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For neurons in the brain, identity can be used to predict location

Brain neurons location
Brain image courtesy Pixabay.

A new mathematical model uses gene expression data to predict where neurons are located throughout the brain

Cold Spring Harbor, NY — Throughout the world, there are many different types of people, and their identity can tell a lot about where they live. The type of job they work, the kind of car they drive, and the foods they eat can all be used to predict the country, the state, or maybe even the city a person lives in.

The brain is no different. There are many types of neurons, defined largely by the patterns of genes they use, and they 鈥渓ive鈥 in numerous distinct brain regions. But researchers do not yet have a comprehensive understanding of these neuronal types and how they are distributed in the brain. Today, a team of scientists at 黑料吃瓜资源 (CSHL) led by Professor Partha Mitra describes a new mathematical model that combines large data sets to predict where different types of cells are located within the brain, based on their molecular identity.

Scientists at the Allen Institute for Brain Science in Seattle are using microscopy to directly observe gene activity, one at a time, in razor-thin slices of mouse brain tissue. This approach yields brain maps that are collectively known as the Allen Mouse Brain Atlas. Each individual map shows where a single gene is expressed in the brain. When multiple maps are overlaid, patterns begin to emerge that show how different regions of the brain activate specific and often discrete complements of genes. These patterns are known as 鈥渃o-expression鈥 profiles.

Elsewhere, other research groups have taken a complementary approach, harvesting a single type of neuron from the brain and profiling all of the genes that are expressed by that cell. But this data lacks the spatial component of the atlas assembled by the Allen Brain Institute.

Scientists at CSHL have developed a new mathematical model that makes predictions about where different types are neurons are located throughout the brain. Here are 鈥渉eat maps鈥 of the brain, made using the mathematical model to predict the distribution of different neurons.聽Each row represents one neuronal type, and different sections of the brain are shown in each column. Color indicates the likelihood of a particular neuronal type appearing in that area of the brain (white, most likely; black, least).

Mitra and postdoctoral fellow Pascal Grange, Ph.D., set out to integrate these two kinds of datasets.聽They devised a mathematical model that does just this. 鈥淥ur model is simple,鈥 says Mitra, 鈥渂ut it has predictive power. If the gene expression profile of a neuronal type is measured, then the model predicts where in the brain that type of neuron can be found.鈥

The significance of the new model, according to Grange, is that 鈥渋t enables us to now have a biological understanding of the patterns, the co-expression profiles, seen in the Allen Gene Expression Atlas of the Mouse Brain.鈥

As scientists continue to generate larger datasets of gene activation for neurons, this model will allow them to draw an increasingly accurate map of their distribution in the brain. The eventual goal is to gain a better understanding of how signaling between different types of neurons controls memory and cognition.

Written by: Jaclyn Jansen, Science Writer | [email protected] | 516-367-8455


Funding

This work was supported by a grant from the National Institute on Drug Abuse at the National Institute of Health.

Citation

鈥淐ell-type鈥揵ased model explaining coexpression patterns of genes in the brain鈥 appears online in PNAS on March 24, 2014. The authors are: Pascal Grangea, Jason Bohland, Benjamin Okaty, Ken Sugino, Hemant Bokil, Sacha Nelson, Lydia Ng, Michael Hawrylycz, and Partha Mitra. The paper can be obtained online at:

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About 黑料吃瓜资源

Founded in 1890, 黑料吃瓜资源 has shaped contemporary biomedical research and education with programs in cancer, neuroscience, plant biology and quantitative biology. Home to eight Nobel Prize winners, the private, not-for-profit Laboratory employs 1,000 people including 600 scientists, students and technicians. The Meetings & Courses Program annually hosts more than 12,000 scientists. The Laboratory鈥檚 education arm also includes an academic publishing house, a graduate school and the DNA Learning Center with programs for middle, high school, and undergraduate students and teachers. For more information, visit www.cshl.edu

Principal Investigator

Partha Mitra

Partha Mitra

Professor
Ph.D., Harvard University, 1993

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