TY - JOUR
T1 - Glucose de-repression by yeast AMP-activated protein kinase SNF1 is controlled via at least two independent steps
AU - García-Salcedo, Raúl
AU - Lubitz, Timo
AU - Beltran, Gemma
AU - Elbing, Karin
AU - Tian, Ye
AU - Frey, Simone
AU - Wolkenhauer, Olaf
AU - Krantz, Marcus
AU - Klipp, Edda
AU - Hohmann, Stefan
PY - 2014/4
Y1 - 2014/4
N2 - The AMP-activated protein kinase, AMPK, controls energy homeostasis in eukaryotic cells but little is known about the mechanisms governing the dynamics of its activation/deactivation. The yeast AMPK, SNF1, is activated in response to glucose depletion and mediates glucose de-repression by inactivating the transcriptional repressor Mig1. Here we show that overexpression of the Snf1-activating kinase Sak1 results, in the presence of glucose, in constitutive Snf1 activation without alleviating glucose repression. Co-overexpression of the regulatory subunit Reg1 of the Glc-Reg1 phosphatase complex partly restores glucose regulation of Snf1. We generated a set of 24 kinetic mathematical models based on dynamic data of Snf1 pathway activation and deactivation. The models that reproduced our experimental observations best featured (a) glucose regulation of both Snf1 phosphorylation and dephosphorylation, (b) determination of the Mig1 phosphorylation status in the absence of glucose by Snf1 activity only and (c) a regulatory step directing active Snf1 to Mig1 under glucose limitation. Hence it appears that glucose de-repression via Snf1-Mig1 is regulated by glucose via at least two independent steps: the control of activation of the Snf1 kinase and directing active Snf1 to inactivating its target Mig1. The AMP-activated protein kinase, AMPK, controls energy homeostasis in eukaryotic cells. Yeast AMPK, SNF1, mediates glucose de-repression. Here we employed time course experimentation and modelling to show that glucose de-repression via SNF1 is regulated by glucose via at least two independent steps: the control of activation of the Snf1 kinase and directing active Snf1 to its target Mig1.
AB - The AMP-activated protein kinase, AMPK, controls energy homeostasis in eukaryotic cells but little is known about the mechanisms governing the dynamics of its activation/deactivation. The yeast AMPK, SNF1, is activated in response to glucose depletion and mediates glucose de-repression by inactivating the transcriptional repressor Mig1. Here we show that overexpression of the Snf1-activating kinase Sak1 results, in the presence of glucose, in constitutive Snf1 activation without alleviating glucose repression. Co-overexpression of the regulatory subunit Reg1 of the Glc-Reg1 phosphatase complex partly restores glucose regulation of Snf1. We generated a set of 24 kinetic mathematical models based on dynamic data of Snf1 pathway activation and deactivation. The models that reproduced our experimental observations best featured (a) glucose regulation of both Snf1 phosphorylation and dephosphorylation, (b) determination of the Mig1 phosphorylation status in the absence of glucose by Snf1 activity only and (c) a regulatory step directing active Snf1 to Mig1 under glucose limitation. Hence it appears that glucose de-repression via Snf1-Mig1 is regulated by glucose via at least two independent steps: the control of activation of the Snf1 kinase and directing active Snf1 to inactivating its target Mig1. The AMP-activated protein kinase, AMPK, controls energy homeostasis in eukaryotic cells. Yeast AMPK, SNF1, mediates glucose de-repression. Here we employed time course experimentation and modelling to show that glucose de-repression via SNF1 is regulated by glucose via at least two independent steps: the control of activation of the Snf1 kinase and directing active Snf1 to its target Mig1.
KW - AMPK/SNF1
KW - glucose repression
KW - metabolic regulation
KW - quantitative analysis protein kinase
UR - https://www.scopus.com/pages/publications/84897480343
U2 - 10.1111/febs.12753
DO - 10.1111/febs.12753
M3 - Article
C2 - 24529170
AN - SCOPUS:84897480343
SN - 1742-464X
VL - 281
SP - 1901
EP - 1917
JO - FEBS Journal
JF - FEBS Journal
IS - 7
ER -