Tiny living things break down old stuff. 
Tiny living things break down old stuff. 
Some things go away fast. A vegetable might go in days. But a plastic bag takes many years.
Sun and heat help this happen. Water and air help too. These things make the process work.
Tiny things turn old stuff into new things. They make water and air. They also make minerals.
It is a way to clean the Earth. Nature is very busy at work!
Nature has a way to clean up old things. This is called biodegradation. Tiny living things like bacteria and fungi break down organic matter. This means things that were once alive, like food or wood. 
This work happens in three steps. First, the material gets weak from sun or heat. This is called biodeterioration. Next comes biofragmentation. This is when the material breaks into tiny pieces. Finally, there is assimilation. This is when the tiny living things take those pieces inside their cells to use as power.
Some things break down fast. A vegetable might go away in just a few days. Other things take a long time. A plastic bag can take 10 to 20 years to break down in the ocean.
How things break down also depends on air. If there is oxygen, it is called aerobic digestion. If there is no oxygen, it is called anaerobic digestion. This second way can make methane, which is a gas. We can even use this gas for energy.
Nature has a built-in way to recycle itself through biodegradation. This is the way tiny living things, like bacteria and fungi, break down organic matter. 
This work happens in three specific steps. The first step is called biodeterioration. This is when things like sunlight or temperature weaken a material's structure. The second step is biofragmentation. During this stage, the bonds inside a material break into much smaller pieces. These pieces are called monomers or oligomers. The third step is assimilation. This is when the tiny living things take those small pieces inside their own cells. Once inside, the pieces are used to create energy or build new parts for the cell.
How these things break down depends on oxygen. When oxygen is present, it is called aerobic digestion. This process usually happens quite fast. When there is no oxygen, it is called anaerobic digestion. This version is slower, but it is very good at reducing the mass of waste. It also produces methane, which is a natural gas. Because of this, people use anaerobic technology to manage waste and create renewable energy.
Scientists study these rates using many different methods. They often use respirometry tests to see how much carbon dioxide is made. They also look at how much methane is produced by microbes without oxygen. Different items have very different timelines for breaking down.
We can see this science in many parts of our lives. Some doctors use biodegradable materials for medicine. Scientists are even finding new ways to help plastics break down faster. In 2016, a bacterium named Ideonella sakaiensis was found that can eat PET plastic. In 2020, researchers even modified an enzyme called PETase to work better. These discoveries help us understand how to manage the things we make. By studying these tiny living things, we learn how to keep our world cleaner.
Biodegradation is the biological process where microorganisms break down organic matter. These tiny living organisms, such as bacteria and fungi, consume materials and convert them into simpler substances. Most chemical compounds and materials are eventually subject to this process, with time being the main limiting factor. For example, vegetables may degrade within just a few days. In contrast, some plastics can take many years or even centuries to disappear. 
The mechanism of biodegradation occurs in three distinct stages. The first stage is biodeterioration, which is often a surface-level degradation. This stage involves abiotic factors, which are non-living environmental elements like light, temperature, and mechanical compression. These factors weaken the material's physical and chemical structure, making it easier for microbes to attack. The second stage is biofragmentation, a lytic process where the chemical bonds within a polymer are cleaved. This breaks the material down into smaller pieces called oligomers and monomers. The final stage is assimilation, where these small products are integrated into microbial cells. Some products move through the cell membrane easily, while others require biotransformation reactions to enter. Once inside, they enter catabolic pathways to produce adenosine triphosphate (ATP) or cell structures.
Microorganisms use two different methods to digest these materials depending on oxygen availability. When oxygen is present, the process is known as aerobic digestion. This type of digestion typically occurs more rapidly than other methods. When oxygen is absent, the process is called anaerobic digestion. While anaerobic digestion is slower, it is highly effective at reducing the total volume and mass of waste. A key difference is that anaerobic reactions produce methane, a natural gas, whereas aerobic reactions do not.
Many factors influence how quickly biodegradation occurs in the real world. One critical factor is bioavailability, which is the rate at which a substance is made available for organisms to absorb. Compounds must be released into a solution before microbes can degrade them. Environmental conditions like light, water, and temperature also play major roles. Scientists often use respirometry tests to measure these rates in a lab. In aerobic tests, they monitor the amount of carbon dioxide produced by the microbes. In anaerobic tests, they measure the production of methane or other gases. However, materials that biodegrade quickly in a lab might not degrade well in a landfill. Landfills often lack the light, water, and microbial activity needed for efficient breakdown.
The timeline for decomposition varies wildly depending on the material and the environment. In marine environments, a paper towel might take only two to four weeks to break down. A plastic bottle can take approximately 100 years to decompose. Some items, such as glass bottles, may take an estimated one million years.
Recent scientific discoveries are changing how we approach plastic waste. In 2016, researchers found a bacterium called *Ideonella sakaiensis* that can biodegrade PET plastic. By 2020, scientists genetically modified a PET-degrading enzyme called PETase. They combined it with another enzyme, MHETase, to break down PET even faster. In 2021, another study reported that a mix of microorganisms from cow stomachs could break down three types of plastic.
Biodegradable technology is already being used in several important fields. The biomedical community uses biodegradable polymers for various medical applications. These materials are classified as medical, ecological, or dual-application, and can be either natural or synthetic. In the packaging industry, some companies use starch-based plastics that degrade in home compost bins within two to four months. Others use polylactic acid, which is a renewably derived plastic. However, polylactic acid usually requires higher temperatures to decompose effectively. Balancing the performance of a material with its ability to biodegrade remains a significant challenge for engineers.
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