The relationship of asphyxia in the mature fetus to long-term neurologic function

J A Low1

  • 1Department of Obstetrics and Gynaecology, Queen's University, Kingston, Ontario, Canada.

Asphyxia may occur before or during labor in the preterm or term fetus. The development of neuropathologic lesions depends on the degree and duration of the asphyxia. Anoxia may occur, but because of the short duration of the fetal response, it usually will cause the death of the fetus. The common mechanism leading to neuropathologic lesions in the fetus is a significant degree of hypoxia present for a particular period of time. Antepartum asphyxia will cause such lesions and deficits in children. What is missing are measures to establish the prevalence of antepartum asphyxia in a large population and the epidemiologic studies to determine the association between the asphyxia so documented and the deficits in surviving children. The prevalence of intrapartum fetal asphyxia is of the order of 2%. Most of these children will have no evidence of brain damage. The key is the fetal cardiovascular compensatory response that maintains cerebral blood flow and oxygen metabolism. This compensatory phase, subject to the severity of the hypoxia, may continue for several hours. In the clinical setting during labor, this provides the "window of opportunity" when a specific blood gas and acid-base diagnosis can be made, and with appropriate intervention, brain damage can be avoided. However, if the hypoxia persists, a threshold will be reached when fetal cardiovascular decompensation will occur. The compromised cerebral oxygen metabolism will result in brain damage and deficits in the children who survive. The threshold at which brain damage may occur is when the acidosis is severe (pH, < 7.0). At this time, systemic hypotension may occur.(ABSTRACT TRUNCATED AT 250 WORDS)

Related Concept Videos

Neurulation01:30

Neurulation

Neurulation is the embryological process which forms the precursors of the central nervous system and occurs after gastrulation has established the three primary cell layers of the embryo: ectoderm, mesoderm, and endoderm. In humans, the majority of this system is formed via primary neurulation, in which the central portion of the ectoderm—originally appearing as a flat sheet of cells—folds upwards and inwards, sealing off to form a hollow neural tube. As development proceeds, the anterior...
Teratogenicity01:07

Teratogenicity

The ability of a drug to produce structural deformations and functional abnormalities in the developing embryo or the fetus is called teratogenicity, and the drug producing this effect is known as a teratogen. Teratogenic effects include stillbirth, miscarriage, intrauterine growth restriction, and neurocognitive delay. A teratogen may affect the embryo at different stages of development, which is important in determining the type and extent of the damage. During blastocyst formation, the early...
Fetal Circulation01:14

Fetal Circulation

Fetal circulation is a unique system that facilitates the exchange of gases, nutrients, and waste products between the developing fetus and the mother. This intricate process takes place through a special organ called the placenta.
Two umbilical arteries transport blood from the fetus to the placenta. At the placenta, the blood absorbs oxygen and nutrients while simultaneously eliminating waste products. This oxygen-enriched and nutrient-rich blood then returns to the fetus through one...
Botulism01:22

Botulism

Botulism is a life-threatening neuroparalytic condition caused by botulinum neurotoxin, which is produced by the bacterium Clostridium botulinum, a Gram-positive, spore-forming, obligate anaerobe.In adults, the toxin enters the body in different ways: in foodborne botulism, the preformed toxin is absorbed in the intestine. In wound botulism, spores grow in injured tissue and release the toxin into the blood. Infant botulism differs mechanistically from adult forms. In infants, botulism commonly...
Secondary Spinal Cord Injury llI: Pathophysiology01:25

Secondary Spinal Cord Injury llI: Pathophysiology

Early Ischemia and Ionic ImbalanceWithin minutes of spinal cord injury, a secondary cascade begins, progressing over hours to weeks. Vascular damage reduces blood flow, causing ischemia and mitochondrial dysfunction. ATP depletion leads to ion pump failure, membrane depolarization, sodium influx, potassium efflux, and water accumulation, resulting in cellular swelling. Increased intracellular calcium further disrupts mitochondria and accelerates cellular injury.Excitotoxicity and Neuronal...