HomeworkLib
Question

Agapanthus is a dominant, homozygous lethal trait among Telorites from the planet Teleflora. Subjects with this...

Agapanthus is a dominant, homozygous lethal trait among Telorites from the planet Teleflora. Subjects with this condition love to send flowers. From a group of Telorites heterozygous at the Agapanthus locus (with two alleles: A = dominant (trait) allele, a = recessive (wild-type) allele), 88% of the Telorites have the Agapanthus phenotype, and 12% look wild-type.

Also, true-breeding wild-type Telorites (aa genotype) have 0% penetrance.

A Telorite with the Agapanthus phenotype mates with a true-breeding Telorite with the wild-type phenotype. One of the F1 children is randomly selected and is mated back to the true-breeding wild-type parent. Out of twenty F2 individuals, we observe the following counts:

  1. Eight F2 individuals have the Agapanthus phenotype;
  2. Twelve F2 individuals have the Wild-type phenotype.

The genotype of the randomly-selected F1 subject must be:

A. Aa or aa.

B. We cannot say with certainty. We need to perform a Chi-square goodness of fit test.

C. AA.

D. aa.

E. Aa.

science   biology   
0 0
Add a comment Improve this question Transcribed image text
Next > < Previous
Sort answers by oldest

Homework Answers

Answer #1

Answer: "E" (Aa)

The genotype of the randomly-selected F1 subject must be: "Aa".

Explanation:

Agapanthus is a dominant, homozygous lethal trait. Agapanthus loci have the two alleles.

A: Dominant allele

a: recessive allele

Individual phenotype AA: Lethal

Aa: Agapanthus phenotype

aa: Wild type (True breeding phenotype)

Aa x aa

  ↓

F1 1Aa: 1aa

One of the F1 children is randomly selected and is mated back to the true-breeding wild-type parent.

Out of twenty F2 individuals, we observe the following counts:

  1. Eight F2 individuals have the Agapanthus phenotype;
  2. Twelve F2 individuals have the Wild-type phenotype.

Condition 1: If the child is "aa"

aa x aa

   ↓

F2 all are wild type.

So condition 1 is not true when compared with the given data. In this condition, Agapanthus phenotype was not observed. SO the selected F1 is not "aa".

Condition 2: If the child is "Aa"

Aa x aa

   ↓

F2 1Aa (50% Agapanthus phenotype): 1 aa (50% wild type). There is 0% penetrance in "a" allele.

Expected outcome: out of twenty, 10 Agapanthus phenotype: 10 wild type

but observed is: out of twenty, 8 Agapanthus phenotype: 12 wild type

By chi-square test: The given hypothesis is accepted (Chi-square analysis was performed)

Degree of freedom: n-1: 2-1=1

Critical value at 0.05 is 3.84. Tota X2 value is 0.8 (0.4+0.4). 0.8 less than 3.84. So a given hypothesis was accepted.   

0 0
Add a comment
Know the answer?
Add Answer to:
Agapanthus is a dominant, homozygous lethal trait among Telorites from the planet Teleflora. Subjects with this...
Your Answer:

Post as a guest

Your Name:

What's your source?

Earn Coins

Coins can be redeemed for fabulous gifts.

Log In

Sign Up

Not the answer you're looking for? Ask your own homework help question. Our experts will answer your question WITHIN MINUTES for Free.
Similar Homework Help Questions

  • On the island of Notion, in the Factotum Archipelago, there lives a population of pencil bears....

    On the island of Notion, in the Factotum Archipelago, there lives a population of pencil bears. A portion of these bears have silky fur, and as a result, are much better surfers. The texture of the fur is determined by a single autosomal locus with two alleles: S (trait allele) and s (wild type allele). In a recent study, researched collected the values in the following table: Table 1. Counts of Pencil Bear fur style by genotype Phenotype Genotype Silky...

  • Colorium is an autosomal dominant trait in Nutonian flies (identical to earth fruit flies in every...

    Colorium is an autosomal dominant trait in Nutonian flies (identical to earth fruit flies in every way). There are two alleles at this locus: F = Dominant allele; flies with this allele cannot observe the color Fuschia; these flies have the Colorium phenotype. + = Wild type allele; flies who are homozygous for this allele can observe the color Fuschia; these flies do not have the Colorium phenotype. A cross of a true breeding male with Colorium and a true...

  • Obj. 37. In Drosophila forked (F) bristles is X-linked and dominant. If a virgin female homozygous...

    Obj. 37. In Drosophila forked (F) bristles is X-linked and dominant. If a virgin female homozygous for forked s crossed with a wild-type male predict; the proportions/ratios of genotypes and phenotypes among the F1 and F2 as the sex and bristle trait. F: Females Phenotype F1 Males Phenotype Genotype Genotype F2 Females Phenotype = F2 Males Phenotype Genotype = Genotype =

  • The Meritahti phenotype, on the planet Snnooozze is determined by one gene that has two alleles...

    The Meritahti phenotype, on the planet Snnooozze is determined by one gene that has two alleles in the population. The alleles are: M (dominant allele) and m (recessive or wild-type allele). Previous studies have documented the following penetrance values: Pr(Meritahti phenotype | MM) = 0.67; Pr(Meritahti phenotype | Mm) = 0.52; Pr(Meritahti phenotype | mm) = 0.00. If a true breeding Snnooozzer who has the Meritahti phenotype mates with a true breeding Snnooozzer who has the wild-type phenotype, and two...

  • Arabidopsis thaliana, a plant, has small leaf projections called trichomes. A search for mutants revealed two...

    Arabidopsis thaliana, a plant, has small leaf projections called trichomes. A search for mutants revealed two mutant strains, A and B, both of which lack trichomes. Strain A plant was propagated until it was completely true-breeding and then crossed to a true-breeding wild-type plant. The F1 was all wild-type. The F2 results are below. The plant geneticist was unable to form a true-breeding plant from strain B plant. When a strain B mutant was crossed to wild-type, the F1 data...

  • 1. In the P generation, whena homozygous dominant trait is crossed with a homozygous recessive trait,...

    1. In the P generation, whena homozygous dominant trait is crossed with a homozygous recessive trait, all the Figeneration will show the dominant trait. What will be the genotype and phenotype ratio in the F2 generation when the Fi generation is crossed? 2 In humans, brown eyes (B) are dominant over blue (b). A brown-eyed man marries a blue-eyed woman and they have three children; two of the children have brown eyes and one has blue eyes. Draw the Punnett...

  • Question 1 (1 point) In a species of flowering plant, petal color is determined by one...

    Question 1 (1 point) In a species of flowering plant, petal color is determined by one gene with two alleles, R and W. Individuals homozygous for allele R have red petals, and those homozygous for allele Whave white petals. Ris dominant to W. You cross a pure- breeding red flowered plant with a pure-breeding white flowered plant to create an F1 generation. You then cross two individuals from the F1 generation to create an F2 generation. What proportion of the...

  • As it is UNIT GENETICS PROBLEMS #2: TEST CROSSES 1. In peas, green pods are dominant...

    As it is UNIT GENETICS PROBLEMS #2: TEST CROSSES 1. In peas, green pods are dominant and yellow pods are the recessive trait. You have pea plants with green pods but you are unsure of the parentage of these plants. How would you determine the genotype of your green pod plants 2. Two black mice mate. Six of their offspring are black and two are white. (Black fur is dominant to white.) a· What are the genotypes of the parents....

  • In rabbits normal hair texture is dominant to a greasy, unkempt-looking type of hair called "wuzzy."...

    In rabbits normal hair texture is dominant to a greasy, unkempt-looking type of hair called "wuzzy." If a homozygous normal-haired rabbit makes with wuzzy rabbit, determine the relative frequency of each genotype and phenotype that will occur the F1 generation. A. What will be the phenotype resulting from the matting of two individuals from F1 generation? B. What is the phenotype ratio? C. What is the genotype ratio? The long hair of the Persians cat s recessive to the short...

  • 46. (7 points) Vanessa has obtained two true-breeding strains of mice, each homozygous for an independently...

    46. (7 points) Vanessa has obtained two true-breeding strains of mice, each homozygous for an independently discovered recessive mutation that prevents the formation of hair on the body. One of the mutant strains is called naked, and the other mutation strain is called hairless. To determine whether the two mutations are simply alleles for the same gene, Vanessa crosses naked and hairless mice with each other (cross 1). All the offspring are phenotypically wild- type. A) What is the most...

ADVERTISEMENT
Free Homework Help App
Download From Google Play
Scan Your Homework
to Get Instant Free Answers
Need Online Homework Help?
Ask a Question
Get Answers For Free
Most questions answered within 3 hours.
ADVERTISEMENT
ADVERTISEMENT