genetic engineering 1 lecture 18 pages 323 - 340

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Genetic Engineering 1 Lecture 18 Pages 323 - 340

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Page 1: Genetic Engineering 1 Lecture 18 Pages 323 - 340

Genetic Engineering 1

Lecture 18Pages 323 - 340

Page 2: Genetic Engineering 1 Lecture 18 Pages 323 - 340

The Tools of Molecular Biology

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10_01_experiment.DNA .jpg

Old fashioned way was to breed for what you wanted

Mendel did it!

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10_02_cell_sorter.jpg

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Once you have the cells what next?

• Issue was to examine the DNA in a consistent manner

• Best method is to use restriction enzymes– Come mainly from bacteria– Use individually or in a mix

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10_04_Restrict.nuclease.jpg

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What do you do with these digested fragments of DNA?

• Isolate those that you want to work on

• How?– Best method is to use gel electrophoresis

• Agarose• Polyacrylamide

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10_05_gel.electrophor.jpg

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Then what do you do with this piece of DNA?

• Clone

• Sequence– Rely on the use of dideoxy nucleotides

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10_07_1_enzym.dideoxy.jpg

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10_07_2_enzym.dideoxy.jpg

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10_08_DNA.sequencing .jpg

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10_09_Shotgun.sequenc.jpg

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10_10_Repetit.sequence.jpg

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10_11_BAC.clones.jpg

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10_12_de_renaturation.jpg

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10_13_hybridization.jpg

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Blotting

Purpose to make a permanent record of the results of a gel electrophoresis.

The compass -

• Southern blots - DNA

• Northern blots - RNA

• Western blots - Proteins

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10_14_1_Southrn.blotting.jpg

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10_14_2_Southrn.blotting.jpg

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10_15_DNA.microarrays .jpg

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Cloning and growing

• One can use the techniques of cell biology to manufacture artificial and real products, be they genes, proteins, or organisms

• If you want to insert some DNA into another molecule then the best place to start is to use the same restriction enzyme to cut both - so they have the same ends.

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10_18_ DNA.in.vitro.jpg

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10_19_DNA.uptake.jpg

Bacteria have the ability to ‘ingest’ DNA from their environment naturally. This property makes them able to change their properties very quickly - and dangerous to us.

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10_20_Bacteria.plasmid.jpg

Bacteria are able to also pass between themselves, other small pieces of DNA known as plasmids. We can make use of plasmids to carry our test DNA into bacteria as shown on the next side…

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10_21_DNA ligase.jpg

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10_22_cloned.DNA.frag.jpg

Small numbers of transformed bacteria can be grown to large numbers in simple growth media.

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10_23_genomic.library.jpg

Genomic libraries of fragments of all human genes can be made by this technique. One can buy these libraries and use them to isolate any gene and grow that for experimental purposes. One can find the right cell using the technique on the next slide…

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10_24_hybridization.jpg

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10_25_cDNA.jpg

Another technique is to use the mRNA from a cell to make DNA in the reverse direction. These DNA molecules represent just the genes that were active at the time the mRNA was recovered from the cell.

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10_26_Genomic_cDNA.jpg

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10_27_1_PCR_amplify.jpg

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10_27_2_PCR_amplify.jpg

PCR - Polymerase Chain Reaction

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10_28_PCR_clones.jpg

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10_29_PCR_viral.jpg

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10_30_1_PCR_forensic.jpg

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10_30_2_PCR_forensic.jpg

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10_31_SerialDNA.clone.jpg

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10_32_expressionvector.jpg

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10_33_gene_protein.jpg

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10_34_Reporter.genes.jpg

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10_35_GFP.jpg

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10_36_mutagenesis.jpg

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10_37_engineered.org.jpg

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10_38_ES.cells.jpg

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10_39_Transgenic.mice.jpg

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10_40_Transgenic.plant.jpg