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Isolation of Human Lymphatic Endothelial Cells by Multi-parameter Fluorescence-activated Cell Sorting
Published on: May 1, 2015
Normal cardiac lymphatics and their mimics
Sarah A Ware1,2, Lirong Zheng1,2, Milad Almasian3
1Department of Internal Medicine, University of Texas Southwestern Medical Center, Dallas, Texas, United States.
Insights
This study maps lymphatic vessels (LyVs) in the mouse heart using reporter mice and advanced imaging. It reveals LyV distribution and identifies non-specific lymphatic markers, crucial for cardiovascular research.
Area of Science:
- Cardiovascular Biology
- Lymphatic System Research
- Developmental Biology
Background:
- Lymphatic vessels (LyVs) are crucial for fluid homeostasis and immune surveillance.
- Dysfunction of cardiac LyVs is implicated in cardiovascular diseases.
- The normal anatomical distribution of LyVs within the heart remains poorly understood.
Purpose of the Study:
- To comprehensively map the distribution of LyVs in the adult mouse heart.
- To identify specific cardiac anatomical sites with LyV presence.
- To characterize the cellular heterogeneity of cardiac lymphatic endothelial cells.
Main Methods:
- Utilized Prox1-tdTomato lymphatic reporter mice for LyV visualization.
- Employed light sheet microscopy and cryo-/vibratome sectioning for anatomical mapping.
- Performed immunostaining for lymphatic markers (LYVE1, podoplanin, VEGFR3) and single-cell RNA sequencing (scRNA-Seq).
Main Results:
- Identified an extensive LyV network on the ventricular epicardium and subepicardial regions.
- Detected LyVs in the right ventricular septum endocardium, left atrium subepicardium, mitral valve, interatrial septum, and near the atrioventricular node.
- Revealed non-specific expression of lymphatic markers (LYVE1, PROX1) in non-lymphatic cells and identified six subtypes of cardiac lymphatic endothelial cells via scRNA-Seq.
Conclusions:
- Provides a detailed anatomical map of cardiac LyVs, serving as a foundational resource.
- Highlights the critical need for validated multi-marker strategies to accurately identify cardiac LyVs.
- Establishes a basis for investigating the role of cardiac LyVs in health and disease.
Abstract:
Significant lymphatic structural remodeling and dysfunction have been observed in preclinical models of cardiovascular disease. However, a detailed understanding of the normal structure and distribution of lymphatic vessels (LyVs) in the heart is still lacking. The goal of this study is to define the pattern of LyVs at various cardiac anatomical sites using Prox1-tdTomato lymphatic reporter mice. By light sheet microscopy, we first confirmed the presence of an extensive network of LyVs on the epicardial surface of the ventricles, while minimal signal was detected on the atria. We then evaluated LyV distribution within the heart using cryo- and vibratome sections. To ensure accurate identification of Prox1-tdTomato+ LyVs, we performed immunostaining of common lymphatic markers (LYVE1, podoplanin, and VEGFR3). In the ventricles, LyVs were enriched on the epicardium, subepicardial region, and endocardium of the right ventricular septum. We also detected LyVs on the subepicardial surface of the left atrium, within the mitral valve and interatrial septum and near the valves and atrioventricular node (AVN). In addition to LyVs, LYVE1 and PROX1 were expressed by other cell types. LYVE1 was expressed by tissue resident macrophages and a subset of endocardial cells lining the trabeculated regions of the atria and ventricles, and PROX1 was mainly expressed by valvular endothelial cells, endocardial cells lining the interatrial septum and a subset of cells within the AVN. Finally, single-cell RNA sequencing (scRNA-Seq) analysis revealed six subtypes of cardiac lymphatic endothelial cells. Our study serves as a comprehensive resource to facilitate the proper identification of LyVs in the mouse heart.NEW & NOTEWORTHY This is the first study detailing normal lymphatic vessel distribution at various cardiac anatomical sites using a lymphatic reporter mouse model, multiple markers, and modern imaging modalities, providing a blueprint for future studies. We also performed integrated single-cell RNA sequencing (scRNA-Seq) analysis to define the cellular and transcriptional heterogeneity of cardiac lymphatic endothelial cells. Finally, our study underscores the nonspecific nature of lymphatic markers and emphasizes the necessity of using at least two markers to identify lymphatic vessels.
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