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Connexins, Pannexins and Gap Junctions in Perinatal Brain Injury
Alice McDouall1, Kelly Q Zhou1, Laura Bennet1
1U1 Department of Physiology, Faculty of Medical and Health Sciences, The University of Auckland, Auckland 1023, New Zealand.
Insights
Perinatal brain injury can spread through cell membrane channels, releasing molecules that worsen inflammation. Blocking these connexin hemichannels may offer new treatments to protect the brain, especially alongside hypothermia.
Area of Science:
- Neuroscience
- Cell Biology
- Neonatal Medicine
Background:
- Perinatal brain injury from hypoxia-ischemia or infection causes significant disability.
- Therapeutic hypothermia improves outcomes but is insufficient alone.
- Brain injury spreads over time, exacerbated by cellular mechanisms.
Purpose of the Study:
- Investigate the role of cell membrane channels in spreading perinatal brain injury.
- Explore the potential of channel blockers as adjunctive therapies.
Main Methods:
- Review of evidence on connexin hemichannels and pannexin channels in brain injury.
- Analysis of the role of adenosine triphosphate (ATP) release and inflammasome activation.
- Examination of neuroprotective effects of channel blockers in animal models.
Main Results:
- Connexin hemichannels and pannexin channels contribute to the spread of brain injury.
- Channel opening releases ATP, activating the inflammasome and inflammatory cascades.
- Connexin hemichannel blockade demonstrates neuroprotection in animal models.
Conclusions:
- Connexin hemichannels are key in propagating perinatal brain injury.
- Targeting these channels offers a potential therapeutic strategy.
- Channel blockers could complement therapeutic hypothermia for better neonatal brain protection.
Abstract:
Perinatal brain injury secondary to hypoxia-ischemia and/or infection/inflammation remains a major cause of disability. Therapeutic hypothermia significantly improves outcomes, but in randomized controlled trials nearly half of infants still died or survived with disability, showing that additional interventions are needed. There is growing evidence that brain injury spreads over time from injured to previously uninjured regions of the brain. At least in part, this spread is related to opening of connexin hemichannels and pannexin channels, both of which are large conductance membrane channels found in many brain cells. Opening of these membrane channels releases adenosine triphosphate (ATP), and other neuroactive molecules, into the extracellular space. ATP has an important role in normal signaling, but pathologically can trigger the assembly of the multi-protein inflammasome complex. The inflammasome complex promotes activation of inflammatory caspases, and release of inflammatory cytokines. Overall, the connexin hemichannel appears to play a primary role in propagation of injury and chronic disease, and connexin hemichannel blockade has been shown to be neuroprotective in multiple animal models. Thus, there is potential for some blockers of connexin or pannexin channels to be developed into targeted interventions that could be used in conjunction with or separate to therapeutic hypothermia.
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