Showing posts with label DNA. Show all posts
Showing posts with label DNA. Show all posts
Thursday, February 28, 2013 Tags: , , , , 0 comments

How to Use ADT (Auto Dock Tool) Docking Manual




Full Explanation of docking tool using ADT Auto Dock Tool.

Bioinformatics Database



1.Nucleotide Sequence Databases
1.1 International Nucleotide Sequence Database Collaboration
Database name
Full name and/or description
URL
DDBJ-DNA Data Bank of Japan
All known nucleotide and protein sequences
EMBL-Nucleotide Sequence Database
All known nucleotide and protein sequences
GenBank
All known nucleotide and protein sequences


1.2. DNA sequences: genes, motifs and regulatory sites



1.2.1. Coding and coding DNA


Database name
Full name and/or description
URL
ACLAME
A classification of genetic mobile elements
CUTG
Codon usage tabulated from GenBank
Genetic Codes
Genetic codes in various organisms and organelles
Entrez Gene
Gene-centered information at NCBI
HERVd
Human endogenous retrovirus database
Hoppsigen
Human and mouse homologous processed pseudogenes
Imprinted Gene Catalogue
Imprinted genes and parent-of-origin effects in animals
Islander
Pathogenicity islands and prophages in bacterial genomes
MICdb
Prokaryotic microsatellites
NPRD
Nucleosome positioning region database
STRBase
Short tandem DNA repeats database
TIGR Gene Indices
Organism-specific databases of EST and gene sequences
Transterm
Codon usage, start and stop signals
UniGene
Non-redundant set of eukaryotic gene-oriented clusters
UniVec
Vector sequences, adapters, linkers and primers used in DNA cloning, can be used to check for vector contamination
VectorDB
Characterization and classification of nucleic acid vectors
Xpro
Eukaryotic protein-encoding DNA sequences, both intron-containing and intron- less genes

1.2.2. Gene structure, introns and exons, splice sites


Database name
Full name and/or description
URL
ASAP
Alternative spliced isoforms
ASD
Alternative splicing database at EBI, includes three databases AltSplice, AltExtron and AEdb
ASDB
Alternative splicing database: protein products and expression patterns of alternatively spliced genes
ASHESdb
Alternatively spliced human genes by exon skipping database
EASED
Extended alternatively spliced EST database
ECgene
Genome annotation for alternative splicing
EDAS
EST-derived alternative splicing database
ExInt
Exon intron structure of eukaryotic genes
HS3D
Homo sapiens splice sites dataset
Intronerator
Alternative splicing in C.elegans and C.briggsae
SpliceDB
Canonical and non-canonical mammalian splice sites
SpliceInfo
Modes of alternative splicing in human genome
SpliceNest
A tool for visualizing splicing of genes from EST data

1.2.3. Transcriptional regulator sites and transcription factors

DNA Computers A Tech Of Tomorrow

Engineers have long dreamed of using DNA as the backbone for the next generation of computer circuits. New research shows just how it might be done.
Instead of conventional circuits built of silicon that use electrical current, computer engineers could take advantage of the unique properties of DNA, the double-helix molecule that carries life’s information.
“Conventional technology has reached its physical limits," said Chris Dwyer, assistant professor of electrical and computer engineering at Duke University's Pratt School of Engineering.
Dwyer recently demonstrated that by simply mixing customized snippets of DNA and other molecules, he could create billions of identical, tiny, waffle-looking structures.
These nanostructures can then be used as the building blocks for a variety of circuit-based applications, ranging from the biomedical to the computational.
Key to the promise of these DNA nanostructures is an ability to rapidly "switch" between zeros or ones -- the basic on/off binary action that powers computation. Light can be used to stimulate similar binary responses from DNA-based switches, though at a much faster rate than in silicon.
“When light is shined on the chromophores" -- parts of DNA responsible for its color -- "they absorb it, exciting the electrons,” Dwyer said. “The energy released passes to a different type of chromophore nearby that absorbs the energy and then emits light of a different wavelength. That difference means this output light can be easily differentiated from the input light, using a detector.”
Dwyer added: "This is the first demonstration of such an active and rapid processing and sensing capacity at the molecular level."
Building computers with life's building blocks

Wednesday, February 3, 2010 Tags: , , 0 comments

GMO Tomatoes Could Stay Fresh For Over a Month



sustainable design, green design, sustainable food, gmo, 
genetically modified organisms, tomatoes, plants, pesticides, green 
design
Many of us invested in the success of sustainable agriculture have a knee-jerk response against genetically-modified foods, and for good reason — they often come with patent protection, pesticides, and other undesirable features. But a new development from the National Institute of Plant Genome Research in New Delhi suggests that GMO crops could have at least one positive use: dramatically increasing the shelf life of fruits and vegetables.
sustainable design, green design, sustainable food, gmo, 
genetically modified organisms, tomatoes, plants, pesticides, green 
design 
Photo by The Ewan

Friday, August 21, 2009 Tags: , 0 comments

DNA Sequencing

DNA

DNA, or deoxyribonucleic acid, is the hereditary material in humans and almost all other organisms. Nearly every cell in a person’s body has the same DNA. Most DNA is located in the cell nucleus (where it is called nuclear DNA), but a small amount of DNA can also be found in the mitochondria (where it is called mitochondrial DNA or mtDNA).

The information in DNA is stored as a code made up of four chemical bases: adenine (A), guanine (G), cytosine (C), and thymine (T). Human DNA consists of about 3 billion bases, and more than 99 percent of those bases are the same in all people. The order, or sequence, of these bases determines the information available for building and maintaining an organism, similar to the way in which letters of the alphabet appear in a certain order to form words and sentences.

DNA bases pair up with each other, A with T and C with G, to form units called base pairs. Each base is also attached to a sugar molecule and a phosphate molecule. Together, a base, sugar, and phosphate are called a nucleotide. Nucleotides are arranged in two long strands that form a spiral called a double helix. The structure of the double helix is somewhat like a ladder, with the base pairs forming the ladder’s rungs and the sugar and phosphate molecules forming the vertical sidepieces of the ladder.

An important property of DNA is that it can replicate, or make copies of itself. Each strand of DNA in the double helix can serve as a pattern for duplicating the sequence of bases. This is critical when cells divide because each new cell needs to have an exact copy of the DNA present in the old cell.


DNA is a double helix formed by base pairs attached to a sugar-phosphate backbone.

DNA Sequencing

DNA sequencing encompasses biochemical methods for determining the order of the nucleotide bases, adenine, guanine, cytosine, and thymine, in a DNA oligonucleotide. The sequence of DNA constitutes the heritable genetic information in nuclei, plasmids, mitochondria, and chloroplasts that forms the basis for the developmental programs of all living organisms. Determining the DNA sequence is therefore useful in basic research studying fundamental biological processes, as well as in applied fields such as diagnostic or forensic research. The advent of DNA sequencing has significantly accelerated biological research and discovery. The rapid speed of sequencing attainable with modern DNA sequencing technology has been instrumental in the large-scale sequencing of the human genome, in the Human Genome Project. Related projects, often by scientific collaboration across continents, have generated the complete DNA sequences of many animal, plant, and microbial genomes.




Maxam-Gilbert sequencing


In 1976-1977, Allan Maxam and Walter Gilbert developed a DNA sequencing method based on chemical modification of DNA and subsequent cleavage at specific bases . Although Maxam and Gilbert published their chemical sequencing method two years after the ground-breaking paper of Sanger and Coulson on plus-minus sequencing, Maxam-Gilbert sequencing rapidly became more popular, since purified DNA could be used directly, while the initial Sanger method required that each read start be cloned for production of single-stranded DNA. However, with the development and improvement of the chain-termination method (see below), Maxam-Gilbert sequencing has fallen out of favour due to its technical complexity, extensive use of hazardous chemicals, and difficulties with scale-up. In addition, unlike the chain-termination method, chemicals used in the Maxam-Gilbert method cannot easily be customized for use in a standard molecular biology kit.

In brief, the method requires radioactive labelling at one end and purification of the DNA fragment to be sequenced. Chemical treatment generates breaks at a small proportion of one or two of the four nucleotide bases in each of four reactions (G, A+G, C, C+T). Thus a series of labelled fragments is generated, from the radiolabelled end to the first 'cut' site in each molecule. The fragments are then size-separated by gel electrophoresis, with the four reactions arranged side by side. To visualize the fragments generated in each reaction, the gel is exposed to X-ray film for autoradiography, yielding an image of a series of dark 'bands' corresponding to the radiolabelled DNA fragments, from which the sequence may be inferred.

Also sometimes known as 'chemical sequencing', this method originated in the study of DNA-protein interactions (footprinting), nucleic acid structure and epigenetic modifications to DNA, and within these it still has important applications.

Chain-termination methods


While the chemical sequencing method of Maxam and Gilbert, and the plus-minus method of Sanger and Coulson were orders of magnitude faster than previous methods, the chain-terminator method developed by Sanger was even more efficient, and rapidly became the method of choice. The Maxam-Gilbert technique requires the use of highly toxic chemicals, and large amounts of radiolabeled DNA, whereas the chain-terminator method uses fewer toxic chemicals and lower amounts of radioactivity. The key principle of the Sanger method was the use of dideoxynucleotides triphosphates (ddNTPs) as DNA chain terminators.

The classical chain-termination or Sanger method requires a single-stranded DNA template, a DNA primer, a DNA polymerase, radioactively or fluorescently labeled nucleotides, and modified nucleotides that terminate DNA strand elongation. The DNA sample is divided into four separate sequencing reactions, containing the four standard deoxynucleotides (dATP, dGTP, dCTP and dTTP) and the DNA polymerase. To each reaction is added only one of the four dideoxynucleotides (ddATP, ddGTP, ddCTP, or ddTTP). These dideoxynucleotides are the chain-terminating nucleotides, lacking a 3'-OH group required for the formation of a phosphodiester bond between two nucleotides during DNA strand elongation. Incorporation of a dideoxynucleotide into the nascent (elongating) DNA strand therefore terminates DNA strand extension, resulting in various DNA fragments of varying length. The dideoxynucleotides are added at lower concentration than the standard deoxynucleotides to allow strand elongation sufficient for sequence analysis.

The newly synthesized and labeled DNA fragments are heat denatured, and separated by size (with a resolution of just one nucleotide) by gel electrophoresis on a denaturing polyacrylamide-urea gel. Each of the four DNA synthesis reactions is run in one of four individual lanes (lanes A, T, G, C); the DNA bands are then visualized by autoradiography or UV light, and the DNA sequence can be directly read off the X-ray film or gel image. In the image on the right, X-ray film was exposed to the gel, and the dark bands correspond to DNA fragments of different lengths. A dark band in a lane indicates a DNA fragment that is the result of chain termination after incorporation of a dideoxynucleotide (ddATP, ddGTP, ddCTP, or ddTTP). The terminal nucleotide base can be identified according to which dideoxynucleotide was added in the reaction giving that band. The relative positions of the different bands among the four lanes are then used to read (from bottom to top) the DNA sequence as indicated.



There are some technical variations of chain-termination sequencing. In one method, the DNA fragments are tagged with nucleotides containing radioactive phosphorus for radiolabelling. Alternatively, a primer labeled at the 5’ end with a fluorescent dye is used for the tagging. Four separate reactions are still required, but DNA fragments with dye labels can be read using an optical system, facilitating faster and more economical analysis and automation. This approach is known as 'dye-primer sequencing'. The later development by L Hood and coworkers] of fluorescently labeled ddNTPs and primers set the stage for automated, high-throughput DNA sequencing.



The different chain-termination methods have greatly simplified the amount of work and planning needed for DNA sequencing. For example, the chain-termination-based "Sequenase" kit from USB Biochemicals contains most of the reagents needed for sequencing, prealiquoted and ready to use. Some sequencing problems can occur with the Sanger Method, such as non-specific binding of the primer to the DNA, affecting accurate read out of the DNA sequence. In addition, secondary structures within the DNA template, or contaminating RNA randomly priming at the DNA template can also affect the fidelity of the obtained sequence. Other contaminants affecting the reaction may consist of extraneous DNA or inhibitors of the DNA polymerase.

Dye-terminator sequencing




An alternative to primer labelling is labelling of the chain terminators, a method commonly called 'dye-terminator sequencing'. The major advantage of this method is that the sequencing can be performed in a single reaction, rather than four reactions as in the labelled-primer method. In dye-terminator sequencing, each of the four dideoxynucleotide chain terminators is labelled with a different fluorescent dye, each fluorescing at a different wavelength. This method is attractive because of its greater expediency and speed and is now the mainstay in automated sequencing with computer-controlled sequence analyzers (see below). Its potential limitations include dye effects due to differences in the incorporation of the dye-labelled chain terminators into the DNA fragment, resulting in unequal peak heights and shapes in the electronic DNA sequence trace chromatogram after capillary electrophoresis (see figure to the right). This problem has largely been overcome with the introduction of new DNA polymerase enzyme systems and dyes that minimize incorporation variability, as well as methods for eliminating "dye blobs", caused by certain chemical characteristics of the dyes that can result in artifacts in DNA sequence traces. The dye-terminator sequencing method, along with automated high-throughput DNA sequence analyzers, is now being used for the vast majority of sequencing projects, as it is both easier to perform and lower in cost than most previous sequencing methods.

Links for people interested in DNA-related software and bioinformatics:

Art Roberts's informative web site on biotechnology

The IUBio Archive for Biology data and software

The BioCatalog at EBI

Genamics (MolBiol software database)

UK HGMP Resource Centre (bioinfo services after registration)

TIGR software tools for genomics

STADEN package - PreGAP4 and GAP4 for Contig (pre)assembly

Some things on/for ACeDB

EST-related links and software/web tools

A QTL-analysis software package

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