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Catechin

physical science Maturity 5-7

Plants make a special thing.

Catechin numbered.svg
Catechin numbered.svg
It helps them stay healthy. You can find it in tea. It is also in grapes. You can find it in cocoa too. It can taste a little dry. Do you like tea?

40 words

Plants make a special thing to stay healthy.

Catechin numbered.svg
Catechin numbered.svg
It can help them fight off germs. You can find it in many foods. It is in tea and grapes. It is also in cocoa.
Biosynthesis of catechin.png
Biosynthesis of catechin.png
Some people say it can taste a little dry. This feeling is called astringent. It is found in many fruits too. You might find it in a peach.
Catechin above.PNG
Catechin above.PNG
It is a very useful part of nature.

76 words

Catechin is a special part of many plants.

Catechin numbered.svg
Catechin numbered.svg
It belongs to a group of things called flavonoids. These help plants act as antioxidants. An antioxidant is a way a plant protects itself.

Many foods have catechins in them. You can find them in tea and cacao. Grapes and peaches have them too. Cocoa has a very high amount.

Biosynthesis of catechin.png
Biosynthesis of catechin.png
Prune juice and broad bean pods also have them. They can make your mouth feel a little dry. This dry feeling is called astringent.

Plants make catechin through a long set of steps. This way of making it is called biosynthesis.

Catechin above.PNG
Catechin above.PNG
It starts with a part called L-phenylalanine. Many enzymes, which are tiny workers in the plant, help. They change the parts step by step. One enzyme is called chalcone synthase. It helps make the building blocks.

Some plants use catechin to fight neighbors. The spotted knapweed plant lets it out through its roots. This can stop other plants from growing nearby. It might even work like a tiny medicine to kill root cells. This helps the knapweed take over more space.

187 words

Catechin is a special type of plant substance called a flavan-3-ol.

Catechin numbered.svg
Catechin numbered.svg
It belongs to a larger group of things called flavonoids. These substances act as antioxidants for the plants. An antioxidant helps protect a living thing from damage. Catechin is very important because it can be a building block for other things. It helps create condensed tannins called proanthocyanidins.
Catechin above.PNG
Catechin above.PNG
These building blocks are found all over the natural world.

Plants make catechin through a long way of working called biosynthesis.

Biosynthesis of catechin.png
Biosynthesis of catechin.png
This process starts with a part called L-phenylalanine. Many tiny workers called enzymes help change this part step by step. One important enzyme is called chalcone synthase. It helps join parts together to form a new shape called chalcone. Other enzymes like chalcone isomerase and taxifolin 3-hydroxylase keep the work going. Finally, enzymes like leucoanthocyanidin reductase turn these parts into the finished catechin.

Scientists have studied these molecules for a long time. The name for this chemical family comes from catechu. This is a juice made from boiling a plant called Mimosa catechu. Researchers use special tools to look at the shape of the molecule. They use things like UV-Vis and NMR to see how it behaves. These tools help them see the different ways the molecule can twist and turn. Understanding these shapes helps us know how catechin works in nature.

You can find catechin in many foods you might eat.

Epicatechin metabolites.png
Epicatechin metabolites.png
Cocoa has a very high amount at 108 mg per 100 g. Prune juice and broad bean pods also have it. You can find it in tea, grapes, and peaches. It can also be in barley grain and vinegar. Some people say it tastes slightly astringent. This means it might make your mouth feel a little dry.
Spectre UV-vis catechine.PNG
Spectre UV-vis catechine.PNG
It is not usually bitter, though.

Catechin does more than just stay inside a plant. Some plants use it to fight their neighbors. The spotted knapweed plant lets catechin out through its roots. This can stop other plants from growing nearby. It might even act like a tiny medicine to kill root cells. This helps the knapweed take up more space in the ground. In other ways, it can help plants like strawberries fight off infections. It can even help coffee plants stay healthy by stopping diseases.

388 words

Catechin is a specific type of secondary metabolite known as a flavan-3-ol.

Catechin numbered.svg
Catechin numbered.svg
These molecules belong to a larger group of plant substances called flavonoids. In the natural world, catechins serve vital antioxidant roles for plants. An antioxidant helps protect living cells from damage. Catechin is also a fundamental building block for larger structures. It helps create condensed tannins called proanthocyanidins.
Catechin above.PNG
Catechin above.PNG

The chemical structure of catechin is quite complex. It consists of two benzene rings, labeled as the A and B rings. It also contains a dihydropyran heterocycle, which is known as the C ring. The C ring has a hydroxyl group located on carbon 3. The A ring is similar to a resorcinol moiety. The B ring is similar to a catechol moiety. Because the molecule has two chiral centers on carbons 2 and 3, it exists in four different diastereoisomers. These include two isomers in a trans configuration, called catechin, and two in a cis configuration, called epicatechin. The most common isomer is (+)-catechin. Another common version is (−)-epicatechin.

Plants create catechin through a detailed biological process called biosynthesis.

Biosynthesis of catechin.png
Biosynthesis of catechin.png
This process begins with a starter unit called 4-hydroxycinnamoyl CoA. This unit is produced from L-phenylalanine through the Shikimate pathway. First, an enzyme called phenylalanine ammonia lyase converts L-phenylalanine into cinnamic acid. Then, cinnamate 4-hydroxylase oxidizes it into 4-hydroxycinnamic acid. Next, the enzyme chalcone synthase catalyzes a condensation reaction. This joins 4-hydroxycinnamoyl CoA with three molecules of malonyl-CoA to form chalcone. Following this, chalcone isomerase transforms chalcone into naringenin. Further oxidation by flavonoid 3′-hydroxylase and flavanone 3-hydroxylase produces eriodictyol and taxifolin. Finally, enzymes like dihydroflavanol 4-reductase and leucoanthocyanidin reductase reduce taxifolin to yield catechin.

Catechin is found in many different plants and foods. It is a ubiquitous constituent of vascular plants. You can find high amounts in tea, cacao, and grapes. According to one database, cocoa contains the highest amount of catechins at 108 mg per 100 g. Prune juice contains 25 mg per 100 ml, and broad bean pods contain 16 mg per 100 g. Açaí oil also contains (+)-catechins at 67 mg/kg. In the mouth, these molecules can create a slightly astringent taste. This feeling is often described as a dryness rather than bitterness.

In the environment, catechins can act as powerful tools for plants. Some plants use a process called allelopathy to influence their neighbors. For example, the spotted knapweed plant releases catechin isomers through its roots. This may act as an antibiotic or herbicide to stop other plants from growing. One theory suggests it causes a wave of reactive oxygen species to kill target root cells. However, most European plants have defenses against this. In North America, the knapweed is an invasive weed because few plants are protected. Catechins also help protect other plants, such as strawberries, from infections. They can even help coffee plants by inhibiting certain diseases.

When humans eat catechins, their bodies must process them through metabolism.

Epicatechin metabolites.png
Epicatechin metabolites.png
Most dietary catechins are metabolized by the colonic microbiome into gamma-valerolactones and hippuric acids. These are then transformed in the liver through glucuronidation, sulfation, and methylation. Catechins are also absorbed in the jejunum of the gastrointestinal tract. The shape of the molecule, or its stereochemical configuration, affects how well it is absorbed. For instance, uptake is highest for (−)-epicatechin and lowest for (+)-catechin.

While catechins are common in diets, they can sometimes cause health issues. Catechin and its metabolites can bind to red blood cells. This may induce autoantibodies, which can lead to renal failure or haemolytic anaemia. Because of this, a drug called Catergen was withdrawn from the market in 1985. Additionally, catechins from green tea can be hepatotoxic. The European Food Safety Authority recommends not exceeding 800 mg of green tea catechins per day. Some research also suggests that eating seven cups of green tea per day might slightly reduce prostate cancer risk. Scientists are currently researching nanoparticle methods to improve how these molecules are delivered in medicine.

663 words
🖼️ Images & Media (7)
File:Catechin numbered.svg
Catechin numbered.svg
File:Catechin above.PNG
Catechin above.PNG
File:Spectre UV-vis catechine.PNG
Spectre UV-vis catechine.PNG
File:Biosynthesis_of_4-hydroxycinnamoyl-CoA.png
Biosynthesis_of_4-hydroxycinnamoyl-CoA.png
File:Biosynthesis of catechin.png
Biosynthesis of catechin.png
File:Epicatechin metabolites.png
Epicatechin metabolites.png
File:Schematic representation of (−)-epicatechin metabolism in humans as a function of time post-oral intake.jpg
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