Some plants live in dry places. 
Some plants live in very dry lands. 
Some plants live in very dry places. They have a special way to make food. This way is called CAM photosynthesis.
Most plants open tiny holes in their leaves during the day. These holes are called stomata. But opening holes in the hot sun lets water out. This can make a plant dry up.
CAM plants do things differently. At night, they open their stomata. They take in a gas called carbon dioxide. The plant turns this gas into a sour acid. It stores this acid in tiny parts of its cells called vacuoles. 
During the day, the plant keeps its stomata shut. This helps the plant save water. The plant then moves the stored acid to other parts of the cell. There, it turns the acid back into carbon dioxide. The plant uses that gas to make food in the sunlight. 
Many cacti use this way to live. Some plants, like the pineapple, use it too. This helps them grow even when water is hard to find.
Some plants have a clever way to survive in very dry places. This special way of making food is called Crassulacean acid metabolism, or CAM for short.
CAM works like a two-part cycle that uses time to save water.
Scientists have been studying these strange plant habits for a long time. 
This way of working is very common in certain plant families. 
You can think of CAM like a grocery shopping trip. Most plants shop for food while the sun is out. But for a CAM plant, the sun is too hot to go outside. Instead, they wait until the cool night to go out and collect their supplies. They bring the carbon dioxide home and store it in the pantry, which is the vacuole. When the sun comes up, they stay safe inside and cook the food they collected earlier. This smart trick helps them stay hydrated even in the heat of the desert.
Crassulacean acid metabolism, commonly known as CAM photosynthesis, is a specialized carbon fixation pathway. This biological process evolved in various plant species as a critical adaptation to arid environments.
The mechanism of CAM relies on a precise two-part cycle involving the stomata and specialized cell structures.
Plants utilize this metabolism in several distinct ways depending on their environment. 
The history of discovering this process spans nearly two centuries of botanical research. 
The efficiency of CAM is most evident when looking at the survival statistics of desert flora. For example, over 99% of the 1,700 known species in the Cactaceae family utilize CAM. This includes almost all cacti that produce edible fruits. Standard plants can lose as much as 97% of the water they absorb through their roots due to transpiration. CAM plants avoid this massive loss by keeping their stomata closed during the hottest parts of the day. This adaptation is so successful that it has evolved convergently many times across different plant lineages. It is not a single evolutionary line but a repeated solution to the problem of aridity.
Biochemically, the process is a complex dance of enzymes and energy molecules. At night, the enzyme PEP carboxylase kinase (PEP-C kinase) phosphorylates PEP carboxylase to enhance its ability to create oxaloacetate. This oxaloacetate is then transformed into malate by the enzyme NAD+ malate dehydrogenase. During the day, the plant must manage the breakdown of this malate. Depending on the species, malate is cleaved into pyruvate and carbon dioxide by either the malic enzyme or PEP carboxykinase. The pyruvate can then be used to recover PEP through a high-energy step involving ATP, ensuring the cycle can repeat the following night.
CAM is not limited to desert landscapes; it also appears in unexpected ecosystems. Some aquatic plants, such as those in the genus *Isoetes*, use CAM to manage carbon dioxide levels. In water, carbon dioxide diffuses 10,000 times slower than it does in the air. These aquatic species capture carbon at night when competition from other photosynthetic organisms is lower. This process is most intense during summer months when competition for carbon is highest. Whether in a dry desert or a crowded pond, CAM represents a sophisticated way for life to manage its most precious resources.
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