TY - JOUR
T1 - Voltage-dependent inwardly rectifying potassium conductance in the outer membrane of neuronal mitochondria
AU - Fieni, Francesca
AU - Parkar, Anjum
AU - Misgeld, Thomas
AU - Kerschensteiner, Martin
AU - Lichtman, Jeff W.
AU - Pasinelli, Piera
AU - Trotti, Davide
PY - 2010/8/27
Y1 - 2010/8/27
N2 - Potassium fluxes integrate mitochondria into cellular activities, controlling their volume homeostasis and structural integrity in many pathophysiological mechanisms. The outer mitochondrial membrane (OMM) is thought to play a passive role in this process because K+ is believed to equilibrate freely between the cytosol and mitochondrial intermembrane space. By patch clamping mitochondria isolated from the central nervous systems of adult mitoCFP transgenic mice, we discovered the existence of IOMMKi, a novel voltage-dependent inwardly rectifying K+ conductance located in the OMM. IOMMKi is regulated by osmolarity, potentiated by cAMP, and activated at physiological negative potentials, allowing K+ to enter the mitochondrial intermembrane space in a controlled regulated fashion. The identification of IOMMKi in the OMM supports the notion that a membrane potential could exist across this membrane in vivo and suggests that the OMM possesses regulated pathways for K+ uptake.
AB - Potassium fluxes integrate mitochondria into cellular activities, controlling their volume homeostasis and structural integrity in many pathophysiological mechanisms. The outer mitochondrial membrane (OMM) is thought to play a passive role in this process because K+ is believed to equilibrate freely between the cytosol and mitochondrial intermembrane space. By patch clamping mitochondria isolated from the central nervous systems of adult mitoCFP transgenic mice, we discovered the existence of IOMMKi, a novel voltage-dependent inwardly rectifying K+ conductance located in the OMM. IOMMKi is regulated by osmolarity, potentiated by cAMP, and activated at physiological negative potentials, allowing K+ to enter the mitochondrial intermembrane space in a controlled regulated fashion. The identification of IOMMKi in the OMM supports the notion that a membrane potential could exist across this membrane in vivo and suggests that the OMM possesses regulated pathways for K+ uptake.
UR - http://www.scopus.com/inward/record.url?scp=77956259010&partnerID=8YFLogxK
U2 - 10.1074/jbc.M110.131243
DO - 10.1074/jbc.M110.131243
M3 - Article
C2 - 20551319
AN - SCOPUS:77956259010
SN - 0021-9258
VL - 285
SP - 27411
EP - 27417
JO - Journal of Biological Chemistry
JF - Journal of Biological Chemistry
IS - 35
ER -