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Serotonin Imbalance May Contribute To SIDSNew study finds low levels of serotonin a risk factor for crib death |
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July 8, 2008
The model, published in the latest issue of Science, reveals that an imbalance of serotonin in the brainstem is sufficient to cause sudden death in mice. SIDS is the leading cause of human death during the first year of life in developed countries. The brainstem, the lower part of the brain that forms the link to the spinal cord, coordinates many fundamental functions including control over cardiovascular and respiratory systems. Victims of SIDS show alterations in those brainstem neurons that communicate using the signaling molecule serotonin. Cornelius Gross and his group at the EMBL Mouse Biology Unit modified the serotonin system of mice to understand the role of this signalling molecule in the brainstem. They overexpressed an important receptor that regulates serotonin signalling, called serotonin 1A autoreceptor. "At first sight the mice were normal. But then they suffered sporadic and unpredictable drops in heart rate and body temperature. More than half of the mice eventually died of these crises during a restricted period of early life. It was at that point that we thought it might have something to do with SIDS," says Gross. Until now it was unclear how changes in serotonin signaling in the brainstem of SIDS infants are involved in sudden death. The findings in the mouse show that deficits in serotonin signaling in the brainstem can be sufficient to cause sudden death and strongly support the idea that a congenital serotonin defect could play a critical role in SIDS. Serotonin neurons in the brainstem communicate to nerve cells in the spinal cord that innervate the heart and organs involved in temperature regulation such as brown fat tissue. This signaling is defective in the mouse model of SIDS. For example, when placed into a cold chamber the animals cannot properly activate brown fat tissue to produce heat. This inability to activate fundamental body systems under certain conditions is likely to explain why the mice succumb to sudden death. While a complete block of serotonin signaling does not lead to death, upsetting its intricate balance by overexpressing serotonin 1A autoreceptor can, the authors say. In response to serotonin the receptor initiates a negative feedback mechanism that reduces serotonin release and dampens down the signal to the body. The researchers caution, however, that it is unlikely that the exact same molecular mechanism leads to SIDS in humans. Nevertheless, the mouse model will help to shed light on how serotonin signaling, when dysfunctional, can be life-threatening. Report Your Experience
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