TY - JOUR
T1 - Deletion of GLUT1 and GLUT3 Reveals Multiple Roles for Glucose Metabolism in Platelet and Megakaryocyte Function
AU - Fidler, Trevor P.
AU - Campbell, Robert A.
AU - Funari, Trevor
AU - Dunne, Nicholas
AU - Balderas Angeles, Enrique
AU - Middleton, Elizabeth A.
AU - Chaudhuri, Dipayan
AU - Weyrch, Andrew S.
AU - Abel, E. Dale
N1 - Publisher Copyright:
© 2017 The Author(s)
PY - 2017/7/25
Y1 - 2017/7/25
N2 - Anucleate platelets circulate in the blood to facilitate thrombosis and diverse immune functions. Platelet activation leading to clot formation correlates with increased glycogenolysis, glucose uptake, glucose oxidation, and lactic acid production. Simultaneous deletion of glucose transporter (GLUT) 1 and GLUT3 (double knockout [DKO]) specifically in platelets completely abolished glucose uptake. In DKO platelets, mitochondrial oxidative metabolism of non-glycolytic substrates, such as glutamate, increased. Thrombosis and platelet activation were decreased through impairment at multiple activation nodes, including Ca2+ signaling, degranulation, and integrin activation. DKO mice developed thrombocytopenia, secondary to impaired pro-platelet formation from megakaryocytes, and increased platelet clearance resulting from cytosolic calcium overload and calpain activation. Systemic treatment with oligomycin, inhibiting mitochondrial metabolism, induced rapid clearance of platelets, with circulating counts dropping to zero in DKO mice, but not wild-type mice, demonstrating an essential role for energy metabolism in platelet viability. Thus, substrate metabolism is essential for platelet production, activation, and survival.
AB - Anucleate platelets circulate in the blood to facilitate thrombosis and diverse immune functions. Platelet activation leading to clot formation correlates with increased glycogenolysis, glucose uptake, glucose oxidation, and lactic acid production. Simultaneous deletion of glucose transporter (GLUT) 1 and GLUT3 (double knockout [DKO]) specifically in platelets completely abolished glucose uptake. In DKO platelets, mitochondrial oxidative metabolism of non-glycolytic substrates, such as glutamate, increased. Thrombosis and platelet activation were decreased through impairment at multiple activation nodes, including Ca2+ signaling, degranulation, and integrin activation. DKO mice developed thrombocytopenia, secondary to impaired pro-platelet formation from megakaryocytes, and increased platelet clearance resulting from cytosolic calcium overload and calpain activation. Systemic treatment with oligomycin, inhibiting mitochondrial metabolism, induced rapid clearance of platelets, with circulating counts dropping to zero in DKO mice, but not wild-type mice, demonstrating an essential role for energy metabolism in platelet viability. Thus, substrate metabolism is essential for platelet production, activation, and survival.
KW - calpain
KW - glucose
KW - glucose transporters
KW - megakaryocyte
KW - metabolism
KW - platelet
UR - http://www.scopus.com/inward/record.url?scp=85025610476&partnerID=8YFLogxK
U2 - 10.1016/j.celrep.2017.06.083
DO - 10.1016/j.celrep.2017.06.083
M3 - Article
C2 - 28746873
AN - SCOPUS:85025610476
SN - 2211-1247
VL - 20
SP - 881
EP - 894
JO - Cell Reports
JF - Cell Reports
IS - 4
ER -