A collection of fragments of understanding in the pursuit of deeper questions.
Spinal Cord Circuitry Motor Unit 1
Gray Matter Gray matter can be found in the inner part of the spinal cord. It presents a localized representation of the different limbs in the spinal cord.
White Matter It presents two different pathways:
Spinal Cord Reflex ARC For reflexes, there is a loop directly within the spinal cord (does not go all the way up to the CNS). The dorsal root of the spinal cord receives sensory signals from Golgi tendons (muscle stretch sensor) and directly projects to the ventral root, which through gamma and alpha motoneurons induce muscle movements.
Central Pattern Generator (CPG) This is some kind of circuitry between the right and left side of the spinal cord which induces the ability to do some movements that involve both sides of the body (e.g., walking or swimming). Flexing and extending muscles alternatively on both sides through excitation and inhibition via interneurons.
Dermatomes Dermatomes are areas of skin that connect to a specific nerve root of the spine. There are 31 pairs of spinal nerves, forming nerve roots that branch from the spinal cord. Spinal nerves are named and grouped by the region of the spine that they are associated with (cervical nerves, thoracic nerves, lumbar nerves, sacral nerves, coccygeal nerves). There is some redundancy transmitted to the dorsal root of the spinal cord. There is essentially some re-bundling of skin nerves together and they are overlapping. Nerve fibers of the skin are rebundled and mixed together and sent to spinal cord. Because if one of the dorsal roots is damaged (accident/tumor), then you have redundancy, which allow to avoid losing all the sensation in that area.
Modality Segregation It is the basic principle of organization of the somatosensory system. Information from each class of receptors reaches a different group of neurons in the CNS and these neurons project to higher levels along segregated "parallel" pathways. This segregation begins with the place of termination of different classes of afferent axon in the spinal cord. It continues with two major ascending pathways:
The Dorsal Column - Medial Lemniscal Pathway
Things to Note About Dorsal Column - Medial Lemniscal Pathway
The Spino - Thalamic Pathway
The Trigeminal System
The Somatosensory Thalamus
Thalamo-Cortical circuit It is a neural pathway that connects the thalamus, a relay station in the brain, with the cortex. In this circuit, sensory information from the body is transmitted to the thalamus, which processes and filters the information and then sends it to the relevant regions of the cortex for further processing. The cortex, in turn, sends feedback to the thalamus to regulate the flow of incoming information. This loop allows for the integration of sensory information and the generation of conscious perception and action.
Cortical Association Areas These areas represent the high-level processing in the cortex, which take care of communicating between sensory cortex processing and motor processing. The corpus callosum connects the two brain hemispheres integrating both parts of the body. The association areas can be found in the posterior parietal cortex, anterior parietal cortex, temporal association cortex etc... A major role in the process of integrating multisensory information is played by interneurons.
Motor System Corticospinal Pathway
A Hierarchy of Motor Areas
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Representation of Movements in M1 Single unit activity upon arm movements in different directions. There exist some kind of population vector representation of neurons in M1. If we have to move an arm in a specific direction, we have specific neurons that fire a lot and others that do not fire at all. In general, all neurons have some preferred direction and certain strength to a specific angle. This means that, for example, a neuron will fire maximally for movement of right arm at 90 degrees, and decreases gradually in response for 80/100 degrees, 70/110 degrees, and so on.
Inputs to the Basal Ganglia Basal ganglia receives widespread input from cortical areas. It integrates inputs from motor and sensory areas. It presents some topographic organization and shows both divergence and convergence. In the case of divergence, information from many neurons in the cortex projects to a smaller number of neurons in the basal ganglia, allowing for integration and processing of information from many sources. In the case of convergence, information from a single neuron in the basal ganglia projects to many neurons in the thalamus and cortex, distributing the processed information to multiple targets. This processing of information by the basal ganglia contributes to the regulation of movement and the selection of appropriate motor response.
The cortico-basal ganglia-thalamic network refers to a group of interconnected brain regions that play a critical role in motor control, attention and decision-making. The network consists of the cortex, the basal ganglia (group of subcortical nuclei including caudate-putamen and globus pallidus) and the thalamus. In this network, the information flows from the cortex to the basal ganglia, where it is processed and integrated with other information. The processed information then flows to the thalamus, which distributes it to different areas of the cortex.
Basal Ganglia Loops and Non-Motor Brain Functions
Organization of the Cerebellum
Motor Coordination by Cerebellum and Basal Ganglia
The cerebellum and basal ganglia play complementary roles in motor coordination and are intricately interconnected. The cerebellum is involved in fine-tuning of movements, ensuring that they are accurate, smooth and coordinated. It does this by receiving sensory information about limb position and movement using that information to adjust motor output from the cortex. The cerebellum also helps to learn and store motor skills and habits, allowing for automatic and efficient movements. The basal ganglia are involved in the selection and initiation of movements. They receive input from the cortex and other brain regions, process that information, and then output signals that either facilitate or inhibit movement. The basal ganglia plays a critical role in controlling voluntary movement. The relationship between the cerebellum and basal ganglia can be thought of as a feedback loop. The basal ganglia select and initiate movements, while the cerebellum fine-tunes and modulates those movements based on sensory information. This interaction allows for smooth and coordinated execution of movements.
Formatio Reticularis (Reticular Formation) It is a complex network of nerve cells that is found throughout the brainstem and is involved (among many functions) in the control of movements and maintaining posture by integrating sensory information about the body's position in space.
Descending Brainstem Pathways
Connectivity of Descending Pathways