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1.
Front Physiol ; 12: 699142, 2021.
Article in English | MEDLINE | ID: mdl-34220555

ABSTRACT

The first third of incubation is critical for embryonic development, and environmental changes during this phase can affect the physiology and survival of the embryos. We evaluated the effects of low (LT), control (CT), and high (HT) temperatures during the first 5 days of incubation on ventilation ( V . E ), body temperature (Tb), oxygen consumption ( V . O2), respiratory equivalent ( V . E / V . O2), and brain monoamines on 3-days-old (3d) and 14-days-old (14d) male and female chickens. The body mass of LT animals of both ages and sexes was higher compared to HT and CT animals (except for 3d males). The heart mass of 14d HT animals was higher than that of CT animals. Thermal manipulation did not affect V . E , V . O2 or V . E / V . O2 of 3d animals in normoxia, except for 3d LT males V . E , which was lower than CT. Regarding 14d animals, the HT females showed a decrease in V . E and V . O2 compared to CT and LT groups, while the HT males displayed a lower V . O2 compared to CT males, but no changes in V . E / V . O2. Both sexes of 14d HT chickens presented a greater Tb compared to CT animals. Thermal manipulations increased the dopamine turnover in the brainstem of 3d females. No differences were observed in ventilatory and metabolic parameters in the 3d animals of either sexes, and 14d males under 7% CO2. The hypercapnic hyperventilation was attenuated in the 14d HT females due to changes in V . O2, without alterations in V . E . The 14d LT males showed a lower V . E , during hypercapnia, compared to CT, without changes in V . O2, resulting in an attenuation in V . E / V . O2. During hypoxia, 3d LT females showed an attenuated hyperventilation, modulated by a higher V . O2. In 14d LT and HT females, the increase in V . E was greater and the hypometabolic response was attenuated, compared to CT females, which resulted in no change in the V . E / V . O2. In conclusion, thermal manipulations affect hypercapnia-induced hyperventilation more so than hypoxic challenge, and at both ages, females are more affected by thermal manipulation than males.

2.
Pflugers Arch ; 473(6): 859-872, 2021 06.
Article in English | MEDLINE | ID: mdl-33855632

ABSTRACT

The pontine A5 noradrenergic group contributes to the maturation of the respiratory system before birth in rats. These neurons are connected to the neural network responsible for respiratory rhythmogenesis. In the present study, we investigated the participation of A5 noradrenergic neurons in neonates (P7-8 and P14-15) in the control of ventilation during hypoxia and hypercapnia in in vivo experiments using conjugated saporin anti-dopamine beta-hydroxylase (DßH-SAP) to specifically ablate noradrenergic neurons. Thus, DßH-SAP (420 ng/µL) or saporin (SAP, control) was injected into the A5 region of neonatal male Wistar rats. Hypoxia reduced respiratory variability in control animals; however, A5 lesion prevented this effect in P7-8 rats. Our data suggest that noradrenergic neurons of the A5 region in neonate rats do not participate in the control of ventilation under baseline and hypercapnic conditions, but exert an inhibitory modulation on breathing variability under hypoxic challenge in early life (P7-8).


Subject(s)
Adrenergic Neurons/metabolism , Brain Stem/cytology , Hypercapnia/physiopathology , Hypoxia/physiopathology , Respiration , Adrenergic Neurons/drug effects , Adrenergic Neurons/physiology , Animals , Animals, Newborn , Brain Stem/growth & development , Brain Stem/physiopathology , Dopamine beta-Hydroxylase/pharmacology , Male , Rats , Rats, Wistar , Saporins/pharmacology
3.
Neuroscience ; 354: 146-157, 2017 06 23.
Article in English | MEDLINE | ID: mdl-28461215

ABSTRACT

The A5 area at the ventrolateral pons contains noradrenergic neurons connected with other medullary areas involved in the cardiorespiratory control. Its contribution to the cardiorespiratory regulation was previously evidenced in anesthetized conditions. In the present study, we investigated the involvement of the A5 noradrenergic neurons to the basal and chemoreflex control of the sympathetic and respiratory activities in unanesthetized conditions. A5 noradrenergic neurons were lesioned using microinjections of anti-dopamine ß-hydroxylase saporin (anti-DßH-SAP). After 7-8days, we evaluated the arterial pressure levels, heart rate and minute ventilation in freely moving adult rats (280-350g) as well as recorded from thoracic sympathetic (tSN) and phrenic nerves (PN) using the arterially perfused in situ preparation of juvenile rats (80-90g). Baseline cardiovascular, sympathetic and respiratory parameters were similar between control (n=7-8) and A5-lesioned rats (n=5-6) in both experimental preparations. In adult rats, lesions of A5 noradrenergic neurons did not modify the reflex cardiorespiratory adjustments to hypoxia (7% O2) and hypercapnia (7% CO2). In the in situ preparations, the sympatho-excitation, but not the PN reflex response, elicited by either the stimulation of peripheral chemoreceptors (ΔtSN: 110±12% vs 58±8%, P<0.01) or hypercapnia (ΔtSN: 9.5±1.4% vs 3.9±1.7%, P<0.05) was attenuated in A5-lesioned rats compared to controls. Our data demonstrated that A5 noradrenergic neurons are part of the circuitry recruited for the processing of sympathetic response to hypoxia and hypercapnia in unanesthetized conditions.


Subject(s)
Adrenergic Neurons/physiology , Hypercapnia/physiopathology , Pons/cytology , Sympathetic Nervous System/physiology , Wakefulness , Analysis of Variance , Animals , Antibodies, Monoclonal/toxicity , Blood Pressure/drug effects , Body Temperature/drug effects , Heart Rate/drug effects , Hypercapnia/chemically induced , Male , Pons/drug effects , Pons/injuries , Pulmonary Ventilation/physiology , Rats , Rats, Wistar , Ribosome Inactivating Proteins, Type 1/toxicity , Saponins/toxicity , Saporins , Sympathetic Nervous System/drug effects , Tyrosine 3-Monooxygenase/metabolism
4.
Front Physiol ; 5: 288, 2014.
Article in English | MEDLINE | ID: mdl-25183958

ABSTRACT

The locus coeruleus (LC) is a dorsal pontine region, situated bilaterally on the floor of the fourth ventricle. It is considered to be the major source of noradrenergic innervation in the brain. These neurons are highly sensitive to CO2/pH, and chemical lesions of LC neurons largely attenuate the hypercapnic ventilatory response in unanesthetized adult rats. Developmental dysfunctions in these neurons are linked to pathological conditions such as Rett and sudden infant death syndromes, which can impair the control of the cardio-respiratory system. LC is densely innervated by fibers that contain glutamate, serotonin, and adenosine triphosphate, and these neurotransmitters strongly affect LC activity, including central chemoreflexes. Aside from neurochemical modulation, LC neurons are also strongly electrically coupled, specifically through gap junctions, which play a role in the CO2 ventilatory response. This article reviews the available data on the role of chemical and electrical neuromodulation of the LC in the control of ventilation.

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