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Published on: November 2, 2015
Growth restriction induced by chronic prenatal hypoxia affects breathing rhythm and its pontine catecholaminergic
K Tree1, J C Viemari1, F Cayetanot1
1UMR 7289, Institut de Neurosciences de la Timone, Aix Marseille Université, Centre National de la Recherche Scientifique, Marseille, France.
Insights
Prenatal hypoxia causes intrauterine growth restriction, altering newborn breathing patterns. This study reveals growth restriction modifies the central respiratory network
Area of Science:
- Neuroscience
- Developmental Biology
- Respiratory Physiology
Background:
- Intrauterine growth restriction (IUGR), caused by impaired oxygen supply, is a major factor in perinatal mortality and respiratory issues.
- Breathing rhythm is controlled by the central respiratory network, influenced by catecholamines.
Purpose of the Study:
- To examine how prenatal hypoxia-induced growth restriction affects respiratory frequency, central respiratory rhythm, and its catecholaminergic modulation post-birth.
Main Methods:
- Investigated respiratory frequency in newborns with IUGR.
- Utilized en bloc medullary and slice preparations (pre-Bötzinger complex) to analyze respiratory rhythm.
- Examined catecholaminergic modulation using adrenergic receptor blockade.
Main Results:
- Newborns with IUGR exhibited increased respiratory frequency.
- Pontomedullary preparations showed stronger inhibition of C4 burst discharge in the IUGR group.
- This inhibition was linked to increased activity in the pontine A5 neuronal group, modulated by α2-adrenergic receptors.
Conclusions:
- Prenatal hypoxia-induced growth restriction perturbs breathing frequency in newborns.
- Altered catecholaminergic modulation of the central respiratory network contributes to these breathing disturbances.
Abstract:
Impaired transplacental supply of oxygen leads to intrauterine growth restriction, one of the most important causes of perinatal mortality and respiratory morbidity. Breathing rhythm depends on the central respiratory network modulated by catecholamines. We investigated the impact of growth restriction, using prenatal hypoxia, on respiratory frequency, on central respiratory-like rhythm, and on its catecholaminergic modulation after birth. At birth, respiratory frequency was increased and confirmed in en bloc medullary preparations, where the frequency of the fourth cervical (C4) ventral root discharge was increased, and in slice preparations containing the pre-Bötzinger complex with an increased inspiratory rhythm. The inhibition of C4 burst discharge observed in pontomedullary preparations was stronger in the growth-restricted group. These results cannot be directly linked by the tyrosine hydroxylase activity increase of A1/C1 and A2/C2 cell groups in the medulla since blockade of α1- and α2-adrenergic receptors did not abolish the difference between both groups. However, in pontomedullary preparations, the stronger inhibition of C4 burst discharge is probably supported by an increased inhibition of A5, a respiratory rhythm inhibitor pontine group of neurons displaying increased tyrosine hydroxylase activity, because blockade of α2-adrenergic receptors abolished the difference between the two groups. Taken together, these results indicate that growth restriction leads to a perturbation of the breathing frequency, which finds, at least in part, its origin in the modification of catecholaminergic modulation of the central breathing network.
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