Chiara Monge, Yulu Li, William Travis Goldsmith, Atefeh Razazan, Murugesan Velayutham, Ethan Meadows, Mark Eminhizer, John M Hollander, Salik Hussain
Extreme heat events are increasing in frequency, duration, and severity, often with higher air pollution (AP) levels. The biological mechanisms underlying combined heat and AP exposures and the role of NLRX1 in pulmonary and cardiac dysfunction remain largely undefined. Nlrx1+/+ and Nlrx1-/- female mice were exposed to filtered air/CTR, HT (36 °C), ultrafine carbon black (UfCB) + ozone (O3) (CB 2.5 mg/m3 + O3 1 ppm), and HT + UfCB + O3 for 3 h. Pulmonary inflammation was evaluated by bronchoalveolar lavage, while cardiac function and strain were evaluated using Doppler echocardiography. Mitochondrial function was assessed through coupling assay and ETC complex activity measurements. Both at 2 and 24 h, Nlrx1-/- mice showed no adaptive physiological cardiac responses and demonstrated impaired mitochondrial function after heat-alone exposure. UfCB + O3-alone exposure induced a decrease in stroke volume and cardiac output and a decrease in cardiac mitochondrial complex III-V activities in both genotypes. Combined HT + UfCB + O3 resulted in a greater reduction in ejection fraction percentage and fractional shortening percentage, greater pulmonary neutrophilia, and a reduction in complex III-V activities at 24 h post-exposure in Nlrx1-/- mice compared to Nlrx1+/+ mice. Moreover, Nlrx1-/- mice demonstrated a greater decrease in longitudinal and circumferential strain, indicating dyssynchronous contraction throughout the heart layers and mid-cavity segments. Collectively, our findings indicate that NLRX1 deficiency alters the acute physiological cardiopulmonary responses to HT and UfCB + O3.