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1.
Nature ; 566(7743): 264-269, 2019 02.
Article in English | MEDLINE | ID: mdl-30700906

ABSTRACT

The mechanistic target of rapamycin complex-1 (mTORC1) coordinates regulation of growth, metabolism, protein synthesis and autophagy1. Its hyperactivation contributes to disease in numerous organs, including the heart1,2, although broad inhibition of mTORC1 risks interference with its homeostatic roles. Tuberin (TSC2) is a GTPase-activating protein and prominent intrinsic regulator of mTORC1 that acts through modulation of RHEB (Ras homologue enriched in brain). TSC2 constitutively inhibits mTORC1; however, this activity is modified by phosphorylation from multiple signalling kinases that in turn inhibits (AMPK and GSK-3ß) or stimulates (AKT, ERK and RSK-1) mTORC1 activity3-9. Each kinase requires engagement of multiple serines, impeding analysis of their role in vivo. Here we show that phosphorylation or gain- or loss-of-function mutations at either of two adjacent serine residues in TSC2 (S1365 and S1366 in mice; S1364 and S1365 in humans) can bidirectionally control mTORC1 activity stimulated by growth factors or haemodynamic stress, and consequently modulate cell growth and autophagy. However, basal mTORC1 activity remains unchanged. In the heart, or in isolated cardiomyocytes or fibroblasts, protein kinase G1 (PKG1) phosphorylates these TSC2 sites. PKG1 is a primary effector of nitric oxide and natriuretic peptide signalling, and protects against heart disease10-13. Suppression of hypertrophy and stimulation of autophagy in cardiomyocytes by PKG1 requires TSC2 phosphorylation. Homozygous knock-in mice that express a phosphorylation-silencing mutation in TSC2 (TSC2(S1365A)) develop worse heart disease and have higher mortality after sustained pressure overload of the heart, owing to mTORC1 hyperactivity that cannot be rescued by PKG1 stimulation. However, cardiac disease is reduced and survival of heterozygote Tsc2S1365A knock-in mice subjected to the same stress is improved by PKG1 activation or expression of a phosphorylation-mimicking mutation (TSC2(S1365E)). Resting mTORC1 activity is not altered in either knock-in model. Therefore, TSC2 phosphorylation is both required and sufficient for PKG1-mediated cardiac protection against pressure overload. The serine residues identified here provide a genetic tool for bidirectional regulation of the amplitude of stress-stimulated mTORC1 activity.


Subject(s)
Cyclic GMP-Dependent Protein Kinases/metabolism , Heart Diseases/prevention & control , Heart Diseases/physiopathology , Mechanistic Target of Rapamycin Complex 1/metabolism , Tuberous Sclerosis Complex 2 Protein/chemistry , Tuberous Sclerosis Complex 2 Protein/metabolism , Animals , Autophagy , Cells, Cultured , Disease Progression , Enzyme Activation , Everolimus/pharmacology , Female , Gene Knock-In Techniques , HEK293 Cells , Heart Diseases/genetics , Heart Diseases/pathology , Humans , Hypertrophy/drug therapy , Hypertrophy/pathology , Male , Mechanistic Target of Rapamycin Complex 1/antagonists & inhibitors , Mice , Mutation , Myocytes, Cardiac/pathology , Phosphorylation , Phosphoserine/metabolism , Pressure , Rats , Rats, Wistar , Serine/genetics , Serine/metabolism , Tuberous Sclerosis Complex 2 Protein/genetics
2.
Circ Res ; 127(4): 522-533, 2020 07 31.
Article in English | MEDLINE | ID: mdl-32393148

ABSTRACT

RATIONALE: Stimulated PKG1α (protein kinase G-1α) phosphorylates TSC2 (tuberous sclerosis complex 2) at serine 1365, potently suppressing mTORC1 (mechanistic [mammalian] target of rapamycin complex 1) activation by neurohormonal and hemodynamic stress. This reduces pathological hypertrophy and dysfunction and increases autophagy. PKG1α oxidation at cysteine-42 is also induced by these stressors, which blunts its cardioprotective effects. OBJECTIVE: We tested the dependence of mTORC1 activation on PKG1α C42 oxidation and its capacity to suppress such activation by soluble GC-1 (guanylyl cyclase 1) activation. METHODS AND RESULTS: Cardiomyocytes expressing wild-type (WT) PKG1α (PKG1αWT) or cysteine-42 to serine mutation redox-dead (PKG1αCS/CS) were exposed to ET-1 (endothelin 1). Cells expressing PKG1αWT exhibited substantial mTORC1 activation (p70 S6K [p70 S6 kinase], 4EBP1 [elF4E binding protein-1], and Ulk1 [Unc-51-like kinase 1] phosphorylation), reduced autophagy/autophagic flux, and abnormal protein aggregation; all were markedly reversed by PKG1αCS/CS expression. Mice with global knock-in of PKG1αCS/CS subjected to pressure overload (PO) also displayed markedly reduced mTORC1 activation, protein aggregation, hypertrophy, and ventricular dysfunction versus PO in PKG1αWT mice. Cardioprotection against PO was equalized between groups by co-treatment with the mTORC1 inhibitor everolimus. TSC2-S1365 phosphorylation increased in PKG1αCS/CS more than PKG1αWT myocardium following PO. TSC2S1365A/S1365A (TSC2 S1365 phospho-null, created by a serine to alanine mutation) knock-in mice lack TSC2 phosphorylation by PKG1α, and when genetically crossed with PKG1αCS/CS mice, protection against PO-induced mTORC1 activation, cardiodepression, and mortality in PKG1αCS/CS mice was lost. Direct stimulation of GC-1 (BAY-602770) offset disparate mTORC1 activation between PKG1αWT and PKG1αCS/CS after PO and blocked ET-1 stimulated mTORC1 in TSC2S1365A-expressing myocytes. CONCLUSIONS: Oxidation of PKG1α at C42 reduces its phosphorylation of TSC2, resulting in amplified PO-stimulated mTORC1 activity and associated hypertrophy, dysfunction, and depressed autophagy. This is ameliorated by direct GC-1 stimulation.


Subject(s)
Cardiomegaly/metabolism , Cyclic GMP-Dependent Protein Kinase Type I/metabolism , Guanylate Cyclase/metabolism , Mechanistic Target of Rapamycin Complex 1/metabolism , Myocytes, Cardiac/metabolism , Animals , Aorta , Autophagy/physiology , Benzoates/metabolism , Biphenyl Compounds/metabolism , Constriction, Pathologic , Cyclic GMP-Dependent Protein Kinase Type I/genetics , Cysteine/metabolism , Endothelin-1/pharmacology , Enzyme Activation , Everolimus/pharmacology , Gene Knock-In Techniques , Hydrocarbons, Fluorinated/metabolism , Mechanistic Target of Rapamycin Complex 1/antagonists & inhibitors , Mice , Mice, Inbred C57BL , Myocytes, Cardiac/drug effects , Oxidation-Reduction , Oxidative Stress , Phosphorylation , Pressure , Proteostasis , Rats , Tuberous Sclerosis Complex 2 Protein/genetics , Tuberous Sclerosis Complex 2 Protein/metabolism
3.
Circulation ; 137(22): 2360-2370, 2018 05 29.
Article in English | MEDLINE | ID: mdl-29352073

ABSTRACT

BACKGROUND: Patients with systemic sclerosis (SSc)-associated pulmonary arterial hypertension (PAH) have a far worse prognosis than those with idiopathic PAH (IPAH). In the intact heart, SSc-PAH exhibits depressed rest and reserve right ventricular (RV) contractility compared with IPAH. We tested whether this disparity involves underlying differences in myofilament function. METHODS: Cardiac myocytes were isolated from RV septal endomyocardial biopsies from patients with SSc-PAH, IPAH, or SSc with exertional dyspnea but no resting PAH (SSc-d); control RV septal tissue was obtained from nondiseased donor hearts (6-7 per group). Isolated myocyte passive length-tension and developed tension-calcium relationships were determined and correlated with in vivo RV function and reserve. RV septal fibrosis was also examined. RESULTS: Myocyte passive stiffness from length-tension relations was similarly increased in IPAH and SSc-PAH compared with control, although SSc-PAH biopsies had more interstitial fibrosis. More striking disparities were found between active force-calcium relations. Compared with controls, maximal calcium-activated force (Fmax) was 28% higher in IPAH but 37% lower in SSc-PAH. Fmax in SSc-d was intermediate between control and SSc-PAH. The calcium concentration required for half-maximal force (EC50) was similar between control, IPAH, and SSc-d but lower in SSc-PAH. This disparity disappeared in myocytes incubated with the active catalytic subunit of protein kinase A. Myocyte Fmax directly correlated with in vivo RV contractility assessed by end-systolic elastance (R2 =0.46, P=0.002) and change in end-systolic elastance with exercise (R2 =0.49, P=0.008) and was inversely related with exercise-induced chamber dilation (R2 =0.63, P<0.002), which also was a marker of depressed contractile reserve. CONCLUSIONS: A primary defect in human SSc-PAH resides in depressed sarcomere function, whereas this is enhanced in IPAH. These disparities correlate with in vivo RV contractility and contractile reserve and are consistent with worse clinical outcomes in SSc-PAH. The existence of sarcomere disease before the development of resting PAH in patients with SSc-d suggests that earlier identification and intervention may prove useful.


Subject(s)
Familial Primary Pulmonary Hypertension/physiopathology , Hypertension, Pulmonary/physiopathology , Myofibrils/physiology , Scleroderma, Systemic/complications , Adult , Aged , Calcium/metabolism , Case-Control Studies , Exercise , Female , Heart Ventricles/physiopathology , Hemodynamics , Humans , Hypertension, Pulmonary/etiology , Male , Middle Aged , Muscle Contraction , Myocardium/metabolism , Myocardium/pathology , Prospective Studies
4.
Nat Commun ; 11(1): 5237, 2020 10 20.
Article in English | MEDLINE | ID: mdl-33082318

ABSTRACT

Proteotoxicity from insufficient clearance of misfolded/damaged proteins underlies many diseases. Carboxyl terminus of Hsc70-interacting protein (CHIP) is an important regulator of proteostasis in many cells, having E3-ligase and chaperone functions and often directing damaged proteins towards proteasome recycling. While enhancing CHIP functionality has broad therapeutic potential, prior efforts have all relied on genetic upregulation. Here we report that CHIP-mediated protein turnover is markedly post-translationally enhanced by direct protein kinase G (PKG) phosphorylation at S20 (mouse, S19 human). This increases CHIP binding affinity to Hsc70, CHIP protein half-life, and consequent clearance of stress-induced ubiquitinated-insoluble proteins. PKG-mediated CHIP-pS20 or expressing CHIP-S20E (phosphomimetic) reduces ischemic proteo- and cytotoxicity, whereas a phospho-silenced CHIP-S20A amplifies both. In vivo, depressing PKG activity lowers CHIP-S20 phosphorylation and protein, exacerbating proteotoxicity and heart dysfunction after ischemic injury. CHIP-S20E knock-in mice better clear ubiquitinated proteins and are cardio-protected. PKG activation provides post-translational enhancement of protein quality control via CHIP.


Subject(s)
Cyclic GMP-Dependent Protein Kinases/metabolism , Ischemia/metabolism , Ubiquitin-Protein Ligases/metabolism , Amino Acid Motifs , Animals , Cyclic GMP-Dependent Protein Kinases/genetics , Female , Heart/physiopathology , Humans , Ischemia/enzymology , Ischemia/genetics , Ischemia/physiopathology , Male , Mice , Myocardium/metabolism , Phosphorylation , Ubiquitin-Protein Ligases/chemistry , Ubiquitin-Protein Ligases/genetics
5.
JCI Insight ; 3(15)2018 08 09.
Article in English | MEDLINE | ID: mdl-30089721

ABSTRACT

MicroRNAs (miRs) posttranscriptionally regulate mRNA and its translation into protein, and are considered master controllers of genes modulating normal physiology and disease. There is growing interest in how miRs change with drug treatment, and leveraging this for precision guided therapy. Here we contrast 2 closely related therapies, inhibitors of phosphodiesterase type 5 or type 9 (PDE5-I, PDE9-I), given to mice subjected to sustained cardiac pressure overload (PO). Both inhibitors augment cyclic guanosine monophosphate (cGMP) to activate protein kinase G, with PDE5-I regulating nitric oxide (NO) and PDE9-I natriuretic peptide-dependent signaling. While both produced strong phenotypic improvement of PO pathobiology, they surprisingly showed binary differences in miR profiles; PDE5-I broadly reduces more than 120 miRs, including nearly half those increased by PO, whereas PDE9-I has minimal impact on any miR (P < 0.0001). The disparity evolves after pre-miR processing and is organ specific. Lastly, even enhancing NO-coupled cGMP by different methods leads to altered miR regulation. Thus, seemingly similar therapeutic interventions can be barcoded by profound differences in miR signatures, and reversing disease-associated miR changes is not required for therapy success.


Subject(s)
3',5'-Cyclic-AMP Phosphodiesterases/antagonists & inhibitors , Heart Diseases/drug therapy , MicroRNAs/metabolism , Phosphodiesterase 5 Inhibitors/pharmacology , RNA Processing, Post-Transcriptional/drug effects , 3',5'-Cyclic-AMP Phosphodiesterases/metabolism , Animals , Cyclic GMP/metabolism , Cyclic GMP-Dependent Protein Kinases/metabolism , Cyclic Nucleotide Phosphodiesterases, Type 5/metabolism , Disease Models, Animal , Heart Diseases/etiology , Humans , Male , Mice , Natriuretic Peptides/metabolism , Nitric Oxide/metabolism , Phosphodiesterase 5 Inhibitors/therapeutic use , Signal Transduction
6.
Nat Commun ; 9(1): 5230, 2018 12 07.
Article in English | MEDLINE | ID: mdl-30531796

ABSTRACT

Left ventricular hypertrophy (LVH) is a major risk factor for cardiovascular morbidity and mortality. Pathological LVH engages transcriptional programs including reactivation of canonical fetal genes and those inducing fibrosis. Histone lysine demethylases (KDMs) are emerging regulators of transcriptional reprogramming in cancer, though their potential role in abnormal heart growth and fibrosis remains little understood. Here, we investigate gain and loss of function of an H3K9me2 specific demethylase, Kdm3a, and show it promotes LVH and fibrosis in response to pressure-overload. Cardiomyocyte KDM3A activates Timp1 transcription with pro-fibrotic activity. By contrast, a pan-KDM inhibitor, JIB-04, suppresses pressure overload-induced LVH and fibrosis. JIB-04 inhibits KDM3A and suppresses the transcription of fibrotic genes that overlap with genes downregulated in Kdm3a-KO mice versus WT controls. Our study provides genetic and biochemical evidence for a pro-hypertrophic function of KDM3A and proof-of principle for pharmacological targeting of KDMs as an effective strategy to counter LVH and pathological fibrosis.


Subject(s)
Cardiomegaly/genetics , Gene Expression Regulation/genetics , Histone Demethylases/genetics , Myocardium/metabolism , Aminopyridines/pharmacology , Animals , Animals, Newborn , Cardiomegaly/enzymology , Cells, Cultured , Fibrosis/genetics , Gene Expression Profiling , Gene Expression Regulation/drug effects , Histone Demethylases/antagonists & inhibitors , Histone Demethylases/metabolism , Humans , Hydrazones/pharmacology , Mice, Knockout , Mice, Transgenic , Myocardium/enzymology , Myocardium/pathology , Myocytes, Cardiac/metabolism , Rats, Sprague-Dawley
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