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Single-Nucleus Multiomic Analyses Identifies Gene Regulatory Dynamics of Phenotypic Modulation in Human Aneurysmal
Xuanyu Liu1, Qingyi Zeng1, Hang Yang1
1State Key Laboratory of Cardiovascular Disease, National Center for Cardiovascular Diseases, Beijing Key Laboratory for Molecular Diagnostics of Cardiovascular Diseases, Center of Laboratory Medicine, Fuwai Hospital, Chinese Academy of Medical Sciences and Peking Union Medical College, Beijing, 100037, China.
Abstract:
Aortic root aneurysm is a potentially life-threatening condition that may lead to aortic rupture and is often associated with genetic syndromes, such as Marfan syndrome (MFS). Although studies with MFS animal models have provided valuable insights into the pathogenesis of aortic root aneurysms, this understanding of the transcriptomic and epigenomic landscape in human aortic root tissue remains incomplete. This knowledge gap has impeded the development of effective targeted therapies. Here, this study performs the first integrative analysis of single-nucleus multiomic (gene expression and chromatin accessibility) and spatial transcriptomic sequencing data of human aortic root tissue under healthy and MFS conditions. Cell-type-specific transcriptomic and cis-regulatory profiles in the human aortic root are identified. Regulatory and spatial dynamics during phenotypic modulation of vascular smooth muscle cells (VSMCs), the cardinal cell type, are delineated. Moreover, candidate key regulators driving the phenotypic modulation of VSMC, such as FOXN3, TEAD1, BACH2, and BACH1, are identified. In vitro experiments demonstrate that FOXN3 functions as a novel key regulator for maintaining the contractile phenotype of human aortic VSMCs through targeting ACTA2. These findings provide novel insights into the regulatory and spatial dynamics during phenotypic modulation in the aneurysmal aortic root of humans.
Insights
This study reveals key gene regulators in human aortic root aneurysms, particularly in Marfan syndrome. It identifies FOXN3 as crucial for maintaining vascular smooth muscle cell function, offering new therapeutic targets.
Area of Science:
- Cardiovascular Biology
- Genomics
- Epigenetics
Background:
- Aortic root aneurysm, often linked to Marfan syndrome (MFS), can cause aortic rupture.
- Understanding the molecular basis in human tissue is crucial for targeted therapies.
Purpose of the Study:
- To perform the first integrative analysis of multiomic and spatial transcriptomic data in human aortic root tissue.
- To identify cell-type-specific regulatory profiles and dynamics in healthy and MFS conditions.
Main Methods:
- Single-nucleus multiomic sequencing (gene expression, chromatin accessibility).
- Spatial transcriptomic sequencing.
- In vitro validation of key regulators.
Main Results:
- Identified cell-type-specific transcriptomic and cis-regulatory profiles in the human aortic root.
- Delineated regulatory and spatial dynamics of vascular smooth muscle cell (VSMC) phenotypic modulation.
- Identified FOXN3, TEAD1, BACH2, and BACH1 as candidate regulators; FOXN3 was validated as a key regulator of VSMC contractile phenotype via ACTA2.
Conclusions:
- Provides novel insights into regulatory and spatial dynamics in aneurysmal aortic roots.
- Identifies FOXN3 as a potential therapeutic target for aortic root aneurysm, particularly in MFS.
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