Cardiovascular adaptations to particle inhalation exposure: molecular mechanisms of the toxicology

Am J Physiol Heart Circ Physiol. 2020 Aug 1;319(2):H282-H305. doi: 10.1152/ajpheart.00026.2020. Epub 2020 Jun 19.

Abstract

Ambient air, occupational settings, and the use and distribution of consumer products all serve as conduits for toxicant exposure through inhalation. While the pulmonary system remains a primary target following inhalation exposure, cardiovascular implications are exceptionally culpable for increased morbidity and mortality. The epidemiological evidence for cardiovascular dysfunction resulting from acute or chronic inhalation exposure to particulate matter has been well documented, but the mechanisms driving the resulting disturbances remain elusive. In the current review, we aim to summarize the cellular and molecular mechanisms that are directly linked to cardiovascular health following exposure to a variety of inhaled toxicants. The purpose of this review is to provide a comprehensive overview of the biochemical changes in the cardiovascular system following particle inhalation exposure and to highlight potential biomarkers that exist across multiple exposure paradigms. We attempt to integrate these molecular signatures in an effort to provide direction for future investigations. This review also characterizes how molecular responses are modified in at-risk populations, specifically the impact of environmental exposure during critical windows of development. Maternal exposure to particulate matter during gestation can lead to fetal epigenetic reprogramming, resulting in long-term deficits to the cardiovascular system. In both direct and indirect (gestational) exposures, connecting the biochemical mechanisms with functional deficits outlines pathways that can be targeted for future therapeutic intervention. Ultimately, future investigations integrating "omics"-based approaches will better elucidate the mechanisms that are altered by xenobiotic inhalation exposure, identify biomarkers, and guide in clinical decision making.

Keywords: PM2.5; UFP; engineered nanomaterial; genomics; gestation; heart; mitochondria; particulate matter.

Publication types

  • Research Support, N.I.H., Extramural
  • Research Support, Non-U.S. Gov't
  • Review

MeSH terms

  • Adaptation, Physiological
  • Adolescent
  • Adult
  • Air Pollutants / adverse effects*
  • Animals
  • Cardiovascular Diseases / chemically induced*
  • Cardiovascular Diseases / genetics
  • Cardiovascular Diseases / metabolism
  • Cardiovascular Diseases / physiopathology
  • Cardiovascular System / drug effects*
  • Cardiovascular System / metabolism
  • Cardiovascular System / physiopathology
  • Cellular Reprogramming
  • Epigenesis, Genetic
  • Female
  • Humans
  • Inhalation Exposure / adverse effects*
  • Male
  • Maternal Exposure / adverse effects
  • Mice
  • Middle Aged
  • Particulate Matter / adverse effects*
  • Pregnancy
  • Prenatal Exposure Delayed Effects
  • Rats
  • Risk Assessment
  • Risk Factors
  • Young Adult

Substances

  • Air Pollutants
  • Particulate Matter