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Antibiotic sensitivity testing

life science Maturity 11-13

Doctors use tests to fight germs.

Antibiotic sensitivity test.jpg
Antibiotic sensitivity test.jpg
They check which medicine works best. Some germs do not like the medicine. This helps you get well. It is very smart! Do you want to be healthy?

37 words

Doctors use tests to fight germs.

Antibiotic sensitivity test.jpg
Antibiotic sensitivity test.jpg
Some germs do not like certain medicines. This is called resistance.

Scientists test the germs in a lab. They put paper discs on a dish. The discs have medicine on them.

Sometimes the germs cannot grow near the disc. This makes a clear ring.

E-test Ngono.jpg
E-test Ngono.jpg
This ring shows the medicine works.

Other tests look at the germ's tiny parts. This helps find the best medicine. It helps you get well fast.

Testing helps doctors choose the right help. It is a very smart way to stay healthy.

97 words

Doctors use medicines called antibiotics to fight germs. But some germs have resistance. This means the medicine does not work on them.

Antibiotic sensitivity and resistance.jpg
Antibiotic sensitivity and resistance.jpg

Scientists use tests to find the best medicine. One way is to use culture methods. This means growing the germs in a lab. They put paper discs on a dish of food for germs. These discs have antibiotic on them.

Antibiotic sensitivity test.jpg
Antibiotic sensitivity test.jpg

If the medicine works, the germs cannot grow near the disc. This makes a clear ring. We call this a zone of inhibition. Scientists measure this ring. They can find the minimum inhibitory concentration. This is the lowest amount of medicine needed to stop growth.

Another way is genetic testing. This looks for special genes. These genes can make a germ resistant. One way to do this is PCR. This is a way to find specific genes.

E-test Ngono.jpg
E-test Ngono.jpg

Scientists also use machines to help. These machines can be very fast. They help doctors choose the right medicine quickly. This helps people get well.

173 words

Doctors use medicines called antibiotics to fight bacteria. However, some bacteria have resistance. This means the medicine cannot stop them.

Antibiotic sensitivity and resistance.jpg
Antibiotic sensitivity and resistance.jpg
Antibiotic sensitivity testing helps solve this problem. This test measures how much a bacterium is affected by different drugs. Scientists use these results to help doctors choose the right treatment. Without this test, doctors might use empiric therapy. This is when a doctor picks a medicine based on a guess. They look at common germs and typical infections. Sensitivity testing allows them to switch to directed therapy. This means the medicine is chosen based on real knowledge of the specific germ.
Antibiotic sensitivity test.jpg
Antibiotic sensitivity test.jpg

One way to test bacteria is through culture methods. This is a way of watching how bacteria grow. Scientists often use the disc diffusion method. This is also known as the Kirby-Bauer method. First, they spread bacteria on a dish of agar. Agar is a special food for germs. Next, they place small paper discs on the agar. These discs are soaked in antibiotics. If the antibiotic works, the bacteria cannot grow near the disc. This creates a clear ring called a zone of inhibition.

McFarland standards.JPG
McFarland standards.JPG
Scientists measure the diameter of this ring. They can use this size to estimate the minimum inhibitory concentration. This is the lowest amount of medicine needed to stop the bacteria from growing.

There are other ways to perform these tests. One method is called the Etest. This uses a plastic strip instead of small discs. The strip has different amounts of antibiotic on it.

E-test Ngono.jpg
E-test Ngono.jpg
Another way is broth dilution. This involves putting bacteria into many small tubes. Each tube has a different amount of medicine. The lowest amount that stops growth is the MIC. Some labs now use automated systems. Machines like the VITEK 2 or BD Phoenix help do this work. These machines use light or special sensors to see if bacteria grow. This makes the work faster and more standard for the lab.

Scientists also use genetic methods to find resistance. These tests look for specific genes inside the bacteria. One famous method is called PCR. This stands for polymerase chain reaction. In PCR, the DNA of a bacterium is pulled apart. Scientists add special parts to find a specific gene. If the gene is there, the machine makes many copies of it. This makes the gene easy to see. This can help find genes like mecA in certain bacteria. Genetic tests are very fast and direct. However, they can be expensive and need highly trained people to run them.

Testing has changed a lot over time. People have needed these tests since penicillin was discovered. Early methods were simple and relied on growing germs in dishes. Since the 1980s, the Etest strip has been used. Since the early 2000s, genetic methods like PCR have become common. Today, researchers are looking for even better ways to test. They are studying things like microfluidics to make tests faster. They want to make sure every patient gets the exact medicine they need. This helps keep people healthy and stops germs from spreading.

518 words

Antibiotic sensitivity testing is the scientific measurement of how bacteria respond to different antibiotics. This process is vital because many bacteria develop resistance to certain drugs. Resistance means the medicine no longer stops the germ from growing.

Antibiotic sensitivity and resistance.jpg
Antibiotic sensitivity and resistance.jpg
Without testing, doctors must use empiric therapy. This is when a doctor chooses a medicine based on clinical suspicion. They guess based on common bacteria that cause specific infections. Sensitivity testing allows a shift to directed therapy. In directed therapy, the doctor chooses a drug based on real knowledge of the specific organism. This ensures the treatment is actually effective against the patient's infection.

To perform these tests, laboratories use two main approaches: phenotypic and genetic methods. Phenotypic testing observes how the bacteria actually grow when exposed to drugs. Genetic testing looks for specific DNA markers that cause resistance.

Antibiotic sensitivity test.jpg
Antibiotic sensitivity test.jpg
A key goal of these tests is finding the minimum inhibitory concentration (MIC). The MIC is the lowest concentration of an antibiotic that prevents bacterial growth. Scientists use the MIC to understand exactly how much medicine is needed to fight an infection. Knowing the MIC helps move from general guesses to precise medical treatments.

One common manual method is disc diffusion, often called the Kirby-Bauer method. First, a scientist must prepare an inoculum, which is a sample of bacteria. To ensure accuracy, this sample must be standardized. Scientists compare the turbidity, or cloudiness, of the liquid to McFarland standards.

McFarland standards.JPG
McFarland standards.JPG
Once the concentration is correct, they spread the bacteria onto an agar plate. They then place small paper discs soaked in antibiotics onto the agar. If the antibiotic works, a clear ring appears around the disc. This is called a zone of inhibition. The diameter of this ring helps estimate the MIC.

Other phenotypic methods provide different ways to measure growth. The Etest uses a plastic strip rather than individual discs.

E-test Ngono.jpg
E-test Ngono.jpg
This strip is impregnated with a range of antibiotic concentrations. When placed on agar, it creates a teardrop-shaped zone of inhibition. The point where the zone meets the strip indicates the MIC. Another method is broth dilution, which is considered the gold standard for phenotypic testing. In this method, bacteria are placed into multiple tubes containing different antibiotic concentrations. Scientists then use visual inspection or optical tools to find the lowest concentration that stops growth.

Modern laboratories often use automated systems to handle these tasks. Machines such as the VITEK 2, BD Phoenix, and Microscan are common. These systems introduce bacterial suspensions into pre-formulated antibiotic panels. The panels are incubated, and the machines measure growth using light-based methods like spectrophotometry or fluorescence detection. An expert computer system then correlates these measurements to report the MIC. While these machines are faster and more standardized, they can sometimes be less accurate for certain organisms. Because of this, manual disc diffusion remains a useful backup method.

Genetic methods offer a rapid way to identify resistance by looking at DNA. Polymerase chain reaction, or PCR, is a widely used technique. In PCR, the double helix of the bacterial DNA is denatured, meaning the two strands separate. Scientists add primers and DNA polymerase to the solution. If a specific resistance gene is present, the process doubles the amount of that gene every time it runs. This allows scientists to detect genes like mecA in Staphylococcus aureus or vanA in Enterococcus. While these tests are very fast, they can be expensive and require highly trained staff. Additionally, finding a resistance gene does not always match how the bacteria behaves in a living culture.

The history of these tests tracks closely with the history of medicine. The need for sensitivity testing began with the discovery of penicillin, the first beta-lactam antibiotic. Early methods were simple and relied on basic culture or dilution. The Etest strip became available in the 1980s to improve gradient testing. By the early 2000s, genetic methods like PCR became common in labs. Today, researchers are exploring even newer technologies like microfluidics. These advancements aim to make testing faster and more accurate for everyone.

676 words
🖼️ Images & Media (4)
File:Antibiotic sensitivity test.jpg
Antibiotic sensitivity test.jpg
File:McFarland_standards.JPG
McFarland_standards.JPG
File:E-test Ngono.jpg
E-test Ngono.jpg
File:Antibiotic sensitivity and resistance.jpg
Antibiotic sensitivity and resistance.jpg
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