The NADase-Negative Variant of the Streptococcus pyogenes Toxin NAD⁺ Glycohydrolase Induces JNK1-Mediated Programmed
Sukantha Chandrasekaran1, Michael G Caparon2
1Department of Molecular Microbiology, Washington University School of Medicine, St. Louis, Missouri, USA.
Unlabelled:
Virulence factors are often multifunctional and contribute to pathogenesis through synergistic mechanisms. For the human pathogen Streptococcus pyogenes, two factors that act synergistically are the S. pyogenes NAD(+) glycohydrolase (SPN) and streptolysin O (SLO). Through distinct mechanisms, SLO forms pores in host cell membranes and translocates SPN into the host cell cytosol. Two natural variants of SPN exist, one that exhibits NADase activity and one that lacks this function, and both versions are translocated and act in concert with SLO to cause an accelerated death response in epithelial cells. While NADase(+) SPN is known to trigger a metabolic form of necrosis through the depletion of NAD(+), the mechanism by which NADase(-) SPN induces cell death was unknown. In the studies described here, we examined the pathway of NADase(-) cell death through analysis of activation patterns of mitogen-activated protein kinases (MAPKs). S. pyogenes infection resulted in activation of members of three MAPK subfamilies (p38, ERK, and JNK). However, only JNK was activated in an SLO-specific manner. NADase(-) SPN induced necrosis in HeLa epithelial cells associated with depolarization of mitochondrial membranes, activation of NF-κB, and the generation of reactive oxygen species. Remarkably, RNA interference (RNAi) silencing of JNK protected cells from NADase(-)-SPN-mediated necrosis, suggesting that NADase(-) SPN triggers a form of programmed necrosis dependent on JNK signaling. Taken together, these data demonstrate that SPN acts with SLO to elicit necrosis through two different mechanisms depending on its NADase activity, i.e., metabolic (NADase(+)) or programmed (NADase(-)), leading to distinct inflammatory profiles.
Importance:
Many bacterial pathogens produce toxins that alter how infected host cells interact with the immune system. For Streptococcus pyogenes, two toxins, a NAD(+) glycohydrolase (SPN) and streptolysin O (SLO), act in combination to cause infected cells to die. However, there are two natural forms of SPN, and these variants cause dying cells to produce different types of signaling molecules. The NADase(+) form of SPN kills cells by depleting reserves of NAD(+) and cellular energy. The other form of SPN lacks this activity (NADase(-)); thus, the mechanism by which this variant induces toxicity was unknown. Here, we show that infected cells recognize NADase(-) SPN through a specific signaling molecule called JNK, which causes these cells to undergo a form of cellular suicide known as programmed necrosis. This helps us to understand how different forms of toxins alter host cell signaling to help S. pyogenes cause different types of diseases.
Insights
Streptococcus pyogenes NAD(+) glycohydrolase (SPN) and streptolysin O (SLO) cause cell death via distinct mechanisms. NADase(-) SPN induces programmed necrosis dependent on JNK signaling, revealing new insights into pathogen virulence.
Area of Science:
- Microbiology
- Cell Biology
- Immunology
Background:
- Virulence factors like SPN and SLO from Streptococcus pyogenes contribute to pathogenesis through synergistic mechanisms.
- Two SPN variants exist: NADase(+) and NADase(-). Both are translocated by SLO into host cells, causing accelerated cell death.
- While NADase(+) SPN causes metabolic necrosis via NAD(+) depletion, the mechanism of NADase(-) SPN-induced cell death was previously unknown.
Purpose of the Study:
- To elucidate the mechanism by which NADase(-) SPN induces cell death in epithelial cells.
- To investigate the role of mitogen-activated protein kinases (MAPKs) in the cellular response to NADase(-) SPN.
- To differentiate the cell death pathways triggered by NADase(+) and NADase(-) SPN.
Main Methods:
- Analysis of MAPK activation patterns (p38, ERK, JNK) following S. pyogenes infection.
- Assessment of cell death markers including mitochondrial membrane depolarization, NF-κB activation, and reactive oxygen species generation.
- RNA interference (RNAi) to silence JNK and evaluate its effect on NADase(-) SPN-mediated necrosis.
Main Results:
- S. pyogenes infection activated p38, ERK, and JNK MAPKs; JNK activation was SLO-specific.
- NADase(-) SPN induced necrosis associated with mitochondrial depolarization, NF-κB activation, and ROS generation.
- JNK silencing protected cells from NADase(-) SPN-induced necrosis, indicating JNK-dependent programmed necrosis.
Conclusions:
- SPN and SLO synergistically induce cell death through distinct mechanisms based on SPN's NADase activity.
- NADase(+) SPN triggers metabolic necrosis, while NADase(-) SPN induces programmed necrosis via JNK signaling.
- Understanding these distinct pathways provides insight into how Streptococcus pyogenes causes varied disease manifestations.
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