Tiny changes happen in living things. 

Tiny changes happen inside living things. 

A mutation is a change in the DNA of a living thing. DNA is the code that tells a cell how to work.
These changes happen for different reasons. Errors can occur when a cell copies its DNA. Damage can also happen from things like chemicals or radiation. 
Mutations can have different effects. Many mutations have no effect at all. Some can be harmful. However, some mutations are beneficial, which means they help. A butterfly might get a new color that helps it hide. 
A mutation is a change in the DNA sequence of a living thing. DNA acts like a set of instructions for cells, viruses, or other tiny life forms.
Mutations happen through several different steps in a cell. One way is through errors during replication, which is when a cell copies its DNA. 
Scientists have studied how these changes occur for a long time. They have discovered that mutations are not always just random accidents. Some research suggests that certain organisms can actually use mutation as a tool. They might increase mutations when they are under stress to help them adapt. In 2007, a study on fruit flies showed how most changes to proteins are actually harmful. This study estimated that about 70% of these changes have damaging effects. The rest are either neutral or slightly helpful to the fly.
There are many specific numbers and facts about how mutations work. In humans, oxidative DNA damage happens about 10,000 times every single day in each cell. 
Mutations link to the way all life changes over time. For example, a butterfly might be born with a new color due to a mutation. 
A mutation is an alteration in the nucleic acid sequence of a genome. A genome is the complete set of genetic instructions for an organism, a virus, or extrachromosomal DNA.
Mutations occur through several distinct biological mechanisms. One primary cause is errors during DNA replication, the process where a cell copies its genetic code. 
There are different scales of mutation, ranging from single bases to entire chromosomes. Small-scale mutations involve changes to the base sequence. These include substitutions, where one base is replaced, or insertions and deletions, where segments are added or lost.
Mutations can be categorized by their cause into four main classes. The first class includes spontaneous mutations, which occur naturally even in healthy cells. These can result from tautomerism, where a hydrogen atom repositions and changes base pairing. Other spontaneous types include depurination, the loss of a purine base, and deamination, where a base is chemically altered. A second class involves error-prone replication bypass, also called translesion synthesis. This happens when a cell attempts to replicate DNA past existing damage. In yeast, over 60% of spontaneous single base substitutions are caused by this process. The third class includes errors introduced during DNA repair mechanisms. The fourth class consists of induced mutations. These are caused by external mutagens, such as chemicals or radiation.
Chemical mutagens can include substances like hydroxylamine or alkylating agents. These can mutate DNA during or after replication. Radiation is another powerful inducer of mutation. Ultraviolet (UV) light can cause adjacent bases to become covalently joined, forming a pyrimidine dimer. Ionizing radiation, such as gamma radiation, can also cause mutations that may lead to cell death or cancer. 
Research has provided specific data regarding the frequency and impact of these changes. A 2007 study on Drosophila suggested that most mutations changing a protein are harmful. It estimated that 70% of amino acid polymorphisms have damaging effects. In humans, oxidative DNA damage occurs approximately 10,000 times per cell per day. Rats experience this about 100,000 times per cell per day. A 2017 study found that 66% of cancer-causing mutations are random. About 29% are due to environmental factors, and 5% are inherited. On average, humans pass 60 new mutations to their children. Fathers pass more mutations as they age, adding about two new mutations per year of age.
Mutations play a vital role in the broader systems of life and evolution. They contribute to the development of the immune system through junctional diversity. They are also central to the process of evolution. 
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