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Repeated PM2 .5 Inhalation Exposure Drives a Duration-Dependent Transition From Mitochondrial Adaptation to
Bhavana Sivakumar1, Gino A Kurian2
1Department of Radiology and Imaging Sciences, Indiana University School of Medicine, Indianapolis, Indiana, USA.
Abstract:
Fine particulate matter (PM2.5) is a recognized cardiovascular toxicant, yet the exposure duration at which mitochondrial stress responses transition from adaptive to persistently injurious remains poorly defined. Here, we identified a duration-dependent transition in mitochondrial responses under the present exposure conditions. Female Wistar rats were exposed to PM2.5 (250 μg/m3, 3 h/day) for 1, 7, 14, or 21 days, followed by integrated evaluation of cardiac mitochondrial bioenergetics, redox balance, quality control pathways, and ex vivo cardiac function, with washout validation. Short-term exposure (1-7 days) elicited transient mitochondrial oxidative stress and activation of adaptive quality control responses without impairing respiratory efficiency, electron transport chain activity, ATP production, or cardiac performance; these changes returned to values comparable to controls after a 24-h pollutant-free washout under the present experimental conditions. Under the exposure conditions employed, sustained mitochondrial dysfunction first became evident after 14 days of repeated exposure, characterized by coordinated suppression of mitochondrial respiration, ETC complex activities, and ATP synthesis, accompanied by mitochondrial DNA depletion, impaired biogenesis and quality control signaling, sustained oxidative stress, and intramitochondrial metal accumulation. Notably, mitochondrial and cardiac functional deficits induced after ≥ 14 days persisted despite washout, indicating that these deficits were not restored within the 24-h recovery period examined, rather than reflecting delayed recovery within this window. Collectively, these findings define a duration-dependent temporal toxicity progression at which repeated PM2.5 exposure shifts cardiac mitochondria from transient, recoverable stress responses to persistent bioenergetic impairment under the present experimental conditions providing a mechanistic basis for exposure-duration-informed cardiovascular hazard characterization.
Insights
Repeated exposure to fine particulate matter (PM2.5) causes lasting heart mitochondrial damage after 14 days. Short-term PM2.5 exposure leads to temporary stress that recovers, unlike longer exposures.
Area of Science:
- Environmental Health
- Toxicology
- Cardiovascular Science
Background:
- Fine particulate matter (PM2.5) is a known cardiovascular toxicant.
- The duration of PM2.5 exposure that causes persistent mitochondrial injury is not well understood.
Purpose of the Study:
- To investigate the duration-dependent effects of PM2.5 exposure on cardiac mitochondria.
- To determine the threshold for PM2.5 exposure that induces sustained mitochondrial dysfunction and cardiovascular impairment.
Main Methods:
- Female Wistar rats were exposed to PM2.5 (250 μg/m³, 3 h/day) for 1, 7, 14, or 21 days.
- Evaluated cardiac mitochondrial bioenergetics, redox balance, quality control, and ex vivo cardiac function.
- Conducted washout validation to assess recovery.
Main Results:
- Short-term exposure (1-7 days) caused transient mitochondrial oxidative stress and adaptive responses, with full recovery after a 24-h washout.
- Sustained mitochondrial dysfunction, including impaired respiration, ATP synthesis, and DNA depletion, was evident after 14 days of exposure.
- Cardiac functional deficits induced after ≥14 days persisted even after a 24-h washout.
Conclusions:
- A duration-dependent transition exists where PM2.5 exposure shifts cardiac mitochondria from transient stress to persistent injury.
- Repeated PM2.5 exposure for 14 days or longer induces non-recoverable mitochondrial and cardiac dysfunction.
- These findings provide a mechanistic basis for understanding PM2.5 cardiovascular hazard characterization based on exposure duration.
