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淋巴管内皮支链氨基酸分解代谢缺陷破坏心脏淋巴系统完整性并导致射血分数保留的心力衰竭。

Lymphatic Endothelial Branched-Chain Amino Acid Catabolic Defects Undermine Cardiac Lymphatic Integrity and Drive HFpEF.

作者信息

Guo Xiong, Huang Chong, Zhang Ling, Hu Guangyu, Du Yunhui, Chen Xiyao, Sun Fangfang, Li Tongzheng, Cui Zhe, Li Congye, Guo Yongzhen, Yan Wenjun, Xia Yunlong, Wang Shan, Liu Hui, Liu Zhiyuan, Lin Zhen, Wang Xinyi, Wang Zhengyang, Zhang Fuyang, Tao Ling

机构信息

Department of Cardiology, Xijing Hospital, Fourth Military Medical University, Xi'an, China (X.G., C.H., L.Z., G.H., X.C., F.S., T.L., Z.C., C.L., Y.G., W.Y., Y.X., S.W., H.L., Z. Liu, Z. Lin, X.W., Z.W., F.Z., L.T.).

Beijing Institute of Heart, Lung, and Blood Vessel Diseases, Beijing Anzhen Hospital, Capital Medical University, Beijing, China (Y.D.).

出版信息

Circulation. 2025 Apr 1. doi: 10.1161/CIRCULATIONAHA.124.071741.

Abstract

BACKGROUND

Heart failure with preserved ejection fraction (HFpEF) has become the most prevalent type of heart failure, but effective treatments are lacking. Cardiac lymphatics play a crucial role in maintaining heart health by draining fluids and immune cells. However, their involvement in HFpEF remains largely unexplored.

METHODS

We examined cardiac lymphatic alterations in mice with HFpEF with comorbid obesity and hypertension, and in heart tissues from patients with HFpEF. Using genetically engineered mouse models and various cellular and molecular techniques, we investigated the role of cardiac lymphatics in HFpEF and the underlying mechanisms.

RESULTS

In mice with HFpEF, cardiac lymphatics displayed substantial structural and functional anomalies, including decreased lymphatic endothelial cell (LEC) density, vessel fragmentation, reduced branch connections, and impaired capacity to drain fluids and immune cells. LEC numbers and marker expression levels were also decreased in heart tissues from patients with HFpEF. Stimulating lymphangiogenesis with an adeno-associated virus expressing an engineered variant of vascular endothelial growth factor C (VEGFC) that selectively activates vascular endothelial growth factor receptor 3 (VEGFR3) in LECs restored cardiac lymphatic integrity and substantially alleviated HFpEF. Through discovery-driven approaches, defective branched-chain amino acid (BCAA) catabolism was identified as a predominant metabolic signature in HFpEF cardiac LECs. Overexpression of branched-chain ketoacid dehydrogenase kinase (encoded by the gene), which inactivates branched-chain ketoacid dehydrogenase (the rate-limiting enzyme in BCAA catabolism), resulted in spontaneous lymphangiogenic defects in LECs. In mice, inducible gene deletion in LECs to enhance their BCAA catabolism preserved cardiac lymphatic integrity and protected against HFpEF. BCAA catabolic defects caused ligand-independent phosphorylation of VEGFR3 in the cytoplasm by Src kinase, leading to lysosomal degradation of VEGFR3 instead of its trafficking to the cell membrane. Reduced VEGFR3 availability on the cell surface impeded downstream Akt (protein kinase B) activation, hindered glucose uptake and utilization, and inhibited lymphangiogenesis in LECs with BCAA catabolic defects.

CONCLUSIONS

Our study provides evidence that cardiac lymphatic disruption, driven by impaired BCAA catabolism in LECs, is a key factor contributing to HFpEF. These findings unravel the crucial role of BCAA catabolism in modulating lymphatic biology, and suggest that preserving cardiac lymphatic integrity may present a novel therapeutic strategy for HFpEF.

摘要

背景

射血分数保留的心力衰竭(HFpEF)已成为最常见的心力衰竭类型,但缺乏有效的治疗方法。心脏淋巴管通过引流液体和免疫细胞在维持心脏健康方面发挥关键作用。然而,它们在HFpEF中的作用在很大程度上仍未得到探索。

方法

我们研究了合并肥胖和高血压的HFpEF小鼠以及HFpEF患者心脏组织中的心脏淋巴管改变。使用基因工程小鼠模型以及各种细胞和分子技术,我们研究了心脏淋巴管在HFpEF中的作用及其潜在机制。

结果

在HFpEF小鼠中,心脏淋巴管表现出明显的结构和功能异常,包括淋巴管内皮细胞(LEC)密度降低、血管碎片化、分支连接减少以及引流液体和免疫细胞的能力受损。HFpEF患者的心脏组织中LEC数量和标志物表达水平也降低。用表达血管内皮生长因子C(VEGFC)工程变体的腺相关病毒刺激淋巴管生成,该变体在LEC中选择性激活血管内皮生长因子受体3(VEGFR3),可恢复心脏淋巴管的完整性并显著减轻HFpEF。通过探索性方法,发现支链氨基酸(BCAA)分解代谢缺陷是HFpEF心脏LEC中的主要代谢特征。使支链酮酸脱氢酶(BCAA分解代谢中的限速酶)失活的支链酮酸脱氢酶激酶(由 基因编码)的过表达导致LEC中自发的淋巴管生成缺陷。在小鼠中,在LEC中诱导 基因缺失以增强其BCAA分解代谢可维持心脏淋巴管的完整性并预防HFpEF。BCAA分解代谢缺陷导致Src激酶在细胞质中对VEGFR3进行非配体依赖性磷酸化,导致VEGFR3的溶酶体降解而非转运至细胞膜。细胞表面VEGFR3可用性降低阻碍了下游Akt(蛋白激酶B)激活,阻碍了葡萄糖摄取和利用,并抑制了具有BCAA分解代谢缺陷的LEC中的淋巴管生成。

结论

我们的研究提供了证据表明,由LEC中BCAA分解代谢受损驱动的心脏淋巴管破坏是导致HFpEF的关键因素。这些发现揭示了BCAA分解代谢在调节淋巴生物学中的关键作用,并表明维持心脏淋巴管完整性可能是HFpEF的一种新的治疗策略。

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