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Browsing by Author "Eschenhagen, Thomas (7004716470)"

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    Publication
    Common mechanistic pathways in cancer and heart failure. A scientific roadmap on behalf of the Translational Research Committee of the Heart Failure Association (HFA) of the European Society of Cardiology (ESC)
    (2020)
    de Boer, Rudolf A. (8572907800)
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    Hulot, Jean-Sébastien (6603026259)
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    Tocchetti, Carlo Gabriele (6507913481)
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    Aboumsallem, Joseph Pierre (57195371732)
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    Ameri, Pietro (17342143000)
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    Anker, Stefan D. (56223993400)
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    Bauersachs, Johann (7004626054)
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    Bertero, Edoardo (57189520921)
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    Coats, Andrew J.S. (35395386900)
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    Čelutkienė, Jelena (6507133552)
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    Chioncel, Ovidiu (12769077100)
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    Dodion, Pierre (57205178617)
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    Eschenhagen, Thomas (7004716470)
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    Farmakis, Dimitrios (55296706200)
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    Bayes-Genis, Antoni (7004094140)
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    Jäger, Dirk (7005584966)
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    Jankowska, Ewa A. (21640520500)
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    Kitsis, Richard N. (7003793631)
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    Konety, Suma H. (8271066700)
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    Larkin, James (8762665400)
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    Lehmann, Lorenz (15760419100)
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    Lenihan, Daniel J. (7003853556)
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    Maack, Christoph (6701763468)
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    Moslehi, Javid J. (6602839476)
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    Müller, Oliver J. (57213328662)
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    Nowak-Sliwinska, Patrycja (6506106323)
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    Piepoli, Massimo Francesco (7005292730)
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    Ponikowski, Piotr (7005331011)
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    Pudil, Radek (57210201747)
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    Rainer, Peter P. (35590576100)
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    Ruschitzka, Frank (7003359126)
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    Sawyer, Douglas (7201550571)
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    Seferovic, Petar M. (6603594879)
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    Suter, Thomas (7006001704)
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    Thum, Thomas (57195743477)
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    van der Meer, Peter (7004669395)
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    Van Laake, Linda W. (9533995100)
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    von Haehling, Stephan (6602981479)
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    Heymans, Stephane (6603326423)
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    Lyon, Alexander R. (57203046227)
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    Backs, Johannes (6506659543)
    The co-occurrence of cancer and heart failure (HF) represents a significant clinical drawback as each disease interferes with the treatment of the other. In addition to shared risk factors, a growing body of experimental and clinical evidence reveals numerous commonalities in the biology underlying both pathologies. Inflammation emerges as a common hallmark for both diseases as it contributes to the initiation and progression of both HF and cancer. Under stress, malignant and cardiac cells change their metabolic preferences to survive, which makes these metabolic derangements a great basis to develop intersection strategies and therapies to combat both diseases. Furthermore, genetic predisposition and clonal haematopoiesis are common drivers for both conditions and they hold great clinical relevance in the context of personalized medicine. Additionally, altered angiogenesis is a common hallmark for failing hearts and tumours and represents a promising substrate to target in both diseases. Cardiac cells and malignant cells interact with their surrounding environment called stroma. This interaction mediates the progression of the two pathologies and understanding the structure and function of each stromal component may pave the way for innovative therapeutic strategies and improved outcomes in patients. The interdisciplinary collaboration between cardiologists and oncologists is essential to establish unified guidelines. To this aim, pre-clinical models that mimic the human situation, where both pathologies coexist, are needed to understand all the aspects of the bidirectional relationship between cancer and HF. Finally, adequately powered clinical studies, including patients from all ages, and men and women, with proper adjudication of both cancer and cardiovascular endpoints, are essential to accurately study these two pathologies at the same time. © 2020 The Authors. European Journal of Heart Failure published by John Wiley & Sons Ltd on behalf of European Society of Cardiology.
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    Publication
    Targeted therapies in genetic dilated and hypertrophic cardiomyopathies: from molecular mechanisms to therapeutic targets. A position paper from the Heart Failure Association (HFA) and the Working Group on Myocardial Function of the European Society of Cardiology (ESC)
    (2022)
    de Boer, Rudolf A. (8572907800)
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    Heymans, Stephane (6603326423)
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    Backs, Johannes (6506659543)
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    Carrier, Lucie (55199727100)
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    Coats, Andrew J.S. (35395386900)
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    Dimmeler, Stefanie (57202659236)
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    Eschenhagen, Thomas (7004716470)
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    Filippatos, Gerasimos (7003787662)
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    Gepstein, Lior (7004638172)
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    Hulot, Jean-Sebastien (6603026259)
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    Knöll, Ralph (7004404404)
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    Kupatt, Christian (7003995571)
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    Linke, Wolfgang A. (7004812764)
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    Seidman, Christine E. (7101936253)
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    Tocchetti, C. Gabriele (6507913481)
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    van der Velden, Jolanda (7005148416)
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    Walsh, Roddy (55768671100)
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    Seferovic, Petar M. (6603594879)
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    Thum, Thomas (57195743477)
    Genetic cardiomyopathies are disorders of the cardiac muscle, most often explained by pathogenic mutations in genes encoding sarcomere, cytoskeleton, or ion channel proteins. Clinical phenotypes such as heart failure and arrhythmia are classically treated with generic drugs, but aetiology-specific and targeted treatments are lacking. As a result, cardiomyopathies still present a major burden to society, and affect many young and older patients. The Translational Committee of the Heart Failure Association (HFA) and the Working Group of Myocardial Function of the European Society of Cardiology (ESC) organized a workshop to discuss recent advances in molecular and physiological studies of various forms of cardiomyopathies. The study of cardiomyopathies has intensified after several new study setups became available, such as induced pluripotent stem cells, three-dimensional printing of cells, use of scaffolds and engineered heart tissue, with convincing human validation studies. Furthermore, our knowledge on the consequences of mutated proteins has deepened, with relevance for cellular homeostasis, protein quality control and toxicity, often specific to particular cardiomyopathies, with precise effects explaining the aberrations. This has opened up new avenues to treat cardiomyopathies, using contemporary techniques from the molecular toolbox, such as gene editing and repair using CRISPR-Cas9 techniques, antisense therapies, novel designer drugs, and RNA therapies. In this article, we discuss the connection between biology and diverse clinical presentation, as well as promising new medications and therapeutic avenues, which may be instrumental to come to precision medicine of genetic cardiomyopathies. © 2021 The Authors. European Journal of Heart Failure published by John Wiley & Sons Ltd on behalf of European Society of Cardiology.
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    Publication
    Treatments targeting inotropy
    (2019)
    Maack, Christoph (6701763468)
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    Eschenhagen, Thomas (7004716470)
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    Hamdani, Nazha (23094208600)
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    Heinze, Frank R. (57212263844)
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    Lyon, Alexander R. (57203046227)
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    Manstein, Dietmar J. (7006283059)
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    Metzger, Joseph (7202074710)
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    Papp, Zoltan (29867593800)
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    Tocchetti, Carlo G. (6507913481)
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    Yilmaz, M. Birhan (7202595585)
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    Anker, Stefan D. (56223993400)
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    Balligand, Jean-Luc (7003921084)
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    Bauersachs, Johann (7004626054)
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    Brutsaert, Dirk (7006117073)
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    Carrier, Lucie (55199727100)
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    Chlopicki, Stefan (7003634171)
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    Cleland, John G. (7202164137)
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    De Boer, Rudolf A. (8572907800)
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    Dietl, Alexander (55324535700)
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    Fischmeister, Rodolphe (7006457996)
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    Harjola, Veli-Pekka (6602728533)
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    Heymans, Stephane (6603326423)
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    Hilfiker-Kleiner, Denise (6602676885)
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    Holzmeister, Johannes (6603169763)
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    De Keulenaer, Gilles (6603078918)
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    Limongelli, Giuseppe (6603359014)
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    Linke, Wolfgang A. (7004812764)
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    Lund, Lars H. (7102206508)
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    Masip, Josep (57221962429)
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    Metra, Marco (7006770735)
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    Mueller, Christian (57638261900)
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    Pieske, Burkert (35499467500)
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    Ponikowski, Piotr (7005331011)
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    Risti, Arsen (18936987100)
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    Ruschitzka, Frank (7003359126)
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    Seferovi, Petar M. (57212274303)
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    Skouri, Hadi (21934953600)
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    Zimmermann, Wolfram H. (7203058782)
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    Mebazaa, Alexandre (57210091243)
    Acute heart failure (HF) and in particular, cardiogenic shock are associated with high morbidity and mortality. A therapeutic dilemma is that the use of positive inotropic agents, such as catecholamines or phosphodiesteraseinhibitors, is associated with increased mortality. Newer drugs, such as levosimendan or omecamtiv mecarbil, target sarcomeres to improve systolic function putatively without elevating intracellular Ca2þ. Although meta-analyses of smaller trials suggested that levosimendan is associated with a better outcome than dobutamine, larger comparative trials failed to confirm this observation. For omecamtiv mecarbil, Phase II clinical trials suggest a favourable haemodynamic profile in patients with acute and chronic HF, and a Phase III morbidity/mortality trial in patients with chronic HF has recently begun. Here, we review the pathophysiological basis of systolic dysfunction in patients with HF and the mechanisms through which different inotropic agents improve cardiac function. Since adenosine triphosphate and reactive oxygen species production in mitochondria are intimately linked to the processes of excitation-contraction coupling, we also discuss the impact of inotropic agents on mitochondrial bioenergetics and redox regulation. Therefore, this position paper should help identify novel targets for treatments that could not only safely improve systolic and diastolic function acutely, but potentially also myocardial structure and function over a longer-term. © 2018 The Author(s).

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