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Biofilm

life science Maturity 9-11

Tiny living things stick together.

biofilm.jpg
biofilm.jpg
They live in a slimy home. This home helps them stay safe. It can be on your teeth.
Staphylococcus aureus biofilm 01.jpg
Staphylococcus aureus biofilm 01.jpg
It helps them share food. Do you see slime?

38 words

Tiny living things stick together in a group.

biofilm.jpg
biofilm.jpg
They live in a thick, slimy home. This slime helps them stay safe. It can protect them from bad things.
Staphylococcus aureus biofilm 01.jpg
Staphylococcus aureus biofilm 01.jpg

They can live on rocks or leaves. They can even live on your teeth. This is what makes plaque.

The group helps them share food. It is like a tiny city for them. They work together to live well.

81 words

Tiny living things often live in groups called biofilms.

biofilm.jpg
biofilm.jpg
Instead of swimming alone, they stick to surfaces. They might live on rocks, leaves, or even your teeth. On teeth, this group is called dental plaque.
Staphylococcus aureus biofilm 01.jpg
Staphylococcus aureus biofilm 01.jpg

These microbes make a thick, slimy home. This home is a matrix made of proteins and sugars. It acts like a shield. The slime protects the group from toxins or drying out. It can even block medicine like antibiotics. Some biofilms are so strong they can turn into fossils.

Building a biofilm happens in five steps. First, microbes attach to a surface. Then, they stick more firmly. Next, the group grows and gets bigger. Finally, some microbes leave to find new places. This is called dispersal.

biofilm.jpg
biofilm.jpg

Inside the biofilm, microbes talk to each other. They use a way of sensing called quorum sensing. This helps them act like a team. Because they live so close, they can share food easily. It is like a tiny, busy city for microbes.

179 words

A biofilm is a community of tiny living things that stick together. Instead of swimming alone in liquid, these microbes live in a group on a surface.

biofilm.jpg
biofilm.jpg
They build a slimy home called an extracellular matrix. This matrix is made of things like proteins, sugars, and DNA.
Staphylococcus aureus biofilm 01.jpg
Staphylococcus aureus biofilm 01.jpg
Scientists sometimes call these groups "cities for microbes." This is because they have a complex structure where everyone works together. Living in a biofilm helps these tiny residents share food and stay safe.
Mature biofilm structure.png
Mature biofilm structure.png

Building a biofilm happens in a specific way. First, a single microbe floats near a surface and attaches to it.

biofilm.jpg
biofilm.jpg
It might use weak forces or special parts like pili to anchor itself. Once it is stuck, the microbe begins to grow and multiply.
Escherichia coli forming biofilms via F-pilus.tif
Escherichia coli forming biofilms via F-pilus.tif
The group then grows by adding more microbes to the community. This is called recruitment. As the biofilm gets thicker, it forms a three-dimensional shape. Finally, some microbes leave the group to find new places to live. This last step is called dispersal.
Honors Option-MMG.svg
Honors Option-MMG.svg

These tiny communities have been around for a very long time. Scientists think biofilms began on the early Earth. They likely helped the first tiny life forms survive harsh conditions. We can find evidence of them in fossils from 3.25 billion years ago. These fossils show both Bacteria and Archaea living in biofilms. This shows that sticking together is an ancient way to stay alive. Over billions of years, this way of life has stayed very successful.

Biofilms can be found in many different places. They can grow on living things or non-living things.

Staphylococcus aureus biofilm 01.jpg
Staphylococcus aureus biofilm 01.jpg
On the teeth of animals, they are known as dental plaque. This plaque can cause gum disease or tooth decay. Biofilms also grow in nature, like in the hot springs of Yellowstone National Park.
Bacteria mats near Grand Prismatic Spring in Yellowstone.JPG
Bacteria mats near Grand Prismatic Spring in Yellowstone.JPG
You might even see colorful mats in a cave, like the Golden Dome Cave.
A114, Lava Beds National Monument, California, USA, Golden Dome Lava Tube Cave, 2004.jpg
A114, Lava Beds National Monument, California, USA, Golden Dome Lava Tube Cave, 2004.jpg
They can even grow in the salty water of the Dead Sea.
Screen Shot 2017-12-13 at 1.40.19 PM.png
Screen Shot 2017-12-13 at 1.40.19 PM.png

Living in a group changes how microbes act. They use a special way to talk called quorum sensing.

biofilm.jpg
biofilm.jpg
This helps them coordinate their activities like a team. The slimy matrix also acts as a shield. It can protect the group from things like toxins or antibiotics. In some cases, the biofilm makes them 5,000 times more resistant to medicine.
biofilm.jpg
biofilm.jpg
This is much different than if the microbes were just swimming alone. The biofilm is a living system where everyone plays a part.

471 words

A biofilm is a complex, syntrophic community of microorganisms. In these groups, cells stick to one another and often attach to a surface.

biofilm.jpg
biofilm.jpg
These cells become embedded in a slimy material called an extracellular polymeric substance, or EPS. This matrix is a combination of polysaccharides, proteins, lipids, and DNA. Because biofilms have a three-dimensional structure, scientists often call them "cities for microbes." This comparison reflects how they function as a coordinated, living system.
Mature biofilm structure.png
Mature biofilm structure.png
Biofilms can exist on both biotic, or living, and abiotic, or non-living, surfaces.

The formation of a biofilm follows a specific sequence of events. It begins when free-floating, or planktonic, bacteria attach to a surface.

Escherichia coli forming biofilms via F-pilus.tif
Escherichia coli forming biofilms via F-pilus.tif
Initially, these first colonists use weak van der Waals forces or hydrophobic effects to stick. To stay anchored, they may use specialized structures like pili. Some Archaea even use hami, which are long tubes with three hooks.
biofilm.jpg
biofilm.jpg
Once attached, the bacteria undergo a phenotypic shift. This means they change their behavior by regulating large groups of genes. The biofilm then grows through cell division and the recruitment of new cells.

Biofilm development is categorized into five major stages. The first is initial attachment, followed by irreversible attachment.

biofilm.jpg
biofilm.jpg
After these, the community enters Maturation I and then Maturation II. In these stages, the biofilm grows into a complex structure. The final stage is dispersal, which is essential for the life cycle.
Honors Option-MMG.svg
Honors Option-MMG.svg
During dispersal, cells leave the colony to colonize new surfaces. This process is complex and involves specific enzymes or chemical messengers. Some bacteria use nitric oxide or fatty acids to trigger this departure.

The extracellular matrix is much more than just simple slime. It is a hydrogel, which is a polymer that holds many times its dry weight in water.

biofilm.jpg
biofilm.jpg
This matrix facilitates communication through biochemical signals and allows for gene exchange. It can also act as an external digestion system by trapping enzymes near the cells. Some biofilms even feature water channels to distribute nutrients and signals. The matrix may also trap environmental materials like minerals, soil, or blood components. In some cases, the matrix is strong enough to become fossilized as stromatolites.

Biofilms have a very long history on our planet. Scientists believe they arose on primitive Earth as a defense mechanism. At that time, environmental conditions were often too harsh for single cells to survive. We find evidence of biofilms in the fossil record dating back 3.25 billion years. These ancient fossils contain both Bacteria and Archaea. By providing homeostasis, biofilms encouraged the development of complex interactions between cells. This ancient survival strategy has remained successful for billions of years.

Living in a biofilm provides significant advantages over a planktonic lifestyle. One major benefit is increased resistance to environmental threats. The dense matrix acts as a physical barrier against toxins, antibiotics, and predators.

Staphylococcus aureus biofilm 01.jpg
Staphylococcus aureus biofilm 01.jpg
In some instances, this protection can make a biofilm up to 5,000 times more resistant to antibiotics. Cells also use quorum sensing to communicate.
biofilm.jpg
biofilm.jpg
This is a process where bacteria use chemical products, like N-acyl homoserine lactone, to sense their population density. This communication allows them to coordinate activities like virulence or matrix production.

Biofilms are found in many diverse environments. In nature, they can be seen as colorful mats in Yellowstone National Park hot springs.

Bacteria mats near Grand Prismatic Spring in Yellowstone.JPG
Bacteria mats near Grand Prismatic Spring in Yellowstone.JPG
They can also form in caves, such as the golden hydrophobic bacteria in Golden Dome Cave. On animals, biofilms appear as dental plaque on teeth. This can lead to gum disease or tooth decay. They can even be found in extreme environments like the Dead Sea.
Screen Shot 2017-12-13 at 1.40.19 PM.png
Screen Shot 2017-12-13 at 1.40.19 PM.png
These communities show how microbes can adapt to almost any setting.

654 words
🖼️ Images & Media (11)
File:Staphylococcus aureus biofilm 01.jpg
Staphylococcus aureus biofilm 01.jpg
File:Algae in silicified sediment with evaporite crystals. Urgonian carbonate platform of Provence. 1.jpg
Algae in silicified sediment with...
File:A114, Lava Beds National Monument, California, USA, Golden Dome Lava Tube Cave, 2004.jpg
A114, Lava Beds National Monument,...
File:Mature biofilm structure.png
Mature biofilm structure.png
File:biofilm.jpg
biofilm.jpg
File:Honors Option-MMG.svg
Honors Option-MMG.svg
File:Mixed-culture biofilm.jpg
Mixed-culture biofilm.jpg
File:Bacteria mats near Grand Prismatic Spring in Yellowstone.JPG
Bacteria mats near Grand Prismatic Spring...
File:Thermophilic bacteria.jpg
Thermophilic bacteria.jpg
File:Screen Shot 2017-12-13 at 1.40.19 PM.png
Screen Shot 2017-12-13 at 1.40.19 PM.png
Escherichia coli forming biofilms via F-pilus.tif
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