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Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic...

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Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent Assortment, Linkage and Crossing Ove Two- and Three-point crosses Complementation Analysis Pedigree Analysis
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Page 1: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.

Genetic Mapping (Chapt. 5)

Basic Principles

Genetic Mapping in Experimental Organisms

Genetic Mapping in Humans

Genes, RFLPs, SNPsMeiosis, Independent Assortment, Linkage and Crossing Over

Two- and Three-point crossesComplementation Analysis

Pedigree Analysis

Page 2: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.

Fig. 2-8Gametes(haploid cells)

Page 3: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.

Crossing Over Occurs Between DNA of Homologous Chromosomes

Paternal

Maternal

PairedHomologousChromosomes

A

A

a

a

b

b

B

BaB

Ab

Page 4: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.
Page 5: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.

Genetic Map of Drosophila

Fig. 5-14

Page 6: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.

Drosophila melanogaster (Fruit Fly)

Page 7: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.

Drosophila melanogaster (Fruit Fly)

Phenotypes• eye color• body color• wing shape• antenna length• bristle pattern

Page 8: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.

Gene NameRecessive Allele

Dominant Allele (WT)

Curled Wings

Sepia Eyes sese+

Striped Body

Javelin Bristles

cucu+

jvjv+

srsr+

Page 9: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.

Single Crossover (SCO)

Paternal

Maternal

PairedHomologousChromosomes

Page 10: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.

Double Crossover (DCO)

PairedHomologousChromosomes

Paternal

Maternal

DCO Products

Page 11: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.

Pedigree for Inheritance of Blood Type and Nail-Patella Syndrome

Page 12: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.

GelElectrophoresis

Pedigree for Mapping of HD and a DNA Marker

I

Page 13: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.

GelElectrophoresis

I

II

Pedigree for Mapping of HD and a DNA Marker

Page 14: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.

February 2007

1168 Family Pedigrees with at least two individuals with Autism Spectrum Disorder

Page 15: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.

M LASD

~ 2 cM

orf1 orf2 orf3 orf4

~ 500,000 bp

Band11q13

Chromosome 11

Page 16: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.

Neurexin Proteins

Page 17: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.

Population Genetics (Chapter 27)

Mendelian Genetics Applied to Populations

The Hardy-Weinberg Equation (p2 + 2pq + q2)

Test populations for microevolutionMutation rate in humansEstimate frequency of carriers for recessive genetic disordersAssess effect of natural selection on microevolutionAssess effect of inbreedingDNA Profiling (“DNA fingerprinting”)

Page 18: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.

HIV-1 Structure

(Gp120)

Page 19: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.

HIV Infection Pathway

HIV-1

Gp120

Cytosol

Extra-cellularSpace

Membrane

CCR5

CD4

Page 20: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.

HIV Infection Pathway

Protein encodedby CCR5-1 allele(CCR5-1 / CCR5-1 or CCR5-1 / CCR5-∆32)

HIV-1

Gp120

Cytosol

Extra-cellularSpace

Membrane

CCR5

CD4

Page 21: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.

CCR5 RFLP

CCR5-1

CCR5-∆32

Page 22: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.

CCR5 Genotype Analysis

Fig. 25-3

Page 23: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.

CCR5-∆32 Allele Frequency

Fig. 25-4

Page 24: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.

Assumptions of the Hardy-Weinberg Equation

1. Individuals of all genotypes have equal rates of survival and reproductive success (no selection).

2. No new alleles are created or converted from one allele toanother by mutation.

3. Individuals do not migrate into or out of the population(no gene flow).

4. The population is infinitely large (no genetic drift).

5. Individuals in the population mate randomly (no inbreeding)

Page 713

Page 25: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.
Page 26: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.

Fibroblast Growth Factor 3 (FGFR3) Receptor

GA

C(Gly to Arg)Achondroplasia Mutations:

Page 27: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.

FGFR3 Signal Transduction Pathways

Page 28: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.

DELAYED LYSOSOMAL DEGREDATION

Page 29: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.

FGFR3 Signal Transduction Pathways

Page 30: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.

Fig. 27-7

Effect of Selection on Allele Frequency

Page 31: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.

Fig. 27-8

Changes in CCR5-∆32 Allele Frequency

Page 32: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.

VNTR-DVNTR-CVNTR-B VNTR-E VNTR-FVNTR-A

Chromosome 7

Page 33: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.

GTCTAG GTCTAG GTCTAG GTCTAG CAGATC CAGATC CAGATC CAGATC

Tandem Repeat Locus

(a.k.a VNTR, STR, Microsatellite)

Page 34: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.

VNTR-DVNTR-CVNTR-B VNTR-E VNTR-FVNTR-A

7M

7P

GTCTAG GTCTAG GTCTAGCAGATC CAGATC CAGATC

GTCTAG GTCTAG GTCTAG GTCTAG CAGATC CAGATC CAGATC CAGATC

7M

7P

Page 35: Genetic Mapping (Chapt. 5) Basic Principles Genetic Mapping in Experimental Organisms Genetic Mapping in Humans Genes, RFLPs, SNPs Meiosis, Independent.

Fig. 22-27

RFLP Analysis of VNTR Loci


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