Showing posts with label DNA extraction. Show all posts
Showing posts with label DNA extraction. Show all posts

Monday, June 1, 2009

DNA Extraction From Fresh Bone

You can extract nucleic acids, such as DNA, from bone samples in order to analyze gene expressions, to look for somatic mutations of tumors or other pathological tissue, or for genotyping archive material when other sources of DNA are not available. You can use several kits that have already provided by biotech companies. But, if you are extracting DNA from large number samples, you can use a homemade method as described here to be effective in cost.

Wednesday, May 6, 2009

Bacterial DNA Extraction for Pulsed-field Gel Electrophoresis

Pulsed-field gel electrophoresis (PFGE) is a method used to separate large DNA fragments such as those obtained after digestion with restriction endonucleases that cut infrequently. To avoid possible risks of shearing bacterial DNA during the extraction and digestion steps, bacterial cells are immobilized prior to processing by incorporation in agarose gel. DNA extraction for PFGE is characterized by the need to prolong contact between agarose plugs and the lysis solution that must be distributed throughout the gel. However, the duration of DNA preparation has been shortened since the initial description of the method. The method described in this posting works well with Gram-positive and Gram-negative rods of clinical interest.

Tuesday, March 24, 2009

DNA Extraction Using Prepman Ultra

In my previous posting I’ve slightly given the bacterial DNA extraction method using Instagene matrix. In this particular posting, I want to give you the more simple method to extract DNA, which is using Prepman Ultra. According to the producer, Applied Biosystem, Prepman ultra is applicable to successfully preparing DNA template from bacteria, yeast, filamentous fungi, both from a plate or from tissue smears.

Friday, March 20, 2009

Quantitative Estimation of DNA Concentrations

DNA, RNA, and protein strongly absorb ultraviolet light in the 260 to 280 nm range. UV spectroscopy can be used as a quantitative technique to measure nucleic acid concentration and protein contamination. Nucleic acids strongly absorb at 260 nm and less strongly at 280 nm while proteins do the opposite. The general rules for determining the concentrations of nucleic acids at 260 nm are:

Thursday, March 19, 2009

Estimation of DNA Concentrations

The determination of the concentration of DNA or RNA in solution is a fundamental task in molecular biology. DNA is usually the limiting reagent in most experiments; therefore, the knowledge of its concentration is critical. Determination of the DNA concentration can be estimated either by qualitatively comparing the fluorescence of DNA bands in an agarose gel to a standard or by spectrophotometric means.

Wednesday, February 25, 2009

Isolation of Yeast Genomic DNA

Isolating genomic DNA from yeast involves culturing the microbe, harvesting the cell, enzymatically removing the cell wall, lysing the protoplast, and finally separating the DNA from the other cell debris.
Materials that you need are:

Yeast culture-prepared previously

Spectrophotometer with cuvettes

50 mM EDTA, pH 8-ice cold

50 mM Tris, pH 9.5, 2% 2-mercaptoethanol

1.2 M sorbitol, 50 mM Tris, pH 7.5

Lyticase solution-500 U/ml in 50 mM Tris, pH 7.5

10% Sodium Dodecyl Sulfate (SDS)-used for checking protoplast formation

Lysis buffer-100 mM Tris, pH 7.5, 100 mM EDTA, 150 mMNaCl, 50 micrograms/ml RNase A

Lysis buffer with 2% SDS

95% Ethanol-stored at minus 20 degree Celcius

TE buffer-10 M Tris, pH 8, 1 mM EDTA

3 M potassium acetate, pH 5.5

Here are the step by step methods:

Bacterial DNA Extraction using InstaGene® Matrix

In spite of using Phenol and Chloroform to extract bacterial DNA template, you can use the InstaGene matrix to be more efficient. This DNA extraction method is very easy, fast, and practical. Here is the procedure: