Prof. Dr.

Steffen Massberg

C3
Associated Investigator

Prof. Dr.

Steffen Massberg

Department of Medicine I, Medizinische Klinik und Poliklinik I

Klinikum der Ludwig-Maximilians-Universität München

Research background

Thrombosis and vascular inflammation are tightly interconnected processes that underlie major cardiovascular events such as myocardial infarction and stroke. Beyond their classical role in hemostasis, platelets actively interact with immune cells to shape inflammatory responses within blood vessels. How platelet–immune cell crosstalk regulates thrombus formation, resolution, and vascular injury, and how these processes contribute to atherothrombosis, remain central questions in vascular biology.

The research of Steffen Massberg focuses on vascular immunology and immune-regulated thrombosis. His work investigates molecular and cellular interactions between platelets and immune cells that control arterial and venous thrombus formation and inflammatory signaling in cardiovascular disease. Using advanced vascular imaging, flow cytometry, confocal and multiphoton microscopy, and experimental models of myocardial infarction and stroke in mice and pigs, his group analyzes the dynamics of immune cell migration and thrombo-inflammatory processes in vivo. By elucidating mechanisms that couple inflammation and thrombosis, this research informs the development of targeted anti-thrombotic and anti-inflammatory therapeutic strategies for cardiovascular disorders.

 

Research fields
Publications

Antibodies and complement are key drivers of thrombosis.

Stark, K.; Kilani, B.; Stockhausen, S.; Busse, J.; Schubert, I.; Tran, TD.; Gaertner, F.; Leunig, A.; Pekayvaz, K.; Nicolai, L.; Fumagalli, V.; Stermann, J.; Stephan, F.; David, C.; Müller, MB.; Heyman, B.; Lux, A.; da Palma Guerreiro, A.; Frenzel, LP.; Schmidt, CQ.; Dopler, A.; Moser, M.; Chandraratne, S.; von Brühl, ML.; Lorenz, M.; Korff, T.; Rudelius, M.; Popp, O.; Kirchner, M.; Mertins, P.; Nimmerjahn, F.; Iannacone, M.; Sperandio, M.; Engelmann, B.; Verschoor, A.; Massberg, S.

Immunity. · 2024

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Venous thromboembolism (VTE) is a common, deadly disease with an increasing incidence despite preventive efforts. Clinical observations have associated elevated antibody concentrations or antibody-based therapies with thrombotic events. However, how antibodies contribute to thrombosis is unknown. Here, we show that reduced blood flow enabled immunoglobulin M (IgM) to bind to FcμR and the polymeric immunoglobulin receptor (pIgR), initiating endothelial activation and platelet recruitment. Subsequently, the procoagulant surface of activated platelets accommodated antigen- and FcγR-independent IgG deposition. This leads to classical complement activation, setting in motion a prothrombotic vicious circle. Key elements of this mechanism were present in humans in the setting of venous stasis as well as in the dysregulated immunothrombosis of COVID-19. This antibody-driven thrombosis can be prevented by pharmacologically targeting complement. Hence, our results uncover antibodies as previously unrecognized central regulators of thrombosis. These findings carry relevance for therapeutic application of antibodies and open innovative avenues to target thrombosis without compromising hemostasis.

Plasmacytoid dendritic cells control homeostasis of megakaryopoiesis.

Gaertner, F.; Ishikawa-Ankerhold, H.; Stutte, S.; Fu, W.; Weitz, J.; Dueck, A.; Nelakuditi, B.; Fumagalli, V.; van den Heuvel, D.; Belz, L.; Sobirova, G.; Zhang, Z.; Titova, A.; Navarro, AM.; Pekayvaz, K.; Lorenz, M.; von Baumgarten, L.; Kranich, J.; Straub, T.; Popper, B.; Zheden, V.; Kaufmann, WA.; Guo, C.; Piontek, G.; von Stillfried, S.; Boor, P.; Colonna, M.; Clauß, S.; Schulz, C.; Brocker, T.; Walzog, B.; Scheiermann, C.; Aird, WC.; Nerlov, C.; Stark, K.; Petzold, T.; Engelhardt, S.; Sixt, M.; Hauschild, R.; Rudelius, M.; Oostendorp, RAJ.; Iannacone, M.; Heinig, M.; Massberg, S.

Nature. · 2024

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Platelet homeostasis is essential for vascular integrity and immune defence. Although the process of platelet formation by fragmenting megakaryocytes (MKs; thrombopoiesis) has been extensively studied, the cellular and molecular mechanisms required to constantly replenish the pool of MKs by their progenitor cells (megakaryopoiesis) remains unclear. Here we use intravital imaging to track the cellular dynamics of megakaryopoiesis over days. We identify plasmacytoid dendritic cells (pDCs) as homeostatic sensors that monitor the bone marrow for apoptotic MKs and deliver IFNα to the MK niche triggering local on-demand proliferation and maturation of MK progenitors. This pDC-dependent feedback loop is crucial for MK and platelet homeostasis at steady state and under stress. pDCs are best known for their ability to function as vigilant detectors of viral infection. We show that virus-induced activation of pDCs interferes with their function as homeostatic sensors of megakaryopoiesis. Consequently, activation of pDCs by SARS-CoV-2 leads to excessive megakaryopoiesis. Together, we identify a pDC-dependent homeostatic circuit that involves innate immune sensing and demand-adapted release of inflammatory mediators to maintain homeostasis of the megakaryocytic lineage.

Immune-mediated denervation of the pineal gland underlies sleep disturbance in cardiac disease.

Ziegler, KA.; Ahles, A.; Dueck, A.; Esfandyari, D.; Pichler, P.; Weber, K.; Kotschi, S.; Bartelt, A.; Sinicina, I.; Graw, M.; Leonhardt, H.; Weckbach, LT.; Massberg, S.; Schifferer, M.; Simons, M.; Hoeher, L.; Luo, J.; Ertürk, A.; Schiattarella, GG.; Sassi, Y.; Misgeld, T.; Engelhardt, S.

Science. · 2023

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Disruption of the physiologic sleep-wake cycle and low melatonin levels frequently accompany cardiac disease, yet the underlying mechanism has remained enigmatic. Immunostaining of sympathetic axons in optically cleared pineal glands from humans and mice with cardiac disease revealed their substantial denervation compared with controls. Spatial, single-cell, nuclear, and bulk RNA sequencing traced this defect back to the superior cervical ganglia (SCG), which responded to cardiac disease with accumulation of inflammatory macrophages, fibrosis, and the selective loss of pineal gland-innervating neurons. Depletion of macrophages in the SCG prevented disease-associated denervation of the pineal gland and restored physiological melatonin secretion. Our data identify the mechanism by which diurnal rhythmicity in cardiac disease is disturbed and suggest a target for therapeutic intervention.

Neutrophil "plucking" on megakaryocytes drives platelet production and boosts cardiovascular disease.

Petzold, T.; Zhang, Z.; Ballesteros, I.; Saleh, I.; Polzin, A.; Thienel, M.; Liu, L.; Ul Ain, Q.; Ehreiser, V.; Weber, C.; Kilani, B.; Mertsch, P.; Götschke, J.; Cremer, S.; Fu, W.; Lorenz, M.; Ishikawa-Ankerhold, H.; Raatz, E.; El-Nemr, S.; Görlach, A.; Marhuenda, E.; Stark, K.; Pircher, J.; Stegner, D.; Gieger, C.; Schmidt-Supprian, M.; Gaertner, F.; Almendros, I.; Kelm, M.; Schulz, C.; Hidalgo, A.; Massberg, S.

Immunity. · 2022

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Intravascular neutrophils and platelets collaborate in maintaining host integrity, but their interaction can also trigger thrombotic complications. We report here that cooperation between neutrophil and platelet lineages extends to the earliest stages of platelet formation by megakaryocytes in the bone marrow. Using intravital microscopy, we show that neutrophils "plucked" intravascular megakaryocyte extensions, termed proplatelets, to control platelet production. Following CXCR4-CXCL12-dependent migration towards perisinusoidal megakaryocytes, plucking neutrophils actively pulled on proplatelets and triggered myosin light chain and extracellular-signal-regulated kinase activation through reactive oxygen species. By these mechanisms, neutrophils accelerate proplatelet growth and facilitate continuous release of platelets in steady state. Following myocardial infarction, plucking neutrophils drove excessive release of young, reticulated platelets and boosted the risk of recurrent ischemia. Ablation of neutrophil plucking normalized thrombopoiesis and reduced recurrent thrombosis after myocardial infarction and thrombus burden in venous thrombosis. We establish neutrophil plucking as a target to reduce thromboischemic events.

Migrating Platelets Are Mechano-scavengers that Collect and Bundle Bacteria.

Gaertner, F.; Ahmad, Z.; Rosenberger, G.; Fan, S.; Nicolai, L.; Busch, B.; Yavuz, G.; Luckner, M.; Ishikawa-Ankerhold, H.; Hennel, R.; Benechet, A.; Lorenz, M.; Chandraratne, S.; Schubert, I.; Helmer, S.; Striednig, B.; Stark, K.; Janko, M.; Böttcher, RT.; Verschoor, A.; Leon, C.; Gachet, C.; Gudermann, T.; Mederos Y Schnitzler, M.; Pincus, Z.; Iannacone, M.; Haas, R.; Wanner, G.; Lauber, K.; Sixt, M.; Massberg, S.

Cell. · 2017

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Blood platelets are critical for hemostasis and thrombosis and play diverse roles during immune responses. Despite these versatile tasks in mammalian biology, their skills on a cellular level are deemed limited, mainly consisting in rolling, adhesion, and aggregate formation. Here, we identify an unappreciated asset of platelets and show that adherent platelets use adhesion receptors to mechanically probe the adhesive substrate in their local microenvironment. When actomyosin-dependent traction forces overcome substrate resistance, platelets migrate and pile up the adhesive substrate together with any bound particulate material. They use this ability to act as cellular scavengers, scanning the vascular surface for potential invaders and collecting deposited bacteria. Microbe collection by migrating platelets boosts the activity of professional phagocytes, exacerbating inflammatory tissue injury in sepsis. This assigns platelets a central role in innate immune responses and identifies them as potential targets to dampen inflammatory tissue damage in clinical scenarios of severe systemic infection.