Try a new search

Format these results:

Searched for:

in-biosketch:yes

person:fishmg01

Total Results:

159


A Whole Blood Transcriptional Signature in Women With Myocardial Infarction With Non-Obstructive Coronary Artery Disease (MINOCA) [Meeting Abstract]

Barrett, Tessa J.; Lee, Angela H.; Hausvater, Anais; Smilowitz, Nathaniel; Fishman, Glenn; Hochman, Judith; Reynolds, Harmony R.; Berger, Jeffrey S.
ISI:000528619406054
ISSN: 0009-7322
CID: 5285712

Exploiting Inhibition of PD1 Signaling in a Murine Model of Anti-SSA/Ro Associated Congenital Heart Block [Meeting Abstract]

Clancy, Robert M; Fishman, Glenn; Phoon, Colin; Halushka, Marc; Jackson, Tanisha; Robins, Kimberly; Buyon, Jill P
ISI:000411824106084
ISSN: 2326-5205
CID: 2767622

Drug-Induced Arrhythmias, Precision Medicine, and Small Data [Editorial]

Fishman, Glenn I
PMCID:5470633
PMID: 28408653
ISSN: 1941-3084
CID: 2528382

Development and Function of the Cardiac Conduction System in Health and Disease

Park, David S; Fishman, Glenn I
The generation and propagation of the cardiac impulse is the central function of the cardiac conduction system (CCS). Impulse initiation occurs in nodal tissues that have high levels of automaticity, but slow conduction properties. Rapid impulse propagation is a feature of the ventricular conduction system, which is essential for synchronized contraction of the ventricular chambers. When functioning properly, the CCS produces ~2.4 billion heartbeats during a human lifetime and orchestrates the flow of cardiac impulses, designed to maximize cardiac output. Abnormal impulse initiation or propagation can result in brady- and tachy-arrhythmias, producing an array of symptoms, including syncope, heart failure or sudden cardiac death. Underlying the functional diversity of the CCS are gene regulatory networks that direct cell fate towards a nodal or a fast conduction gene program. In this review, we will discuss our current understanding of the transcriptional networks that dictate the components of the CCS, the growth factor-dependent signaling pathways that orchestrate some of these transcriptional hierarchies and the effect of aberrant transcription factor expression on mammalian conduction disease.
PMCID:5663314
PMID: 29098150
ISSN: 2308-3425
CID: 2764912

The Transcription Factor Early B-cell Factor 1 is Critical for Proper Formation of the Cardiac Ventricular Conduction System [Meeting Abstract]

Kim, Eugene; Shekhar, Akshay; Zhang, Jie; Liu, Fang-Yu; Young, Wilson; Fishman, Glenn I
ISI:000390591600004
ISSN: 1524-4571
CID: 2411402

Transcription factor ETV1 is essential for rapid conduction in the heart

Shekhar, Akshay; Lin, Xianming; Liu, Fang-Yu; Zhang, Jie; Mo, Huan; Bastarache, Lisa; Denny, Joshua C; Cox, Nancy J; Delmar, Mario; Roden, Dan M; Fishman, Glenn I; Park, David S
Rapid impulse propagation in the heart is a defining property of pectinated atrial myocardium (PAM) and the ventricular conduction system (VCS) and is essential for maintaining normal cardiac rhythm and optimal cardiac output. Conduction defects in these tissues produce a disproportionate burden of arrhythmic disease and are major predictors of mortality in heart failure patients. Despite the clinical importance, little is known about the gene regulatory network that dictates the fast conduction phenotype. Here, we have used signal transduction and transcriptional profiling screens to identify a genetic pathway that converges on the NRG1-responsive transcription factor ETV1 as a critical regulator of fast conduction physiology for PAM and VCS cardiomyocytes. Etv1 was highly expressed in murine PAM and VCS cardiomyocytes, where it regulates expression of Nkx2-5, Gja5, and Scn5a, key cardiac genes required for rapid conduction. Mice deficient in Etv1 exhibited marked cardiac conduction defects coupled with developmental abnormalities of the VCS. Loss of Etv1 resulted in a complete disruption of the normal sodium current heterogeneity that exists between atrial, VCS, and ventricular myocytes. Lastly, a phenome-wide association study identified a link between ETV1 and bundle branch block and heart block in humans. Together, these results identify ETV1 as a critical factor in determining fast conduction physiology in the heart.
PMCID:5127680
PMID: 27775552
ISSN: 1558-8238
CID: 2378122

Fhf2 gene deletion causes temperature-sensitive cardiac conduction failure

Park, David S; Shekhar, Akshay; Marra, Christopher; Lin, Xianming; Vasquez, Carolina; Solinas, Sergio; Kelley, Kevin; Morley, Gregory; Goldfarb, Mitchell; Fishman, Glenn I
Fever is a highly conserved systemic response to infection dating back over 600 million years. Although conferring a survival benefit, fever can negatively impact the function of excitable tissues, such as the heart, producing cardiac arrhythmias. Here we show that mice lacking fibroblast growth factor homologous factor 2 (FHF2) have normal cardiac rhythm at baseline, but increasing core body temperature by as little as 3 degrees C causes coved-type ST elevations and progressive conduction failure that is fully reversible upon return to normothermia. FHF2-deficient cardiomyocytes generate action potentials upon current injection at 25 degrees C but are unexcitable at 40 degrees C. The absence of FHF2 accelerates the rate of closed-state and open-state sodium channel inactivation, which synergizes with temperature-dependent enhancement of inactivation rate to severely suppress cardiac sodium currents at elevated temperatures. Our experimental and computational results identify an essential role for FHF2 in dictating myocardial excitability and conduction that safeguards against temperature-sensitive conduction failure.
PMCID:5059448
PMID: 27701382
ISSN: 2041-1723
CID: 2273672

Connexins and Heritable Human Diseases

Chapter by: Bernstein, SA; Fishman, GI
in: Ion Channels in Health and Disease by
pp. 331-343
ISBN: 9780128020173
CID: 2292582

Purkinje Cells as Sources of Arrhythmias in Long QT Syndrome Type 3

Iyer, Vivek; Roman-Campos, Danilo; Sampson, Kevin J; Kang, Guoxin; Fishman, Glenn I; Kass, Robert S
Long QT syndrome (LQTS) is characterized by ventricular arrhythmias and sudden cardiac death. Purkinje cells (PC) within the specialized cardiac conduction system have unique electrophysiological properties that we hypothesize may produce the primary sources of arrhythmia in heritable LQTS. LQTS type 3 (LQT3) transgenic mice harboring the DeltaKPQ(+/-) mutation were crossed with Contactin2-EGFP BAC transgenic mice, which express a fluorescent reporter gene within the Purkinje fiber network. Isolated ventricular myocytes (VMs) (EGFP(-)) and PCs (EGFP(+)) from wild type and DeltaKPQ mutant hearts were compared using the whole-cell patch clamp technique and microfluorimetry of calcium transients. Increased late sodium current was seen in DeltaKPQ-PCs and DeltaKPQ-VMs, with larger density in DeltaKPQ-PCs. Marked prolongation of action potential duration of DeltaKPQ-PCs was seen compared to DeltaKPQ-VMs. DeltaKPQ-PCs, but not DeltaKPQ-VMs, exhibited frequent early afterdepolarizations, which corresponded to repetitive oscillations of intracellular calcium. Abnormalities in cell repolarization were reversed with exposure to mexiletine. We present the first direct experimental evidence that PCs are uniquely sensitive to LQT3 mutations, displaying electrophysiological behavior that is highly pro-arrhythmic.
PMCID:4542521
PMID: 26289036
ISSN: 2045-2322
CID: 1732302

Efficient Generation of Cardiac Purkinje Cells from ESCs by Activating cAMP Signaling

Tsai, Su-Yi; Maass, Karen; Lu, Jia; Fishman, Glenn I; Chen, Shuibing; Evans, Todd
Dysfunction of the specialized cardiac conduction system (CCS) is associated with life-threatening arrhythmias. Strategies to derive CCS cells, including rare Purkinje cells (PCs), would facilitate models for mechanistic studies and drug discovery and also provide new cellular materials for regenerative therapies. A high-throughput chemical screen using CCS:lacz and Contactin2:egfp (Cntn2:egfp) reporter embryonic stem cell (ESC) lines was used to discover a small molecule, sodium nitroprusside (SN), that efficiently promotes the generation of cardiac cells that express gene profiles and generate action potentials of PC-like cells. Imaging and mechanistic studies suggest that SN promotes the generation of PCs from cardiac progenitors initially expressing cardiac myosin heavy chain and that it does so by activating cyclic AMP signaling. These findings provide a strategy to derive scalable PCs, along with insight into the ontogeny of CCS development.
PMCID:4471825
PMID: 26028533
ISSN: 2213-6711
CID: 1615182