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Summary Nervous System

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Describes the basics of the nervous system and its components

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PERF 510- Human Physiology

Ch. 5 and 49 outline

Nervous System Organization

Central NS- the brain and spinal cord, processing and control center

Peripheral NS- cranial nerves and spinal nerves, communication between CNS and rest of body

Afferent (sensory) NS- somatic and visceral nerve fibers, body → CNS

Efferent (motor) NS- motor nerve fibers, CNS → body

Somatic NS- voluntary somatic motor control, skeletal muscles

Autonomic NS- involuntary visceral motor control, cardiac and smooth muscles / glands

Parasympathetic NS- resting activity = “rest and digest”

Sympathetic NS- physical activity = “fight of flight”

Nervous Tissue Histology

Neuroglial cells = types of support cells found within nervous tissue, non-conductive

Astrocytes- star shaped, support neurons and other neuroglial cells

Secrete neurotransmitters and are involved in synapse function

Play a role in re-myelination of damaged neurons and immune response within the CNS

Gray matter = protoplasmic astrocytes and unmyelinated gray neurons

White matter = fibrous astrocytes and myelinated white neurons

Microglial Cells- phagocytic immune cells within CNS

May also play a role in protection from Tau and Amyloid proteins

Ependymal Cells- ciliated cells which line the central canal of spinal cord and ventricles of the brain

Secrete and circulate cerebrospinal fluid

Satellite Cells- flat cells which surround the cell body (soma) of neurons within PNS ganglia

Oligodendrocytes- form myelin sheath around CNS neurons

Schwann Cells- form myelin sheath around PNS neurons

Myelin is a fatty insulator which allows action
potentials to travel faster in myelinated neurons

Nodes of Ranier- small gaps in the myelin where
membrane depolarization and repolarization (an
action potential) occurs

Saltatory conduction- action potentials skips over
myelin, occurring only within Nodes of Ranier

, Neurons- specialized cells which rapidly conduct action potentials and release neurotransmitters

Unipolar- soma has a single extension which branches into an axon and a single dendrite

Bipolar- soma has 2 extensions, 1 forming an axon and 1 forming a single dendrite

Multipolar- soma has multiple extensions forming dendrites and an extension forming an axon

Parts of a typical multipolar neuron

Dendrites- short thin branches, terminal end = dendritic knob

Contain receptors for neurotransmitters = signal in

Receptors are associated with ligand gated sodium (Na) channels

Soma or Cell Body- typical, highly specialized eukaryotic cells

Nissel Bodies- vast endoplasmic reticulum needed for producing neurotransmitter molecules

Extensive Golgi Apparatus allows processing and packaging w/in vesicles (neurotransmitters)

Ligand gated Na channels → may also act as signal in

Axon Hillock- tapered end of soma which leads to the axon

Small number of ligand gated channels (serves as signal in, but less sensitive than dendrites/soma)

Axon- long cellular extension which allows rapid propagation of an action potential

Large number of voltage gated sodium and potassium channels

May be myelinated (white) or unmyelinated (gray)

Telondendria- thin, hairlike branches of the axon which lead to telondendria end bulbs (terminal boutons or
telondendria axon terminals)

These form a synapse, a small space between the telondedria and another neuron or effector cell

Vesicles w/in telondendria respond to arriving action potentials by fusing to the plasma membrane

These vesicles store neurotransmitters, which are released into the synaptic cleft

Diffusion across the cleft allows them to attach to receptors on post-synaptic membranes

Effects may be excitatory, inhibitory or both

Types of specialized neurons

Autorhythmic neurons- membranes contain Na leak channels which allow Na influx at a given rate. When
enough Na has entered the cell (threshold), an action potential will occur without outside stimulus

Summation neurons- accumulation of neurotransmitters within the synapse causes post-synaptic neuron to
undergo rapid action potentials

Temporal- the same presynaptic neurons undergoes multiple action potentials

Spatial- multiple pre-synaptic neurons converge on same synapse and each contribute

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