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The Chromosomal Basis of Inheritance. Chp. 15. Genes are located on…. CHROMOSOMES!. Human Genome Project. Chromosomal Basis of Mendel’s Laws…. Page 275. Thomas Hunt MORGAN – first to locate a specific gene on a specific chromosome. FRUIT FLY. Drosophila melanogaster. MALE. FEMALE.
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Genes are located on… CHROMOSOMES!
Chromosomal Basis of Mendel’s Laws… Page 275
Thomas Hunt MORGAN – first to locate a specific gene on a specific chromosome FRUIT FLY Drosophila melanogaster
MALE FEMALE
WILD TYPE (red eyes) MUTANT (white eyes)
Drosophila allele symbols • Gene symbol comes from mutant • Ex: white eyes w • Wild type (normal phenotype) is dsignated with a “+” • Ex: normal (red) eyes w+ • If mutant is recessive, use lower case… • If mutant is dominant to wild type, use upper case…
White eyed male crossed with a wild-type female… • All F1 had red (wild-type) eyes • F2 had 3 wild type : 1 white BUT… ONLY MALES had WHITE eyes Thus, eye color “linked” to sex
Gene for white eye color located on the “X” chromosome* Symbols: Xw+ = wild type Xw = white eye *Called a Sex-Linked Gene
PRACTICE: Punnett Squares with Sex Linked Genes • P Generation = wild-type female & white eyed male Xw+ Xw+ x Xw Y • F1 = ? Xw+ Xw Xw+ Xw Xw+ Y Xw+ Y
PRACTICE: Punnett Squares with Sex Linked Genes • P Generation = wild-type female & white eyed male Xw+ Xw+ x Xw Y • F1 = Xw+ Xw and Xw+ Y (all wild type) • F2 =
Linked Genes • Linked Genes = genes on same chromosome • Tend to be inherited together black bodies and vestigial wings Wild type
b b+ b+ b b+ b vg vg+ vg vg+ vg+ vg Black body & vestigial wing Wild type b+ b+ vg+ vg+ b b vg vg Gametes: b+ vg+ b vg F1 = b+ b vg+ vg
b+ b b b vg vg+ vg vg Test cross of F1 If on different chromosomes (independent assortment), then b+ b vg+ vg x b b vg vg Gametes: b+vg+; b+vg; b vg+; b vg b vg
Test cross of F1 If on different chromosomes (independent assortment), then b+ b vg+ vg x b b vg vg Body: Normal Normal Black Black Wing: Normal Vestigial Normal Vestigial 1 : 1 : 1 : 1
b b+ b+ b b+ b vg vg+ vg vg+ vg+ vg Black body & vestigial wing Wild type b+ b+ vg+ vg+ b b vg vg Gametes: b+ vg+ b vg F1 = b+ b vg+ vg
b+ b b b vg+ vg vg vg Test cross of F1 If on same chromosome with NO CROSSOVER, then: b+ b vg+ vg x b b vg vg Gametes: b+ vg+ or b vg b vg
Test cross of F1 If on same chromosome with NO CROSSOVER, then: b+ b vg+ vg x b b vg vg Body: Normal Normal Black Black Wing: Normal Vestigial Normal Vestigial
b b b+ b b b+ b vg vg vg+ vg vg+ vg vg Test cross of F1 If on same chromosome with CROSSOVER, then: b+ b vg+ vg x b b vg vg Gametes: b+ vg+ or b vg b vg b+ vg or b vg+
Test cross of F1 If on same chromosome with CROSSOVER, then: b+ b vg+ vg x b b vg vg Recombinants Parental Types Body: Normal Normal Black Black Wing: Normal Vestigial Normal Vestigial RATIO ???
Parental Types 965 + 944 = 1909 flies Recombinants 206 + 185 = 391 flies % Recombinants 391 recomb. = .17 or 2300 total 17%
b vg 17 map units
Linkage Map: uses recombination frequencies to map relative location of genes on chromosomes 1 map unit = 1 % recombination freq. ex: b-vg = 17% b-cn = 9% cn-vg = 9.5%
Other chromosomal maps: • Cytogenic map – actually pinpoints genes on physical location of chromosome (bands) • DNA sequencing/physical map – gives order of nucleotides for a gene and intergenic sequences in # of b.p. (base pairs)
PRACTICE • In tomatoes, round fruit shape (O) is dominant to elongated (o), and smooth skin (S) is dominant to fuzzy skin (s). Test crosses of F1 individuals heterozygous for these pairs of alleles gave the following results: 12 elongated-smooth 123 round-smooth 133 elongated-fuzzy 12 round-fuzzy Are these genes linked? Calculate the % recombination and the map distance between the two genes.
PRACTICE • In tomatoes, round fruit shape (O) is dominant to elongated (o), and smooth skin (S) is dominant to fuzzy skin (s). Test crosses of F1 individuals heterozygous for these pairs of alleles gave the following results: 12 elongated-smooth 123 round-smooth 133 elongated-fuzzy 12 round-fuzzy Calculate the % recombination and the map distance between the two genes. 24 / 280 = .086 8.6% 8.6 map units parental recombinants
PRACTICE • The cross-over percentages between linked genes are given below: A – B = 40% C – D = 10% B – D = 10% B – C = 20% A – C = 20% What is the sequence of genes on the chromosome? (draw a map and label distance between genes) 20 10 10 B D C A
PRACTICE 3. Recombination frequency is given below for several gene pairs. Create a linkage map for these genes, and show the map unit distances between loci (genes). j, k = 12% k, l = 6% j, m = 9% l, m = 15% 9 6 6 k j l m
Sex Chromosomes and sex-linked genes: • XX = female • XY = male • Father’s gamete determines sex of child • Presence of a Y chromosome (SRY genes) allows development of testes/male characteristics
Inheritance of sex-linked genes • Sex-linked gene = gene carried on sex chromosome (usually X) • Females (XX) only express recessive sex-linked phenotypes if homozygous recessive for the trait • Males (XY) will express what ever allele is present on the X chromosome = hemizygous
PRACTICE • What are the possible phenotypes of the offspring from a woman who is a carrier for a recessive sex-linked allele and a man who is affected by the recessive disorder? 1 normal female: 1 affected female: 1 normal male: 1 affected male
2 1 3 4 5 6 7 PRACTICE • Two normal color-sighted individuals produce the following family (see pedigree). Fill in the probably genotypes of the numbered individuals. Solid symbols represent color blindness.
2 1 3 4 5 6 7 PRACTICE • Two normal color-sighted individuals produce the following family (see pedigree). Fill in the probably genotypes of the numbered individuals. Solid symbols represent color blindness. XAY XAXa XAXA XAXa XAY XaY XAXa
Sex-linked Disorders in Humans • Duchenne Muscular Dystrophy
Sex-linked Disorders in Humans • Duchenne Muscular Dystrophy • Hemophilia
Sex-linked Disorders in Humans • Duchenne Muscular Dystrophy • Hemophilia • Fragile X
Sex-linked Disorders in Humans • Duchenne Muscular Dystrophy • Hemophilia • Fragile X • (Baldness & red-green color-blindness)
X Inactivation: females have two X chromosomes, but only need one active X • One X condenses in each cell during embryonic development Barr body • Females are a “mosaic” if heterozygous for a sex-linked trait ex: Calico cats
Chromosomal Alterations • Aneuploidy – 1 more/less chromosome • Due to NONDISJUNCTION: separation of homologous chromosomes (Anaphase I) or sister chromatids (Anaphase II) fails
Chromosomal Alterations • Aneuploidy – 1 more/less chromosome • Due to NONDISJUNCTION: separation of homologous chromosomes (Anaphase I) or sister chromatids (Anaphase II) fails • Trisomy = 1 extra chromosome (2n + 1) • Monosomy = 1 less chromosome (2n – 1) HUMANS – cannot have more than 47 or less than 45 chromosomes & NEED AT LEAST ONE “X” to survive
Aneuploid Disorders • Down Syndrome: Trisomy 21 • Klinefelter Syndrome: XXY • Trisomy X: XXX • Turner Syndrome: Monosomy X (X0) • Only viable monosomy in humans!
Polyploidy • Polyploidy = more than two complete sets of chromosomes (nondisjunction) • TRIPLOIDY = 3n • Humans: • n = haploid = 1 set = 23 chromosomes • 2n = diploid = 2 sets = 46 chromosomes • 3n = triploid = 3 sets = 69 chromosomes COMMON IN PLANT KINGDOM