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4-PBA 重编程的单核细胞有力促进炎症和动脉粥样硬化的消退。

Monocytes Reprogrammed by 4-PBA Potently Contribute to the Resolution of Inflammation and Atherosclerosis.

机构信息

Department of Biological Sciences, Virginia Tech, Blacksburg (S.G., R.L., Y.Z., Y.W., B.A.C., K.P., Z.Y., J.H., F.X., L.L.).

Department of Biochemistry and Molecular Biology, University of North Carolina at Chappell Hill, NC (L.X., X.C.).

出版信息

Circ Res. 2024 Sep 27;135(8):856-872. doi: 10.1161/CIRCRESAHA.124.325023. Epub 2024 Sep 3.

Abstract

BACKGROUND

Chronic inflammation initiated by inflammatory monocytes underlies the pathogenesis of atherosclerosis. However, approaches that can effectively resolve chronic low-grade inflammation targeting monocytes are not readily available. The small chemical compound 4-phenylbutyric acid (4-PBA) exhibits broad anti-inflammatory effects in reducing atherosclerosis. Selective delivery of 4-PBA reprogrammed monocytes may hold novel potential in providing targeted and precision therapeutics for the treatment of atherosclerosis.

METHODS

Systems analyses integrating single-cell RNA sequencing and complementary immunologic approaches characterized key resolving characteristics as well as defining markers of reprogrammed monocytes trained by 4-PBA. Molecular mechanisms responsible for monocyte reprogramming were assessed by integrated biochemical and genetic approaches. The intercellular propagation of homeostasis resolution was evaluated by coculture assays with donor monocytes trained by 4-PBA and recipient naive monocytes. The in vivo effects of monocyte resolution and atherosclerosis prevention by 4-PBA were assessed with the high-fat diet-fed mouse model with IP 4-PBA administration. Furthermore, the selective efficacy of 4-PBA-trained monocytes was examined by IV transfusion of ex vivo trained monocytes by 4-PBA into recipient high-fat diet-fed mice.

RESULTS

In this study, we found that monocytes can be potently reprogrammed by 4-PBA into an immune-resolving state characterized by reduced adhesion and enhanced expression of anti-inflammatory mediator CD24. Mechanistically, 4-PBA reduced the expression of ICAM-1 (intercellular adhesion molecule 1) via reducing peroxisome stress and attenuating SYK (spleen tyrosine kinase)-mTOR (mammalian target of rapamycin) signaling. Concurrently, 4-PBA enhanced the expression of resolving mediator CD24 through promoting PPARγ (peroxisome proliferator-activated receptor γ) neddylation mediated by TOLLIP (toll-interacting protein). 4-PBA-trained monocytes can effectively propagate anti-inflammation activity to neighboring monocytes through CD24. Our data further demonstrated that 4-PBA-trained monocytes effectively reduce atherosclerosis pathogenesis when administered in vivo.

CONCLUSIONS

Our study describes a robust and effective approach to generate resolving monocytes, characterizes novel mechanisms for targeted monocyte reprogramming, and offers a precision therapeutics for atherosclerosis based on delivering reprogrammed resolving monocytes.

摘要

背景

炎症单核细胞引发的慢性炎症是动脉粥样硬化发病机制的基础。然而,针对单核细胞有效解决慢性低度炎症的方法并不容易获得。小分子化合物 4-苯丁酸(4-PBA)在减少动脉粥样硬化方面具有广泛的抗炎作用。4-PBA 选择性递送至已重编程的单核细胞,可能为动脉粥样硬化的治疗提供靶向和精准治疗提供新的潜力。

方法

整合单细胞 RNA 测序和互补免疫方法的系统分析,描述了关键的解决特征以及由 4-PBA 重编程的单核细胞的定义标记物。通过综合生化和遗传方法评估负责单核细胞重编程的分子机制。通过用 4-PBA 训练的供体单核细胞和受体幼稚单核细胞共培养实验评估细胞间稳态解决的传播。通过高脂饮食喂养的 小鼠模型和 IP 4-PBA 给药评估单核细胞解决和动脉粥样硬化预防的 4-PBA 体内作用。此外,通过静脉内输注体外经 4-PBA 训练的单核细胞来评估 4-PBA 训练的单核细胞的选择性功效。

结果

在这项研究中,我们发现单核细胞可以被 4-PBA 强烈重编程为一种免疫解决状态,其特征是降低黏附性和增强抗炎介质 CD24 的表达。在机制上,4-PBA 通过减少过氧化物酶体应激和减弱 SYK(脾酪氨酸激酶)-mTOR(哺乳动物雷帕霉素靶蛋白)信号来降低 ICAM-1(细胞间黏附分子 1)的表达。同时,4-PBA 通过促进 TOLLIP( toll 相互作用蛋白)介导的 PPARγ(过氧化物酶体增殖物激活受体 γ)泛素化来增强解决介质 CD24 的表达。4-PBA 训练的单核细胞可以通过 CD24 有效地将抗炎活性传播给相邻的单核细胞。我们的数据进一步表明,4-PBA 训练的单核细胞在体内给药时可以有效地减少动脉粥样硬化的发病机制。

结论

本研究描述了一种强大而有效的生成解决单核细胞的方法,描述了针对单核细胞重编程的新机制,并提供了基于递送重编程的解决单核细胞的动脉粥样硬化精准治疗方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6ac3/11424066/7783a1415231/res-135-856-g001.jpg

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