Kv1.3 is a voltage-gated potassium channel mainly expressed at the plasma membrane and at the inner mitochondrial membrane of different cell types. A dual role for the channel has been suggested: Plasma membrane channel is linked to proliferation and activation while mitochondrial channel controls apoptosis. In this thesis, we analyse in depth the duality of Kv1.3 function. We show that Kv1.3 orchestrates cellular physiology in a way even more complex than expected. The thesis is structured in two parts: Plasma membrane Kv1.3 and Mitochondrial Kv1.3. Each part contains three contributions addressed to the understanding of Kv1.3 traffic and physiological implications of its localization. In the first part (Plasma membrane Kv1.3), we describe...
Surface expression of voltage-dependent K+ channels (Kv) has a pivotal role in leukocyte physiology....
AbstractRecent evidence points to the crucial involvement of voltage-gated potassium channels (Kv) i...
Surface expression of voltage-dependent K+ channels (Kv) has a pivotal role in leukocyte physiology....
[eng] Kv1.3 is a voltage-gated potassium channel mainly expressed at the plasma membrane and at the ...
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 ...
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 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...
Voltage-gated potassium channels control neuronal excitability and cardiac action potentials. In add...
AbstractMitochondria have been shown to play a pivotal role in apoptotic signalling in various cell ...
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....
AbstractRecent evidence points to the crucial involvement of voltage-gated potassium channels (Kv) i...
Surface expression of voltage-dependent K+ channels (Kv) has a pivotal role in leukocyte physiology....
[eng] Kv1.3 is a voltage-gated potassium channel mainly expressed at the plasma membrane and at the ...
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 ...
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 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...
Voltage-gated potassium channels control neuronal excitability and cardiac action potentials. In add...
AbstractMitochondria have been shown to play a pivotal role in apoptotic signalling in various cell ...
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....
AbstractRecent evidence points to the crucial involvement of voltage-gated potassium channels (Kv) i...
Surface expression of voltage-dependent K+ channels (Kv) has a pivotal role in leukocyte physiology....