SummaryIn animal cells, microtubule and actin tracks and their associated motors (dynein, kinesin, and myosin) are thought to regulate long- and short-range transport, respectively [1–8]. Consistent with this, microtubules extend from the perinuclear centrosome to the plasma membrane and allow bidirectional cargo transport over long distances (>1 μm). In contrast, actin often comprises a complex network of short randomly oriented filaments, suggesting that myosin motors move cargo short distances. These observations underpin the “highways and local roads” model for transport along microtubule and actin tracks [2]. The “cooperative capture” model exemplifies this view and suggests that melanosome distribution in melanocyte dendrites is maint...
AbstractRecent results reinforce the view that actin-based and microtubule-based motility systems do...
AbstractOrganisms that are able to change the color of their skin do so by regulating the intracellu...
Intracellular transport is vital for the function, survival and architecture of every eukaryotic cel...
SummaryIn animal cells, microtubule and actin tracks and their associated motors (dynein, kinesin, a...
In animal cells, microtubule and actin tracks and their associated motors (dynein, kinesin, and myos...
Abstract: Cell biologists generally consider that microtubules and actin play complementary roles in...
Cell biologists generally consider that microtubules and actin play complementary roles in long- and...
The intracellular transport of organelles and vesicles is thought to utilise both microtubules and a...
Microtubules and F-actin, and associated motor proteins, are considered to play complementary roles ...
SummaryActin filaments that serve as “rails” for the myosin-based transport of membrane organelles [...
SummaryIntracellular transport is driven by motor proteins that either use microtubules or actin fil...
AbstractThe organization of the cytoplasm is regulated by molecular motors, which transport organell...
Organelle transport in eukaryotes employs both microtubule and actin tracks to deliver cargo effecti...
AbstractThe pigment cells of amphibians and fish have provided excellent models for understanding ho...
AbstractXenopus melanophores have pigment organelles or melanosomes which, in response to hormones, ...
AbstractRecent results reinforce the view that actin-based and microtubule-based motility systems do...
AbstractOrganisms that are able to change the color of their skin do so by regulating the intracellu...
Intracellular transport is vital for the function, survival and architecture of every eukaryotic cel...
SummaryIn animal cells, microtubule and actin tracks and their associated motors (dynein, kinesin, a...
In animal cells, microtubule and actin tracks and their associated motors (dynein, kinesin, and myos...
Abstract: Cell biologists generally consider that microtubules and actin play complementary roles in...
Cell biologists generally consider that microtubules and actin play complementary roles in long- and...
The intracellular transport of organelles and vesicles is thought to utilise both microtubules and a...
Microtubules and F-actin, and associated motor proteins, are considered to play complementary roles ...
SummaryActin filaments that serve as “rails” for the myosin-based transport of membrane organelles [...
SummaryIntracellular transport is driven by motor proteins that either use microtubules or actin fil...
AbstractThe organization of the cytoplasm is regulated by molecular motors, which transport organell...
Organelle transport in eukaryotes employs both microtubule and actin tracks to deliver cargo effecti...
AbstractThe pigment cells of amphibians and fish have provided excellent models for understanding ho...
AbstractXenopus melanophores have pigment organelles or melanosomes which, in response to hormones, ...
AbstractRecent results reinforce the view that actin-based and microtubule-based motility systems do...
AbstractOrganisms that are able to change the color of their skin do so by regulating the intracellu...
Intracellular transport is vital for the function, survival and architecture of every eukaryotic cel...