Brain epigenome changes from birth to adolescence

Experience of parents with their children and teachers with their students demonstrate how kids change their behaviours and knowledge from infancy to adolescence. Until now, little was known of the causes that could lead to these changes.

Today, an article published in Science in collaboration with the group of Manel Esteller, Director of Epigenetics and Cancer Biology Biomedical Research Institute (IDIBELL), ICREA researcher and Professor of Genetics at the University of Barcelona, gives us an important clue to understanding this process.

Researchers have discovered that people's frontal cortex (the part of the brain responsible for the conduct and the acquisition of new information) experiences a significant change from birth to the end of adolescence. The epigenome is transformed.

The study analyzes the epigenome of newborns, teenagers aged 16, and adults aged 25 and 50 in the United States and in Catalonia (Spain).

Epigenome

Epigenome is the set of chemical signals responsible for turning on or off genes in our DNA. The discovery published in Science shows that one of these epigenetic signals, methylation of genetic material, is progressively increased until the end of adolescence and entry into adulthood.

“The results of the study show that DNA methylation has a key role in shaping the communication spaces between neurons (synapses)”, explains Esteller. “The brain is divided into white matter (glial) and gray matter (neurons) with several cell types with different functions. DNA methylation patterns distinguish genes with cell-type specific activity. Even in the gray matter, there are cell subtypes such as pyramidal neurons and GABA neurotransmitter producers that have specific subpatterns of DNA methylation.”

“In addition, DNA methylation of neurons is different from the rest of the cells in our body. If normal is called 5-mCG, this, in the bran, is called 5-MCH: this is like putting an open or closed accent to a word, in this case a gene to change its meaning” explains Esteller.

This finding could have a profound importance in the knowledge of brain's biology because besides explaining the plasticity of this organ when learning and living experiences, it could be decisive to understand the causes of altered behaviours and psychiatric diseases. Now, we must investigate whether minor alterations in the program of DNA methylation during early postnatal development could be associated to neurodevelopmental disorders such as autism or schizophrenia.

About Us

The Bellvitge Biomedical Research Institute (IDIBELL) is a research center created in 2004 and it is participated by the Bellvitge University Hospital, the Catalan Institute of Health, the Catalan Institute of Oncology, and the University of Barcelona. IDIBELL is located at Biopol'H at L'Hospitalet de Llobregat and is member of the Health Universtitat de Barcelona Campus.

Article reference

Lister R, Mukame EA, Nery JR, Urich M, Puddifoot CA, Johnson N, Lucero J, Huang N, Zaman S, Schultz MD, Tonti-Filippini J, Yu M, Heyn H, Hu S, Wu JC, Rao A, Esteller M, He C, Haghighi FG, Sejnowski TJ, Behrens MM, Ecker JR. Dynamic epigenomic reconfiguration during mammalian brain development. Science, July 4th, 2013.

Media Contact

Arantxa Mena EurekAlert!

More Information:

http://www.idibell.cat

All latest news from the category: Life Sciences and Chemistry

Articles and reports from the Life Sciences and chemistry area deal with applied and basic research into modern biology, chemistry and human medicine.

Valuable information can be found on a range of life sciences fields including bacteriology, biochemistry, bionics, bioinformatics, biophysics, biotechnology, genetics, geobotany, human biology, marine biology, microbiology, molecular biology, cellular biology, zoology, bioinorganic chemistry, microchemistry and environmental chemistry.

Back to home

Comments (0)

Write a comment

Newest articles

Superradiant atoms could push the boundaries of how precisely time can be measured

Superradiant atoms can help us measure time more precisely than ever. In a new study, researchers from the University of Copenhagen present a new method for measuring the time interval,…

Ion thermoelectric conversion devices for near room temperature

The electrode sheet of the thermoelectric device consists of ionic hydrogel, which is sandwiched between the electrodes to form, and the Prussian blue on the electrode undergoes a redox reaction…

Zap Energy achieves 37-million-degree temperatures in a compact device

New publication reports record electron temperatures for a small-scale, sheared-flow-stabilized Z-pinch fusion device. In the nine decades since humans first produced fusion reactions, only a few fusion technologies have demonstrated…

Partners & Sponsors