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1/N How do neural dynamics in motor cortex interact with those in subcortical networks to flexibly control movement? I’m beyond thrilled to share our work on this problem, led by Eric Kirk @videtide1 with help from Kangjia Cai!

16,697 просмотров • 1 год назад •via X (Twitter)

Комментарии: 23

Фото профиля Britton Sauerbrei
Britton Sauerbrei1 год назад

2/N To control discrete, voluntary movements like reaching, motor cortex generates time-varying patterns of activity and sends commands to the spinal cord. Thus, muscle activity is often modeled as a function of cortical firing rates.

Фото профиля Britton Sauerbrei
Britton Sauerbrei1 год назад

3/N This approach doesn’t always work. Consider breathing, which is controlled by a medullary CPG, and is usually involuntary. During speech, voluntary commands must modulate the motor pattern. Respiratory muscle activity, then, is a function of both cortical and CPG states.

Фото профиля Britton Sauerbrei
Britton Sauerbrei1 год назад

4/N Similarly, the basic locomotor pattern in mammals is generated by a spinal CPG. Animals with cortical lesions can walk on a flat surface. Motor cortex becomes critical, however, when animals must voluntarily modify their gait to clear obstacles.

Фото профиля Britton Sauerbrei
Britton Sauerbrei1 год назад

5/N We studied cortical dynamics in a “hurdling” task for mice, which combines a spinally-generated pattern with voluntary modifications. In this task, motor cortex must transform information about obstacle proximity and locomotor phase into commands which sculpt motor output.

Фото профиля Britton Sauerbrei
Britton Sauerbrei1 год назад

6/N We performed large-scale recordings in the motor cortex of freely-moving mice during the task. The 5120-contact, 384-channel Neuropixels 2 probes were really a game-changer here, as they allowed us to record from ~250 neurons simultaneously and resolve single-trial dynamics.

Фото профиля Britton Sauerbrei
Britton Sauerbrei1 год назад

7/N Single-neuron responses were highly diverse. Some cells were phase-locked to the locomotor rhythm. Some had transient responses just before or during obstacle traversals, and others exhibited superpositions of rhythmic and transient patterns.

Фото профиля Britton Sauerbrei
Britton Sauerbrei1 год назад

8/N The transient could be synced with the motion of the contralateral limb (limb-dependent response), or with the first limb to cross the barrier (limb-independent). Surprisingly, the latter was more common. Overall, most cells were modulated by at least one task variable.

Фото профиля Britton Sauerbrei
Britton Sauerbrei1 год назад

9/N At the population level, we identified a large limb-independent transient, a large representation of locomotor phase, and a small “readout” signal with the properties of a motor command.

Фото профиля Britton Sauerbrei
Britton Sauerbrei1 год назад

10/N The limb-independent factor was synchronized more tightly with obstacle proximity than movement onset in the leading limb. Does it reflect the propagation of a sensory (e.g., vibrissal) impulse across the cortical network, or is it an abstract preparatory signal?

Фото профиля Britton Sauerbrei
Britton Sauerbrei1 год назад

11/N The signal was robust to optogenetic silencing of barrel cortex, bilateral whisker trimming, and removal of visual input. We conclude it is a motor preparatory signal abstracted from sensory information.

Фото профиля Britton Sauerbrei
Britton Sauerbrei1 год назад

12/N Are rhythmic dynamics driven by sensory feedback, or an efference copy from the CPG? The latter appears to be the case: cortical dynamics were organized into distinct subspaces for active and passive movements.

Фото профиля Britton Sauerbrei
Britton Sauerbrei1 год назад

13/N How does motor cortex transform representations of motor preparation and the locomotor rhythm into appropriate descending commands? We propose a phase-dependent gating mechanism involving a nonlinear interaction between the prep and rhythmic factors.

Фото профиля Britton Sauerbrei
Britton Sauerbrei1 год назад

14/N Overall, we think these results highlight the need to generalize models of cortical control to encompass interactions between voluntary cortical commands and motor programs orchestrated by largely independent subcortical centers.

Фото профиля Britton Sauerbrei
Britton Sauerbrei1 год назад

15/15 Thanks again to Eric Kirk for leading the charge on this project, Kangjia for contributions to analysis and infrastructure, our funders, and @CWRUSOM for supporting our work!

Фото профиля Jianing Yu
Jianing Yu1 год назад

@videtide1 figures are so beautiful!

Фото профиля Britton Sauerbrei
Britton Sauerbrei1 год назад

@videtide1 Thanks! We try to live by Tufte’s rules.

Фото профиля Jianing Yu
Jianing Yu1 год назад

@videtide1 Ha, good to know. Which one of his books do you think is the most relevant?

Фото профиля Britton Sauerbrei
Britton Sauerbrei1 год назад

@videtide1 The Visual Display of Quantitative Information is most useful as a polemical style guide, but the examples in Envisioning Information are arguably better. Also, William Cleveland's Visualizing Data is a must-have!

Фото профиля Jianing Yu
Jianing Yu1 год назад

@videtide1 Great, thank you, Britton!

Фото профиля mohit
mohit1 год назад

@videtide1 This was such a cool thread!

Фото профиля Britton Sauerbrei
Britton Sauerbrei1 год назад

@videtide1 Thanks! :)

Фото профиля Dayis
Dayis1 год назад

@videtide1 This research looks so cool! 👏 I'm wondering if similar changes in motor cortex rhythms can be observed in human studies?

Фото профиля ZombieSnowCastle
ZombieSnowCastle1 год назад

@videtide1 Hi Britton can I ask you a question about how possible it is to build a memory erasing machine?

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