Log in Sign up
Back to Discover
🧬

Proteasome

life science Maturity 11-13

Tiny parts in your body work hard.

Proteaosome 1fnt side.png
Proteaosome 1fnt side.png
They clean up old bits. They break things down into food. This helps you stay healthy.
Proteaosome 1fnt top.png
Proteaosome 1fnt top.png
It is like a little recycling machine. Do you like to recycle?

41 words

Tiny parts in your body work hard.

Proteaosome 1fnt side.png
Proteaosome 1fnt side.png
They clean up old bits. They break things down into food. This helps you stay healthy.
Proteaosome 1fnt top.png
Proteaosome 1fnt top.png

These parts act like a recycling machine. First, a tiny tag is put on a bit that needs to go. This tag tells the machine to start working.

The machine has a hollow center. It pulls the old bit inside. Then, it breaks the bit into tiny pieces. These pieces can be used to make new things.

This helps the cell stay clean and strong.

94 words

Your cells have a way to clean up old parts. This way uses a machine called a proteasome.

Proteaosome 1fnt side.png
Proteaosome 1fnt side.png
It helps the cell stay healthy and strong.

First, the cell must mark a protein for destruction. It uses a small protein called ubiquitin as a tag.

Ubiquitin cartoon.png
Ubiquitin cartoon.png
Once a protein has many ubiquitin tags, it is ready. The machine sees these tags and grabs the protein.

A proteasome has two main parts. The core is a hollow tube made of four rings.

1G0U subunits sideview.png
1G0U subunits sideview.png
This core has special parts called proteases. These proteases act like tiny scissors to break things.

The second part is a cap called the 19S regulatory particle. This cap sits on the ends of the tube. It acts like a gatekeeper. It pulls the tagged protein into the hollow center. The machine then unfolds the protein so it fits. The proteases break the protein into tiny pieces called peptides.

Proteaosome 1fnt top.png
Proteaosome 1fnt top.png
The cell can then use these pieces to make new proteins. Three scientists won a Nobel Prize for finding this system.

181 words

Inside your cells, there is a very important way to stay healthy. It involves a special machine called a proteasome.

Proteaosome 1fnt side.png
Proteaosome 1fnt side.png
These machines help by breaking down proteins that are no longer needed. They can also destroy proteins that are folded the wrong way. This process is called proteolysis, which means breaking chemical bonds.
Proteaosome 1fnt top.png
Proteaosome 1fnt top.png
Without this cleaning system, cells could not manage important jobs. They help with the cell cycle and how genes work. They even help cells respond to stress.

The way it works is like a very careful recycling system. First, a protein must be tagged with a small protein called ubiquitin.

Ubiquitin cartoon.png
Ubiquitin cartoon.png
Enzymes called E1, E2, and E3 work together to attach these tags. Once one tag is on, more are added to form a long chain. This chain tells the proteasome to grab that specific protein.
Ubiquitylation.png
Ubiquitylation.png
The proteasome then pulls the protein into its center. It must unfold the protein so it can fit through the narrow opening. The machine uses energy to pull and unfold the target.

The machine has two main parts that work together. The core is a hollow tube called the 20S proteasome.

1G0U subunits sideview.png
1G0U subunits sideview.png
It is made of four stacked rings. The outer two rings are made of alpha subunits that act as a gate. The inner two rings contain beta subunits that act as proteases. These proteases are like tiny scissors that cut the protein into small pieces. These pieces are called peptides, which are about seven to eight amino acids long.

Scientists worked for a long time to understand this system. In 1977, Joseph Etlinger and Alfred L. Goldberg found a way proteins break down using energy. Later, researchers found that ubiquitin was the tag used in this process.

Rpn11 crystal structure.jpg
Rpn11 crystal structure.jpg
In 2004, Aaron Ciechanover, Avram Hershko, and Irwin Rose won the Nobel Prize in Chemistry. They discovered how the ubiquitin-proteasome system works. It took until 1994 to see the structure using X-ray crystallography. Now, we use even better tools like cryo-EM to see it clearly.

You can think of the proteasome as a high-tech recycling center. Just as a factory takes old parts to make new things, your cells do too. The proteasome breaks proteins into peptides so the cell can build new ones.

26S proteasome structure.jpg
26S proteasome structure.jpg
This keeps the cell from getting cluttered with old or broken pieces. It is a constant cycle of cleaning and building. This ensures that every living thing can keep working smoothly every single day.

422 words

Proteasomes are essential protein complexes found inside all eukaryotes and archaea, as well as some bacteria.

Proteaosome 1fnt side.png
Proteaosome 1fnt side.png
Their primary job is the degradation of proteins through a chemical reaction called proteolysis. This process involves breaking the peptide bonds that hold proteins together. By destroying specific proteins, the proteasome helps regulate many vital cellular processes. These include managing the cell cycle and regulating gene expression. It also helps cells respond to oxidative stress. Without this system, cells could not maintain their internal balance.

The mechanism of the ubiquitin-proteasome system (UPS) is a highly organized, multi-step process. It begins when a target protein is tagged with ubiquitin, which is a small protein.

Ubiquitin cartoon.png
Ubiquitin cartoon.png
This tagging is managed by a cascade of three enzymes: the ubiquitin-activating enzyme (E1), the ubiquitin-conjugating enzyme (E2), and ubiquitin ligases (E3). Once a single ubiquitin molecule is attached, other ligases add more to create a polyubiquitin chain.
Ubiquitylation.png
Ubiquitylation.png
This chain acts as a signal for the 26S proteasome to recognize the target. To enter the machine, the protein must have an unstructured region of about 25 amino acids. If it lacks this, motor proteins like P97 in humans help create it. The proteasome then uses energy in an ATP-dependent manner to unfold and degrade the protein.

The proteasome is composed of distinct parts that work in sequence. The 20S core particle is a cylindrical, compartmental complex.

1G0U subunits sideview.png
1G0U subunits sideview.png
It consists of four stacked rings forming a central pore. The outer two rings are made of seven alpha subunits each. These alpha subunits serve as docking domains and form a gate to block unregulated access. The inner two rings consist of seven beta subunits each. These beta subunits contain the protease active sites where the actual cutting happens. In eukaryotes, the 19S regulatory particle acts as a cap on the 20S core to form the 26S proteasome.
26S proteasome structure.jpg
26S proteasome structure.jpg
This 19S cap contains a 9-subunit base and a 10-subunit lid. It recognizes the polyubiquitin chain and prepares the protein for destruction.

Discovery of this system changed how scientists view cell biology. Before this, it was thought that lysosomes were the main way cells degraded proteins. However, in 1977, Joseph Etlinger and Alfred L. Goldberg studied protein degradation in reticulocytes. Since these cells lack lysosomes, their work suggested a second, ATP-dependent mechanism existed. Later, researchers identified that ubiquitin was the key molecule in this process. This research led to the 2004 Nobel Prize in Chemistry for Aaron Ciechanover, Avram Hershko, and Irwin Rose. While electron microscopy showed the ring structure in the mid-1980s, the first X-ray crystallography structure of the core was not solved until 1994.

The scale and variety of proteasomes are quite significant. The 20S core particle is approximately 150 angstroms by 115 angstroms in size. The interior chamber is at most 53 angstroms wide, but the entrance can be as narrow as 13 angstroms. This narrowness explains why proteins must be unfolded to enter. In mammals, the beta subunits provide three distinct catalytic activities: chymotrypsin-like, trypsin-like, and peptidyl-glutamyl-peptide hydrolyzing (PHGH). Some cells even create an "immunoproteasome" by using alternative subunits in response to signals like interferon gamma. These specialized versions change how the machine selects its targets.

There are several surprising facts about how these machines operate in different environments. In green algae, 26S proteasomes in the nucleus cluster around the nuclear pore complex. They are specifically attached to the membrane. In neurons, studies using cryo-electron tomography show that most proteasomes stay in a "ground state." This means they are ready to work immediately if the cell experiences proteotoxic stress. Scientists have even observed proteasomes becoming stalled when they encounter protein aggregates. This shows that while the machine is powerful, it can be overwhelmed by certain cellular conditions.

Understanding the proteasome connects to many broader biological fields. The peptides produced by the 20S core are about seven to eight amino acids long. These are not just waste; they act as important metabolites for immunity and programmed cell death. For example, certain "molecular glues" can trigger the degradation of proteins like BRD4. This leads to the release of inhibitors of apoptosis, which drives cell death. By breaking down proteins into smaller sequences, the cell can also recycle those pieces to synthesize brand-new proteins. This constant cycle of destruction and recycling is fundamental to life.

721 words
🖼️ Images & Media (12)
File:Proteaosome 1fnt side.png
Proteaosome 1fnt side.png
File:Proteaosome 1fnt top.png
Proteaosome 1fnt top.png
File:1G0U subunits sideview.png
1G0U subunits sideview.png
File:26S proteasome structure.jpg
26S proteasome structure.jpg
File:3 conformational states of 26S proteasome.jpg
3 conformational states of 26S proteasome.jpg
File:Ubiquitin cartoon.png
Ubiquitin cartoon.png
File:Ubiquitylation.png
Ubiquitylation.png
File:Rpn11 crystal structure.jpg
Rpn11 crystal structure.jpg
File:Proteasome cutaway 2.png
Proteasome cutaway 2.png
File:Hslvu ecoli.png
Hslvu ecoli.png
File:Bortezomib.svg
Bortezomib.svg
File:2f16 bortezomib pink.png
2f16 bortezomib pink.png
Up Next
🧬
Ubiquitin
Life Science
More to explore

🔬 Go deeper

More advanced topics to explore

🪜 Step back

Simpler topics to build understanding

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.