Time-Resolved Single-Cell Atlas Reveals Early Endothelial Activation and Stage-Dependent Immune–Stromal Communication in HFpEF

射血分数保留的心力衰竭 医学 内皮细胞活化 心力衰竭 趋化因子 内科学 舒张期 内皮 炎症 心脏病学 心室重构 巨噬细胞 射血分数 细胞内 成纤维细胞 生物学中的钙 细胞生物学 内分泌学 心功能曲线 舒张性心力衰竭 舒张功能 平衡 下调和上调 促炎细胞因子 疾病 心脏病 四氯化碳 胞浆
作者
Jiantao Gong,Hannah Morgan,Keara Little,Caleb Cook,Suchandrima Dutta,Riya Bhullar,Olivia Lim,Taliyah Taylor,Rachael Arora,Asma Raja,Yigang Wang,Donald Lynch,Guo‐Chang Fan,Wei Huang
出处
期刊: [Cold Spring Harbor Laboratory]
标识
DOI:10.64898/2026.08.08.743525
摘要

Background Heart failure with preserved ejection fraction (HFpEF) is a heterogeneous syndrome associated with metabolic stress, hypertension, systemic inflammation, and microvascular dysfunction. Early cell-type-specific events and intercellular communication programs that accompany disease onset and progression remain poorly defined. Methods We performed a longitudinal study of HFpEF progression in high-fat diet (HFD)+L-NAME mice at control/baseline (0 weeks, 0w/Ctrl), early (1w), intermediate (4w), and established (8w) stages. Metabolic, hemodynamic, exercise, echocardiographic, and single-cardiomyocyte function were assessed. Cardiac non-cardiomyocytes (non-CMs) were profiled by single-cell RNA sequencing (scRNA-seq), with bulk RNA-seq for tissue-level comparison. Endothelial remodeling was assessed in an L-NAME-independent HFD plus mild transverse aortic constriction model (HFD+mTAC) and a published human HFpEF single-nucleus RNA-seq cohort. An endothelial–macrophage adhesion assay tested whether HFpEF-mimic stress promotes endothelial activation and macrophage adhesion. Results In the HFD+L-NAME model, metabolic dysfunction, hypertension, reduced exercise tolerance, abnormal diastolic filling with preserved ejection fraction, and altered cardiomyocyte calcium handling were detected by 1w and persisted through 8w. Bulk RNA-seq showed progressive remodeling, with limited change between 8w and 12w, guiding scRNA-seq timepoint selection. scRNA-seq of 94,848 cardiac non-CMs identified nine major populations with stage-dependent remodeling. Endothelial cells (ECs) were recovered in high proportion and showed an early, pronounced transcriptional response, with inflammatory, adhesion, interferon-response, migratory, and vascular-remodeling programs emerging by 1w. Related EC activation signatures were observed in HFD+mTAC and human HFpEF data. Functionally, HFpEF-mimic stress increased adhesion and chemokine expression in human ECs and enhanced macrophage adhesion. Fibroblast matrix remodeling occurred at later stages, while macrophages progressively shifted toward inflammatory states. CellChat suggested stage-dependent communication remodeling from early endothelial–immune interactions toward later macrophage–fibroblast crosstalk. Conclusion Time-resolved scRNA-seq reveals coordinated, stage-dependent remodeling of the cardiac microvascular and interstitial microenvironment during HFpEF progression. Early endothelial activation emerges before later fibroblast matrix remodeling and inflammatory macrophage remodeling, identifying candidate cell states and signaling pathways for future mechanistic investigation. Clinical Perspective What Is New? This study provides a time-resolved single-cell atlas of the cardiac non-cardiomyocyte compartment across baseline, early, intermediate, and established stages of HFpEF progression, rather than a single late-stage snapshot. Endothelial cells exhibit early inflammatory, adhesion, interferon-response, and vascular-remodeling programs within the first week of disease, preceding the later predominance of fibroblast matrix remodeling and inflammatory macrophage remodeling. This endothelial activation signature is supported across two mechanistically distinct HFpEF mouse models and aligns with endothelial inflammatory and vascular-remodeling programs in human HFpEF myocardium, supporting its translational relevance. What Are the Clinical Implications? Early endothelial activation may represent a targetable stage of HFpEF pathogenesis that arises before more established structural and fibrotic remodeling. Therapeutic strategies aimed at limiting endothelial inflammatory activation or endothelial–immune interactions may help attenuate downstream vascular, immune, and stromal remodeling in HFpEF. These findings provide a preclinical foundation for future longitudinal human studies testing whether early endothelial activation can serve as a biomarker, therapeutic target, or disease-staging feature in HFpEF.

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