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Polyphenol

physical science Maturity 11-13

Many plants make special things.

curcumin.svg
curcumin.svg
These are found in fruit and tea. They help the plant stay safe. They can even change colors. We find them in food too. Do you like eating fruit?
Raspberry ellagitannin.png
Raspberry ellagitannin.png

37 words

Plants make many special things.

curcumin.svg
curcumin.svg
These are found in many foods. You can find them in tea. They are also in berries.
Raspberry ellagitannin.png
Raspberry ellagitannin.png
These things help plants stay safe. They can stop germs from growing. They also help plants change color. Some can even stop bugs from eating them. These parts help plants grow well. They are very useful in nature.
Ellagic acid.svg
Ellagic acid.svg
It is neat to see how plants work.

73 words

Polyphenols are a large family of natural compounds. They are found in many plants.

curcumin.svg
curcumin.svg
You can find them in many foods. For example, tea and fruits have them. Some are in berries and cocoa. Even onions and apples have them.
Raspberry ellagitannin.png
Raspberry ellagitannin.png
These compounds help plants in many ways. They can act as a screen against UV light. This protects the plant from radiation. They also help plants change color. Some polyphenols stop germs from growing. Others can stop bugs from eating the plant.
Ellagic acid.svg
Ellagic acid.svg
In some woods, they help prevent rot. They are also part of how forests recycle nutrients. Polyphenols are not just in plants. They are in animals too. In insects, they help make the outer skin hard. This process is called sclerotization. People also use them for other things. Long ago, they were used as dyes for clothes. They were even used in old photography. Today, scientists think we can use them to make green plastics. This could help us use leftovers from grapes or olives.

172 words

Polyphenols are a huge family of natural compounds found in many living things.

curcumin.svg
curcumin.svg
The name comes from Ancient Greek words meaning "many" or "much." This is because these molecules have many parts called phenol units. A phenol unit is a special shape made of a ring and a hydroxyl group. These compounds are very common in the plant world. They help plants survive in their environments.
Ellagic acid.svg
Ellagic acid.svg
Plants use them as screens against UV radiation. They also help plants change color or stop germs from growing.

How these molecules work depends on their specific shape. Some are small and can move quickly through a cell. Others are huge molecules called macromolecules. Many polyphenols are made by joining smaller pieces together inside the plant. For example, some are made of many gallic acid units around a sugar core.

Raspberry ellagitannin.png
Raspberry ellagitannin.png
This makes a complex structure like raspberry ellagitannin. These molecules can also react with metal ions. This reaction can create special networks of molecules. They are also known as antioxidants because they react with oxidation.

Scientists have studied these compounds for a long time. The term "polyphenol" has been used since at least 1894. Different experts use different rules to define them. One group of experts is called the WBSSH. They define polyphenols by how they are used for tanning. Another scientist named Stéphane Quideau has a different definition. He looks at how the molecules are built from specific pathways. Some molecules, like ellagic acid, fit one definition but not the other.

There are many different types of polyphenols to know. Flavonoids are a major group that includes many common foods. You can find catechin in tea and fruits. Hesperetin is found in citrus fruits, while cyanidin is in red berries. You can also find daidzein in soybeans and quercetin in onions or apples.

Puerarin.svg
Puerarin.svg
Black tea is especially rich in these, making up 20% of its weight. In the wild, polyphenols can make up 1% to 25% of a green leaf's dry mass. They are also found in animals like insects and crustaceans.

Humans use polyphenols for many helpful tasks. In the past, people used them as dyes for clothing. For example, pomegranate peel was used in the Indian subcontinent to dye fabrics. They were also used as developers in very old photography.

Tellimagrandin II.svg
Tellimagrandin II.svg
Today, scientists want to use them as "green chemicals." They hope to turn plant leftovers into new things. This includes using grape or olive scraps to make plastics or resins. This could help us make stronger adhesives for wood boards too.

429 words

Polyphenols are a massive family of naturally occurring chemical compounds. They are found abundantly in plants and are structurally diverse. The name comes from Ancient Greek, where "poly" means many or much. The term "phenol" refers to a specific chemical structure. This structure involves an aromatic benzenoid, or phenyl, ring attached to a hydroxyl group. This hydroxyl group is a single oxygen atom bonded to a hydrogen atom.

curcumin.svg
curcumin.svg
Scientists have used the term "polyphenol" since at least 1894. These compounds are essential to many biological systems. They play roles in how plants grow and how they interact with their environment.

There are different ways to define what makes a molecule a polyphenol. One method is the White–Bate-Smith–Swain–Haslam, or WBSSH, definition. This group focuses on the structural traits of plant phenolics used in tanning, known as tannins. According to WBSSH, these are moderately water-soluble compounds. They typically have a molecular weight between 500 and 4000 Daltons. They also feature more than 12 phenolic hydroxyl groups and 5 to 7 aromatic rings per 1000 Daltons.

Ellagic acid.svg
Ellagic acid.svg
Another scientist, Stéphane Quideau, uses a different definition. He defines them as compounds derived from the shikimate/phenylpropanoid or polyketide pathways. He notes they must have more than one phenolic unit and lack nitrogen-based functions. Some molecules, like ellagic acid, fit Quideau's definition but not the WBSSH definition. However, raspberry ellagitannin meets the criteria for both.

Polyphenols can be categorized into several principal classes. These include phenolic acids, flavonoids, stilbenes, and lignans. Flavonoids are a particularly large group with many sub-types. These include flavones, flavonols, flavanols, flavanones, isoflavones, proanthocyanidins, and anthocyanins. Many of these are found in the foods we eat every day. For example, catechin is in tea and fruits. Hesperetin is found in citrus fruits. Cyanidin provides color to red fruits and berries. Daidzein is found in soybeans, and quercetin is in onions and apples.

Puerarin.svg
Puerarin.svg
Proanthocyanidins are often found in apples, grapes, and cocoa.

At a molecular level, the structure of a polyphenol determines how it behaves. Some are small molecules that can move through cell membranes easily. Others are macromolecules, which are very large molecules. Many larger polyphenols are built inside the plant from smaller units. These units can be connected by different types of chemical bonds. Hydrolyzable tannins use ester linkages to connect their parts. Nonhydrolyzable condensed tannins use more stable carbon-carbon bonds.

Theaflavin 3-gallate.svg
Theaflavin 3-gallate.svg
Many polyphenols also contain repeating units like pyrocatechol or resorcinol. This complexity allows them to serve many different functions within a living organism.

In the wild, polyphenols serve vital ecological purposes for plants. They act as UV screens to protect against ionizing radiation. They also provide coloration through plant pigments. Some polyphenols act as phytoalexins, which help prevent microbial infections. They can even act as deterrents to herbivores by changing how a plant tastes or feels. In some woods, they help preserve the wood against rot.

Raspberry ellagitannin.png
Raspberry ellagitannin.png
They can even affect other plants through allelopathic interactions. For instance, the aquatic plant Myriophyllum spicatum secretes them to interact with its surroundings. These molecules are essential for a plant's survival and its role in the forest nutrient cycle.

Scientists use many specialized tools to study these compounds. To find them, they use extraction methods with solvents like water, methanol, or ethanol. They can also use high-pressure liquid extraction or even microwave-assisted extraction. Once extracted, they use High Performance Liquid Chromatography, or HPLC, to separate the different compounds.

RP HPLC.PNG
RP HPLC.PNG
To measure how much is present, they might use volumetric titration or colorimetric measurements. Some tests, like the Folin–Ciocalteu reaction, measure total phenol content. Others, like the TEAC assay, measure antioxidant capacity. These scientific methods help us understand exactly how much of a specific polyphenol is in a sample.

Humans have used the properties of polyphenols for centuries. Historically, they were used as dyes for tanning garments and fabrics. In the Indian subcontinent, people used pomegranate peel to dye non-synthetic fabrics. In the early days of silver-based photography, pyrogallol and pyrocatechin were used as photographic developers.

Tellimagrandin II.svg
Tellimagrandin II.svg
Today, there is interest in using them as "green chemicals." Scientists want to use plant residues, like grape or olive scraps, to create renewable plastics or resins. This could also lead to new ways to make adhesives for particleboards. By turning waste into useful materials, we can use the power of polyphenols to help the environment.

727 words
🖼️ Images & Media (8)
File:Tannic acid.svg
Tannic acid.svg
File:curcumin.svg
curcumin.svg
File:Ellagic acid.svg
Ellagic acid.svg
File:Raspberry ellagitannin.png
Raspberry ellagitannin.png
File:Theaflavin 3-gallate.svg
Theaflavin 3-gallate.svg
File:Puerarin.svg
Puerarin.svg
File:Tellimagrandin II.svg
Tellimagrandin II.svg
File:RP HPLC.PNG
RP HPLC.PNG
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