The spatial localization of ion channels at the cell surface is crucial for their functional role. Many channels localize in lipid raft microdomains, which are enriched in cholesterol and sphingolipids. Caveolae, specific lipid rafts which concentrate caveolins, harbor signaling molecules and their targets becoming signaling platforms crucial in cell physiology. However, the molecular mechanisms involved in such spatial localization are under debate. Kv1.3 localizes in lipid rafts and participates in the immunological response. We sought to elucidate the mechanisms of Kv1.3 surface targeting, which govern leukocyte physiology. Kv1 channels share a putative caveolin-binding domain located at the intracellular N-terminal of the channel. This ...
The voltage-gated potassium channel Kv1.3 plays an apparent dual physiological role by participating...
The voltage-gated potassium channel Kv1.3 plays an apparent dual physiological role by participating...
The voltage-gated potassium channel Kv1.3 plays an apparent dual physiological role by participating...
The spatial localization of ion channels at the cell surface is crucial for their functional role. M...
The spatial localization of ion channels at the cell surface is crucial for their functional role. M...
The spatial localization of ion channels at the cell surface is crucial for their functional role. M...
The voltage-dependent K+ channel Kv1.3 participates in many physiological events like proliferation ...
The voltage-dependent K+ channel Kv1.3 participates in many physiological events like proliferation ...
Surface expression of voltage-dependent K+ channels (Kv) has a pivotal role in leukocyte physiology....
Surface expression of voltage-dependent K+ channels (Kv) has a pivotal role in leukocyte physiology....
Surface expression of voltage-dependent K+ channels (Kv) has a pivotal role in leukocyte physiology....
Surface expression of voltage-dependent K(+) channels (Kv) has a pivotal role in leukocyte physiolog...
Surface expression of voltage-dependent K(+) channels (Kv) has a pivotal role in leukocyte physiolog...
Surface expression of voltage‐dependent K+ channels (Kv) has a pivotal role in leukocyte physiology....
Surface expression of voltage-dependent K+ channels (Kv) has a pivotal role in leukocyte physiology....
The voltage-gated potassium channel Kv1.3 plays an apparent dual physiological role by participating...
The voltage-gated potassium channel Kv1.3 plays an apparent dual physiological role by participating...
The voltage-gated potassium channel Kv1.3 plays an apparent dual physiological role by participating...
The spatial localization of ion channels at the cell surface is crucial for their functional role. M...
The spatial localization of ion channels at the cell surface is crucial for their functional role. M...
The spatial localization of ion channels at the cell surface is crucial for their functional role. M...
The voltage-dependent K+ channel Kv1.3 participates in many physiological events like proliferation ...
The voltage-dependent K+ channel Kv1.3 participates in many physiological events like proliferation ...
Surface expression of voltage-dependent K+ channels (Kv) has a pivotal role in leukocyte physiology....
Surface expression of voltage-dependent K+ channels (Kv) has a pivotal role in leukocyte physiology....
Surface expression of voltage-dependent K+ channels (Kv) has a pivotal role in leukocyte physiology....
Surface expression of voltage-dependent K(+) channels (Kv) has a pivotal role in leukocyte physiolog...
Surface expression of voltage-dependent K(+) channels (Kv) has a pivotal role in leukocyte physiolog...
Surface expression of voltage‐dependent K+ channels (Kv) has a pivotal role in leukocyte physiology....
Surface expression of voltage-dependent K+ channels (Kv) has a pivotal role in leukocyte physiology....
The voltage-gated potassium channel Kv1.3 plays an apparent dual physiological role by participating...
The voltage-gated potassium channel Kv1.3 plays an apparent dual physiological role by participating...
The voltage-gated potassium channel Kv1.3 plays an apparent dual physiological role by participating...