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Protein

life science Maturity 9-11 Vital Level 3

Proteins help our bodies work.

Protein composite.png
Protein composite.png
They do many jobs. They build our muscles. They help us grow. They are in everything we do.
Ribosome mRNA translation en.svg
Ribosome mRNA translation en.svg
Do you eat protein for lunch?

35 words

Proteins are very important.

Protein composite.png
Protein composite.png
They are made of long chains. These chains are built from tiny parts. These parts are called amino acids.
Peptide bond.jpg
Peptide bond.jpg
The chains fold into special shapes. These shapes help them do jobs. Some proteins help move things. Others help build your muscles. Some help your body react to things.
Ribosome mRNA translation en.svg
Ribosome mRNA translation en.svg
Proteins do not last forever. The body breaks them down and uses them again. This helps your body stay healthy.

80 words

Proteins are vital parts of all living things.

Protein composite.png
Protein composite.png
They help cells work and stay healthy. Proteins do many different jobs. Some act as enzymes. Enzymes help speed up chemical changes in the body. Other proteins provide structure. For example, actin and myosin help your muscles move.
Peptide bond.jpg
Peptide bond.jpg
Proteins are made of long chains. These chains are built from tiny parts called amino acids. There are 20 standard types of amino acids. These parts are joined by peptide bonds.
Peptide-Figure-Revised.png
Peptide-Figure-Revised.png
The order of these amino acids comes from your genes. This order tells the chain how to fold. A protein folds into a special 3D shape. This shape decides what the protein will do. A long chain of amino acids is called a polypeptide.
Ribosome mRNA translation en.svg
Ribosome mRNA translation en.svg
Proteins do not last forever. Cells break them down and recycle them. This is called protein turnover. In mammal cells, proteins live for about one to two days. Some can last for minutes. Others can last for years.

168 words

Proteins are huge molecules that do almost every job inside a living thing.

Protein composite.png
Protein composite.png
They are essential parts of cells and help them function properly. Some proteins act as enzymes to speed up chemical reactions. Others provide structure, like the actin and myosin that help your muscles move.
Mouse cholera antibody.png
Mouse cholera antibody.png
Proteins also help with cell signaling and immune responses. Without them, life as we know it could not work. They are truly the building blocks of life.

To understand how they work, we must look at their structure.

Peptide bond.jpg
Peptide bond.jpg
A protein starts as a long chain of small parts called amino acids. These amino acids are linked together by special connections called peptide bonds.
Peptide-Figure-Revised.png
Peptide-Figure-Revised.png
A long chain like this is called a polypeptide. The specific order of the amino acids is decided by your genes. This order causes the chain to fold into a special 3D shape. This unique shape is what allows the protein to do its specific job.

Scientists have been studying these molecules for a very long time.

KendrewMyoglobin.jpg
KendrewMyoglobin.jpg
In the 1700s, researchers like Antoine Fourcroy studied them as "albumins." Later, a Dutch chemist named Gerardus Johannes Mulder studied their chemical makeup. The Swedish chemist Jöns Jacob Berzelius gave them the name "protein" in 1838. The name comes from a Greek word meaning "primary" or "in the lead." This shows how important they are to all living things.

Many famous scientists made huge discoveries about proteins.

Ribosome mRNA translation en.svg
Ribosome mRNA translation en.svg
In 1949, Frederick Sanger sequenced the first protein, which was insulin. He later won a Nobel Prize for this great work. In 1958, Max Perutz and John Kendrew solved the first protein structures. They used a method called X-ray crystallography to see them.
Myoglobin.png
Myoglobin.png
This allowed us to see how proteins actually look in 3D. These discoveries changed how we understand biology forever.

Proteins are constantly changing inside your body.

Proteolysis scheme.svg
Proteolysis scheme.svg
They do not stay the same forever. Cells use a process called protein turnover to break them down. This means old proteins are recycled to make new ones. In mammal cells, the average lifespan is about one to two days. Some proteins might only last for minutes, while others last for years. This constant recycling keeps your cells healthy and working well.

381 words

Proteins are massive biological macromolecules that serve as the functional workhorses of living organisms.

Protein composite.png
Protein composite.png
They are essential components of cells and participate in almost every biological process. Proteins perform a vast array of roles, including catalyzing metabolic reactions and replicating DNA. They also provide structural support to cells, respond to external stimuli, and transport molecules between locations. Because they are so versatile, proteins are considered fundamental to the existence of life.
Mouse cholera antibody.png
Mouse cholera antibody.png

At the molecular level, a protein is constructed from long chains of building blocks called amino acids. These individual units are known as amino acid residues. The residues are linked together by specific chemical connections called peptide bonds.

Peptide-Figure-Revised.png
Peptide-Figure-Revised.png
A linear chain of these residues is called a polypeptide. While the terms are sometimes used interchangeably, a protein generally refers to a complete molecule in a stable shape. In contrast, a peptide usually describes a shorter chain, typically containing fewer than 20 to 30 residues.
Peptide bond.jpg
Peptide bond.jpg

The specific sequence of these amino acids is not random. Instead, the order is dictated by the nucleotide sequence of an organism's genes.

Genetic code.svg
Genetic code.svg
This genetic code generally specifies 20 standard amino acids, though some organisms can include others like selenocysteine. Once the chain is synthesized, it often undergoes post-translational modification. This process chemically alters the residues to change the protein's stability, activity, or folding. Ultimately, the specific sequence of amino acids causes the polypeptide to fold into a unique three-dimensional structure. This 3D shape is critical because it determines exactly what the protein can do.

Proteins are categorized in several ways, primarily by their sequence and their physical structure. Some scientists use the EC number system to classify enzymes based on their specific functions. Others use gene ontology to group proteins by their biochemical roles or where they are located inside a cell. Proteins can also be classified by their evolutionary similarity through sequence analysis. Many large proteins are actually made of multiple smaller parts called domains.

Domain organisation of EVH proteins.png
Domain organisation of EVH proteins.png
In a study of 170,000 proteins, researchers found that about two-thirds had at least one domain. Larger proteins, such as those with more than 600 amino acids, averaged more than five domains.

The history of protein science is a long journey of discovery. In the 1700s, researchers like Antoine Fourcroy studied these substances, often calling them "albumins." The term "protein" was actually proposed in 1838 by the Swedish chemist Jöns Jacob Berzelius. He derived the name from a Greek word meaning "primary" or "standing in front." Early chemists like Gerardus Johannes Mulder performed elemental analysis to understand their makeup. Later, in 1949, Frederick Sanger achieved a massive breakthrough by sequencing the amino acids in insulin. This proved that proteins were linear polymers rather than branched or circular shapes.

KendrewMyoglobin.jpg
KendrewMyoglobin.jpg

Advancements in technology have allowed us to see these molecules with incredible precision. In 1958, Max Perutz and John Kendrew solved the first protein structures using X-ray crystallography.

Myoglobin.png
Myoglobin.png
This method allowed scientists to map the positions of atoms within a protein. More recently, scientists have used cryo-electron microscopy, or cryo-EM, to study large molecular assemblies. Unlike X-ray crystallography, cryo-EM uses frozen samples and electron beams. This approach causes less damage to the sample and helps researchers analyze much larger structures. Today, the Protein Data Bank serves as a massive library containing hundreds of thousands of solved structures.

Inside a living cell, proteins are in a constant state of change through a process called protein turnover. Proteins do not last forever; they are eventually degraded and recycled by the cell's machinery.

Proteolysis scheme.svg
Proteolysis scheme.svg
The lifespan of a protein is measured by its half-life. In mammalian cells, the average lifespan is between one and two days. However, some proteins may only exist for a few minutes, while others can last for years. If a protein is misfolded or abnormal, the cell targets it for rapid destruction to maintain health. This continuous cycle of creation and recycling is vital for cellular function.

666 words
🖼️ Images & Media (18)
File:Myoglobin.png
Myoglobin.png
File:Peptide bond.jpg
Peptide bond.jpg
File:KendrewMyoglobin.jpg
KendrewMyoglobin.jpg
File:Peptide-Figure-Revised.png
Peptide-Figure-Revised.png
File:Mesomeric peptide bond.svg
Mesomeric peptide bond.svg
File:Ribosome mRNA translation en.svg
Ribosome mRNA translation en.svg
File:Genetic code.svg
Genetic code.svg
File:Peptide Synthesis.svg
Peptide Synthesis.svg
File:Chaperonin 1AON.png
Chaperonin 1AON.png
File:Proteinviews-1tim.png
Proteinviews-1tim.png
File:Protein composite.png
Protein composite.png
File:Domain organisation of EVH proteins.png
Domain organisation of EVH proteins.png

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