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Functional and Morphological Assessment of Diaphragm Innervation by Phrenic Motor Neurons
Published on: May 25, 2015
Systemic inflammation inhibits serotonin receptor 2-induced phrenic motor facilitation upstream from BDNF/TrkB
Ibis M Agosto-Marlin1, Nicole L Nichols1, Gordon S Mitchell1,2
1Department of Comparative Biosciences, University of Wisconsin , Madison, Wisconsin.
Abstract:
Although systemic inflammation induced by even a low dose of lipopolysaccharide (LPS, 100 μg/kg) impairs respiratory motor plasticity, little is known concerning cellular mechanisms giving rise to this inhibition. Phrenic motor facilitation (pMF) is a form of respiratory motor plasticity elicited by pharmacological agents applied to the cervical spinal cord, or by acute intermittent hypoxia (AIH; 3, 5-min hypoxic episodes); when elicited by AIH, pMF is known as phrenic long-term facilitation (pLTF). AIH consisting of moderate hypoxic episodes (mAIH, arterial Po2 = 35-55 mmHg) elicits pLTF via the Q pathway to pMF, a mechanism that requires spinal serotonin (5HT2) receptor activation and new brain-derived neurotrophic factor (BDNF) protein synthesis. Although mild systemic inflammation attenuates mAIH-induced pLTF via spinal p38 MAP kinase activation, little is known concerning how p38 MAP kinase activity inhibits the Q pathway. Here, we confirmed that 24 h after a low LPS dose (100 μg/kg ip), mAIH-induced pLTF is greatly attenuated. Similarly, pMF elicited by intrathecal cervical injections of 5HT2A (DOI; 100 μM; 3 × 6 μl) or 5HT2B receptor agonists (BW723C86; 100 μM; 3 × 6 μl) is blocked 24 h post-LPS. When pMF was elicited by intrathecal BDNF (100 ng, 12 μl), pMF was actually enhanced 24 h post-LPS. Thus 5HT2A/2B receptor-induced pMF is impaired downstream from 5HT2 receptor activation, but upstream from BDNF/TrkB signaling. Mechanisms whereby LPS augments BDNF-induced pMF are not yet known. NEW & NOTEWORTHY These experiments give novel insights concerning mechanisms whereby systemic inflammation undermines serotonin-dependent, spinal respiratory motor plasticity, yet enhances brain-derived neurotrophic factor (BDNF)/TrkB signaling in phrenic motor neurons. These insights may guide development of new strategies to elicit functional recovery of breathing capacity in patients with respiratory impairment by reducing (or bypassing) the impact of systemic inflammation characteristic of clinical disorders that compromise breathing.
Insights
Systemic inflammation from lipopolysaccharide (LPS) impairs respiratory motor plasticity by inhibiting serotonin pathways. However, it enhances brain-derived neurotrophic factor (BDNF) signaling, offering potential therapeutic targets for breathing disorders.
Area of Science:
- Neuroscience
- Respiratory Physiology
- Inflammation Research
Background:
- Systemic inflammation, even at low doses, is known to impair respiratory motor plasticity.
- Phrenic motor facilitation (pMF) and phrenic long-term facilitation (pLTF) are key forms of respiratory plasticity.
- Acute intermittent hypoxia (AIH) elicits pLTF via the Q pathway, involving serotonin (5HT2) receptors and brain-derived neurotrophic factor (BDNF).
Purpose of the Study:
- To investigate the cellular mechanisms by which systemic inflammation inhibits respiratory motor plasticity.
- To determine how lipopolysaccharide (LPS) affects serotonin-dependent and BDNF-dependent pathways in phrenic motor neurons.
- To elucidate the impact of LPS on 5HT2A/2B receptor-mediated pMF and BDNF-induced pMF.
Main Methods:
- Administered a low dose of LPS (100 μg/kg) to induce systemic inflammation.
- Used acute intermittent hypoxia (AIH) to elicit pLTF.
- Administered intrathecal injections of 5HT2A/2B receptor agonists (DOI, BW723C86) and BDNF to assess pMF.
- Measured pMF and pLTF 24 hours post-LPS administration.
Main Results:
- LPS significantly attenuated AIH-induced pLTF.
- LPS blocked pMF elicited by 5HT2A and 5HT2B receptor agonists.
- Intrathecal BDNF-induced pMF was enhanced 24 hours after LPS administration.
- These findings indicate impairment downstream of 5HT2 receptor activation but upstream of BDNF/TrkB signaling.
Conclusions:
- Systemic inflammation disrupts serotonin-dependent spinal respiratory motor plasticity.
- Inflammation enhances BDNF/TrkB signaling in phrenic motor neurons, suggesting a compensatory or altered mechanism.
- These insights could inform strategies to restore breathing function in inflammatory conditions.
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