17 results on '"Monteiro da Rocha, André"'
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2. High-throughput longitudinal electrophysiology screening of mature chamber-specific hiPSC-CMs using optical mapping
3. Deficient cMyBP-C protein expression during cardiomyocyte differentiation underlies human hypertrophic cardiomyopathy cellular phenotypes in disease specific human ES cell derived cardiomyocytes
4. Cardiac Kir2.1 and NaV1.5 Channels Traffic Together to the Sarcolemma to Control Excitability
5. SNTA1 gene rescues ion channel function and is antiarrhythmic in cardiomyocytes derived from induced pluripotent stem cells from muscular dystrophy patients
6. Abstract 20561: Detecting Pre-Clinical Pro-Arrhythmia Risk in vitro Using Mature Human Induced Pluripotent Stem Cell Derived Cardiomyocyte Monolayers in a Quantitative Electrophysiological High Content Screen
7. Author response: SNTA1 gene rescues ion channel function and is antiarrhythmic in cardiomyocytes derived from induced pluripotent stem cells from muscular dystrophy patients
8. SNTA1 GeneRescues Ion Channel Function in Cardiomyocytes Derived from Induced Pluripotent Stem Cells Reprogrammed from Muscular Dystrophy Patients with Arrhythmias
9. Follicular Waves in the Human Ovary: A New Physiological Paradigm for Novel Ovarian Stimulation Protocols
10. Abnormal myocardial expression of SAP97 is associated with arrhythmogenic risk
11. Cardiac Kir2.1 and Na V 1.5 Channels Traffic Together to the Sarcolemma to Control Excitability
12. Loss of Glycogen Synthase Kinase 3 Isoforms During Murine Oocyte Growth Induces Offspring Cardiac Dysfunction1
13. 492: Effect of high glucose level on the function of human 3D cardiac micro-tissues derived from induced pluripotent stem cells
14. Induced Pluripotent Stem Cells from Human Placental Chorion for Perinatal Tissue Engineering Applications
15. Effect of GnRH down-regulation on cumulus cell viability and apoptosis as measured by fluorescence-activated cell sorting.
16. Abnormal myocardial expression of SAP97 is associated with arrhythmogenic risk.
17. Review: follicular waves in the human ovary: a new physiological paradigm for novel ovarian stimulation protocols.
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