Interactions between microtubules and actin filaments (F-actin) are essential for eukaryotic cell migration, polarization, growth, and division. Although the importance of these interactions has been long recognized, the inherent complexity of the cell interior hampers a detailed mechanistic study of how these two cytoskeletal systems influence each other. In this chapter, we show how in vitro reconstitution can be employed to study how actin filaments and dynamic microtubules affect each other's organization. While we focus here on the effect of steric interactions, these assays provide an ideal starting point to develop more complex studies through the addition of known F-actin–microtubule cross-linkers, or myosin II motors
The cytoskeleton of eukaryotic cells is primarily composed of networks of filamentous proteins, F-ac...
Actin filament remodeling at cell surfaces is a fundamental aspect of cellular life. Except for mino...
Interactions between microtubules and filamentous actin (F-actin) are crucial for many cellular proc...
Interactions between microtubules and actin filaments (F-actin) are essential for eukaryotic cell mi...
International audienceThe crosstalk between the actin network and microtubules is essential for cell...
International audienceCoordination between actin filaments and microtubules is critical to complete ...
The regulation of actin stress fibers (SF) are linked to the stability of microtubule (M1) structure...
Microtubules are highly dynamic polymers and components of the cellular cytoskeleton of all eukaryot...
The human body is composed of about 3−4×1013 (30-40 trillion) cells [1]. These cells are all functio...
This chapter reviews various aspects of changes in cytoskeletal organization which occur upon activa...
The organization of actin filaments into higher-ordered structures governs eukaryotic cell shape and...
International audienceTight coupling between biochemical and mechanical properties of the actin cyto...
To power dynamic processes in cells, the actin and microtubule cytoskeletons organize into complex s...
In eukaryotic cells, the actin and microtubule (MT) cytoskeletal networks are dynamic structures tha...
Mitotic progression is orchestrated by morphological and mechanical changes promoted by the coordina...
The cytoskeleton of eukaryotic cells is primarily composed of networks of filamentous proteins, F-ac...
Actin filament remodeling at cell surfaces is a fundamental aspect of cellular life. Except for mino...
Interactions between microtubules and filamentous actin (F-actin) are crucial for many cellular proc...
Interactions between microtubules and actin filaments (F-actin) are essential for eukaryotic cell mi...
International audienceThe crosstalk between the actin network and microtubules is essential for cell...
International audienceCoordination between actin filaments and microtubules is critical to complete ...
The regulation of actin stress fibers (SF) are linked to the stability of microtubule (M1) structure...
Microtubules are highly dynamic polymers and components of the cellular cytoskeleton of all eukaryot...
The human body is composed of about 3−4×1013 (30-40 trillion) cells [1]. These cells are all functio...
This chapter reviews various aspects of changes in cytoskeletal organization which occur upon activa...
The organization of actin filaments into higher-ordered structures governs eukaryotic cell shape and...
International audienceTight coupling between biochemical and mechanical properties of the actin cyto...
To power dynamic processes in cells, the actin and microtubule cytoskeletons organize into complex s...
In eukaryotic cells, the actin and microtubule (MT) cytoskeletal networks are dynamic structures tha...
Mitotic progression is orchestrated by morphological and mechanical changes promoted by the coordina...
The cytoskeleton of eukaryotic cells is primarily composed of networks of filamentous proteins, F-ac...
Actin filament remodeling at cell surfaces is a fundamental aspect of cellular life. Except for mino...
Interactions between microtubules and filamentous actin (F-actin) are crucial for many cellular proc...