Immune response caused by M1 macrophages elicits atrial fibrillation-like phenotypes in coculture model with isogenic hiPSC-derived cardiomyocytes

被引:3
作者
Hutschalik, Thomas [1 ,2 ]
Ozgul, Ozan [2 ]
Casini, Marilu [3 ,4 ,5 ]
Szabo, Brigitta [1 ]
Peyronnet, Remi [4 ,5 ]
Bartulos, Oscar [1 ]
Argenziano, Mariana [1 ]
Schotten, Ulrich [2 ,6 ]
Matsa, Elena [1 ,7 ,8 ,9 ]
机构
[1] Ncardia Serv BV, JH Oortweg 21, NL-2333 CH Leiden, Netherlands
[2] Cardiovasc Res Inst Maastricht, Dept Physiol, Maastricht, Netherlands
[3] Inst Invest Sanitaria La Fe, Regenerat Med & Heart Transplantat Unit, Valencia 46026, Spain
[4] Univ Heart Ctr Freiburg Bad Krozingen, Inst Expt Cardiovasc Med, D-79110 Freiburg, Germany
[5] Fac Med, D-79110 Freiburg, Germany
[6] Maastricht Univ, Med Ctr, Dept Cardiol, Maastricht, Netherlands
[7] Rue Edouard Belin 2, B-1435 CellisticMont St Guibert, Belgium
[8] Univ Coll Cork, Sch Biochem & Cell Biol, Cork, Ireland
[9] Natl Inst Bioproc Res & Training, Dublin, Ireland
基金
欧盟地平线“2020”;
关键词
Atrial fibrillation; Atrial cardiomyocytes; Macrophages; Inflammation; hiPSC; Disease modeling; GENE-EXPRESSION; STEADY-STATE; HEART; INFLAMMATION; CONDUCTION; TRANSCRIPTOME; INHIBITION; CONNEXIN40; IL-1-BETA; MUTATIONS;
D O I
10.1186/s13287-024-03814-0
中图分类号
Q813 [细胞工程];
学科分类号
摘要
BackgroundAtrial fibrillation has an estimated prevalence of 1.5-2%, making it the most common cardiac arrhythmia. The processes that cause and sustain the disease are still not completely understood. An association between atrial fibrillation and systemic, as well as local, inflammatory processes has been reported. However, the exact mechanisms underlying this association have not been established. While it is understood that inflammatory macrophages can influence cardiac electrophysiology, a direct, causative relationship to atrial fibrillation has not been described. This study investigated the pro-arrhythmic effects of activated M1 macrophages on human induced pluripotent stem cell (hiPSC)-derived atrial cardiomyocytes, to propose a mechanistic link between inflammation and atrial fibrillation.MethodsTwo hiPSC lines from healthy individuals were differentiated to atrial cardiomyocytes and M1 macrophages and integrated in an isogenic, pacing-free, atrial fibrillation-like coculture model. Electrophysiology characteristics of cocultures were analysed for beat rate irregularity, electrogram amplitude and conduction velocity using multi electrode arrays. Cocultures were additionally treated using glucocorticoids to suppress M1 inflammation. Bulk RNA sequencing was performed on coculture-isolated atrial cardiomyocytes and compared to meta-analyses of atrial fibrillation patient transcriptomes.ResultsMulti electrode array recordings revealed M1 to cause irregular beating and reduced electrogram amplitude. Conduction analysis further showed significantly lowered conduction homogeneity in M1 cocultures. Transcriptome sequencing revealed reduced expression of key cardiac genes such as SCN5A, KCNA5, ATP1A1, and GJA5 in the atrial cardiomyocytes. Meta-analysis of atrial fibrillation patient transcriptomes showed high correlation to the in vitro model. Treatment of the coculture with glucocorticoids showed reversal of phenotypes, including reduced beat irregularity, improved conduction, and reversed RNA expression profiles.ConclusionsThis study establishes a causal relationship between M1 activation and the development of subsequent atrial arrhythmia, documented as irregularity in spontaneous electrical activation in atrial cardiomyocytes cocultured with activated macrophages. Further, beat rate irregularity could be alleviated using glucocorticoids. Overall, these results point at macrophage-mediated inflammation as a potential AF induction mechanism and offer new targets for therapeutic development. The findings strongly support the relevance of the proposed hiPSC-derived coculture model and present it as a first of its kind disease model.
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页数:21
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