TY - JOUR
T1 - The ataxia related G1107D mutation of the plasma membrane Ca2 + ATPase isoform 3 affects its interplay with calmodulin and the autoinhibition process
AU - Calì, Tito
AU - Frizzarin, Martina
AU - Luoni, Laura
AU - Zonta, Francesco
AU - Pantano, Sergio
AU - Cruz, Carlos
AU - Bonza, Maria Cristina
AU - Bertipaglia, Ilenia
AU - Ruzzene, Maria
AU - De Michelis, Maria Ida
AU - Damiano, Nunzio
AU - Marin, Oriano
AU - Zanni, Ginevra
AU - Zanotti, Giuseppe
AU - Brini, Marisa
AU - Lopreiato, Raffaele
AU - Carafoli, Ernesto
N1 - Publisher Copyright:
© 2016
PY - 2017/1/1
Y1 - 2017/1/1
N2 - The plasma membrane Ca2 + ATPases (PMCA pumps) have a long, cytosolic C-terminal regulatory region where a calmodulin-binding domain (CaM-BD) is located. Under basal conditions (low Ca2 +), the C-terminal tail of the pump interacts with autoinhibitory sites proximal to the active center of the enzyme. In activating conditions (i.e., high Ca2 +), Ca2 +-bound CaM displaces the C-terminal tail from the autoinhibitory sites, restoring activity. We have recently identified a G1107D replacement within the CaM-BD of isoform 3 of the PMCA pump in a family affected by X-linked congenital cerebellar ataxia. Here, we investigate the effects of the G1107D replacement on the interplay of the mutated CaM-BD with both CaM and the pump core, by combining computational, biochemical and functional approaches. We provide evidence that the affinity of the isolated mutated CaM-BD for CaM is significantly reduced with respect to the wild type (wt) counterpart, and that the ability of CaM to activate the pump in vitro is thus decreased. Multiscale simulations support the conclusions on the detrimental effect of the mutation, indicating reduced stability of the CaM binding. We further show that the G1107D replacement impairs the autoinhibition mechanism of the PMCA3 pump as well, as the introduction of a negative charge perturbs the contacts between the CaM-BD and the pump core. Thus, the mutation affects both the ability of the pump to optimally transport Ca2 + in the activated state, and the autoinhibition mechanism in its resting state.
AB - The plasma membrane Ca2 + ATPases (PMCA pumps) have a long, cytosolic C-terminal regulatory region where a calmodulin-binding domain (CaM-BD) is located. Under basal conditions (low Ca2 +), the C-terminal tail of the pump interacts with autoinhibitory sites proximal to the active center of the enzyme. In activating conditions (i.e., high Ca2 +), Ca2 +-bound CaM displaces the C-terminal tail from the autoinhibitory sites, restoring activity. We have recently identified a G1107D replacement within the CaM-BD of isoform 3 of the PMCA pump in a family affected by X-linked congenital cerebellar ataxia. Here, we investigate the effects of the G1107D replacement on the interplay of the mutated CaM-BD with both CaM and the pump core, by combining computational, biochemical and functional approaches. We provide evidence that the affinity of the isolated mutated CaM-BD for CaM is significantly reduced with respect to the wild type (wt) counterpart, and that the ability of CaM to activate the pump in vitro is thus decreased. Multiscale simulations support the conclusions on the detrimental effect of the mutation, indicating reduced stability of the CaM binding. We further show that the G1107D replacement impairs the autoinhibition mechanism of the PMCA3 pump as well, as the introduction of a negative charge perturbs the contacts between the CaM-BD and the pump core. Thus, the mutation affects both the ability of the pump to optimally transport Ca2 + in the activated state, and the autoinhibition mechanism in its resting state.
KW - Autoinhibition
KW - Calcium signaling
KW - Calmodulin
KW - Plasma membrane calcium ATPases
KW - X-linked cerebellar ataxia
UR - http://www.scopus.com/inward/record.url?scp=84994608308&partnerID=8YFLogxK
U2 - 10.1016/j.bbadis.2016.09.007
DO - 10.1016/j.bbadis.2016.09.007
M3 - Article
C2 - 27632770
AN - SCOPUS:84994608308
SN - 0925-4439
VL - 1863
SP - 165
EP - 173
JO - Biochimica et Biophysica Acta - Molecular Basis of Disease
JF - Biochimica et Biophysica Acta - Molecular Basis of Disease
IS - 1
ER -