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Updated: Feb 17, 2026

Isolation and Profiling of Human Primary Mesenteric Arterial Endothelial Cells at the Transcriptome Level
Published on: March 14, 2022
Endothelial transcriptomics reveals activation of fibrosis-related pathways in hypertension
Jonathan W Nelson1, Mohammed Z Ferdaus2, James A McCormick2
1The Knight Cardiovascular Institute, Oregon Health & Science University , Portland, Oregon.
Insights
Hypertension alters cardiac endothelial cell gene expression, contributing to cardiac fibrosis. Some molecular changes reverse with blood pressure treatment, but others persist, suggesting potential irreversible damage.
Area of Science:
- Cardiovascular Biology
- Molecular Biology
- Genomics
Background:
- Hypertension is a prevalent cardiovascular disease impacting vasculature homeostasis.
- Endothelial cells are critically affected by elevated blood pressure, leading to cardiovascular pathology.
- Understanding endothelial cell responses to hypertension is vital for developing effective treatments.
Purpose of the Study:
- To characterize the in vivo transcriptomic response of cardiac endothelial cells to hypertension.
- To identify molecular pathways and genes altered by hypertension in cardiac endothelial cells.
- To investigate the reversibility of hypertension-induced transcriptomic changes following blood pressure normalization.
Main Methods:
- RNA sequencing of cardiac endothelial cells from hypertensive (BPH/2J) and normotensive (BPN/3J) mice.
- Comparative transcriptomic analysis to identify differentially expressed genes and pathways.
- Assessment of gene expression changes after treatment with amlodipine or losartan to lower blood pressure.
Main Results:
- Significant transcriptomic differences were observed between hypertensive and normotensive groups, consistent with cardiac fibrosis.
- Hypertension-related gene expression changes were evident even in prehypertensive juvenile mice.
- Blood pressure reduction partially reversed some, but not all, hypertension-associated gene expression patterns.
Conclusions:
- Hypertension induces significant molecular remodeling of cardiac endothelial cells, linked to fibrosis.
- Some hypertension-induced transcriptomic alterations may be irreversible despite therapeutic intervention.
- This study provides molecular insights into endothelial cell responses to hypertensive challenge and cardiovascular disease progression.
Abstract:
Hypertension poses a significant challenge to vasculature homeostasis and stands as the most common cardiovascular disease in the world. Its effects are especially profound on endothelial cells that form the inner lining of the vasculature and are directly exposed to the effects of excess pressure. Here, we characterize the in vivo transcriptomic response of cardiac endothelial cells to hypertension by rapidly isolating these cells from the spontaneous hypertension mouse model BPH/2J and its normotensive BPN/3J control strain and performing and RNA sequencing on both. Comparison of transcriptional differences between these groups reveals statistically significant changes in cellular pathways consistent with cardiac fibrosis found in hypertensive animals. Importantly, many of the fibrosis-linked genes identified also differ significantly between juvenile prehypertensive and adult hypertensive BPH/2J mice, suggesting that these transcriptional differences are hypertension related. We examined the dynamic nature of these transcriptional changes by testing whether blood pressure normalization using either a calcium channel blocker (amlodipine) or a angiotensin II receptor blocker (losartan) is able to reverse these expression patterns associated with hypertension. We find that blood pressure reduction is capable of reversing some gene-expression patterns, while other transcripts are recalcitrant to therapeutic intervention. This illuminates the possibility that unmanaged hypertension may irreversibly alter some endothelial transcriptional patterns despite later intervention. This study quantifies how endothelial cells are remodeled at the molecular level in cardiovascular pathology and advances our understanding of the transcriptional events associated with endothelial response to hypertensive challenge.
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