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Updated: Feb 20, 2026

Visualization of Streptococcus pneumoniae within Cardiac Microlesions and Subsequent Cardiac Remodeling
Published on: April 7, 2015
Cell Invasion and Pyruvate Oxidase-Derived H2O2 Are Critical for Streptococcus pneumoniae-Mediated Cardiomyocyte
Terry Brissac1, Anukul T Shenoy1, LaDonna A Patterson1
1Department of Microbiology, School of Medicine, University of Alabama at Birmingham, Birmingham, Alabama, USA.
Abstract:
Streptococcus pneumoniae (the pneumococcus) is the leading cause of community-acquired pneumonia and is now recognized to be a direct contributor to adverse acute cardiac events. During invasive pneumococcal disease, S. pneumoniae can gain access to the myocardium, kill cardiomyocytes, and form bacterium-filled "microlesions" causing considerable acute and long-lasting cardiac damage. While the molecular mechanisms responsible for bacterial translocation into the heart have been elucidated, the initial interactions of heart-invaded S. pneumoniae with cardiomyocytes remain unclear. In this study, we used a model of low multiplicity of S. pneumoniae infection with HL-1 mouse cardiomyocytes to investigate these early events. Using adhesion/invasion assays and immunofluorescent and transmission electron microscopy, we showed that S. pneumoniae rapidly adhered to and invaded cardiomyocytes. What is more, pneumococci existed as intravacuolar bacteria or escaped into the cytoplasm. Pulse-chase assays with BrdU confirmed intracellular replication of pneumococci within HL-1 cells. Using endocytosis inhibitors, bacterial isogenic mutants, and neutralizing antibodies against host proteins recognized by S. pneumoniae adhesins, we showed that S. pneumoniae uptake by cardiomyocytes is not through the well-studied canonical interactions identified for vascular endothelial cells. Indeed, S. pneumoniae invasion of HL-1 cells occurred through clathrin-mediated endocytosis (CME) and independently of choline binding protein A (CbpA)/laminin receptor, CbpA/polymeric immunoglobulin receptor, or cell wall phosphorylcholine/platelet-activating factor receptor. Subsequently, we determined that pneumolysin and streptococcal pyruvate oxidase-derived H2O2 production were required for cardiomyocyte killing. Finally, we showed that this cytotoxicity could be abrogated using CME inhibitors or antioxidants, attesting to intracellular replication of S. pneumoniae as a key first step in pneumococcal pathogenesis within the heart.
Insights
Streptococcus pneumoniae rapidly invades cardiomyocytes via clathrin-mediated endocytosis, replicating inside cells. This intracellular growth, driven by pneumolysin and H2O2, causes heart damage, highlighting a key step in pneumococcal heart disease.
Area of Science:
- Cardiology
- Infectious Diseases
- Microbiology
Background:
- Streptococcus pneumoniae causes pneumonia and cardiac events.
- Bacterial entry into the heart causes acute and chronic cardiac damage.
- Mechanisms of bacterial translocation into the heart are known, but initial cardiomyocyte interactions are unclear.
Purpose of the Study:
- Investigate early interactions between Streptococcus pneumoniae and cardiomyocytes.
- Elucidate the mechanism of pneumococcal invasion into cardiomyocytes.
- Identify factors responsible for pneumococcal-induced cardiomyocyte toxicity.
Main Methods:
- Used HL-1 mouse cardiomyocytes infected with S. pneumoniae.
- Employed adhesion/invasion assays, immunofluorescence, and electron microscopy.
- Utilized endocytosis inhibitors, bacterial mutants, and neutralizing antibodies.
Main Results:
- S. pneumoniae rapidly adhered to and invaded cardiomyocytes.
- Invasion occurred via clathrin-mediated endocytosis, not previously identified pathways.
- Pneumolysin and H2O2 production were essential for cardiomyocyte killing.
- Intracellular replication of S. pneumoniae was confirmed.
Conclusions:
- S. pneumoniae invades cardiomyocytes through clathrin-mediated endocytosis.
- Intracellular bacterial replication and subsequent toxin production are critical for cardiac damage.
- Targeting clathrin-mediated endocytosis or oxidative stress may mitigate pneumococcal cardiotoxicity.
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