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The enduring effect of prenatal protein malnutrition on brain anatomy, physiology and behavior
R J Rushmore1,2,3, J A McGaughy4, D J Mokler5
1Department of Anatomy and Neurobiology, Boston University School of Medicine, Boston, MA, USA.
Insights
Maternal nutrition impacts fetal brain development, leading to altered brain structure and adult cognition. Prenatal protein restriction creates a different, not dysfunctional, brain, influencing behavior and disease risk.
Area of Science:
- Neuroscience
- Developmental Biology
- Nutritional Science
Background:
- The maternal environment significantly influences fetal brain development.
- Environmental stimuli, like nutritional deficits, can alter fetal brain development pathways.
Purpose of the Study:
- To investigate how prenatal protein restriction impacts fetal brain development and adult cognitive function.
- To explore the adaptive significance of prenatal environmental influences on brain organization and behavior.
Main Methods:
- Utilized rodent models to study the effects of prenatal protein restriction.
- Examined changes in brain anatomy, physiology, and adult cognitive function.
Main Results:
- Prenatal protein restriction leads to specific, programmed changes in fetal brain anatomy and physiology.
- The resulting brain organization is altered, impacting adult cognitive function.
- The developing brain adapts to prenatal stimuli, selecting beneficial circuits and deselecting maladaptive behaviors.
Conclusions:
- Prenatal protein restriction results in a brain that is organizationally different, not uniformly dysfunctional.
- Prenatal factors play a crucial role in shaping behavior and can influence the risk for neurological and psychiatric disorders.
Abstract:
There is increasing evidence that the maternal environment exerts enduring influences on the fetal brain. In response to certain environmental stimuli such as reduced protein content, the fetus changes the course of its brain development, which leads to specific and programed changes in brain anatomy and physiology. These alterations produce a brain with a fundamentally altered organization, which then translates to alterations in adult cognitive function. The effects on brain and behavior may be linked, such that a prenatal stimulus relays a signal to alter brain development and encourage the selection and development of brain circuits and behaviors that would be beneficial for the environment in which the animal was anticipated to emerge. At the same time, the signal would deselect behaviors unlikely to be adaptive. We draw on evidence from rodent models to suggest that the brain that develops after a reduction in protein during the prenatal phase is not uniformly dysfunctional, but simply different. This perspective has implications for the role of prenatal factors in the production and expression of behavior, and may account for the elevation of risk factors for neurological and psychiatric illnesses.
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