Cardiac sympathetic neurons provide trophic signal to the heart via β2-adrenoceptor-dependent regulation of proteolysis.
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M. Mongillo | M. Sandri | E. Bertaggia | D. Glass | S. Schiaffino | T. Zaglia | D. Chiavegato | P. Brum | G. Milan | N. Pianca | M. Franzoso | V. Voltarelli | E. Piasentini
[1] P. Razeghi,et al. Mechanical unloading of the heart activates the calpain system. , 2007, Journal of molecular and cellular cardiology.
[2] R. Gottlieb. Autophagy in Health and Disease , 2004, Science.
[3] I. Kettelhut,et al. Clenbuterol suppresses proteasomal and lysosomal proteolysis and atrophy-related genes in denervated rat soleus muscles independently of Akt. , 2012, American journal of physiology. Endocrinology and metabolism.
[4] Holly McDonough,et al. Atrogin-1 inhibits Akt-dependent cardiac hypertrophy in mice via ubiquitin-dependent coactivation of Forkhead proteins. , 2007, The Journal of clinical investigation.
[5] B. Kobilka,et al. Dual modulation of cell survival and cell death by beta(2)-adrenergic signaling in adult mouse cardiac myocytes. , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[6] Da-Zhi Wang,et al. Atrogin-1/muscle atrophy F-box inhibits calcineurin-dependent cardiac hypertrophy by participating in an SCF ubiquitin ligase complex. , 2004, The Journal of clinical investigation.
[7] A. Goldberg,et al. Increase in ubiquitin-protein conjugates concomitant with the increase in proteolysis in rat skeletal muscle during starvation and atrophy denervation. , 1995, The Biochemical journal.
[8] Xuejun Wang,et al. Heart failure and protein quality control. , 2006, Circulation research.
[9] C. Patterson,et al. The Ubiquitin Proteasome System Regulates Cell Signaling and Protein Quality Control in Cardiovascular Development and Disease , 2010 .
[10] Yi-Ping Li,et al. Atrophic Remodeling of the Heart In Vivo Simultaneously Activates Pathways of Protein Synthesis and Degradation , 2003, Circulation.
[11] A. Goldberg,et al. Atrogin-1, a muscle-specific F-box protein highly expressed during muscle atrophy , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[12] M. Mann,et al. SILAC Mouse for Quantitative Proteomics Uncovers Kindlin-3 as an Essential Factor for Red Blood Cell Function , 2008, Cell.
[13] Robert J. Lefkowitz,et al. Compartmentation of Cyclic Nucleotide Signaling in the Heart: The Role of Cyclic Nucleotide Phosphodiesterases , 2012 .
[14] R. Schwinger,et al. Total beta-adrenoceptor deficiency results in cardiac hypotrophy and negative inotropy. , 2010, Physiological research.
[15] Ryan T. Strachan,et al. Distinct Phosphorylation Sites on the β2-Adrenergic Receptor Establish a Barcode That Encodes Differential Functions of β-Arrestin , 2011, Science Signaling.
[16] K. Schlüter,et al. Regulation of protein synthesis and degradation in adult ventricular cardiomyocytes. , 1995, The American journal of physiology.
[17] W. Frontera,et al. IKKbeta/NF-kappaB activation causes severe muscle wasting in mice. , 2004, Cell.
[18] B. Janssen,et al. Autonomic control of ultradian and circadian rhythms of blood pressure, heart rate, and baroreflex sensitivity in spontaneously hypertensive rats , 1997, Journal of hypertension.
[19] C. Thompson,et al. Macroautophagy versus mitochondrial autophagy: a question of fate? , 2005, Cell Death and Differentiation.
[20] Olivier Lichtarge,et al. β-Arrestin-dependent, G Protein-independent ERK1/2 Activation by the β2 Adrenergic Receptor* , 2006, Journal of Biological Chemistry.
[21] D J Glass,et al. Identification of Ubiquitin Ligases Required for Skeletal Muscle Atrophy , 2001, Science.
[22] H. Taegtmeyer,et al. AMP-Activated Protein Kinase Regulates E3 Ligases in Rodent Heart , 2011, Circulation research.
[23] B. Kobilka,et al. Two functionally distinct α2-adrenergic receptors regulate sympathetic neurotransmission , 1999, Nature.
[24] Xiao-Ming Gao,et al. Preserved left ventricular structure and function in mice with cardiac sympathetic hyperinnervation. , 2005, American journal of physiology. Heart and circulatory physiology.
[25] D. Bernstein,et al. Abnormal regulation of the sympathetic nervous system in alpha2A-adrenergic receptor knockout mice. , 1999, Molecular pharmacology.
[26] I. Klein,et al. Cardiac atrophy in the heterotopically transplanted rat heart: in vitro protein synthesis. , 1990, Journal of molecular and cellular cardiology.
[27] V. Preedy,et al. Rates of protein turnover in vivo and in vitro in ventricular muscle of hearts from fed and starved rats. , 1984, The Biochemical journal.
[28] Y. Tseng,et al. β-Adrenergic Receptor-PI3K Signaling Crosstalk in Mouse Heart: Elucidation of Immediate Downstream Signaling Cascades , 2011, PloS one.
[29] W. Nayler,et al. EFFECT OF PROLONGED β‐ADRENOCEPTOR BLOCKADE ON HEART WEIGHT AND ULTRASTRUCTURE IN YOUNG RABBITS , 1980, British journal of pharmacology.
[30] Xuejun Wang,et al. Interplay between the ubiquitin-proteasome system and autophagy in proteinopathies. , 2009, International journal of physiology, pathophysiology and pharmacology.
[31] Javed Butler,et al. The sympathetic nervous system in heart failure physiology, pathophysiology, and clinical implications. , 2009, Journal of the American College of Cardiology.
[32] G. Parati,et al. Effect of sympathectomy on blood pressure variability in the conscious rat. , 1991, Journal of hypertension. Supplement : official journal of the International Society of Hypertension.
[33] A. Samarel,et al. Protein synthesis and degradation during starvation-induced cardiac atrophy in rabbits. , 1987, Circulation research.
[34] M. Sillence,et al. Systemic administration of β2‐adrenoceptor agonists, formoterol and salmeterol, elicit skeletal muscle hypertrophy in rats at micromolar doses , 2006, British journal of pharmacology.
[35] E. Lakatta,et al. The beta(2)-adrenergic receptor delivers an antiapoptotic signal to cardiac myocytes through G(i)-dependent coupling to phosphatidylinositol 3'-kinase. , 2000, Circulation research.
[36] A. Goldberg,et al. The FOXO3a Transcription Factor Regulates Cardiac Myocyte Size Downstream of AKT Signaling* , 2005, Journal of Biological Chemistry.
[37] A. Goldberg,et al. What do we really know about the ubiquitin-proteasome pathway in muscle atrophy? , 2001, Current opinion in clinical nutrition and metabolic care.
[38] Olivier Lichtarge,et al. beta-arrestin-dependent, G protein-independent ERK1/2 activation by the beta2 adrenergic receptor. , 2006, The Journal of biological chemistry.
[39] P. Simpson,et al. Autonomous and growth factor-induced hypertrophy in cultured neonatal mouse cardiac myocytes. Comparison with rat. , 2000, Circulation research.
[40] W. Frontera,et al. IKKβ/NF-κB Activation Causes Severe Muscle Wasting in Mice , 2004, Cell.
[41] H. Thoenen,et al. A comparison of the effects of chemical sympathectomy by 6‐hydroxydopamine in newborn and adult rats , 1973, British journal of pharmacology.
[42] R. Voswinckel,et al. Myocardial remodelling in left ventricular atrophy induced by caloric restriction , 2012, Journal of anatomy.
[43] P. Razeghi,et al. Atrophic Remodeling of the Transplanted Rat Heart , 2006, Cardiology.
[44] A. Goldberg,et al. Rapid disuse and denervation atrophy involve transcriptional changes similar to those of muscle wasting during systemic diseases , 2007, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[45] W. Koch,et al. Myocardial Gene Transfer and Overexpression of &bgr;2-Adrenergic Receptors Potentiates the Functional Recovery of Unloaded Failing Hearts , 2002, Circulation.
[46] S. Buchanan,et al. Refolding of G-Protein-Coupled Receptors , 2006 .
[47] M. Crow,et al. Sustained beta1-adrenergic stimulation modulates cardiac contractility by Ca2+/calmodulin kinase signaling pathway. , 2004, Circulation research.
[48] M. Hirai,et al. Circadian rhythms of cardiovascular functions are modulated by the baroreflex and the autonomic nervous system in the rat. , 1997, Circulation.
[49] S. Rakhilin,et al. The E3 Ligase MuRF1 degrades myosin heavy chain protein in dexamethasone-treated skeletal muscle. , 2007, Cell metabolism.
[50] M. Crow,et al. Sustained &bgr;1-Adrenergic Stimulation Modulates Cardiac Contractility by Ca2+/Calmodulin Kinase Signaling Pathway , 2004 .
[51] Cam Patterson,et al. Muscle Ring Finger 1, but not Muscle Ring Finger 2, Regulates Cardiac Hypertrophy In Vivo , 2007, Circulation research.
[52] B. McDermott,et al. Neuropeptide Y Y(1) receptor regulates protein turnover and constitutive gene expression in hypertrophying cardiomyocytes. , 2002, European journal of pharmacology.
[53] M. Sandri. Autophagy in health and disease. 3. Involvement of autophagy in muscle atrophy. , 2010, American journal of physiology. Cell physiology.
[54] S. Gygi,et al. During muscle atrophy, thick, but not thin, filament components are degraded by MuRF1-dependent ubiquitylation , 2009, The Journal of cell biology.
[55] W. Frishman,et al. Left Ventricular Assist Device and Drug Therapy for the Reversal of Heart Failure , 2007 .
[56] Holly McDonough,et al. Muscle ring finger protein-1 inhibits PKCε activation and prevents cardiomyocyte hypertrophy , 2004, The Journal of cell biology.
[57] M C Oz,et al. Reversal of chronic ventricular dilation in patients with end-stage cardiomyopathy by prolonged mechanical unloading. , 1995, Circulation.
[58] E. Lakatta,et al. The β2-Adrenergic receptor delivers an antiapoptotic signal to cardiac myocytes through Gi-Dependent coupling to phosphatidylinositol 3'-kinase , 2000 .
[59] K. Sampson,et al. Molecular mechanisms of adrenergic stimulation in the heart. , 2010, Heart rhythm.
[60] F. Gonzalez,et al. Vascular PPARgamma controls circadian variation in blood pressure and heart rate through Bmal1. , 2008, Cell metabolism.
[61] C. Depré,et al. Transcriptional adaptation of the heart to mechanical unloading. , 1999, The American journal of cardiology.