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Published on: May 31, 2017
Anthrax lethal toxin suppresses murine cardiomyocyte contractile function and intracellular Ca2+ handling via a NADPH
Machender R Kandadi1, Yinan Hua, Heng Ma
1Center for Cardiovascular Research and Alternative Medicine, University of Wyoming College of Health Sciences, Laramie, Wyoming, United States of America.
Objectives:
Anthrax infection is associated with devastating cardiovascular sequelae, suggesting unfavorable cardiovascular effects of toxins originated from Bacillus anthracis namely lethal and edema toxins. This study was designed to examine the direct effect of lethal toxins on cardiomyocyte contractile and intracellular Ca(2+) properties.
Methods:
Murine cardiomyocyte contractile function and intracellular Ca(2+) handling were evaluated including peak shortening (PS), maximal velocity of shortening/ relengthening (± dL/dt), time-to-PS (TPS), time-to-90% relengthening (TR(90)), intracellular Ca(2+) rise measured as fura-2 fluorescent intensity (ΔFFI), and intracellular Ca(2+) decay rate. Stress signaling and Ca(2+) regulatory proteins were assessed using Western blot analysis.
Results:
In vitro exposure to a lethal toxin (0.05-50 nM) elicited a concentration-dependent depression on cardiomyocyte contractile and intracellular Ca(2+) properties (PS, ± dL/dt, ΔFFI), along with prolonged duration of contraction and intracellular Ca(2+) decay, the effects of which were nullified by the NADPH oxidase inhibitor apocynin. The lethal toxin significantly enhanced superoxide production and cell death, which were reversed by apocynin. In vivo lethal toxin exposure exerted similar time-dependent cardiomyocyte mechanical and intracellular Ca(2+) responses. Stress signaling cascades including MEK1/2, p38, ERK and JNK were unaffected by in vitro lethal toxins whereas they were significantly altered by in vivo lethal toxins. Ca(2+) regulatory proteins SERCA2a and phospholamban were also differentially regulated by in vitro and in vivo lethal toxins. Autophagy was drastically triggered although ER stress was minimally affected following lethal toxin exposure.
Conclusions:
Our findings indicate that lethal toxins directly compromised murine cardiomyocyte contractile function and intracellular Ca(2+) through a NADPH oxidase-dependent mechanism.
Insights
Bacillus anthracis lethal toxins directly impair heart cell function and calcium handling via a NADPH oxidase-dependent pathway. This mechanism contributes to anthrax-related cardiovascular damage.
Area of Science:
- Cardiovascular Science
- Toxicology
- Cellular Biology
Background:
- Anthrax infection causes severe cardiovascular issues, linked to Bacillus anthracis toxins.
- Lethal toxin and edema toxin are key virulence factors of Bacillus anthracis.
Purpose of the Study:
- To investigate the direct impact of Bacillus anthracis lethal toxins on cardiomyocyte contractility.
- To analyze the effects of lethal toxins on intracellular calcium (Ca2+) handling in cardiomyocytes.
Main Methods:
- Murine cardiomyocytes were used to assess contractile function and Ca2+ handling.
- Western blot analysis was employed to evaluate stress signaling and Ca2+ regulatory proteins.
Main Results:
- Lethal toxins caused a concentration-dependent decrease in cardiomyocyte contractility and Ca2+ properties.
- NADPH oxidase inhibition by apocynin reversed toxin-induced effects, including superoxide production and cell death.
- In vivo toxin exposure altered stress signaling and Ca2+ regulatory proteins differently than in vitro exposure.
Conclusions:
- Bacillus anthracis lethal toxins directly impair cardiomyocyte function and Ca2+ handling.
- The observed effects are mediated through a NADPH oxidase-dependent mechanism.
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