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Sympathetic nervous system

life science Maturity 11-13

Your body has a special way to act.

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Sympathetic Nervous System.jpg
It helps you get ready to move. It can make your heart beat fast. This helps you when you need to run. It keeps you safe and strong. Do you feel your heart beat fast sometimes?

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Your body has a special way to act.

Sympathetic Nervous System.jpg
Sympathetic Nervous System.jpg
It helps you get ready to move. This is called the fight or flight response. It happens when you need to run or stay safe.

This system works in many ways. It can make your heart beat fast. It can also make you sweat. It can even make your eyes get wider.

It moves blood to where you need it. This helps your muscles work hard. It also helps you breathe better. It keeps your body ready for action.

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It is a very busy system!

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Your body has a system that helps you stay safe. This is called the sympathetic nervous system.

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Sympathetic Nervous System.jpg
It is part of the autonomic nervous system. This system controls things your body does without you thinking. One big job is the fight or flight response. This helps you get ready to fight or run away.
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This system uses special cells called neurons to send messages. The first cells are preganglionic neurons. They are short and start in your spinal cord. They send a message to a small group of cells called a ganglion. These are like stations where messages change hands. Then, long postganglionic neurons carry the message to your organs.

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These messages cause many changes. Your heart beats faster and harder. Your lungs open up to help you breathe. Your eyes get wider to see more. The system also moves blood to your muscles. It does this by narrowing blood vessels in your skin and gut. This sends more power to the parts of your body that need it most.

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Your body has a special way to handle stress. This is called the sympathetic nervous system. It is one of three parts of the autonomic nervous system. This system manages actions you do without thinking. The most famous job is the fight or flight response. This helps you prepare to fight or run away.

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Sympathetic Nervous System.jpg
It also works all the time to keep your body steady. This steady state is called homeostasis.
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Messages move through this system using two kinds of neurons. The first are called preganglionic neurons. These are short cells that start in your spinal cord. They start at the T1 level and go down to the L2 or L3 level. These cells send a message to a station called a ganglion. At this station, the message jumps to a second cell. This second cell is the postganglionic neuron.

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These long neurons carry the message to your organs.

How the message travels is very interesting. The first cell releases a chemical called acetylcholine. This chemical wakes up the second cell in the ganglion. Then, the second cell releases a chemical called norepinephrine. This chemical travels to your target tissues. Most tissues have special spots called adrenergic receptors. When the chemical hits these receptors, your body reacts.

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Some parts, like sweat glands, use different chemicals to work.

This system can change many things at once. It can make your heart beat faster and harder. It can also make your pupils get wider. Your lungs open up to let in more air. To help you move, it moves blood to your muscles. It does this by narrowing vessels in your skin and gut.

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Sympathetic Nervous System.jpg
This sends more blood to the parts you need for action. This is called the sympatho-adrenal response.

Your adrenal glands help this process too. These glands act like a special part of the system. They release a chemical called epinephrine, or adrenaline. This travels through your blood to help your body react. The system also helps control your body temperature. It even helps manage your immune system.

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Understanding this system helps us see how our bodies stay ready for anything.

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The sympathetic nervous system (SNS) is a vital division of the autonomic nervous system. This system regulates many of the body's unconscious actions. It works alongside the parasympathetic and enteric nervous systems to maintain balance. The SNS is often described as being antagonistic to the parasympathetic nervous system. While the parasympathetic system handles "rest-and-digest" functions, the SNS manages the "fight or flight" response.

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Even when you are not in danger, the SNS is constantly active. It works at a basic level to maintain homeostasis, which is the body's steady internal state. It plays major roles in regulating blood glucose, body temperature, cardiac output, and immune function.

To send signals, the sympathetic system uses two distinct types of neurons. The first type is the preganglionic neuron. These are relatively short cells that originate in the thoracolumbar division of the spinal cord. This specific area spans from the T1 level to the L2 or L3 vertebrae.

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These neurons travel to a structure called a ganglion. A ganglion is a collection of nerve cell bodies that acts as a relay station. At the synapse, or the gap between cells, the preganglionic neuron releases a neurotransmitter called acetylcholine. This chemical activates nicotinic acetylcholine receptors on the next cell in the chain.

The second type of neuron is the postganglionic neuron. These neurons begin in the ganglion and extend long distances to reach target tissues. Once activated by acetylcholine, the postganglionic neuron releases norepinephrine. This chemical then binds to adrenergic receptors on the target organ or tissue. This binding causes the physiological changes we associate with the sympathetic response.

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There are a few notable exceptions to this chemical pattern. For example, postganglionic neurons for sweat glands release acetylcholine instead of norepinephrine. However, in the palms and soles of the feet, they release norepinephrine to act on adrenergic receptors.

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The organization of these nerves follows a specific path from the spinal cord. The axons leave the spinal cord through the anterior root. They pass through white rami connectors, which are named for the shiny white myelin sheaths around the axons. These connectors lead the nerves to either paravertebral ganglia or prevertebral ganglia. Paravertebral ganglia sit near the vertebral column. Prevertebral ganglia are located near the aortic bifurcation. This arrangement allows the system to reach almost every organ system in the body.

A unique part of this system involves the adrenal medulla, which is located in the suprarenal glands. The adrenal medulla acts like a modified sympathetic ganglion. Instead of a long postganglionic neuron, preganglionic neurons synapse directly with chromaffin cells in the gland. When stimulated, these cells release neurotransmitters directly into the bloodstream. They release a small amount of norepinephrine, but they primarily release epinephrine, also known as adrenaline. This release of epinephrine is a distinguishing feature of these specialized cells.

The effects of the sympathetic nervous system are widespread and rapid. During a sympatho-adrenal response, the system primes the body for intense physical activity. It can increase heart rate and the force of cardiac contractions. It dilates the bronchioles in the lungs to allow more oxygen into the body. It also causes pupillary dilation and perspiration.

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Sympathetic Nervous System.jpg
To ensure muscles have enough energy, the SNS causes vasoconstriction in the skin and digestive tract. This shunts blood away from non-essential organs and toward the skeletal muscles and brain. In the muscles, the presence of beta-2 adrenergic receptors helps dilate blood vessels to increase flow.

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This complex system of nerves and chemicals ensures survival during stress. By coordinating the heart, lungs, and blood vessels, the SNS prepares the body to act. It also manages internal signals through general visceral afferent fibers. These fibers carry sensory information from the internal organs back to the central nervous system. Understanding the sympathetic nervous system helps scientists understand how the body manages everything from sudden danger to daily biological stability.

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