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1.
J Biol Chem ; 293(44): 17208-17217, 2018 11 02.
Article in English | MEDLINE | ID: mdl-30232152

ABSTRACT

Mitochondrial reactive oxygen species (ROS) production is a tightly regulated redox signal that transmits information from the organelle to the cell. Other mitochondrial signals, such as ATP, are sensed by enzymes, including the key metabolic sensor and regulator, AMP-activated protein kinase (AMPK). AMPK responds to the cellular ATP/AMP and ATP/ADP ratios by matching mitochondrial ATP production to demand. Previous reports proposed that AMPK activity also responds to ROS, by ROS acting on redox-sensitive cysteine residues (Cys-299/Cys-304) on the AMPK α subunit. This suggests an appealing model in which mitochondria fine-tune AMPK activity by both adenine nucleotide-dependent mechanisms and by redox signals. Here we assessed whether physiological levels of ROS directly alter AMPK activity. To this end we added exogenous hydrogen peroxide (H2O2) to cells and utilized the mitochondria-targeted redox cycler MitoParaquat to generate ROS within mitochondria without disrupting oxidative phosphorylation. Mitochondrial and cytosolic thiol oxidation was assessed by measuring peroxiredoxin dimerization and by redox-sensitive fluorescent proteins. Replacing the putative redox-active cysteine residues on AMPK α1 with alanines did not alter the response of AMPK to H2O2 In parallel with measurements of AMPK activity, we measured the cell ATP/ADP ratio. This allowed us to separate the effects on AMPK activity due to ROS production from those caused by changes in this ratio. We conclude that AMPK activity in response to redox changes is not due to direct action on AMPK itself, but is a secondary consequence of redox effects on other processes, such as mitochondrial ATP production.


Subject(s)
AMP-Activated Protein Kinases/metabolism , Mitochondria/metabolism , Reactive Oxygen Species/metabolism , AMP-Activated Protein Kinases/genetics , Adenosine Diphosphate/metabolism , Adenosine Triphosphate/metabolism , Animals , Cell Line , Enzyme Activation , Humans , Hydrogen Peroxide/metabolism , Mice , Mitochondria/genetics , Muscle Fibers, Skeletal/enzymology , Muscle Fibers, Skeletal/metabolism , Oxidation-Reduction
2.
Biochem J ; 474(17): 3059-3073, 2017 08 22.
Article in English | MEDLINE | ID: mdl-28694351

ABSTRACT

AMP-activated protein kinase (AMPK) plays a major role in regulating metabolism and has attracted significant attention as a therapeutic target for treating metabolic disorders. AMPK activity is stimulated more than 100-fold by phosphorylation of threonine 172 (Thr172). Binding of AMP to the γ subunit allosterically activates the kinase. Additionally, many small molecules, e.g. 991, have been identified that bind between the kinase domain and the carbohydrate-binding module of the ß subunit, stabilising their interaction and leading to activation. It was reported recently that non-phosphorylated Thr172 AMPK is activated by AMP and A769662. We present here the crystal structure of non-phosphorylated Thr172 AMPK in complex with AMP and 991. This structure reveals that the activation loop, as well as the complex overall, is similar to the Thr172 phosphorylated complex. We find that in the presence of AMP and 991 non-phosphorylated Thr172, AMPK is much less active than the Thr172 phosphorylated enzyme. In human cells, the basal level of Thr172 phosphorylation is very low (∼1%), but is increased 10-fold by treatment with 2-deoxyglucose. In cells lacking the major Thr172 kinases, LKB1 and CaMKKß, Thr172 phosphorylation is almost completely abolished, and AMPK activity is virtually undetectable. Our data show that AMP and 991 binding to non-phosphorylated Thr172 AMPK can induce an ordered, active-like, conformation of the activation loop explaining how AMPK activity can be measured in vitro without Thr172 phosphorylation. However, in a cellular context, phosphorylation of Thr172 is critical for significant activation of AMPK.


Subject(s)
AMP-Activated Protein Kinases/metabolism , Calcium-Calmodulin-Dependent Protein Kinase Kinase/metabolism , Protein Serine-Threonine Kinases/metabolism , A549 Cells , AMP-Activated Protein Kinase Kinases , AMP-Activated Protein Kinases/genetics , Biphenyl Compounds , Calcium-Calmodulin-Dependent Protein Kinase Kinase/genetics , Enzyme Activation/drug effects , Enzyme Activation/genetics , HEK293 Cells , Humans , Phosphorylation/drug effects , Phosphorylation/genetics , Protein Serine-Threonine Kinases/genetics , Pyrones/pharmacology , Thiophenes/pharmacology
3.
Biochem J ; 474(10): 1741-1754, 2017 05 09.
Article in English | MEDLINE | ID: mdl-28302767

ABSTRACT

AMP-activated protein kinase (AMPK) plays a key role in integrating metabolic pathways in response to energy demand. AMPK activation results in a wide range of downstream responses, many of which are associated with improved metabolic outcome, making AMPK an attractive target for the treatment of metabolic diseases. AMPK is a heterotrimeric complex consisting of a catalytic subunit (α) and two regulatory subunits (ß and γ). The γ-subunit harbours the nucleotide-binding sites and plays an important role in AMPK regulation in response to cellular energy levels. In mammals, there are three isoforms of the γ-subunit and these respond differently to regulation by nucleotides, but there is limited information regarding their role in activation by small molecules. Here, we determined the effect of different γ-isoforms on AMPK by a direct activator, 991. In cells, 991 led to a greater activation of γ2-containing AMPK complexes compared with either γ1 or γ3. This effect was dependent on the long N-terminal region of the γ2-isoform. We were able to rule out an effect of Ser108 phosphorylation, since mutation of Ser108 to alanine in the ß2-isoform had no effect on activation of AMPK by 991 in either γ1- or γ2-complexes. The rate of dephosphorylation of Thr172 was slower for γ2- compared with γ1-complexes, both in the absence and presence of 991. Our studies show that activation of AMPK by 991 depends on the nature of the γ-isoform. This finding may have implications for the design of isoform-selective AMPK activators.


Subject(s)
AMP-Activated Protein Kinases/metabolism , AMP-Activated Protein Kinases/antagonists & inhibitors , AMP-Activated Protein Kinases/chemistry , AMP-Activated Protein Kinases/genetics , Allosteric Regulation/drug effects , Amino Acid Substitution , Aminopyridines/pharmacology , Benzimidazoles/pharmacology , Benzoates/pharmacology , Binding Sites , CRISPR-Cas Systems , Enzyme Activation/drug effects , Enzyme Activators/pharmacology , HEK293 Cells , Humans , Indoles/pharmacology , Isoenzymes/antagonists & inhibitors , Isoenzymes/chemistry , Isoenzymes/genetics , Isoenzymes/metabolism , Ligands , Mutation , Phosphorylation/drug effects , Protein Processing, Post-Translational/drug effects , Recombinant Proteins/chemistry , Recombinant Proteins/metabolism , Threonine/metabolism
4.
Sensors (Basel) ; 16(8)2016 Aug 19.
Article in English | MEDLINE | ID: mdl-27548185

ABSTRACT

We describe an approach to non-invasively map spatiotemporal biochemical and physiological changes in 3D cell culture using Forster Resonance Energy Transfer (FRET) biosensors expressed in tumour spheroids. In particular, we present an improved Adenosine Monophosphate (AMP) Activated Protein Kinase (AMPK) FRET biosensor, mTurquoise2 AMPK Activity Reporter (T2AMPKAR), for fluorescence lifetime imaging (FLIM) readouts that we have evaluated in 2D and 3D cultures. Our results in 2D cell culture indicate that replacing the FRET donor, enhanced Cyan Fluorescent Protein (ECFP), in the original FRET biosensor, AMPK activity reporter (AMPKAR), with mTurquoise2 (mTq2FP), increases the dynamic range of the response to activation of AMPK, as demonstrated using the direct AMPK activator, 991. We demonstrated 3D FLIM of this T2AMPKAR FRET biosensor expressed in tumour spheroids using two-photon excitation.


Subject(s)
Biosensing Techniques/methods , Cell Culture Techniques , Molecular Imaging/methods , Protein Kinases/isolation & purification , AMP-Activated Protein Kinase Kinases , Fluorescence Resonance Energy Transfer/methods , Green Fluorescent Proteins/chemistry , Humans , Optical Imaging/methods , Spheroids, Cellular/cytology
5.
Cell Metab ; 23(5): 821-36, 2016 May 10.
Article in English | MEDLINE | ID: mdl-27133129

ABSTRACT

Despite significant advances in our understanding of the biology determining systemic energy homeostasis, the treatment of obesity remains a medical challenge. Activation of AMP-activated protein kinase (AMPK) has been proposed as an attractive strategy for the treatment of obesity and its complications. AMPK is a conserved, ubiquitously expressed, heterotrimeric serine/threonine kinase whose short-term activation has multiple beneficial metabolic effects. Whether these translate into long-term benefits for obesity and its complications is unknown. Here, we observe that mice with chronic AMPK activation, resulting from mutation of the AMPK γ2 subunit, exhibit ghrelin signaling-dependent hyperphagia, obesity, and impaired pancreatic islet insulin secretion. Humans bearing the homologous mutation manifest a congruent phenotype. Our studies highlight that long-term AMPK activation throughout all tissues can have adverse metabolic consequences, with implications for pharmacological strategies seeking to chronically activate AMPK systemically to treat metabolic disease.


Subject(s)
AMP-Activated Protein Kinases/metabolism , Insulin-Secreting Cells/enzymology , Insulin-Secreting Cells/pathology , Obesity/enzymology , Adiposity/genetics , Adult , Aging/pathology , Agouti-Related Protein/metabolism , Animals , Arcuate Nucleus of Hypothalamus/metabolism , Energy Metabolism/genetics , Enzyme Activation , Feeding Behavior , Female , Heterozygote , Humans , Hyperphagia/complications , Hyperphagia/enzymology , Hyperphagia/genetics , Hyperphagia/pathology , Hypothalamus/metabolism , Insulin/metabolism , Male , Mice , Mitochondria/metabolism , Mutation/genetics , Neurons/metabolism , Obesity/blood , Obesity/complications , Obesity/pathology , Oxidative Phosphorylation , Receptors, Ghrelin/metabolism , Ribosomes/metabolism , Signal Transduction/genetics , Transcriptome/genetics , Up-Regulation/genetics
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