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June 11, 2026Function1 citationsOpen Access

Circadian clock protein Bmal1 regulates respiratory motor plasticity in male rats

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AJAaron A. JonesAMAlexandria B. MarciantePBPierce Berardi

Key Points

  • This research aims to understand how the circadian clock protein Bmal1 influences respiratory motor plasticity induced by acute intermittent hypoxia (AIH).
  • Used Sprague-Dawley male rats (3-6 months old) to explore the effects of Bmal1 on respiratory motor neurons.
  • Administered siRNAs to reduce Bmal1 expression by approximately 30% in respiratory neurons.
  • Conducted AIH with 15 hypoxic episodes during light or dark phases to assess phrenic and ventilatory long-term facilitation.
  • In the mid-rest phase, Bmal1 knockdown significantly decreased pLTF and abolished vLTF compared to controls.
  • In the mid-active phase, knockdown of Bmal1 did not affect pLTF or vLTF.
  • Findings indicate that the circadian clock within phrenic motor neurons regulates AIH-induced respiratory plasticity based on the time of day.

Abstract

Acute intermittent hypoxia (AIH) elicits respiratory motor plasticity in the phrenic, intercostal, and hypoglossal motor pools, and has emerged as a promising therapeutic strategy to improve respiratory function in people with neuromuscular disorders that compromise breathing. Although we recently reported that time-of-day regulates moderate AIH (PaO 2 ∼40-50 mmHg) induced respiratory motor plasticity, it is unknown if diurnal effects on AIH-induced phrenic (pLTF) or ventilatory (vLTF) long-term facilitation are mediated via the endogenous circadian clock vs other factors. Since many biological rhythms are driven by the endogenous clock, and clock genes (including the essential clock gene Bmal1) are rhythmically expressed in the phrenic motor system, we hypothesized that the molecular clock within respiratory motor neurons exerts time-of-day effects on pLTF and vLTF in Sprague-Dawley rats (3-6 month old males). Intrapleural injections of small-interfering RNAs (siRNAs) were used to selectively knock down Bmal1 within respiratory motor neurons by ∼30%. AIH consisting of 15, 1-min hypoxic episodes (FIO 2 = 0.09) was delivered in the mid-rest ( i.e. light) or mid-active ( i.e. dark) phases, and pLTF (Δintegrated phrenic burst amplitude) and vLTF (ΔV̇E/V̇CO 2 ) were assessed in rats given siRNAs targeting Bmal1 vs non-targeting controls. In mid-rest phase, pLTF was reduced and vLTF abolished in rats given siBmal1 vs non-targeting siRNA. However, siBmal1 had no significant effect on either pLTF or vLTF in mid-active phase. Thus, the phrenic motor neuron circadian clock regulates AIH-induced respiratory motor plasticity in a time-of-day-dependent manner. It is important to consider circadian biology in future studies of AIH-induced respiratory motor plasticity.

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Cite This Study

Jones et al. (2026) studied this question.

synapsesocial.com/papers/6a2a50b680c8f91e7f39d1d9https://doi.org/10.1152/function.016.2026
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Also Consider

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

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