Inside you, there are tiny patterns. 

Inside your body are tiny patterns. 


DNA profiling is a way to find unique patterns in a person's DNA. 

To start, scientists must extract the DNA. They break open the cells to let the DNA out. Then they clean it to remove other tiny parts. Scientists often use a tool called PCR. PCR stands for polymerase chain reaction. It is a way to make many copies of a DNA part. This makes the sample big enough to study. Today, many use STR analysis. STRs are short, repeating patterns. These patterns are very good at telling people apart. They can even find a match that is one in a quintillion! 
DNA profiling is a way to find unique patterns in a person's genetic code. 

To start, scientists must extract the DNA from a sample like blood or saliva. They must break up the cell membranes to let the DNA out into a liquid. Once the DNA is free, they separate it from other tiny cell parts. They clean the solution to leave only the DNA behind. 
British geneticist Sir Alec Jeffreys discovered this in 1984. He was working at the University of Leicester. He noticed that some parts of DNA have highly variable repeating patterns. He worked with Peter Gill and Dave Werrett from the Forensic Science Service. Together, they developed the first forensic version of this process. This discovery changed how police work and how we understand biology. It allowed scientists to see patterns in unknown DNA for the first time.
This science was used to solve a major crime in the UK. In 1983 and 1986, two teenagers were murdered in Narborough, Leicestershire. A detective named David Baker led the inquiry. Police took blood samples from about 5,000 local men. This helped prove that a man named Richard Buckland was not the killer. Later, the DNA matched a man named Colin Pitchfork. He was convicted on January 2, 1988. 
Today, scientists mostly use a method called STR analysis. STR stands for short tandem repeats. These are smaller, shorter versions of the repeating patterns. These markers are very strong for telling people apart. In North America, experts use a system called CODIS with 20 core markers. This can create a match probability of 1 in a quintillion. 
DNA profiling is the process of identifying an individual's unique deoxyribonucleic acid (DNA) characteristics. 
The process begins with DNA extraction to isolate the genetic material from a sample like blood or saliva. Because DNA is only a tiny part of a biological sample, it must be purified. Scientists must break up the cell and nuclear membranes to release the DNA into a solution. Once free, the DNA is separated from other cellular components and debris. Common laboratory methods for this include organic extraction, Chelex extraction, and solid-phase extraction. Some scientists use differential extraction to separate DNA from two different types of cells before purification. Analysts choose their specific method based on the cost, time, and the quality or quantity of DNA they need to yield.
Historically, scientists used a method called restriction fragment length polymorphism (RFLP) to analyze DNA. RFLP uses restriction enzymes to cut the DNA at specific, short sequences throughout the sample. After the enzymes digest the DNA, a process called a Southern Blot is performed. This is a size-based separation method using a gel with radioactive or chemiluminescent probes. While RFLP was an important early technology, it could take several days or even a week to complete one sample. Modern science has largely moved toward more efficient technologies, such as Short Tandem Repeat (STR) analysis.

In 1984, British geneticist Sir Alec Jeffreys discovered DNA profiling while working at the University of Leicester. 
In that case, Detective David Baker led an inquiry involving blood samples from approximately 5,000 local men. This massive effort helped exonerate an initial suspect named Richard Buckland. It eventually led to the conviction of Colin Pitchfork on January 2, 1988. Pitchfork had attempted to deceive police by having a coworker impersonate him during blood testing. However, his DNA profile matched the evidence left at the crime scenes. This landmark case proved the power of genetic evidence in a court of law.
Today, the most common method for profiling is based on the Polymerase Chain Reaction (PCR). Developed by Kary Mullis in 1983, PCR is a technique used to amplify, or make many copies of, a specific DNA sequence. The process involves three distinct steps. First is denaturation, where DNA is heated to 95 °C to separate the double strands. Second is annealing, where the mixture is cooled to 50-65 °C so primers can attach to the template. Finally, extension occurs at 72 °C using a thermostable enzyme called Taq polymerase to build the new DNA strands. 
Modern profiling specifically targets Short Tandem Repeats (STRs), which are also known as microsatellites. These are highly variable sequences that differ in length between individuals. The statistical power of STR analysis is immense because these loci are independently assorted. In North America, the CODIS system uses 20 core loci to identify individuals. By using the product rule for probabilities, scientists can generate match probabilities as high as 1 in a quintillion. This level of precision makes DNA profiling one of the most reliable tools in science and law.

DNA profiling also extends into specialized areas of genetic study. Y-chromosome analysis provides information about paternal ancestry because the Y-chromosome is inherited from fathers. To support this, the Y haplotype reference database (YHRD) was created in 2000 to store over 300,000 haplotypes. Additionally, mitochondrial DNA (mtDNA) analysis can be used to study older samples like hair shafts or ancient bones. These various methods allow scientists to connect human history, forensic science, and the study of all living organisms.
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