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Free Response Questions
Unit 4
1. 1996 An organism is heterozygous at two genetic loci on different chromosomes.
B
A
b
a
a. Explain how these alleles are transmitted by the process of mitosis to daughter cells
b. Explain how these alleles are distributed by the process of meiosis to gametes.
c. Explain how the behavior of these two pairs of homologous chromosomes during
meiosis provides the physical basis Mendel’s two laws of inheritance.
Labeled diagrams that are explained in your answer may be useful.
2. 2004 Meiosis reduces chromosome number and rearranges genetic information.
a. Explain how the reduction and rearrangement are accomplished in meiosis.
b. Several human disorders occur as a result of defects in the meiotic process.
Identify ONE such chromosomal abnormality; what effects does it have on the
phenotype of people with the disorder? Describe how this abnormality could result
from a defect I meiosis.
c. Production of offspring by parthenogenesis or cloning bypasses the typical meiotic
process. Describe either parthenogenesis or cloning and compare the genomes of
the offspring with those of the parents.
3. 2010 A new species of fly was discovered on an island in the South Pacific. Several
different crosses were performed, each using 100 females and 100 males. The phenotypes
of the parents and the resulting offspring were recorded.
Cross I: True breeding bronze-eyed males were crossed with true-breeding red-eyed females.
All the F1 offspring had bronze eyes. F1 flies were crossed and the data of the resulting F2 flies
are given in the table below.
F2 Phenotype Male Female
Bronze eyes 3,720 3,800
Red eyes
1,260 1,320
Cross II: True-breeding normal-winged males were crossed with true-breeding stunted-winged
females. All the F1 offspring had stunted wings. F1 flies were crossed, and the data for the
resulting F2 cross are given in the table below.
F2 Phenotype Male Female
Normal wings 1,160 1,320
Stunted wings 3,600 3,820
Cross III: True-breeding bronze-eyed, stunted winged males were crossed with true-breeding
red-eyed normal winged females. All the F1 offspring had bronze eyes & stunted wings. The
F1 flies were crossed with true-breeding red-eyed, normal-winged flies, and the results are
shown in the table below.
Phenotype
Male Female
Bronze eyes, stunted wings 2,360 2,220
Bronze eyes, normal wings
220
300
Red eyes, stunted wings
260
220
Red eyes, normal wings
2,240 2,180
a. What conclusions can be drawn from Cross I and Cross II? Explain how the data
support your conclusions for each cross.
b. What conclusions can be drawn from the data from Cross III? Explain how the data
support your conclusions.
c. Identify and discuss TWO different factors that would affect whether the island’s fly
population is in Hardy-Weinberg equilibrium for the traits above.
4. 2003 In fruit flies, the phenotype for eye color is determined by a certain locus. E
indicates the dominant allele end e indicates the recessive allele. The cross between a male
wild-type fruit fly and a female white-eyed fruit fly produced the following offspring:
F1
Wild-type Wild-type White-eyed White-eyed Brown-eyed
Male
Female
Male
Female
Female
0
45
55
0
1
The wild-type and white-eyed individuals from the F1 generation were then crossed to produce
the following offspring.
F2
23
31
22
24
0
a. Determine the genotypes of the original parents (P generation) and explain your reasoning.
You may use Punnett squares to enhance your description, but results from the Punnett
squares must be discussed in your answer.
b. Use a Chi-square test on the F2 generation data to analyze your prediction of the parental
genotypes. Show all your work and explain the importance of your final answer.
c. The brown-eyed female in the F1 generation resulted from a mutational change. Explain
what a mutation is, and discuss two types of mutations that might have produced the browneyed female in the F1 generation.
Degrees of Freedom (df)
Probability (p)
1
2
3
4
5
0.05
3.84 5.99 7.82 9.49 11.1
Χ2 = Σ
(o – e)2
e
where o = observed number of individuals
e = expected number of individuals
Σ = the sum of the values
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