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Phylogenetics

life science Maturity 9-11 evolution
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Scientists study how life is linked.

Clade of the fish tree of life.png
Clade of the fish tree of life.png
They look at how animals change. They use maps to see family trees. These maps show how we are all related. It helps us learn about new medicines.
Bronn tree.gif
Bronn tree.gif
Can you find a family tree?

49 words

Scientists study how all living things are linked.

Clade of the fish tree of life.png
Clade of the fish tree of life.png
They look at how animals and plants change over time. They use special maps to show these links. These maps look like family trees.
Bronn tree.gif
Bronn tree.gif
One map can show a common ancestor. This is a group that all the living things came from. Scientists use these maps to find new medicines. They look for animals with useful traits. This helps them find new ways to help people. These maps help us understand our world.

90 words

Phylogenetics is the study of how life has changed over time.

Clade of the fish tree of life.png
Clade of the fish tree of life.png
Scientists look at traits to see how living things are linked. These traits can be body parts or DNA. DNA is the code inside a cell.
Bronn tree.gif
Bronn tree.gif
Scientists use this data to make a phylogenetic tree. This is a diagram that shows how species are related. Some trees have a root. A root shows a common ancestor. This is a group that all the species on the tree came from.
Haeckel arbol bn.png
Haeckel arbol bn.png

This work helps us in many ways. It helps doctors study cancer. They can see how tumor cells change. It also helps find new medicines. Scientists look for animals with useful traits. For example, some venomous animals help make drugs. They look for related species that might have the same traits. In science courts, these tools help check DNA evidence. This can help prove if someone is innocent. Phylogenetics helps us understand the history of all life.

169 words

Phylogenetics is the study of the evolutionary history of life.

Clade of the fish tree of life.png
Clade of the fish tree of life.png
Scientists use this field to understand how different living things are related. They do this through a process called phylogenetic inference. This means they look at observable characteristics to find connections. They might look at the shape of a body, or they might look at DNA. They can also look at protein amino acid sequences. These pieces of data help them build a map of life.
GraphRepresentation.jpg
GraphRepresentation.jpg

To show these relationships, scientists create a phylogenetic tree. This is a special diagram that shows how organisms are linked. The tips of the tree represent the things being studied. These can be living animals or even fossils.

PHILYP drawgram.gif
PHILYP drawgram.gif
Some trees are called rooted trees. A rooted tree shows a common ancestor for all the groups on it. Other trees are unrooted. An unrooted tree does not show a starting point or a direction. It is more like a network of connections.
Haeckel arbol bn.png
Haeckel arbol bn.png

This science has a long and interesting history. The word phylogeny comes from Greek words meaning tribe and origin. The idea of using simple explanations goes back to Aristotle. In the 1300s, William of Ockham shared a principle called parsimony. This principle suggests we should find the simplest explanation possible. Later, in 1866, Ernst Haeckel used the term phylogeny. He had a theory called recapitulation theory. This theory suggested that an embryo's growth mirrors its ancestors. Most scientists today have rejected that specific idea.

Bronn tree.gif
Bronn tree.gif

Phylogenetics is used for many important jobs today. In medicine, it helps doctors study how cancer cells change. Scientists use whole genome sequencing to see how tumors grow. It also helps in the search for new medicines. For example, some venoms from animals are used to make drugs. Scientists look for related species that might have similar useful traits.

Accuracy increase sites per taxon.png
Accuracy increase sites per taxon.png
In forensic science, these tools help check DNA evidence in court. It can even be used to track the history of HIV genes.
WebTree.jpg
WebTree.jpg

Understanding these trees helps us organize the natural world. In the 1700s, Carolus Linnaeus created a famous system for classification. He used physical traits to group living things together. Today, scientists use biochemistry and DNA to do this work. Some scientists use a method called cladistics. This method only groups things based on shared, new traits. Others use evolutionary taxonomy to find a middle ground. This helps us see both how things are different and how they are related.

Edward Hitchcock Paleontological Chart.jpg
Edward Hitchcock Paleontological Chart.jpg

427 words

Phylogenetics is the scientific study of the evolutionary history of life.

GraphRepresentation.jpg
GraphRepresentation.jpg
It is a branch of systematics that interprets how species are related and where they originated. To do this, scientists use a process called phylogenetic inference. This involves looking at empirical data to find patterns. They examine observable characteristics, such as morphology, which refers to the physical form of an organism. They also analyze molecular data, including DNA sequences and protein amino acid sequences. By comparing these heritable traits, researchers can map out the connections between different living things.

The primary way scientists display these findings is through a phylogenetic tree.

PHILYP drawgram.gif
PHILYP drawgram.gif
This diagram depicts the hypothetical relationships among organisms. The tips of the tree represent the entities being studied, such as living taxa or fossils. Trees can be categorized as either rooted or unrooted. A rooted tree diagram identifies a hypothetical common ancestor for the taxa shown. In contrast, an unrooted tree is a network that makes no assumptions about directionality. It does not show the specific origin or the direction of character state transformations.

Different schools of taxonomy use phylogenetics in various ways to classify life. In the 1700s, Carolus Linnaeus developed a classification system based on phenotypes, or physical characteristics. Modern science often uses biochemistry and DNA to improve these classifications. Some scientists practice cladistics, which is also called phylogenetic systematics. Cladistics only recognizes groups based on shared, derived characters known as synapomorphies. Other scientists use evolutionary taxonomy to find a middle ground. They consider both the branching patterns of ancestry and the degree of difference between species. Another approach, called phenetics, focuses on overall similarity rather than evolutionary history.

Building an accurate tree requires complex mathematical models and computational methods. Scientists often use an optimality criterion to find the best tree. Common methods include parsimony, maximum likelihood (ML), and MCMC-based Bayesian inference. Parsimony is based on the principle that the simplest explanation is most likely correct. This idea traces back to Aristotle and was later refined by William of Ockham in the 14th century. In the mid-20th century, phenetic methods like Neighbor Joining were popular for building similarity trees. Today, researchers must be very careful with taxon sampling.

Accuracy increase sites per taxon.png
Accuracy increase sites per taxon.png
This is the process of selecting a specific group of organisms to represent a larger clade. If the sampling is poor, it can lead to incorrect inferences, such as long branch attraction.

The history of this field includes both major breakthroughs and rejected theories. The term "phylogeny" comes from Greek words meaning tribe and origin. In 1866, Ernst Haeckel introduced the term and proposed the recapitulation theory. He believed that the development of an embryo, or ontogeny, mirrored the evolutionary history of its ancestors. This was known as the biogenetic fundamental law. However, modern biology has rejected this theory. Scientists now know that while embryo traits can be used as data, an individual's growth does not directly replay its evolutionary past.

Phylogenetics has vital applications in modern medicine and research. In cancer research, it helps scientists study the clonal evolution of tumors. By using whole genome sequencing, they can track how cell populations change during disease progression and treatment. Because cancer cells reproduce mitotically, their evolutionary processes differ from sexually reproducing species. They show higher rates of mutation and greater heterogeneity, which means high variability among cell subclones. Phylogenetics also aids in drug discovery.

Clade of the fish tree of life.png
Clade of the fish tree of life.png
By studying venom-producing animals, scientists can find medically useful compounds. For example, venoms have helped create drugs like ACE inhibitors and Prialt (Ziconotide).

Beyond medicine, these tools are essential in forensic science and ecology. Phylogenetic analysis can assess DNA evidence used in criminal trials to help exonerate or convict individuals. In the study of infectious diseases, it is used in HIV forensics. Scientists track differences in HIV genes to determine how closely two samples are related. However, this method has limits. It can show relatedness between samples, but it cannot determine the direction of transmission or serve as the sole proof of how a virus moved between people.

WebTree.jpg
WebTree.jpg
Through these diverse uses, phylogenetics remains central to our understanding of biodiversity and the history of life on Earth.

699 words
🖼️ Images & Media (10)
File:Clade of the fish tree of life.png
Clade of the fish tree of life.png
File:Accuracy increase sites per taxon.png
Accuracy increase sites per taxon.png
File:Bronn tree.gif
Bronn tree.gif
File:Haeckel arbol bn.png
Haeckel arbol bn.png
File:Edward Hitchcock Paleontological Chart.jpg
Edward Hitchcock Paleontological Chart.jpg
File:PHILYP drawgram.gif
PHILYP drawgram.gif
File:Fig. S6. Phylogenetic subtree of P4ATPase in Fungi. Blue- Ascomycota; Red- Basidiomycota; Green- Zygomycota; Cyan- Chytridiomycota; Orange- Entomophthoromycota; Pink- Mucoromycota and Purple- Glomeromycota..jpg
Fig. S6. Phylogenetic subtree of P4ATPase...
File:WebTree.jpg
WebTree.jpg
File:GraphRepresentation.jpg
GraphRepresentation.jpg
File:A-phylogeny-of-the-Indo-European-languages-showing-several-of-the-major-groups-and-the.png
A-phylogeny-of-the-Indo-European-languages...
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