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Fetal Echocardiography and Pulsed-wave Doppler Ultrasound in a Rabbit Model of Intrauterine Growth Restriction
Published on: June 29, 2013
The medullary serotonergic centres involved in cardiorespiratory control are disrupted by fetal growth restriction
Elham Ahmadzadeh1,2, Ingrid Dudink1,2, David W Walker3
1The Ritchie Centre, Hudson Institute of Medical Research, Clayton, Victoria, Australia.
Insights
Early fetal growth restriction (FGR) causes brainstem neuropathology in sheep, impacting cardiorespiratory control centers. This condition involves cell death, inflammation, and altered serotonin levels, affecting newborn health.
Area of Science:
- Neuroscience
- Developmental Biology
- Perinatal Medicine
Background:
- Fetal growth restriction (FGR) is linked to adverse cardiovascular and respiratory outcomes post-birth.
- Neurological alterations in FGR are documented, but brainstem cardiorespiratory centers remain understudied.
- Serotonin-producing neurons in the brainstem are crucial for cardiorespiratory regulation and may be affected by FGR.
Purpose of the Study:
- To investigate the impact of early-onset FGR on brainstem cardiorespiratory control centers in fetal sheep.
- To assess histopathological changes, cell death, proliferation, and neuroinflammation in the brainstems of FGR fetuses.
Main Methods:
- Early-onset FGR was induced in fetal sheep at 110 and 127 days of gestation.
- Histopathological analysis of the pons and medulla was performed, comparing FGR fetuses with controls.
- Assessed cell death, proliferation, grey/white matter integrity, oxidative stress, neuroinflammation, and serotonin/receptor levels.
Main Results:
- FGR fetuses exhibited chronic hypoxemia and asymmetric growth restriction.
- Brainstems of FGR fetuses showed neuropathology: increased cell death, reduced proliferation, grey/white matter deficits, oxidative stress, and neuroinflammation.
- Specific nuclei (medullary raphé, hypoglossal, ambiguous, solitary tract) were predominantly affected.
- Imbalanced brainstem serotonin and 5-HT1A receptor levels were observed in FGR, despite increased placental serotonin.
Conclusions:
- Early-onset FGR induces significant brainstem neuropathology in fetal sheep.
- These changes disrupt neuronal development and function in cardiorespiratory control centers.
- Placental insufficiency leads to adaptive and potentially detrimental brainstem alterations, impacting long-term cardiorespiratory health.
Abstract:
Fetal growth restriction (FGR) is associated with cardiovascular and respiratory complications after birth and beyond. Despite research showing a range of neurological changes following FGR, little is known about how FGR affects the brainstem cardiorespiratory control centres. The primary neurons that release serotonin reside in the brainstem cardiorespiratory control centres and may be affected by FGR. At two time points in the last trimester of sheep brain development, 110 and 127 days of gestation (0.74 and 0.86 of gestation), we assessed histopathological alterations in the brainstem cardiorespiratory control centres of the pons and medulla in early-onset FGR versus control fetal sheep. The FGR cohort were hypoxaemic and asymmetrically growth restricted. Compared to the controls, the brainstem of FGR fetuses exhibited signs of neuropathology, including elevated cell death and reduced cell proliferation, grey and white matter deficits, and evidence of oxidative stress and neuroinflammation. FGR brainstem pathology was predominantly observed in the medullary raphé nuclei, hypoglossal nucleus, nucleus ambiguous, solitary tract and nucleus of the solitary tract. The FGR groups showed imbalanced brainstem serotonin and serotonin 1A receptor abundance in the medullary raphé nuclei, despite evidence of increased serotonin staining within vascular regions of placentomes collected from FGR fetuses. Our findings demonstrate both early and adaptive brainstem neuropathology in response to placental insufficiency. KEY POINTS: Early-onset fetal growth restriction (FGR) was induced in fetal sheep, resulting in chronic fetal hypoxaemia. Growth-restricted fetuses exhibit persistent neuropathology in brainstem nuclei, characterised by disrupted cell proliferation and reduced neuronal cell number within critical centres responsible for the regulation of cardiovascular and respiratory functions. Elevated brainstem inflammation and oxidative stress suggest potential mechanisms contributing to the observed neuropathological changes. Both placental and brainstem levels of 5-HT were found to be impaired following FGR.
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