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Dendritic calcium signals in rhesus macaque motor cortex drive an optical brain-computer interface
Eric M Trautmann1,2, Daniel J O'Shea3,4, Xulu Sun5
1Neurosciences Graduate Program, Stanford University, Stanford, CA, USA. etrautmann@gmail.com.
Nature Communications
|June 18, 2021
Summary
Researchers developed a novel two-photon imaging system to record deep brain activity in macaques, enabling a new optical brain-computer interface (oBCI) for decoding movement direction.
Area of Science:
- Neuroscience
- Biomedical Engineering
- Optical Imaging
Background:
- Calcium imaging is vital for in vivo neural population recording.
- Current methods struggle to access deep cortical layers in macaques due to light scattering.
- Understanding motor cortex function is key for advanced brain-computer interfaces (BCIs).
Purpose of the Study:
- To develop an advanced imaging system for chronic, deep-layer neuronal recording in awake, behaving macaques.
- To explore the potential of imaging dendritic calcium signals for motor control studies.
- To create and test an optical BCI (oBCI) using these signals.
Main Methods:
- Developed a chronic, motion-stabilized two-photon imaging system for macaques.
- Imaged apical dendrites to gain access to deep and superficial cortical neurons in motor cortex.
- Combined two-photon imaging with CLARITY for volumetric analysis.
- Developed an oBCI driven by recorded dendritic signals.
Main Results:
- Achieved optical access to large populations of neurons across cortical layers via dendritic imaging.
- Observed neuronal dendritic signals tuned to specific arm movement directions.
- Successfully decoded movement direction online using the oBCI.
- Verified that imaged dendrites originated from deep layer neurons, including Betz cells.
Conclusions:
- The developed system enables deep cortical neuron imaging in macaques during motor tasks.
- Apical dendritic imaging provides a viable strategy for accessing diverse neuronal populations.
- This approach facilitates the study of motor control and the development of novel BCIs.

