Microtubules are core components of the cytoskeleton and serve as tracks for motor protein-based intracellular transport. Microtubule networks are highly diverse across different cell types and are believed to adapt to cell type-specific transport demands. Here we review how the spatial organization of different subsets of microtubules into higher-order networks determines the traffic rules for motor-based transport in different animal cell types. We describe the interplay between microtubule network organization and motor-based transport within epithelial cells, oocytes, neurons, cilia, and the spindle apparatus
Highly polarized neurons need to carefully regulate the distribution of organelles and other cargoes...
Intracellular transport along microtubules is often bidirectional, employing multiple plus- and minu...
Intracellular transport is vital for the function, survival and architecture of every eukaryotic cel...
Microtubules are core components of the cytoskeleton and serve as tracks for motor protein-based int...
Intracellular transport provides a mechanism by which cellular material, such as organelles, vesicle...
Eukaryotic cells are divided into a complex system of compartments, with their spatial organization ...
Cells rely on active transport to quickly organize cellular cargo. How cells regulate transport is n...
During many years of research, the core components and mechanisms required to build a microtubule ar...
Microtubules are polarized cytoskeletal filaments that serve as tracks for intracellular transport a...
SummaryHow does cellular traffic switch direction on microtubules, or switch back and forth between ...
AbstractIntracellular transport is essential for maintaining proper cellular function in most eukary...
Intracellular transport is essential for maintaining proper cellular function in most eukaryotic cel...
In animal cells, microtubule and actin tracks and their associated motors (dynein, kinesin, and myos...
How many motors move cargos on microtubules inside a cell and how do they work together to achieve r...
SummaryIn animal cells, microtubule and actin tracks and their associated motors (dynein, kinesin, a...
Highly polarized neurons need to carefully regulate the distribution of organelles and other cargoes...
Intracellular transport along microtubules is often bidirectional, employing multiple plus- and minu...
Intracellular transport is vital for the function, survival and architecture of every eukaryotic cel...
Microtubules are core components of the cytoskeleton and serve as tracks for motor protein-based int...
Intracellular transport provides a mechanism by which cellular material, such as organelles, vesicle...
Eukaryotic cells are divided into a complex system of compartments, with their spatial organization ...
Cells rely on active transport to quickly organize cellular cargo. How cells regulate transport is n...
During many years of research, the core components and mechanisms required to build a microtubule ar...
Microtubules are polarized cytoskeletal filaments that serve as tracks for intracellular transport a...
SummaryHow does cellular traffic switch direction on microtubules, or switch back and forth between ...
AbstractIntracellular transport is essential for maintaining proper cellular function in most eukary...
Intracellular transport is essential for maintaining proper cellular function in most eukaryotic cel...
In animal cells, microtubule and actin tracks and their associated motors (dynein, kinesin, and myos...
How many motors move cargos on microtubules inside a cell and how do they work together to achieve r...
SummaryIn animal cells, microtubule and actin tracks and their associated motors (dynein, kinesin, a...
Highly polarized neurons need to carefully regulate the distribution of organelles and other cargoes...
Intracellular transport along microtubules is often bidirectional, employing multiple plus- and minu...
Intracellular transport is vital for the function, survival and architecture of every eukaryotic cel...