Prof. Dr.

Lars Maegdefessel

C3
Principal Investigator

Prof. Dr.

Lars Maegdefessel

Chair of Molecular Vascular Medicine, Director, Institute of Molecular Vascular Medicine, TUM School of Medicine and Health

TUM Universitätsklinikum

Research background  

Cardiovascular diseases remain a leading cause of morbidity and mortality worldwide and are driven by complex molecular processes that regulate vascular inflammation, remodeling, and plaque formation. In recent years, non-coding RNAs have emerged as critical regulators of gene expression in the cardiovascular system, influencing cellular behavior without encoding proteins. How specific classes of non-coding RNAs control vascular homeostasis and contribute to pathologies such as atherosclerosis, and how these RNA molecules can be harnessed for therapeutic intervention, remain central questions in translational cardiovascular research.

The research of Lars Maegdefessel focuses on elucidating the functional roles of non-coding RNAs in vascular disease and exploring their potential as RNA-based therapeutic targets. His work investigates how distinct non-coding RNA species modulate gene regulatory networks in the cardiovascular system and how their dysregulation drives disease progression. Using molecular and genomic approaches to analyze RNA expression and function in vascular contexts, he aims to translate mechanistic insights into innovative therapeutic strategies. By advancing the understanding of RNA-mediated regulation in cardiovascular pathology, this research contributes to the development of targeted RNA-based interventions.

Research fields
Publications

Single cell spatial transcriptomics integration deciphers the morphological heterogeneity of atherosclerotic carotid arteries.

Pauli, J.; Garger, D.; Peymani, F.; Wettich, J.; Sachs, N.; Wirth, J.; Steiger, K.; Hillig, C.; Zhang, H.; Tabas, I.; Tall, A.; Li, M.; Reilly, MP.; Branzan, D.; Prokisch, H.; Menden, MP.; Maegdefessel, L.

Nat Commun. · 2025

Show abstract

The process of arterial atherosclerosis is characterised by accumulation of lipids and fibrous material with accompanying inflammation. As plaques progress, they restrict blood flow and cause rupture, which results in life threatening organ ischemia and dysfunction. Although extensively studied, a clear understanding of plaque heterogeneity and mechanisms that trigger their destabilization remains elusive. Our study reveals the molecular microarchitecture of human carotid artery plaques, using bulk and single-cell RNA sequencing combined with single-cell spatial transcriptomics, for which we present optimized cell segmentation algorithms. We identified distinct plaque morphologies linked to different cell type compositions, impacting early and advanced lesion formation, as well as destabilization. Spatial transcriptomics enabled us to further determine an inflammatory smooth muscle cell subtype, localize regions of neovascularization, and assign hotspots for macrophage activity within distinct cellular neighbourhoods across lesions. For different macrophage substates, we propose gradual and locally contained transdifferentiation of subluminal inflammatory HMOX1+ macrophages into a lipid-handling TREM2+ phenotype within border zones of the fibrous cap and necrotic core. Our findings provide insight into the complex heterogeneity of human atherosclerosis by unravelling location and proximity of different mural and immune cell substates involved in plaque progression and vulnerability.

Targeting long non-coding RNA NUDT6 enhances smooth muscle cell survival and limits vascular disease progression.

Winter, H.; Winski, G.; Busch, A.; Chernogubova, E.; Fasolo, F.; Wu, Z.; Bäcklund, A.; Khomtchouk, BB.; Van Booven, DJ.; Sachs, N.; Eckstein, HH.; Wittig, I.; Boon, RA.; Jin, H.; Maegdefessel, L.

Mol Ther. · 2023

Show abstract

Long non-coding RNAs (lncRNAs) orchestrate various biological processes and regulate the development of cardiovascular diseases. Their potential therapeutic benefit to tackle disease progression has recently been extensively explored. Our study investigates the role of lncRNA Nudix Hydrolase 6 (NUDT6) and its antisense target fibroblast growth factor 2 (FGF2) in two vascular pathologies: abdominal aortic aneurysms (AAA) and carotid artery disease. Using tissue samples from both diseases, we detected a substantial increase of NUDT6, whereas FGF2 was downregulated. Targeting Nudt6 in vivo with antisense oligonucleotides in three murine and one porcine animal model of carotid artery disease and AAA limited disease progression. Restoration of FGF2 upon Nudt6 knockdown improved vessel wall morphology and fibrous cap stability. Overexpression of NUDT6 in vitro impaired smooth muscle cell (SMC) migration, while limiting their proliferation and augmenting apoptosis. By employing RNA pulldown followed by mass spectrometry as well as RNA immunoprecipitation, we identified Cysteine and Glycine Rich Protein 1 (CSRP1) as another direct NUDT6 interaction partner, regulating cell motility and SMC differentiation. Overall, the present study identifies NUDT6 as a well-conserved antisense transcript of FGF2. NUDT6 silencing triggers SMC survival and migration and could serve as a novel RNA-based therapeutic strategy in vascular diseases.

Targeting non-coding RNAs for novel treatment strategies in vascular diseases.

Winter, H.; Maegdefessel, L.

Eur Heart J. · 2023

Long Noncoding RNA Controls Advanced Atherosclerotic Lesion Formation and Plaque Destabilization.

Fasolo, F.; Jin, H.; Winski, G.; Chernogubova, E.; Pauli, J.; Winter, H.; Li, DY.; Glukha, N.; Bauer, S.; Metschl, S.; Wu, Z.; Koschinsky, ML.; Reilly, M.; Pelisek, J.; Kempf, W.; Eckstein, HH.; Soehnlein, O.; Matic, L.; Hedin, U.; Bäcklund, A.; Bergmark, C.; Paloschi, V.; Maegdefessel, L.

Circulation. · 2021

Show abstract

Long noncoding RNAs (lncRNAs) are important regulators of biological processes involved in vascular tissue homeostasis and disease development. The present study assessed the functional contribution of the lncRNA myocardial infarction-associated transcript () to atherosclerosis and carotid artery disease.

H19 Induces Abdominal Aortic Aneurysm Development and Progression.

Li, DY.; Busch, A.; Jin, H.; Chernogubova, E.; Pelisek, J.; Karlsson, J.; Sennblad, B.; Liu, S.; Lao, S.; Hofmann, P.; Bäcklund, A.; Eken, SM.; Roy, J.; Eriksson, P.; Dacken, B.; Ramanujam, D.; Dueck, A.; Engelhardt, S.; Boon, RA.; Eckstein, HH.; Spin, JM.; Tsao, PS.; Maegdefessel, L.

Circulation. · 2018

Show abstract

Long noncoding RNAs have emerged as critical molecular regulators in various biological processes and diseases. Here we sought to identify and functionally characterize long noncoding RNAs as potential mediators in abdominal aortic aneurysm development.