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Biology subjects

Tjen, K.

Publications and source records attributed to Tjen, K..

2 recordsLinked to original sources

Purkinje cardiomyocytes of the ventricular conduction system are highly diploid but not regenerative

Inefficiency of regeneration underlies many of the pathologies associated with heart injury and disease. Ventricular diploid cardiomyocytes (CMs) are a candidate population that may have enhanced proliferative and regenerative properties [1-3], but subpopulations of diploid CMs and their regenerative capacities are not yet known. Here, using the expression marker Cntn2-GFP and the lineage marker Etv1CreERT2, we demonstrate that peripheral ventricular conduction CMs (Purkinje CMs) are disproportionately diploid (35%, vs. 4% of bulk ventricular CMs). However, this lineage had no enhanced competence to support regeneration after adult infarction. Furthermore, the CM-specific kinase Tnni3k, which strongly influences bulk ventricular CM ploidy [3] and is also associated with conduction system defects [4], had no influence on the ploidy or organization of the ventricular conduction system. Unlike the bulk diploid CM population, a significant fraction of conduction CMs remain diploid by avoiding neonatal cell cycle activity, likely contributing to these properties.

developmental biology↗

Human Cardiac Organoids to Model COVID-19 Cytokine Storm Induced Cardiac Injuries

Acute cardiac injuries occur in 20-25% of hospitalized COVID-19 patients. Despite urgent needs, there is a lack of 3D organotypic models of COVID-19 hearts for mechanistic studies and drug testing. Herein, we demonstrate that human cardiac organoids (hCOs) are a viable platform to model the cardiac injuries caused by COVID-19 hyperinflammation. As IL-1{beta}is an upstream cytokine and a core COVID-19 signature cytokine, it was used to stimulate hCOs to induce the release of a milieu of proinflammatory cytokines that mirror the profile of COVID-19 cytokine storm. The IL-1 {beta} treated hCOs recapitulated transcriptomic, structural, and functional signatures of COVID-19 hearts. The comparison of IL-1{beta} treated hCOs with cardiac tissue from COVID-19 autopsies illustrated the critical roles of hyper-inflammation in COVID-19 cardiac insults and indicated the cardioprotective effects of endothelium. The IL-1{beta} treated hCOs also provide a viable model to assess the efficacy and potential side effects of immunomodulatory drugs, as well as the reversibility of COVID-19 cardiac injuries at baseline and simulated exercise conditions.

bioengineering↗