Completed Genetics & Molecular Biology Brain & Nervous System

Molecular genetics and brain in the Tc1 mouse model of Down syndrome

In plain English

AI plain-English summary

About 1 in 700 babies are born with Down syndrome, and a unique mouse strain now carries the same extra chromosome that causes it. This matters because Down syndrome is the most common known cause of mental retardation, and it also brings variable features such as heart defects and immune abnormalities. Researchers created this mouse model to pinpoint which specific genes on human chromosome 21 produce each aspect of the syndrome. The current gap is that no one knows exactly which genes are present in the mouse, when and where they are switched on, or how closely the mouse brain parallels the human condition. If this research succeeds, it will reveal which genes drive the specific brain changes seen in Down syndrome. That knowledge could, in the long term, point toward therapies for some aspects of the syndrome. It may also shed light on the same disorders that occur in people without Down syndrome. This is fundamentally curiosity-driven science. Understanding the molecular genetics of a complex condition rarely yields immediate treatments, but past fundamental research on chromosome abnormalities has transformed prenatal testing and opened entirely new avenues for drug development.

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Babies with Down syndrome account for about 1 in 700 births. The syndrome arises because people with Down syndrome have an extra copy of chromosome 21. Down syndrome is the most common known cause of mental retardation, and occurs along with many other more variable features, such as specific heart defects or abnormalities of the immune system. To try to find out which genes on human chromosome 21 give rise to the different aspects of the syndrome, we created a mouse model of Down syndrome. This is a unique mouse strain, and it does recapitulate the features of Down syndrome. We are now applying for funding to work out exactly which genes are present in this mouse, and when and where they are switched on. We then want to refine the mouse model by adding in a marker that allows us to tell which cells contain the extra chromosome. We also want to go to study the brain of these mice, to see how closely the mouse parallels human Down syndrome, and ultimately to try to work out which are the important genes for producing some of the specific brain changes that are seen in Down syndrome. This research will help us understand more about why Down syndrome occurs, with a long-term view to therapy for some aspects of the syndrome, and will also tell us about exactly the same disorders that occur in the non-Down syndrome population.

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Researchers

Elizabeth Fisher (Principal Investigator)Victor Tybulewicz (Co-Investigator)

Related Research

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Down Syndrome and Alzheimer's Disease - determining which chromosome 21 gene or genes when over-expressed modulate Abeta toxicity and accumulation

Original classification

Research Grant

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