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August 26, 2025Frontiers in Medicine13 citationsOpen Access

Organ crosstalk: brain-lung interaction

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LMLuciana MasciaRDRosanna D’AlboICIrene Cavalli

Key Points

  • ARDS survivors frequently face long-term neurological issues, with high rates of delirium and cognitive decline.
  • Ventilator associated brain injury leads to neuroinflammation and brain cell death, impacting patient outcomes.
  • Research focuses on the double-hit model of primary brain injury and its systemic effects on lung function.
  • Therapeutic strategies in mechanical ventilation are crucial to prevent a cascade of brain-lung complications.

Abstract

The interaction between the brain and the lungs is bidirectional: ICU patients with acute brain injury develop pulmonary complications, while ARDS patients frequently manifest neurological sequelae. Research is indeed focusing on both aspects of this cross-talk. On one side, ARDS survivors experience poor neurological outcomes both in the short and long term, with high incidence of delirium and post- discharge neurocognitive impairment. The underlying mechanisms have been investigated either in the pre-clinical and in the clinical field. Ventilator associated brain injury is the new recent term used to indicate the brain damage consequent to mechanical ventilation and leading to neuroinflammation and increased brain cells apoptosis. Moreover, prolonged hypoxia, deep sedation, loss of cerebral autoregulation and complications from vv-ECMO during ARDS are potentially sources of brain damage. On the other side, pulmonary complications in patients with acute brain injury follow a double-hit model, recently implemented in a triple-hit hypothesis. According to this theory, the primary brain injury leads to sympathetic hyperactivity, with inflammation and oxidative stress. Thus, the lungs become more vulnerable to develop complications such as neurogenic pulmonary edema and pneumonia. Finally, immune dysregulation and microbiome alterations due to brain-lung cross-talk lead to the worsening of lung injury. In this context, mechanical ventilation strategies aiming to guarantee adequate gas exchange and brain oxygen delivery are essential to prevent this phenomenon cascade. This review purpose is to examine the mechanisms behind brain-lung cross talk, starting from pathophysiological mechanisms, in order to suggest potential new research and therapeutic approaches.

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Cite This Study

Mascia et al. (2025) studied this question.

synapsesocial.com/papers/68af5f1ead7bf08b1eae257bhttps://doi.org/10.3389/fmed.2025.1655813
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Ventilator-Induced Lung Injury2013 · 2,280 citations
  2. 2Angiotensin II: Time to Study Starting a Stopped Heart2019 · 5 citations
  3. 3Antioxidant status in patients with acute respiratory distress syndrome1999 · 20 citations
  4. 4Early mobilization practice in a single Brazilian intensive care unit2015 · 31 citations
  5. 5Neuropsychological Sequelae and Impaired Health Status in Survivors of Severe Acute Respiratory Distress Syndrome1999 · 681 citations