Gut-derived low-grade endotoxaemia, atherothrombosis and cardiovascular disease

  • Nat Rev Cardiol. 2023 Jan;20(1):24-37. doi: 10.1038/s41569-022-00737-2.
Francesco Violi  1  2 ,  Vittoria Cammisotto  3 ,  Simona Bartimoccia  4 ,  Pasquale Pignatelli  3  5 ,  Roberto Carnevale  5  4 ,  Cristina Nocella  3
Affiliations
  • 1. Department of Clinical Internal, Anaesthesiologic and Cardiovascular Sciences, Sapienza University of Rome, Rome, Italy. [email protected].
  • 2. Mediterranea Cardiocentro-Napoli, Naples, Italy. [email protected].
  • 3. Department of Clinical Internal, Anaesthesiologic and Cardiovascular Sciences, Sapienza University of Rome, Rome, Italy.
  • 4. Department of Medical-Surgical Sciences and Biotechnologies, Sapienza University of Rome, Latina, Italy.
  • 5. Mediterranea Cardiocentro-Napoli, Naples, Italy.
Abstract

Systemic inflammation has been suggested to have a pivotal role in atherothrombosis, but the factors that trigger systemic inflammation have not been fully elucidated. Lipopolysaccharide (LPS) is a component of the membrane of Gram-negative bacteria present in the gut that can translocate into the systemic circulation, causing non-septic, low-grade endotoxaemia. Gut dysbiosis is a major determinant of low-grade endotoxaemia via dysfunction of the intestinal barrier scaffold, which is a prerequisite for LPS translocation into the systemic circulation. Experimental studies have demonstrated that LPS is present in atherosclerotic arteries but not in normal arteries. In atherosclerotic plaques, LPS promotes a pro-inflammatory status that can lead to plaque instability and thrombus formation. Low-grade endotoxaemia affects several cell types, including leukocytes, platelets and endothelial cells, leading to inflammation and clot formation. Low-grade endotoxaemia has been described in patients at risk of or with overt Cardiovascular Disease, in whom low-grade endotoxaemia was associated with atherosclerotic burden and its clinical sequelae. In this Review, we describe the mechanisms favouring the development of low-grade endotoxaemia, focusing on gut dysbiosis and changes in gut permeability; the plausible biological mechanisms linking low-grade endotoxaemia and atherothrombosis; the clinical studies suggesting that low-grade endotoxaemia is a risk factor for cardiovascular events; and the potential therapeutic tools to improve gut permeability and eventually eliminate low-grade endotoxaemia.