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Thermus aquaticus

life science Maturity 11-13

Some tiny life lives in hot water.

A032, Yellowstone National Park, Wyoming, USA, hot springs, 2001.jpg
A032, Yellowstone National Park, Wyoming, USA, hot springs, 2001.jpg
It lives in hot springs. It can live in very high heat. This helps us learn about our bodies. It is a tiny wonder! Can you find a hot spring?

46 words

Some tiny life lives in hot water.

A032, Yellowstone National Park, Wyoming, USA, hot springs, 2001.jpg
A032, Yellowstone National Park, Wyoming, USA, hot springs, 2001.jpg

This life was found in Yellowstone National Park. It lives in hot springs. The water is very hot there.

This tiny life can live in high heat. It can even grow in very hot places. It can be shaped like a rod.

It can also look like long strings. Some parts can look yellow or pink. This happens when there is sunlight.

This life helps us study our bodies. It has a special part that helps us see DNA. It is a tiny wonder!

100 words

Some tiny life lives in very hot water. We call these life forms thermophiles. This name means they love heat.

A032, Yellowstone National Park, Wyoming, USA, hot springs, 2001.jpg
A032, Yellowstone National Park, Wyoming, USA, hot springs, 2001.jpg

In 1969, Thomas Brock and Hudson Freeze found a new kind. They named it *Thermus aquaticus*. They found it in Mushroom Spring in Yellowstone National Park. This bacterium grows best at 70°C. It can still live in water that is 95°C.

These tiny life forms can have many shapes. Some look like small rods. Others look like long strings. In the sunlight, they can look yellow, pink, or red.

A032, Yellowstone National Park, Wyoming, USA, hot springs, 2001.jpg
A032, Yellowstone National Park, Wyoming, USA, hot springs, 2001.jpg

This bacterium is famous for a special part. It has an enzyme called Taq DNA polymerase. An enzyme is a part that helps make changes in cells. This enzyme does not break in high heat.

Kary Mullis used this enzyme to make PCR. PCR is a way to make many copies of DNA. This helped doctors study genes. It also helped with medical tests. This work won Mullis a Nobel Prize in 1993.

180 words

Thermus aquaticus is a special kind of bacteria. Its name means "hot water" in Latin. This tiny living thing is a thermophile. That means it loves to live in very hot places. It belongs to a group called Deinococcota. Most living things cannot survive in extreme heat. However, this bacterium thrives in hot springs. It is a very important part of science today.

A032, Yellowstone National Park, Wyoming, USA, hot springs, 2001.jpg
A032, Yellowstone National Park, Wyoming, USA, hot springs, 2001.jpg

This bacterium has a very interesting way it works. It is a chemotroph. This means it makes its own food through chemosynthesis. It also hunts for protein in its environment. It uses special proteins to move amino acids across its membrane. Sometimes, it lives near tiny plants that use sunlight. It can even get energy from their photosynthesis. It grows best at 70°C. It can still survive in water that is 95°C.

A032, Yellowstone National Park, Wyoming, USA, hot springs, 2001.jpg
A032, Yellowstone National Park, Wyoming, USA, hot springs, 2001.jpg

Scientists first found this bacterium in 1969. Thomas D. Brock and Hudson Freeze discovered it. They were from Indiana University. They found it in Mushroom Spring. This spring is in the Lower Geyser Basin of Yellowstone National Park. It is near the Great Fountain Geyser. Later, Kary Mullis used it for big discoveries. He worked at Cetus Corporation. His work on DNA won a Nobel Prize in 1993.

A032, Yellowstone National Park, Wyoming, USA, hot springs, 2001.jpg
A032, Yellowstone National Park, Wyoming, USA, hot springs, 2001.jpg

Thermus aquaticus is famous for a special enzyme. An enzyme is a part that helps chemical changes happen. This one is called Taq DNA polymerase. Most enzymes break when they get too hot. But Taq DNA polymerase is thermostable. This means it stays strong in high heat. Kary Mullis used it to create PCR. PCR is a way to make many copies of DNA. This helped doctors study genetics and medicine.

A032, Yellowstone National Park, Wyoming, USA, hot springs, 2001.jpg
A032, Yellowstone National Park, Wyoming, USA, hot springs, 2001.jpg

The bacteria can look many different ways. Some are shaped like small rods. These rods often stick together in groups. Other bacteria look like long filaments. These can be over 200 μm long. In the sunlight, they can look yellow, pink, or red. This makes the hot springs look very colorful. These tiny shapes help us understand how life works in extreme places.

A032, Yellowstone National Park, Wyoming, USA, hot springs, 2001.jpg
A032, Yellowstone National Park, Wyoming, USA, hot springs, 2001.jpg

382 words

Thermus aquaticus is a remarkable species of bacteria that thrives in extreme heat. Its name translates from Latin as "hot water." This organism is a thermophile, meaning it is specially adapted to live in very high temperatures. It belongs to a biological group known as the Deinococcota phylum. While most life forms would perish in boiling water, this bacterium finds such environments ideal. It is most famous for providing a critical tool used in modern molecular biology. Specifically, it is the source of a heat-resistant enzyme called Taq DNA polymerase. This enzyme changed how scientists study life by making DNA research much faster and more efficient.

A032, Yellowstone National Park, Wyoming, USA, hot springs, 2001.jpg
A032, Yellowstone National Park, Wyoming, USA, hot springs, 2001.jpg

To understand how this bacterium survives, we must look at its unique metabolism. Thermus aquaticus is a chemotroph, which means it uses chemosynthesis to produce its own food. It also functions as a scavenger by seeking out proteins in its surroundings. To do this, it uses many specialized proteins called proteases and peptidases. It also possesses transport proteins that move amino acids and small peptides across its cell membrane. Interestingly, its temperature range often overlaps with photosynthetic cyanobacteria. Because of this, it sometimes lives alongside these tiny organisms to obtain energy from their photosynthesis. While it usually respires aerobically, a specific strain called Y51MC23 can actually grow without oxygen.

A032, Yellowstone National Park, Wyoming, USA, hot springs, 2001.jpg
A032, Yellowstone National Park, Wyoming, USA, hot springs, 2001.jpg

The physical appearance of Thermus aquaticus can change depending on its environment. It often takes a cylindrical or rod shape. These rods are usually between 0.5 μm and 0.8 μm in diameter. Some rods are shorter, measuring 5 μm to 10 μm in length. In other cultures, the bacteria can grow into very long filaments. These filaments can sometimes exceed 200 μm in length. The rod-shaped bacteria have a tendency to cluster together in groups. These clusters can form spherical structures called rotund bodies. These bodies are made from a remodeled peptidoglycan cell wall. Scientists believe these bodies might help the colony store food or nucleotides.

A032, Yellowstone National Park, Wyoming, USA, hot springs, 2001.jpg
A032, Yellowstone National Park, Wyoming, USA, hot springs, 2001.jpg

In the 1960s, scientists believed that life could not survive in temperatures above a certain limit. However, research in the hot springs of Yellowstone National Park proved them wrong. In 1969, Thomas D. Brock and Hudson Freeze from Indiana University discovered a new species. They named it Thermus aquaticus after isolating it from Mushroom Spring. This spring is located in the Lower Geyser Basin near the Great Fountain Geyser. This discovery showed that life could thrive in much harsher conditions than previously thought. It opened a new door for studying extremophiles, which are organisms that love extreme environments.

A032, Yellowstone National Park, Wyoming, USA, hot springs, 2001.jpg
A032, Yellowstone National Park, Wyoming, USA, hot springs, 2001.jpg

The most significant scientific breakthrough came from the enzymes found within this bacterium. In 1976, scientists isolated Taq DNA polymerase. Most enzymes break down or "denature" when they get too hot. However, Taq DNA polymerase is thermostable, meaning it stays active in high heat. It works best at 72°C and can survive temperatures as high as 95°C. This stability was vital for the invention of the Polymerase Chain Reaction, or PCR. PCR is a technique used to amplify, or make many copies of, short segments of DNA. This process revolutionized medical diagnostics and the field of genetics.

A032, Yellowstone National Park, Wyoming, USA, hot springs, 2001.jpg
A032, Yellowstone National Park, Wyoming, USA, hot springs, 2001.jpg

The commercial success of PCR led to massive financial shifts in the scientific world. Biochemist Kary Mullis developed the PCR technique while working at Cetus Corporation. For this discovery, Mullis was awarded a Nobel Prize in Chemistry in 1993. While Cetus originally gave him a $10,000 award, the company later sold the PCR patent to Roche. This sale was worth $300 million, which left Mullis feeling cheated. The economic impact of this tiny bacterium is enormous. By 2022, annual sales related to PCR reached $5.4 billion. This demonstrates how a single microscopic organism can drive a multi-billion dollar industry.

A032, Yellowstone National Park, Wyoming, USA, hot springs, 2001.jpg
A032, Yellowstone National Park, Wyoming, USA, hot springs, 2001.jpg

Despite these massive profits, the discovery has also sparked legal and ethical debates. The original samples were taken from Yellowstone National Park and stored in public repositories. When companies began making huge profits from these samples, the National Park Service called it the "Great Taq Rip-off." This is because the park and the state of Wyoming did not receive any share of the revenue. Today, the situation has changed for researchers. Scientists working in National Parks must now sign "benefits sharing" agreements. These agreements ensure that a portion of future profits can be sent back to the Park Service. This connects the world of biotechnology directly to the conservation of natural habitats.

781 words
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