Active Genetics & Molecular Biology Brain & Nervous System

Developing new molecular tools for the mapping and manipulation of neuronal circuits

In plain English

AI plain-English summary

The brain’s electrical chatter during learning, sleep, or memory recall remains largely invisible to current molecular tools. This project aims to build a new set of protein-based sensors and switches that can record which neurons fire during specific behaviours, and then write that firing history directly into the cell’s DNA. Today, neuroscientists can watch brain activity with calcium imaging or manipulate it with optogenetics, but they cannot easily link a precise pattern of neural firing to a stored memory or a learned task. The gap is technological: no existing molecular system can both detect and permanently log neuronal activity at single-cell resolution across a whole circuit. The researchers are developing three tools: calcium-activated light-producing enzymes (luciferases), light- and activity-driven transcription factors built from engineered proteases and photocontrollable proteins, and a calcium-activated CRISPR-Cas9 system. Each tool couples a neuron’s firing to a genetic readout, effectively encrypting its activity history into DNA. If successful, these tools would let scientists map the neural circuits underlying specific behaviours—such as memory retrieval or sleep regulation—with unprecedented precision. This is fundamental science. There is no immediate clinical or commercial application. But similar fundamental work on light-sensitive proteins and CRISPR has already transformed neuroscience and gene editing, respectively. A deeper understanding of how the brain encodes and stores information could eventually inform treatments for memory disorders or brain injury.

View original technical description
One of the biggest challenges of this century is to understand how the brain computes, transmits and stores information at single-cell resolution. Which neurons are active when a certain task is learned or at different stages of an organism's development? Is it possible to manipulate neurons to retrieve a particular memory? The lack of molecular technology currently hinders our understanding of the complex processes by which our brain moves from simple signals to complex tasks such as sleep or memory formation. The main goals of this research proposal are to visualise, map and manipulate the active neural circuits underlying specific behaviours and to encrypt into DNA the neuronal firing history . These fundamental questions will be addressed through the development of: Ca2+-activated luciferases, light- and activity-driven transcription factors (engineered by artificial proteases and photocontractable proteins) coupled to transcriptional readout, and Ca2+-activated CRISPR-Cas9 systems. These new molecular tools are being developed through a synergy between synthetic chemistry and powerful synthetic biology techniques such as directed evolution to optimise the performance of the different systems.

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Researchers

Mateo Sanchez (EPMC Awardee)

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Original classification

Career Development Award

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