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The Fetal Brain Sparing Response to Hypoxia: Physiological Mechanisms

Overview
Journal J Physiol
Specialty Physiology
Date 2015 Oct 27
PMID 26496004
Citations 136
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Abstract

How the fetus withstands an environment of reduced oxygenation during life in the womb has been a vibrant area of research since this field was introduced by Joseph Barcroft, a century ago. Studies spanning five decades have since used the chronically instrumented fetal sheep preparation to investigate the fetal compensatory responses to hypoxia. This defence is contingent on the fetal cardiovascular system, which in late gestation adopts strategies to decrease oxygen consumption and redistribute the cardiac output away from peripheral vascular beds and towards essential circulations, such as those perfusing the brain. The introduction of simultaneous measurement of blood flow in the fetal carotid and femoral circulations by ultrasonic transducers has permitted investigation of the dynamics of the fetal brain sparing response for the first time. Now we know that major components of fetal brain sparing during acute hypoxia are triggered exclusively by a carotid chemoreflex and that they are modified by endocrine agents and the recently discovered vascular oxidant tone. The latter is determined by the interaction between nitric oxide and reactive oxygen species. The fetal brain sparing response matures as the fetus approaches term, in association with the prepartum increase in fetal plasma cortisol, and treatment of the preterm fetus with clinically relevant doses of synthetic steroids mimics this maturation. Despite intense interest into how the fetal brain sparing response may be affected by adverse intrauterine conditions, this area of research has been comparatively scant, but it is likely to take centre stage in the near future.

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References
1.
Nicolaides K, Economides D, Soothill P . Blood gases, pH, and lactate in appropriate- and small-for-gestational-age fetuses. Am J Obstet Gynecol. 1989; 161(4):996-1001. DOI: 10.1016/0002-9378(89)90770-9. View

2.
Reuss M, Parer J, Harris J, Krueger T . Hemodynamic effects of alpha-adrenergic blockade during hypoxia in fetal sheep. Am J Obstet Gynecol. 1982; 142(4):410-5. DOI: 10.1016/s0002-9378(16)32381-x. View

3.
Harlev A, Levy A, Zaulan Y, Koifman A, Mazor M, Wiznitzer A . Idiopathic bleeding during the second half of pregnancy as a risk factor for adverse perinatal outcome. J Matern Fetal Neonatal Med. 2008; 21(5):331-5. DOI: 10.1080/14767050802038124. View

4.
Fowden A, Giussani D, Forhead A . Intrauterine programming of physiological systems: causes and consequences. Physiology (Bethesda). 2006; 21:29-37. DOI: 10.1152/physiol.00050.2005. View

5.
Anderson P, Glick K, Killam A, Mainwaring R . The effect of heart rate on in utero left ventricular output in the fetal sheep. J Physiol. 1986; 372:557-73. PMC: 1192779. DOI: 10.1113/jphysiol.1986.sp016025. View