically impose spatial structure in ...
Many cellular processes are driven by cytoskeletal assemblies. It remains unclear how cytoskeletal f...
Chemically or optically powered active matter plays an increasingly important role in materials desi...