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Microevolution

life science Maturity 9-11 evolution
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Living things can change over time.

Mutation and selection diagram.svg
Mutation and selection diagram.svg
These changes happen in small groups. Some changes help them live well. These small changes help life grow. It is very cool to see. Can you find changes in nature?

40 words

Groups of living things can change.

Mutation and selection diagram.svg
Mutation and selection diagram.svg
These small changes happen in a short time.

Sometimes, tiny mistakes happen in a living thing's code. These mistakes can change how it looks.

Gene-duplication.svg
Gene-duplication.svg

Some changes help a group live better. These living things stay healthy and have babies.

Other changes happen just by chance. This can happen more in small groups.

Sometimes, new things move from one group to another. This can happen when they move to new lands.

These small changes help life grow and change.

89 words

Living things change over time. This is called microevolution. It is a set of steps that changes a group of living things.

Mutation and selection diagram.svg
Mutation and selection diagram.svg

One way change happens is through mutation. A mutation is a change in the DNA. DNA is the code inside a cell. Mistakes can happen when the code copies itself. Some mistakes might be bad for the living thing. Other mistakes might be helpful or do nothing at all.

Another way is through selection. Natural selection happens when certain traits help a living thing survive. These living things are more likely to have babies. Over time, those helpful traits become more common.

Gene-duplication.svg
Gene-duplication.svg

Change can also happen by chance. This is called genetic drift. It is when gene changes happen because of luck. This happens more often in small groups.

Random genetic drift chart.png
Random genetic drift chart.png

Finally, there is gene flow. This is when genes move between groups. It can happen when animals move to a new place. It can also happen when pollen moves on the wind. These four ways help life change and adapt.

180 words

Microevolution is a way that groups of living things change over time. This process changes the frequency of alleles, which are different versions of a gene, within a group. Scientists study this through a field called population genetics. They also use ecological genetics to watch these changes happen in the wild. Microevolution happens over a short amount of time in the history of life. It provides the raw material that leads to much larger changes called macroevolution.

Mutation and selection diagram.svg
Mutation and selection diagram.svg

There are four main ways that microevolution works. The first is mutation, which is a change in the DNA sequence of a cell. Mutations can happen from radiation, viruses, or simple errors during DNA replication. Some mutations are harmful, while others are neutral or even helpful. The second way is selection. Natural selection happens when certain traits help an organism survive and have babies. This makes those helpful traits more common in the next generation.

Gene-duplication.svg
Gene-duplication.svg

History shows us how much we have learned about these changes. Charles Darwin described natural selection in his famous 1859 book, On the Origin of Species. He used the idea of artificial selection, where humans choose traits, to explain his ideas. Later, scientists joined Darwin's ideas with the study of genetics. This new way of thinking is called the modern evolutionary synthesis. Other scientists like Ronald Fisher and Motoo Kimura also studied these processes. Kimura introduced the neutral theory of molecular evolution in 1968.

Random genetic drift chart.png
Random genetic drift chart.png

Microevolution involves many specific details and numbers. For example, DNA repair systems keep mutation rates very low. Errors might only happen once in every 10 to 100 million bases. In some flies, about 70 percent of mutations that change a protein are harmful. Genetic drift is another process that relies on random chance. This drift can cause gene variants to disappear from a group entirely. This effect is much larger in small populations than in large ones.

Gene-duplication.svg
Gene-duplication.svg

These changes link to many things we see in nature every day. You might see microevolution in bacteria that become resistant to medicine. Gene flow is another way groups change by exchanging genes. This can happen when animals migrate or when pollen travels on the wind. Sometimes, different species can even mate to create a hybrid, like a mule. However, barriers like oceans or mountains can stop this gene flow. These natural paths help shape all the life on Earth.

Random genetic drift chart.png
Random genetic drift chart.png

407 words

Microevolution is the process of change in allele frequencies within a population over time. An allele is a specific version of a gene. When the proportion of these versions changes, the population is evolving at a micro level. This process occurs over relatively short periods compared to macroevolution. Macroevolution involves larger changes, such as the sorting of interspecific variation, which is the difference between different species. Microevolution, however, deals with intraspecific variation, or differences within a single species. This process provides the essential raw material that eventually drives macroevolutionary changes. Scientists study these shifts through population genetics, which uses mathematical structures. They also use ecological genetics to observe these changes occurring in the wild.

Mutation and selection diagram.svg
Mutation and selection diagram.svg

Four distinct processes drive microevolution: mutation, selection, genetic drift, and gene flow. Mutation is a change in the DNA sequence of a cell's genome. These changes can be caused by radiation, viruses, or mutagenic chemicals. They also occur due to errors during meiosis or DNA replication. DNA replication errors happen frequently during the polymerization of the second strand. To prevent too many errors, cells use DNA polymerases for proofreading. This keeps error rates very low, often only one error in every 10 to 100 million bases. Without this proofreading, error rates could be a thousandfold higher.

Gene-duplication.svg
Gene-duplication.svg

Mutations can have various effects on an organism's phenotype, which is its observable physical traits. Some mutations are harmful, some are neutral, and some are weakly beneficial. Studies on the fly Drosophila melanogaster show that about 70 percent of mutations changing a protein are damaging. Mutations can also involve large structural changes like duplications, inversions, or deletions. Gene duplications are particularly important for evolution. They allow one gene copy to keep its original job while the other copy acquires a new function. In animal genomes, tens to hundreds of genes are duplicated every million years. This redundancy helps create novel genes through recombination or mutation.

Selection is the process where heritable traits that aid survival and reproduction become more common. Natural selection is the most dominant form of this process. It acts on the phenotype to favor individuals better suited to their environment. Over time, this can lead to adaptations and even speciation. Charles Darwin famously described this in his 1859 book, On the Origin of Species. He compared natural selection to artificial selection, where humans choose specific traits in plants and animals. The modern evolutionary synthesis was later formed by combining Darwin's ideas with molecular genetics.

Mutation and selection diagram.svg
Mutation and selection diagram.svg

Genetic drift is another mechanism that changes allele frequencies through random sampling. In any population, the alleles passed to offspring are a random sample of the parents' alleles. Unlike natural selection, genetic drift is not driven by environmental pressures or adaptive success. Changes from drift can be beneficial, neutral, or even harmful. The impact of genetic drift is much stronger in small populations than in large ones. It can cause certain gene variants to disappear entirely, reducing genetic variability. Scientists have debated its importance for decades. Motoo Kimura proposed the neutral theory of molecular evolution in 1968, suggesting drift causes most genetic changes.

Random genetic drift chart.png
Random genetic drift chart.png

Gene flow is the exchange of genes between different populations of the same species. This often happens through migration or the movement of pollen. Immigration adds new genetic material to a gene pool, while emigration removes it. Gene flow can actually slow down the process of speciation by spreading differences between populations. Physical barriers like oceans, mountains, or deserts can hinder this flow. Even man-made structures, such as the Great Wall of China, can stop plant gene flow. Sometimes, gene flow occurs between different species through hybridization. For example, horses and donkeys can mate to produce a mule.

Random genetic drift chart.png
Random genetic drift chart.png

While many hybrids are infertile because their chromosomes cannot pair up during meiosis, some are viable. These hybrids may show traits that are intermediate between their parents or possess entirely new phenotypes. Microevolutionary processes are visible in many real-world examples. A common instance is the development of antibiotic resistance in bacterial strains. This shows how quickly a population can change in response to its environment. By understanding these four processes, biologists can trace how life adapts and changes across the globe.

706 words
🖼️ Images & Media (3)
File:Gene-duplication.svg
Gene-duplication.svg
File:Mutation and selection diagram.svg
Mutation and selection diagram.svg
File:Random genetic drift chart.png
Random genetic drift chart.png
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