Adaptive immune system
Adapted from Wikipedia · Adventurer experience
The adaptive immune system is an important part of how our bodies stay healthy. It helps us fight off germs and diseases. It is one of two main ways that animals with backbones, like humans, protect themselves. Unlike the other system, called the innate immune system, the adaptive immune system can remember germs it has fought before. This helps the body respond faster if the same germ tries to infect us again.
This system uses special white blood cells called lymphocytes, mainly B cells and T cells. B cells make proteins called antibodies that can stop harmful germs. T cells help in other ways, like destroying cells that are infected. When the adaptive immune system fights a germ for the first time, it creates a memory. This means that if the same germ appears again, the body can fight it off more quickly.
Because of this memory, vaccines are possible. Vaccines are like practice for our immune system. They show the immune system what a germ looks like without making us sick, so the body can learn to fight it. This is why many people are protected from diseases like measles for their whole lives after being vaccinated or getting the illness once. The adaptive immune system is very flexible, able to recognize and fight many new germs, keeping us safe from infections.
Naming
The word "adaptive" was first used by a scientist named Robert Good in 1964. He used it to describe how the body makes special proteins called antibodies to fight off germs. Good liked this word because it suggested that the body could change to fight different germs.
Later, scientists used "adaptive" to talk about more immune responses, including some that don’t involve changing genes. Today, most books use "adaptive" to mean the same thing as "acquired" immunity. This is the body’s way of targeting and remembering germs it has fought before.
Functions
When a harmful germ gets past the body's first line of defense, the adaptive immune system helps fight it. It makes special cells that remember these germs, so the body can respond faster if they return.
The adaptive immune system has three main jobs:
- It can tell the difference between the body’s own cells and foreign germs.
- It creates responses to remove the germs or infected cells.
- It builds memory so the body remembers the germs for future protection.
In people, it usually takes about 4 to 7 days for this system to start working well against a new germ.
Main article: antigen presentation
T and B lymphocytes are special cells that help our bodies fight germs. The human body has many of these cells, and they move around in tissues and the lymphatic system, which includes the lymph nodes and spleen.
B cells and T cells come from the same basic stem cells. B cells help create substances that fight germs, while T cells directly attack infected cells. In most animals with a backbone, these cells are made in the bone marrow, and T cells then go to the thymus to grow more.
In our bodies, there are three main types of these cells: ones that have not yet met a germ, ones that are currently fighting an infection, and memory cells that remember past infections to help us faster next time.
Antigen presentation
Main article: Antigen presentation
The adaptive immune system helps the body know the difference between its own cells and harmful invaders. Our cells have special markers called "self" antigens. When immune cells find markers from outside invaders like bacteria or viruses, it starts a response.
Certain immune cells, such as dendritic cells, B-cells, and macrophages, are good at showing these foreign markers to other immune cells. They help prepare the body's defense by showing these markers using special molecules called MHC. This helps T-cells find and fight different threats.
Dendritic cells catch outside invaders, break them into pieces, and show these pieces to T-cells in special areas of the body. Inside cells, viruses and bacteria also create markers that are shown to T-cells, helping to stop infections.
T lymphocytes
Main article: T cell
CD8+ T lymphocytes and cytotoxicity
Main article: Cytotoxic T cell
Cytotoxic T cells are a special group of T cells that help the body fight infections. They can find and destroy cells that have been taken over by viruses or other harmful agents. When these cells spot an infected cell, they release special chemicals to stop the infection from spreading. After the infection is gone, some of these cells stay to help protect the body faster if the same infection returns.
Helper T-cells
Main article: T helper cell
Helper T cells are important managers of the immune system. They don’t fight infections directly but tell other immune cells what to do. When they notice a problem, they send out signals to activate other immune cells. There are different kinds of helper T cells that specialize in fighting different types of germs. Some focus on germs inside cells, while others help with germs outside cells.
Th1 and Th2: helper T cell responses
There are two main types of helper T cell responses. One type helps fight germs that live inside cells, like some viruses and bacteria. The other type helps fight germs outside cells, like certain parasites. After an infection, a few helper T cells remain to help the body respond faster if it sees the germ again.
Gamma delta T cells
Main article: Gamma delta T cell
Gamma delta T cells are another type of T cell that have unique ways of recognizing threats. They can respond quickly to certain signals from microbes or stressed cells. These cells help connect the body’s immediate defenses with its longer-term immune memory.
B lymphocytes and antibody production
Main articles: B cell and Humoral immunity
B cells help make special proteins called antibodies. These proteins travel in our blood and lymph. They help our body fight germs by recognizing and stopping them. There are different kinds of antibodies, each made to handle different types of germs.
When B cells find a germ they match, they change into cells called plasma cells. These cells make lots of antibodies. The antibodies stick to the germ, helping other immune cells find and destroy it. Some B cells become memory cells. These remember the germ so the body can fight it faster if it comes back.
Alternative systems
Main article: Adaptive immunity in jawless vertebrates
Some animals, like lampreys and hagfish, have a special way to fight off germs even though they do not have the same immune system as other animals. These animals use special molecules called variable lymphocyte receptors (VLRs) to recognize and fight germs.
Main article: CRISPR
Even small creatures like bacteria have ways to protect themselves. They use a system called CRISPR, which helps them remember and fight off viruses that try to attack them. CRISPR is part of their genetic code.
Immunological memory
Further information: Immunity (medical)
When certain cells in the body called B cells and T cells become active, some of them turn into memory cells. These memory cells remember how to fight off germs the body has faced before. If the same germ tries to infect the body again, these memory cells act quickly to defend the body. This makes the body's defense stronger and faster next time.
Babies are born with some protection from their mothers. While inside the mother, babies receive special proteins called antibodies that help fight germs. Breast milk also contains antibodies that protect babies until they can make their own. This is called passive protection because the baby’s body does not make these antibodies itself.
Active protection happens when the body learns to fight a germ after being exposed to it or through vaccines. Vaccines help the body learn to fight germs without causing sickness. They work by showing the body a small, safe part of the germ so the body can prepare its defenses. This is how vaccines help keep people healthy.
Immunological diversity
The immune system can find and stop many different germs. It does this by making special proteins called antibodies and using special cells. Even before we see a germ, our body can make lots of different antibodies. This works because our cells mix small pieces of genes to make many types of antibodies.
The immune system has two parts that help each other. The adaptive part, with B cells and T cells, needs help from the other part to work well. Together, they keep us safe from bad germs.
Acquired immunity during pregnancy
The immune system usually knows what belongs to the body and what does not. It is interesting to learn how a developing baby, which the immune system might see as "not belonging," is protected.
One reason is that the baby grows inside a special part of the mother’s body called the uterus, which the immune system does not often check. Another idea is that the baby might help calm the mother’s immune response.
More recent studies show that certain proteins in the uterus during pregnancy help control the immune response there.
In mammals that give birth to live young, certain viruses called endogenous retroviruses become active during early development. These viruses may help protect the developing baby from the mother’s immune system. They also help form a special tissue called the syncytium.
The human genome project discovered many of these viruses in our DNA.
Immune network theory
Main article: Immune network theory
Immune network theory helps explain how the adaptive immune system works. It looks at how special parts of antibodies, called idiotypes, connect with other parts that react to them, called 'anti-idiotypes'. This theory started in 1974 by Niels Jerne and Geoffrey W. Hoffmann. It helps scientists learn about diseases like HIV pathogenesis and work on making an HIV vaccine.
The immune system has two main parts: one that acts right away and another that remembers germs it has fought before. When the body first sees a germ, it uses fast, general defenses. These defenses then help the adaptive immune system get ready to fight the germ better if it comes back. For example, in places where malaria is common, children often build up strong defenses by the time they start school. These defenses help control the germs that cause malaria and keep them from getting very sick.
Evolution
The adaptive immune system came from the innate immune system. Some simple sea creatures have cells that are part of this system. Early animals could tell their own cells from foreign ones.
A special animal called amphioxus, related to all vertebrates, has many parts used in the adaptive immune system. But it does not have all the advanced features found in modern animals.
The adaptive immune system, as we know it best in mammals, first appeared in jawed fish around 500 million years ago. These fish have many of the same immune cells and molecules that we have. Their immune systems became more complex because of changes in their DNA.
Jawed fish organize their immune genes a little differently from bony fish, like mammals. This means they can make fewer variations in their immune response.
Jawless fish, another type of vertebrate, also have an adaptive immune system. It works in a different way, using special receptors to recognize foreign substances and rearrange their DNA.
Types of acquired immunity
The body can become protected from sickness in two main ways: actively or passively. Active immunity happens when a person is exposed to harmful substances and their immune system fights them off. Passive immunity happens when antibodies, special proteins that help fight sickness, are transferred from one person to another.
There are four ways this can happen, either naturally or through medical help. Natural active immunity happens when someone gets sick from a germ and then gets better. Natural passive immunity is when a mother passes antibodies to her baby through the placenta or breast milk. Artificial active immunity is achieved through vaccines, which introduce weakened or dead germs to help the body learn to fight them. Artificial passive immunity involves giving antibodies from someone else who is already protected against a disease.
| Naturally acquired | Artificially acquired |
|---|---|
| Active – Antigen enters the body naturally | Active – Antigens are introduced in vaccines. |
| Passive – Antibodies pass from mother to fetus via placenta or infant via the mother's milk. | Passive – Preformed antibodies in immune serum are introduced by injection. |
Related articles
This article is a child-friendly adaptation of the Wikipedia article on Adaptive immune system, available under CC BY-SA 4.0.
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