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Published on: August 3, 2018
Modulation of lncRNA links endothelial glycocalyx to vascular dysfunction of tyrosine kinase inhibitor
Sarath Babu Nukala1, Jordan Jousma1, Gege Yan1
1Department of Pharmacology & Regenerative Medicine, The University of Illinois College of Medicine, 909 S Wolcott Ave, Chicago, IL 60607, USA.
Aims:
Novel cancer therapies leading to increased survivorship of cancer patients have been negated by a concomitant rise in cancer therapies-related cardiovascular toxicities. Sunitinib, a first line multi-receptor tyrosine kinase inhibitor, has been reported to cause vascular dysfunction although the initiating mechanisms contributing to this side effect remain unknown. Long non-coding RNAs (lncRNAs) are emerging regulators of biological processes in endothelial cells (ECs); however, their roles in cancer therapies-related vascular toxicities remain underexplored.
Methods And Results:
We performed lncRNA expression profiling to identify potential lncRNAs that are dysregulated in human-induced pluripotent stem cell-derived ECs (iPSC-ECs) treated with sunitinib. We show that the lncRNA hyaluronan synthase 2 antisense 1 (HAS2-AS1) is significantly diminished in sunitinib-treated iPSC-ECs. Sunitinib was found to down-regulate HAS2-AS1 by an epigenetic mechanism involving hypermethylation. Depletion of HAS2-AS1 recapitulated sunitinib-induced detrimental effects on iPSC-ECs, whereas CRISPR-mediated activation of HAS2-AS1 reversed sunitinib-induced dysfunction. We confirmed that HAS2-AS1 stabilizes the expression of its sense gene HAS2 via an RNA/mRNA heteroduplex formation. Knockdown of HAS2-AS1 led to reduced synthesis of hyaluronic acid (HA) and up-regulation of ADAMTS5, an enzyme involved in extracellular matrix degradation, resulting in disruption of the endothelial glycocalyx which is critical for ECs. In vivo, sunitinib-treated mice showed reduced coronary flow reserve, accompanied by a reduction in Has2os and degradation of the endothelial glycocalyx. Finally, we identified that treatment with high molecular-weight HA can prevent the deleterious effects of sunitinib both in vitro and in vivo by preserving the endothelial glycocalyx.
Conclusions:
Our findings highlight the importance of lncRNA-mediated regulation of the endothelial glycocalyx as an important determinant of sunitinib-induced vascular toxicity and reveal potential novel therapeutic avenues to attenuate sunitinib-induced vascular dysfunction.
Insights
Sunitinib cancer therapy damages blood vessels by reducing the long non-coding RNA HAS2-AS1, which protects the endothelial glycocalyx. Restoring HAS2-AS1 or using hyaluronic acid prevents this sunitinib toxicity.
Area of Science:
- Cardiovascular Biology
- Molecular Oncology
- RNA Biology
Background:
- Cancer therapies like sunitinib improve survival but cause cardiovascular toxicities.
- Mechanisms underlying sunitinib-induced vascular dysfunction are not fully understood.
- Long non-coding RNAs (lncRNAs) regulate endothelial cell function, but their role in therapy-related toxicities is underexplored.
Purpose of the Study:
- Identify lncRNAs dysregulated by sunitinib in endothelial cells.
- Investigate the role of dysregulated lncRNAs in sunitinib-induced vascular toxicity.
- Explore therapeutic strategies to mitigate sunitinib cardiotoxicity.
Main Methods:
- lncRNA expression profiling in sunitinib-treated human induced pluripotent stem cell-derived endothelial cells (iPSC-ECs).
- Epigenetic analysis of lncRNA regulation (e.g., methylation).
- Functional studies using lncRNA depletion/activation (CRISPR) and in vivo mouse models.
Main Results:
- Sunitinib down-regulates the lncRNA HAS2-AS1 via epigenetic hypermethylation.
- HAS2-AS1 depletion mimics sunitinib's detrimental effects on iPSC-ECs, including glycocalyx disruption.
- High molecular-weight hyaluronic acid prevents sunitinib-induced vascular dysfunction in vitro and in vivo.
Conclusions:
- lncRNA HAS2-AS1 is crucial for maintaining endothelial glycocalyx integrity against sunitinib toxicity.
- Dysregulation of HAS2-AS1 contributes significantly to sunitinib-induced vascular damage.
- Targeting HAS2-AS1 or using hyaluronic acid represents a potential therapeutic strategy against cancer therapy-related cardiotoxicity.
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