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THE USE OF GENETIC MARKERS IN CHARACTERIZATION OF LIVESTOCK BREEDS
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Measurement of genetic variation ,[object Object],[object Object],[object Object],[object Object]
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Measuring genetic diversity within a population ,[object Object],[object Object]
[object Object],[object Object]
Microsatellite gel image
Genetic structure of populations ,[object Object],[object Object],[object Object]
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The Hardy-Weinberg Law ,[object Object],[object Object],[object Object]
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Calculating within population diversity with a codominant molecular marker Locus A Locus B Locus E Locus C Locus D M 1 2 3 4 5 6 7 8 9 10 Gel 11 12 13 14 15 16 17 18 19 21 22 23 24 25 26 27 28 29 20 30
Scoring of genotypes for locus A A 2 A 2 A 2 A 2 A 2 A 2 A 1 A 2 A 2 A 2 A 2 A 2 A 1 A 1 A 2 A 2 A 2 A 2 A 2 A 2 Gen. 30 29 28 27 26 25 24 23 22 21 Indi. A 2 A 2 A 2 A 2 A 2 A 2 A 2 A 2 A 1 A 2 A 2 A 2 A 2 A 2 A 2 A 2 A 2 A 2 A 2 A 2 Gen. 20 19 18 17 16 15 14 13 12 11 Indi. A 1 A 1 A 2 A 2 A 2 A 2 A 2 A 2 A 2 A 2 A 2 A 2 A 2 A 2 A 1 A 2 A 2 A 2 A 1 A 2 Gen. 10 9 8 7 6 5 4 3 2 1 Indi.
Calculating within population genetic diversity   0.22 H i 0.46 0.41 0.23 h j  =  (1 - p 2  - q 2 ) 0.37 q 0.72 q 0.87 q 0.63 p 0.28 p 0.13 p Allele freq. 1 30 1 Total 1 30 1 Total 1 30 1 Total E 2  E 2 E 1  E 2 E 1  E 1 Genotypes E q 2 2pq p 2 Gen. freq.  (exp.) 7 8 15 Individuals (no.) P 22  =  0.23 P 12  =  0.27 P 11  =  0.50 Gen. freq.  (obs.) B 2  B 2 B 1  B 2 B 1  B 1 Genotypes B q 2 2pq p 2 Gen. freq.  (exp.) 20 3 7 Individuals (no.) P 22  =  0.67 P 12  =  0.10 P 11  =  0.23 Gen. freq.  (obs.) P 22  =  0.80 P 12  =  0.13 P 11  =  0.07 Gen. freq.  (obs.) Data analysis Locus 2 p 2 A 1  A 1 24 4 Individuals (no.) q 2 2pq Gen. freq.  (exp.) A 2  A 2 A 1  A 2 Genotypes A
Measuring genetic diversity between populations ,[object Object],[object Object],[object Object]
[object Object],[object Object]
[object Object],[object Object],[object Object],[object Object]
Example of calculating standard genetic distance  ,[object Object],[object Object],[object Object],[object Object]
[object Object],q 5  = 0.10 p 5  = 0 5 q 4  = 0 p 4  = 0.05 4 q 3  = 0 p 3  = 0.05 3 q 2  = 0.60 p 2  = 0.30 2 q 1  = 0.30 p 1  = 0.60 1 Allele frequencies in population Y Allele frequencies in population X Alleles
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
[object Object],[object Object],[object Object],[object Object]
[object Object],[object Object],[object Object],[object Object],[object Object],[object Object]
[object Object],[object Object],[object Object],[object Object]
[object Object],[object Object],[object Object]
Fig 1: Phylogenetic tree for five OTUs (a) Unscaled branches (b) Scaled branches
Fig 2: (a) Rooted phylogenetic tree (b) Unrooted phylogenetic tree
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[object Object],[object Object],[object Object],[object Object]
[object Object],[object Object],[object Object]
The unweighted pair-group method with arithmetic mean (UPGMA) ,[object Object],[object Object],[object Object]
[object Object],[object Object]
Fig 3: Stepwise construction of a phylogenetic tree using UPGMA methods
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Genetic distances between hominoid species Gibbon 0.2172 - Orang-utan 0.2170 0.1882 - Gorilla 0.2168 0.1940 0.1134 - Chimpanzee 0.2057 0.1790 0.1083 0.0919 - Human Gibbon Orang-utan Gorilla Chimpanzee Human
Fig 4: Phylogenetic trees of four main groups of cattle derived from microsatellite analysis (left) and mitochondrial DNA analysis (right)
Example of a phylogenetic tree showing genetic relationships among goat populations

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GENETIC MARKERS FOR LIVESTOCK BREED CHARACTERIZATION

  • 1. THE USE OF GENETIC MARKERS IN CHARACTERIZATION OF LIVESTOCK BREEDS
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  • 21. Calculating within population diversity with a codominant molecular marker Locus A Locus B Locus E Locus C Locus D M 1 2 3 4 5 6 7 8 9 10 Gel 11 12 13 14 15 16 17 18 19 21 22 23 24 25 26 27 28 29 20 30
  • 22. Scoring of genotypes for locus A A 2 A 2 A 2 A 2 A 2 A 2 A 1 A 2 A 2 A 2 A 2 A 2 A 1 A 1 A 2 A 2 A 2 A 2 A 2 A 2 Gen. 30 29 28 27 26 25 24 23 22 21 Indi. A 2 A 2 A 2 A 2 A 2 A 2 A 2 A 2 A 1 A 2 A 2 A 2 A 2 A 2 A 2 A 2 A 2 A 2 A 2 A 2 Gen. 20 19 18 17 16 15 14 13 12 11 Indi. A 1 A 1 A 2 A 2 A 2 A 2 A 2 A 2 A 2 A 2 A 2 A 2 A 2 A 2 A 1 A 2 A 2 A 2 A 1 A 2 Gen. 10 9 8 7 6 5 4 3 2 1 Indi.
  • 23. Calculating within population genetic diversity 0.22 H i 0.46 0.41 0.23 h j = (1 - p 2 - q 2 ) 0.37 q 0.72 q 0.87 q 0.63 p 0.28 p 0.13 p Allele freq. 1 30 1 Total 1 30 1 Total 1 30 1 Total E 2 E 2 E 1 E 2 E 1 E 1 Genotypes E q 2 2pq p 2 Gen. freq. (exp.) 7 8 15 Individuals (no.) P 22 = 0.23 P 12 = 0.27 P 11 = 0.50 Gen. freq. (obs.) B 2 B 2 B 1 B 2 B 1 B 1 Genotypes B q 2 2pq p 2 Gen. freq. (exp.) 20 3 7 Individuals (no.) P 22 = 0.67 P 12 = 0.10 P 11 = 0.23 Gen. freq. (obs.) P 22 = 0.80 P 12 = 0.13 P 11 = 0.07 Gen. freq. (obs.) Data analysis Locus 2 p 2 A 1 A 1 24 4 Individuals (no.) q 2 2pq Gen. freq. (exp.) A 2 A 2 A 1 A 2 Genotypes A
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  • 34. Fig 1: Phylogenetic tree for five OTUs (a) Unscaled branches (b) Scaled branches
  • 35. Fig 2: (a) Rooted phylogenetic tree (b) Unrooted phylogenetic tree
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  • 41. Fig 3: Stepwise construction of a phylogenetic tree using UPGMA methods
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  • 43. Genetic distances between hominoid species Gibbon 0.2172 - Orang-utan 0.2170 0.1882 - Gorilla 0.2168 0.1940 0.1134 - Chimpanzee 0.2057 0.1790 0.1083 0.0919 - Human Gibbon Orang-utan Gorilla Chimpanzee Human
  • 44. Fig 4: Phylogenetic trees of four main groups of cattle derived from microsatellite analysis (left) and mitochondrial DNA analysis (right)
  • 45. Example of a phylogenetic tree showing genetic relationships among goat populations