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A better way to trace neuronal pathways

retrograde viral tracing method
These images demonstrate the increased efficiency of the improved retrograde viral tracing method introduced by the Kepecs lab at CSHL. While in one register, a classic tracer (bottom right) performs about as well as the improved one (top right), the improved tracer records neurons far more robustly (top middle) in a different register (green dots). Both tracers were injected in the same place and traced neuronal connections between the basolateral amygdala and the medial prefrontal cortex.

Moving forward by moving backward more effectively

Cold Spring Harbor, NY — New technologies have been likened, famously, to magic. At first, even the few who understand how they work have a tendency to sit back and marvel. Soon, flaws and limitations are detected and the invention process begins again, resulting, almost always, in improvements.

Today a team led by Professor Adam Kepecs at 黑料吃瓜资源 (CSHL) describes in the journal Neuron a technology that improves on one that only a decade ago seemed magical—but alas, does no longer. Both technologies have the aim of enabling neuroscientists to relate the connectivity of specific types of neurons to the functions they perform—for instance, while an animal is performing a behavioral task. The new technology is an important improvement, however, making new things possible.

Being able to scrutinize structure/function relationships in different areas of the brain has been a huge step forward in learning basic principles that enable the brains of mammals, including us, to make sense of the world. About a decade ago, a new method called retrograde viral tracing was introduced. The technique exploits the ability of certain viruses to hijack a neuron in the brain—entering it at a place adjacent to where it connects with other neurons and traveling backward, along its threadlike axon, to the main body of the cell, called the soma. Retrograde tracing has been a boon to the field because it has helped researchers draw links between the functions of neurons located in widely separated brain areas.

These retrograde viruses are 鈥渇rankly bizarre, real oddballs,鈥 says Kepecs, 鈥渂ut incredibly useful. At this point, however, our field has matured and we now need them to do things they can鈥檛 always do.鈥

The problem is simply put: retrograde viruses often work, but sometime don鈥檛. A researcher trying to trace a long-distance circuit may run into the problem of 鈥渢ropism,鈥 which is the inability of the virus to infect certain types of neurons. Since tropism is common, negative results are hard to interpret: is there no connection (i.e., neural pathway), or did the retrograde virus simply fail to infect the target neuron?

Kepecs鈥 team, led by Dr. Shujing Li, has come up with an improved version of retrograde tracing that eliminates the problem of tropism. The solution, called 鈥渞eceptor complementation,鈥 centers on the concept of forcing the target cell to express a receptor that can interact with the virus and allow its entry. 鈥淚t鈥檚 a little like we鈥檙e going around changing the locks on all the doors.鈥 says Kepecs, 鈥淭hey鈥檙e still locked, but now we have all the keys.鈥

The team at CSHL successfully tested the method on a variety of neural circuits in both rats and mice, and showed that their method successfully reconstructed circuits that were lost to other methods. Finally, they engineered their viruses to express tools for controlling and recording neuronal activity 鈥 ensuring that the magic of retrograde tracing would continue for another day.

Written by: Peter Tarr, Senior Science Writer | [email protected] | 516-367-8455


Funding

National Science Foundation (EAGER grant); National Institutes of Health

Citation

Li, S-J et al, 鈥淎 viral receptor complementation strategy to overcome CAV-2 tropism for efficient retrograde targeting of neurons鈥 is published June 6, 2018 in Neuron.

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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

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