A fluid-walled microfluidic platform for human neuron microcircuits

BBSRC · United Kingdom government procurement

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December 31, 2029
Response Due
Active
Status

Opportunity Overview

Modelling human brain cells in functional circuits is essential to understand many neurological disorders. Much of what we know about brain circuits comes from studies performed in animals, and work in humans has been limited to brain imaging studies in life, or looking at post-mortem brain tissue after death. Here, we will bring together neuroscientists and engineers to develop the tools required to study circuits of living human neurons outside of the brain in the laboratory.

The striatum is a region deep within the brain responsible for correctly assimilating sensory, motor, and cognitive information to initiate and complete a "go" or "no-go" instruction to the rest of the body. To help process the vast amount of information arriving, the striatum is also regulated by neuromodulators, such as dopamine released from dopamine neurons, which fine-tune communication between neurons to ensure tasks are performed successfully. Cortical, striatal and dopamine neurons all meet at the striatum to form an important brain circuit that plays a role in regulating movement and gives rise to disorders such as Parkinson's disease when it fails.

The engineers in our team have previously constructed miniature chambers (about 3 mm wide) which can be connected together and used to grow human stem cell-derived neurons to communicate and mimic brain circuits. Uniquely, in this project we build these chambers using oil walls printed onto a glass or plastic surface, in a technique called fluid-wall microfluidics. The oil forms an unmixable, or immiscible, fluid interface with the water-based liquid used to grow the neurons, enabling the creation of micro-environments which retain their structure, prevent evaporation and allow long term studies of many months. The use of oil walls and the absence of solid plastic barriers allows direct experimental access to neurons from every angle while providing excellent visual access to study neurons with a microscope. The oil...

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Solicitation Details

Issuing agencyBBSRC
CountryUnited Kingdom
CategoryResearch Development
PublishedJanuary 01, 2025
Procurement stageActive solicitation
Response dueDecember 31, 2029
StatusOpen — accepting responses
Official sourceView original notice
Last verifiedAugust 12, 2026

Source: UK Research and Innovation (UKRI) — Open Government Licence v3.0.

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