Plants have many bright colors. 
Plants have many bright colors. 
Many plants have bright colors. These colors come from things called anthocyanidins. 
These colors can change. The color depends on pH. pH is a way to measure how acidic a liquid is. When the pH is low, the colors stay. When the pH is high, the color can go away. The color can change from red to purple. It can also turn blue or bluish green.
There are many types of these pigments. At least 31 have been found in living things. Three types are very common. Cyanidin makes up 30 percent. Delphinidin makes up 22 percent. Pelargonidin makes up 18 percent. 
Many living things have bright colors. These colors often come from plant pigments called anthocyanidins. 
How these colors work is very interesting. Anthocyanidins are based on something called a flavylium cation. This is a type of ion with a positive charge. This charge can move around the molecule. The color we see depends on the pH of the area. pH is a way to measure how acidic or basic a liquid is. At a low pH, the colors are bright and stable. At a high pH, the color can disappear. In basic conditions, they turn into colorless chalcones.
Scientists have found many different kinds of these pigments. At least 31 different types have been identified in living things. Most of these are the main parts of anthocyanins. Some types are very common in nature. For example, cyanidin makes up 30 percent of plant anthocyanins. Delphinidin makes up 22 percent of them. Pelargonidin makes up 18 percent.
There are also rare types of these pigments. About 3 percent are called 3-desoxyanthocyanidins. These lack a specific group on a carbon atom. Another small group is called 6-hydroxyanthocyanidins. Scientists found a new one called riccionidin A. It was found in a liverwort named Ricciocarpos natans. This pigment has a visible spectrum at 494 nm. 
These pigments help us understand the world around us. They change color from red through purple and blue. They can even look bluish green. Because they change with pH, they can act as indicators. This means they show us if something is acidic or basic. You can see these changes in your own garden. A rose or a cabbage shows these science rules in action. Nature uses these colors in many amazing ways.
Anthocyanidins are a vital class of plant pigments found in nature. They serve as the aglycones, or the core non-sugar parts, of larger molecules called anthocyanins.
At a molecular level, anthocyanidins are based on the flavylium cation. This is a specific type of oxonium ion that carries a positive charge. 
The color of an anthocyanidin is not fixed; it changes based on the pH of its surroundings. pH is a measurement of how acidic or basic a substance is. In acidic conditions, which have a low pH, the colored forms of anthocyanidins are stable and visible. However, as the pH increases toward basic conditions, the pigments change. At a higher pH, the molecules transform into colorless chalcones. This means the bright reds, purples, and blues can disappear entirely. As the pH shifts, the visible color typically moves from red through purple, blue, and even bluish green.
Scientists have identified at least 31 different monomeric anthocyanidins in living organisms. Many of these are classified by the specific chemical groups attached to the core structure. For example, 3-deoxyanthocyanidins, such as luteolinidin, are a class that lacks an hydroxyl group on carbon 3. There are also methylated anthocyanidins, which include types like peonidin, malvidin, and petunidin. These three specific types make up about 20% of all anthocyanins. Other rare groups include methylated anthocyanidins and 6-hydroxyanthocyanidins, which each make up only about 3% and 2% of the total, respectively.
In the natural world, certain anthocyanidins are much more common than others. Cyanidin is the most frequent, making up 30% of plant anthocyanins. Delphinidin follows at 22%, and pelargonidin accounts for 18%. These three pigments are the primary drivers of color in much of the plant kingdom. The specific arrangement of atoms, such as hydrogen or methoxy groups, determines which of the many identified types a plant will produce. This variety allows for the massive spectrum of colors seen in different species.
Recent discoveries have expanded our understanding of these pigments in simpler plants. In bryophytes, which are non-vascular plants, anthocyanins are often based on 3-desoxyanthocyanidins located in the cell walls. Researchers recently isolated a new anthocyanidin called riccionidin A from the liverwort Ricciocarpos natans. This molecule is likely derived from 6,7,2′,4′,6′-pentahydroxyflavylium through a process called ring closure. It has a visible spectrum of 494 nm in methanolic HCl. It was found alongside riccionidin B, which may consist of two riccionidin A molecules linked at the 3′- or 5′-positions. These pigments have also been detected in other liverworts like Marchantia polymorpha.
Because of their sensitivity to pH, anthocyanidins are more than just beautiful colors. They function as natural pH indicators. This means they can signal the chemical state of their environment through color changes. This connection between chemistry and biology makes them important subjects in both botany and biochemistry. By studying how these molecules move charges and react to acidity, scientists can better understand how plants interact with their world.
🖼️ Images & Media (3)
More to explore
✨ What else?
Related topics you might enjoy
What is Nepedia?
A free, ad-free encyclopedia for children. Every article is written at five reading levels, so the same page works for a five-year-old and a fifteen-year-old — use the level switcher above to see this one change. No account needed to read.