Showing posts with label Genetic fingerprinting. Show all posts
Showing posts with label Genetic fingerprinting. Show all posts

Thursday, April 3, 2008

DNA fingerprinting methods

DNA fingerprinting begins by extracting DNA from the cells in a sample of blood, saliva, semen, or other appropriate fluid or tissue.

RFLP analysis

The first methods used for DNA fingerprinting involved restriction enzyme digestion, followed by Southern blot analysis. Although polymorphisms can exist in the restriction enzyme cleavage sites, more commonly the enzymes and DNA probes were used to analyze VNTR loci. However, the Southern blot technique is laborious, and requires large amounts of undegraded sample DNA. Also, Jeffreys' original technique looked at many minisatellite loci at the same time, increasing the observed variablitiy, but making it hard to discern individual alleles (and thereby precluding parental testing). These early techniques have been supplanted by PCR-based assays.


PCR analysis

With the invention of the polymerase chain reaction (PCR), DNA fingerprinting took huge strides forward in both discriminating power and the ability to recover information from very small (or degraded) starting samples. PCR greatly amplifies the amounts of a specific region of DNA, using oligonucleotide primers and a thermostable DNA polymerase. Early assays such as the HLA-DQ alpha reverse dot blot strips grew to be very popular due to their ease of use, and the speed with which a result could be obtained. However they were not as discriminating as RFLP. It was also difficult to determine a DNA profile for mixed samples, such as a vaginal swab from a sexual assault victim.

Fortunately, the PCR method is readily adaptable for analyzing VNTR loci. In the U.S.A the FBI has standardized a set of 13 VNTR assays for DNA typing, and has organized the CODIS database for forensic identification in criminal cases. Similar assays and databases have been set up in other countries. Also, commercial kits are available that analyze Single Nucleotide Polymorphisms (SNPs). These kits use PCR to amplify specific regions with known variations and hybridize them to probes anchored on cards, which results in a colored spot corresponding to the particular sequence variation.

STR analysis

Main article: Short tandem repeats

The most prevalent method of DNA fingerprinting used today is based on PCR and uses short tandem repeats (STR). This method uses highly polymorphic regions that have short repeated sequences of DNA (the most common is 4 bases repeated, but there are other lengths in use, including 3 and 5 bases). Because different people have different numbers of repeat units, these regions of DNA can be used to discriminate between individuals. These STR loci (locations) are targeted with sequence-specific primers and are amplified using PCR. The DNA fragments that result are then separated and detected using electrophoresis. There are two common methods of separation and detection, capillary electrophoresis (CE) and gel electrophoresis.

The polymorphisms displayed at each STR region are by themselves very common, typically each polymorphism will be shared by around 5 - 20% of individuals. When looking at multiple loci, it is the unique combinations of these polymorphisms to an individual that makes this method discriminating as an identification tool. The more STR regions that are tested in an individual the more discriminating the test becomes.

From country to country different STR based DNA profiling systems are in use. In North America systems which amplify the CODIS 13 core loci are almost universal, while in the UK the SGM+ system, which is compatible with The National DNA Database in use. Whichever system is used, many of the STR regions under test are the same. These DNA profiling systems are based around multiplex reactions, whereby many STR regions will be under test at the same time.

Capillary electrophoresis works by electrokinetically (movement through the application of an electric field) injecting the DNA fragments into a thin glass tube (the capillary) filled with polymer. The DNA is pulled through the tube by the application of an electric field, separating the fragments such that the smaller fragments travel faster through the capillary. The fragments are then detected using fluorescent dyes that were attached to the primers used in PCR. This allows multiple fragments to be amplified and run simultaneously, something known as multiplexing. Sizes are assigned using labeled DNA size standards that are added to each sample, and the number of repeats are determined by comparing the size to an allelic ladder, a sample that contains all of the common possible repeat sizes. Although this method is expensive, larger capacity machines with higher throughput are being used to lower the cost/sample and reduce backlogs that exist in many government crime facilities.

Gel electrophoresis acts using similar principles as CE, but instead of using a capillary, a large polyacrylamide gel is used to separate the DNA fragments. An electric field is applied, as in CE, but instead of running all of the samples by a detector, the smallest fragments are run close to the bottom of the gel and the entire gel is scanned into a computer. This produces an image showing all of the bands corresponding to different repeat sizes and the allelic ladder. This approach does not require the use of size standards, since the allelic ladder is run alongside the samples and serves this purpose. Visualization can either be through the use of fluorescently tagged dyes in the primers or by silver staining the gel prior to scanning. Although it is cost effective and can be rather high throughput, silver staining kits for STRs are being discontinued. In addition, many labs are phasing out gels in favor of CE as the cost of machines becomes more manageable.

The true power of STR analysis is in its statistical power of discrimination. In the U.S.A., there are 13 core loci (DNA locations) that are currently used for discrimination in CODIS. Because these loci are independently assorted (having a certain number of repeats at one locus doesn't change the likelihood of having any number of repeats at any other locus), the product rule for probabilities can be applied. This means that if someone has the DNA type of ABC, where the three loci were independent, we can say that the probability of having that DNA type is the probability of having type A times the probability of having type B times the probability of having type C. This has resulted in the ability to generate match probabilities of 1 in a quintillion (1 with 18 zeros after it) or more.

AmpFLP

Another technique, AmpFLP, or amplified fragment length polymorphism was also put into practice during the early 1990s. This technique was also faster than RFLP analysis and used PCR to amplify DNA samples. It relied on variable number tandem repeat (VNTR) polymorphisms to distinguish various alleles, which were separated on a polyacrylamide gel using an allelic ladder (as opposed to a molecular weight ladder). Bands could be visualized by silver staining the gel. One popular locus for fingerprinting was the D1S80 locus. As with all PCR based methods, highly degraded DNA or very small amounts of DNA may cause allelic dropout (causing a mistake in thinking a heterozygote is a homozygote) or other stochastic effects. In addition, because the analysis is done on a gel, very high number repeats may bunch together at the top of the gel, making it difficult to resolve. AmpFLP analysis can be highly automated, and allows for easy creation of phylogenetic trees based on comparing individual samples of DNA. Due to its relatively low cost and ease of set-up and operation, AmpFLP remains popular in lower income countries.

Y-chromosome analysis

Recent innovations have included the creation of primers targeting polymorphic regions on the Y-chromosome (Y-STR), which allows resolution of multiple male profiles, or cases in which a differential extraction is not possible. Y-chromosomes are paternally inherited, so Y-STR analysis can help in the identification of paternally related males. Y-STR analysis was performed in the Sally Hemings controversy to determine if Thomas Jefferson had sired a son with one of his slaves.

Mitochondrial analysis

Main article: Mitochondrial DNA

For highly degraded samples, it is sometimes impossible to get a complete profile of the 13 CODIS STRs. In these situations, mitochondrial DNA (mtDNA) is sometimes typed due to there being many copies of mtDNA in a cell, while there may only be 1-2 copies of the nuclear DNA. Forensic scientists amplify the HV1 and HV2 regions of the mtDNA, then sequence each region and compare single nucleotide differences to a reference. Because mtDNA is maternally inherited, directly linked maternal relatives can be used as match references, such as one's maternal grandmother's sister's son. A difference of two or more nucleotides is generally considered to be an exclusion. Heteroplasmy and poly-C differences may throw off straight sequence comparisons, so some expertise on the part of the analyst is required. mtDNA is useful in determining unclear identities, such as those of missing persons when a maternally linked relative can be found. mtDNA testing was used in determining that Anna Anderson was not the Russian princess she had claimed to be, Anastasia Romanov.

mtDNA can be obtained from such material as hair shafts and old bones/teeth.

National DNA databases

The United States maintains the largest DNA database in the world: The Combined DNA Index System, with over 4.5 million records as of 2007. The United Kingdom maintains the National DNA Database (NDNAD), which is of similar size. The size of this database, and its rate of growth, is giving concern to civil liberties groups in the UKSDLF, where police have wide-ranging powers to take samples and retain them even in the event of acquittal.[1]

The U.S. Patriot Act of the United States provides a means for the U.S. government to get DNA samples from other countires if they are either a division of , or a head office of, a a company operating in the U.S.A. Under the act, the American offices of the compnay can't divulge to their subsidiaries/offices in other countries the reasons that these dna samples are sought or by whom

The Future of Genetic Fingerprinting

The Future of Genetic Fingerprinting - An Interview with Professor Sir Alec Jeffreys

Hotspots, Minisatellites and a Short Cut Through the Human Genome

On Monday morning at 9.05 am on 10 September 1984, Alec Jeffreys, now Professor Sir Alec Jeffreys, FRS, and the Royal Society Wolfson Research Professor in the University of Leicester Department of Genetics, discovered the world's first genetic fingerprint.

As the technique began to solve paternity and immigration cases and to revolutionise criminal investigations, he refined and simplified the process, turning it into what became known as "genetic profiling", producing a pattern of DNA unique to a particular person.

Instrumental to these techniques were ‘minisatellites’, short sequences of chemical building blocks used to chart human DNA instability. Minisatellites show greater variation from one person to the next than most of other DNA material, exhibiting this variation in the numbers of repeat units or stutters.

Now, twenty years on, Sir Alec has moved away from minisatellites, using them as a platform to think about alternative ways of detecting inherited rearrangements in our DNA. He is looking at two genetic processes, mutation (change) and recombination (reshuffling) and their impact on human DNA diversity.

"We appreciated early on that minisatellites were variable because they were unstable," he said, adding: "We faced two problems:

"The first is that DNA changes at extremely low rates. Minisatellites have allowed us to get round that. The second is the smallness of family sizes.

"Even if you have ten children, you will only get at most only one or two minisatellite mutants. We needed families of millions of children, particularly to study other modes of DNA instability, so we started to use minisatellites to find an alternative way of research. For us, a child is simply a complex and expensive way of amplifying DNA from a single sperm and egg. However, using the most sophisticated methods, we found we could type the DNA of a single molecule or cell as an alternative approach to studying inherited DNA rearrangements."

Once able to dispense with children in favour of cells, Sir Alec turned to the study of sperm. “A single ejaculation will produce one hundred million sperm, equivalent to one hundred million offspring. This gives us numbers of progeny that go way beyond mouse or fruit fly production and well into the realm enjoyed by microbial geneticists."

What came as a surprise was that the mutation in minisatellites comes about by abnormal recombination and that mutation and recombination are not different processes in these stuttered regions of DNA. Minisatellites, it seems evolve as parasites in hotspots of crossover activity, propagating themselves through recombination.

Sir Alec said: "That then led us to ask a very simple set of questions:

How recombination events are distributed along human chromosomes;

What sort of processes are going on during human recombination;

How these patterns and processes impact on human diversity.

"Over the past few years we have developed a whole range of technologies to look at the DNA in sperm, searching for ones that show crossover in a given region. Our findings have transformed how people view human recombination. Crossovers are far from randomly formed, but are concentrated in hotspots, in between which are areas dead of activity. It is as if you shuffle a pack of cards with some blocks of cards stuck together so that they don't get reshuffled."

This turned out to be crucial in sparking off a major international project, known as the HapMap Project, to investigate how human DNA diversity is organised in human chromosomes. The project is specifically aimed at identifying the "blocks of cards" that are stuck together and not reshuffled by recombination from generation to generation. These so-called haplotype blocks and their associated recombination hotspots are not just of academic interest - they also hold considerable promise for disease analysis.

"Our recombination work is important for understanding how human DNA diversity is organised, and underpins international efforts into trying to analyse common human diseases," Sir Alec said. "To find a disease gene then you have to find the mutation that predisposes people to that condition. However, if the mutation resides in one of these haplotype blocks then it will tend to follow markers in the block in patients, and thus the problem can be reduced first to finding the relevant block, then to searching within the block for the real mutation. This has changed the way people think about genetic association studies and reduced the cost of scanning the whole human genome. It is a very exciting time."

In trying to understand hotspots, Sir Alec is investigating why they occur where they occur, and to grasp the rules that appear to prevent crossover hotspots from triggering dangerous rearrangements in the genome. "There is something going on in humans that prevents this," he said. "We are also trying to extend the whole concept of using single sperm analysis to look at other processes of DNA instability, for example jumping DNA and single base changes in our chromosomes. We understand very little about these processes and how and where they occur."

In developing new systems to chart the alteration of the DNA sequence, Sir Alec is quietly optimistic that they will work. So far, he says, things are looking good, and there are few else in the world following the same challenging avenues of enquiry.

While the research done by his laboratory team feeds into medical genetics, as well as studies of genome diversity, the genetic analysis of human origins and the work done by Professor Yuri Dubrova on radiation and DNA, it is, in itself, pure research. "We are not specifically looking at applications, though almost inevitably applications will arise" Professor Sir Alec Jeffreys said. "I feel I've done my bit on research application." Police officers and those fighting immigration and paternity cases must surely agree.

AN AWARD WINNER

Professor Sir Alec Jeffreys has been acclaimed across the world for his discovery of DNA profiling and for his continuing work in the field of genetics. Among his most recent awards are:

March 2004: Lifetime Achievement award at the Daily Mirror's Pride of Britain Awards. "This was fantastic because it was public recognition in the broadest sense," Sir Alec said. "It is the nearest I will ever get to an Oscar."

April 2004: Louis-Jeantet Prize for Medicine, awarded to scientists who are distinguished for the highest quality of biomedical research in Europe.

July 2004: Honorary doctorate from the University of Leicester, about which Sir Alec said: "An honorary degree from your own university is something extremely special. It is important because it is recognition from your own community, as with the award of Honorary Freeman of the City of Leicester, which I was awarded in 1993."

http://www2.le.ac.uk/offices/press/media-centre/dna-fingerprinting/geneticsfuture


Genetic fingerprinting

Genetic Fingerprinting (also called DNA testing, DNA typing, or DNA profiling) is a technique used to distinguish between individuals of the same species using only samples of their DNA. Although two individuals will have the vast majority of their DNA sequence in common, DNA profiling exploits highly variable repeat sequences called VNTRs. These loci are variable enough that two unrelated humans are unlikely to have the same alleles. The technique was first reported in 1984 by Dr. Alec Jeffreys at the University of Leicester, and is now the basis of several national DNA identification databases.

Reference samples

DNA identification must be done by an extraction of DNA from substances such as:

  • Personal items (e.g. toothbrush, razor, ...)
  • Banked samples (e.g. banked sperm or biopsy tissue)
  • Blood kin (biological relative)
  • Human remains previously identified

Reference samples are often collected using buccal swab.