Q1. find and read a recent article about the use of some form of biotechnology. You will report on the article by giving a link to the article, summarizing the article, explaining the biotechnology used, and defining the pros and cons of the biotechnology.
Please use this grading rubric as a guide to answer question 1.
- Does the summary explain the purpose, what was studied, and why it is important? Is it in your own words?
- Does the explanation describe the biotechnology, how it works, and is it easy to understand?
- Are the benefits and challenges described with examples from the article?
Q2. Filling out Punnett squares on Lab data sheet.
Click "Download" in the upper right, save, and open in
MS Word (preferred) or Google Docs. This version is not editable.
LAB
8
The Patterns of Inheritance
BIO 106 Life Sciences
Brightpoint Community College
After completing this exercise, you will be able to:
· Define the following terms: homozygous and heterozygous, dominant and recessive alleles, genotype, and phenotype.
· Derive the possible alleles in each gamete of a diploid organism.
· Calculate phenotypic ratio and genotypic ratio using Punnett squares.
· Predict the effect of incomplete dominance and codominance on inheritance.
· Describe how phenotype is determined by genotype.
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· Computer with Internet Connection |
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· Colored pens or markers for drawing by hand |
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· Paper (if you do not have a printer) |
INITIAL KNOWLEDGE CHECK
Indicate your level of knowledge for the following terms by putting an “x” in the box that best describes your understanding of the terms in Table 2-1.
· Unfamiliar: Indicates no knowledge or awareness of the term.
· Basic Understanding: Suggests a basic, surface-level understanding of the term's meaning.
· Proficient: Implies a solid grasp and ability to use the term correctly in context.
· Expert: Signifies a deep, comprehensive understanding and ability to apply the term in various complex situations.
LAB DATA QUESTION 1. Table 8-1: Assess your understanding of the concepts.
|
Term |
Unfamiliar |
Somewhat Familiar |
Proficient |
Expert |
|
Gene |
||||
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Allele |
||||
|
Genotype |
||||
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Phenotype |
||||
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Complete Dominance |
||||
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Incomplete Dominance |
||||
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Codominance |
INTRODUCTION
Mendelian genetics was first investigated by Gregor Mendel, a Moravian monk, in the 1800s. Mendel's groundbreaking research on inheritance utilized the garden pea, Pisum sativum, a species that typically self-fertilizes, with pollen from a flower fertilizing the eggs within the same flower. Given that each pea plant possesses both male and female reproductive structures, it can produce both types of gametes necessary for reproduction—pollen and eggs.
The plants Mendel used for his initial crosses were referred to as the P (parental) generation. He then planted the seeds obtained from these crosses, growing them to become the first filial (F1) generation, meaning the first generation of offspring. After observing the traits in the F1 generation, Mendel allowed them to self-pollinate. The seeds from this generation were used to grow the second filial (F2) generation. The trait ratios observed in the P, F1, and F2 generations formed the foundation of his genetic principles. He derived two generalizations from these experiments, which later became known as Mendel's Principles of Heredity or Mendelian inheritance. Mendel discovered that when he crossed purebred white flower and purple flower pea plants (the parental or P generation), the offspring (known as the F1 generation) was purple-flowered. When he self-fertilized the F1 generation pea plants, he obtained a purple flower to white flower ratio in the F2 generation of 3 to 1. Prior to Mendel's experiments, the prevailing belief was that offspring inherited traits through a blending of their parents' traits, for example a plant with red flowers crossed with a plant with white flowers would produce offspring with pink flowers. However, Mendel's cross-pollination experiments revealed that offspring of purebred plant varieties resembled one parent or the other, rather than exhibiting a blend of traits from both parents. Mendel suggested that plants carried two copies of the flower-color trait, with each parent passing one of their two copies to their offspring, where they united.
For each biological trait, an organism inherits two alleles, one from each parent, which may be the same or different. Subsequently, Mendel introduced the concept of "factors," now referred to as genes, to explain hereditary traits. He identified these factors as the underlying cause for the inherited variations in traits. Each organism inherits two versions of a gene, known as alleles, one from each parent. These alleles can either be identical or distinct. Organisms with two identical alleles for a specific trait are termed homozygous, while those with differing alleles are termed heterozygous. Mendel hypothesized that allele pairs separate randomly during the meiosis (production of eggs and sperm). When sperm and egg unite at fertilization, each contributes its allele, restoring the paired condition in the offspring. This is called the Law of Segregation. Additionally, Mendel discovered that during gamete formation, each allele pair separates independently from every other allele pair. An individual's genotype consists of their unique genes, whereas their phenotype—the observable traits—is a combination of their alleles and environmental factors. When an individual inherits different alleles for a trait, this condition is termed heterozygosity. In such pairs, the dominant allele dictates the organism's appearance, overshadowing the effect of the recessive allele, which does not alter the phenotype if a dominant allele is present. The Law of Dominance explains this interaction by looking at how genotypes show up as phenotypes. One example of this is how recessive traits only show up when there is no dominant allele present. This law does not address how traits are transmitted, but rather the expression of genes. The genotype of an individual is made up of the many alleles it possesses. The environment and an individual's alleles together determine their phenotype, or physical appearance. If the two alleles of an inherited pair differ (the heterozygous condition), one determines the organism's appearance and is called the dominant allele, while the other has no noticeable effect on the organism's appearance and is called the recessive allele. The Law of Dominance, which hides the phenotypic effects of the recessive white flower allele, is not a transmission law but concerns the expression of the genotype.
Objectives
In this lab, you will explore how Mendel's principles of inheritance apply to the transmission of traits from parents to offspring. By examining different allele combinations, you'll gain insights into the genetic mechanisms that determine the phenotype. This hands-on approach will help solidify your understanding of genotype-phenotype relationships and the predictability of genetic inheritance patterns.
Mendel’s Monohybrid Cross
Mendel's monohybrid cross, which involved crossing pea plants that differed in only one trait, demonstrated the Principle of Segregation and the concept of dominant and recessive alleles. Specifically, Mendel crossed pea plants that were purebred for different traits, such as round seeds (dominant) and wrinkled seeds (recessive). In the first filial generation (F1), all the offspring exhibited the dominant trait, indicating that it masked the expression of the recessive trait. However, in the second filial generation (F2), the recessive trait reappeared in a ratio of approximately 3:1 (Figure 8.1). This ratio demonstrated that traits segregate independently during gamete formation, with each parent contributing one allele for each trait to their offspring, and that dominant alleles mask the expression of recessive alleles when present. This experiment laid the foundation for understanding the inheritance of traits and formed the basis for our modern understanding of genetics and heredity.
Setting up a Monohybrid Cross
You have two choices for learning how to complete a monohybrid cross. If you prefer a video, then watch Monohybrids and the Punnett Square Guinea Pigs. If you prefer step by step directions, continue reading below.
Step by Step Directions:
To demonstrate how to set up a monohybrid cross, we will use seed color in pea plants, denoting the dominant gene for yellow seeds as "Y" and the recessive gene for green seeds as "y". Crossing a true-breeding pea plant that produces yellow seeds with a true-breeding pea plant that makes green seeds allows us to predict the genotypes in their offspring. When true beeding organisms are crossed, all offspring will have the same phenotype as the parents. This means that both alleles are the same in the true breeding plants are the same, so the genotype is (YY) or (yy).
1) Identify the genotypes in the Parental (P) generation (Figure 8.1):
Yellow True breeding Genotype: YY,
Figure 8.1 Mendel’s Monohybrid Cross.
In the P generation, pea plants that are true breeding for the dominant yellow phenotype are crossed with plants with the recessive green phenotype. This cross produces F1 heterozygotes with a yellow phenotype. Punnett square analysis can be used to predict the genotypes of the F2 generation.
Green True breeding Genotype: yy
2) Determine the gametes produced by each parent (P generation):
Yellow Gametes: Y Female Gametes: y
3) Cross the P1 generation (parents) to produce the F1 generation (children). Refer to Figure 8.1
Draw a 1 x 1 grid, one row and one column for each gamete.
|
Punnett Square F1 Generation |
Y |
|
Y |
Yy yellow |
Capital letters always go first and write in the phenotype.
Use the Punnett square to determine the expected genotypic ratios of the offspring.
1Yy
Use the Punnett square to determine the phenotypic ratio for the offspring.
1 yellow
Cross the F1 generation (children) to produce the F2 generation (grandchildren) Refer to Figure 8.1.
4) Identify the genotypes in the F2 generation
Male Plant: Yy, Female Plant: Yy Gametes are not separated by commas
5) Determine the gametes produced by each F1 parent.
Male Gametes: Y, y Female Gametes: Y,y Each gamete is separated by a comma.
(CONTINUE TO NEXT PAGE)
6) Cross the F1 generation (children) to produce the F2 generation (grandchildren). Refer to Figure 8.1
a. Draw a 2 x 2 grid, one row and one column for each gamete.
|
Punnett Square F2 Generation |
Y |
y |
|
Y |
YY yellow |
Yy yellow |
|
y |
Yy yellow |
yy green |
b. Capital letters always go first
c. Write in the phenotype.
d. Warning: Auto capitalization sometimes changes “yy” to “Yy”. Double check or turn it off.
7) Use the Punnett square to determine the expected genotypic ratios of the offspring.
1YY: 2Yy: 1Yy
8) Use the Punnett square to determine the phenotypic ratio for the offspring.
3 yellow: 1 green
· Ratios represent the chance that offspring will be born with these phenotypes. For example, there is a 75% chance that the offspring will have the YY phenotype and 75% chance they will be green plants. The actual results may vary since this is a prediction.
· Ratios must always be simplified. For example, a ratio of 4:2 can be divided by 2 and simplified to 2:1.
Problem 1: Round seeds (R) are completely dominant over wrinkled seeds (r). You cross a plant that is homozygous for round seeds (male) with a plant that is heterozygous for round seeds (female). This example has been filled in for you.
QUESTION 1. Male Plant Genotype _____ Female Plant Genotype _____
QUESTION 2. Male plant Gametes _____
QUESTION 3. Female Plant Gametes _____
Write down the phenotypes as you complete the problem
|
Punnett Square |
||
QUESTION 4. Use the Punnett square to determine the expected genotypic ratios of the offspring.
QUESTION 5. Use the Punnett square to determine the phenotypic ratio for the offspring.
Problem 2: Green pods (G) are completely dominant over yellow pods (g). You cross a plant that is heterozygous green pods (male) with another plant that has homozygous for yellow pods.
QUESTION 6. Male Plant Genotype _____ Female Plant Genotype ______
QUESTION 7. Male plant Gametes _____
QUESTION 8. Female Plant Gametes ______
Write down the phenotypes in the Punnett square as you complete the problem
|
Punnett Square |
||
QUESTION 9. Use the Punnett square to determine the expected genotypic ratios of the offspring.
QUESTION 10. Use the Punnett square to determine the phenotypic ratio for the offspring.
Problem 3: Inflated pods (I) are completely dominant over constricted pods (i). You cross two heterozygous (one male and one female) pea plants.
QUESTION 11. Male Plant Genotype _____ Female Plant Genotype ______
QUESTION 12. Male plant Gametes _____
QUESTION 13. Female Plant Gametes ______
Write down the phenotypes in the Punnett square as you complete the problem
|
Punnett Square |
||
QUESTION 14. Use the Punnett square to determine the expected genotypic ratios of the offspring.
QUESTION 15. Use the Punnett square to determine the phenotypic ratio for the offspring.
Problem 4: Round seeds (R) are completely dominant over wrinkled seeds (r). If a male pea plant is heterozygous for round seeds, can any of this plant’s offspring have round seeds? Wrinkled seeds? Think about the different genotypes (females) with which you can cross the heterozygous parent: homozygous dominant, heterozygous, and homozygous recessive.
QUESTION 16. What is the genotype of the male plant? ____
QUESTION 17. Unknown female plant, list the three possible genotypes:
____, ____, ____
· Use the same “Dad” but use a different “Mom” for each cross.
· Write down the phenotypes as you complete each square
|
Punnett Square |
||
|
Punnett Square |
||
|
Punnett Square |
||
QUESTION 18. Look at the three Punnett squares. Which female genotype(s) will only give you round seeds when crossed to a heterozygote?
Female genotype:
QUESTION 19. Look at the three Punnett squares. Which female genotype(s) will give you wrinkled seeds when crossed to a heterozygote?
Female genotype:
QUESTION 20. Look at the three Punnett squares. What is the genotypic ratio for the offspring when both plants are heterozygous for round seeds?
Genotype ratio:
Problem 5: Yellow seeds (G) are completely dominant over green seeds (g). You cross two pea plants (male and female) that are heterozygous for green seeds.
QUESTION 21. Male Plant Genotype _____ Female Plant Genotype ______
QUESTION 22. Male plant Gametes_____ Female Plant Gametes ______
Write down the phenotypes in the Punnett square as you complete the problem
|
Punnett Square |
||
QUESTION 23. Look at Punnett Square. What are the chances that their offspring will have green seeds?
QUESTION 24. Look at Punnett Square. What are the chances that their offspring will have yellow seeds?
Problem 6: Tall plants (T) are dominant over short plants (t). You cross a tall plant (male) with a short plant (female).
QUESTION 25. List the Possible Male Plant Genotype(s) ____, _____.
QUESTION 26. Genotype Short Female Plant. ______
· Use a different “Dad” but use the same “Mom” for each cross.
· Write down the phenotypes in the Punnett square as you complete the problem
|
Punnett Square |
||
|
Punnett Square |
||
QUESTION 27. Out of 30 plants, 15 are tall and 15 are short. Determine the only possible genotype of the tall parent using the data from these test crosses.
QUESTION 28. Mrs. and Mr. Williams both have widow’s peaks (W). Their first child also has widow’s peak, but their second child doesn’t. Mr. Williams accuses Mrs. Williams of being unfaithful to him. Is he justified? Why or why not?
· What are the possible genotypes for Mrs. and Mr. Wilson? ____, ____
· What are the possible genotypes for the child with a widows peak ____, ___
· What is the possible genotype for a child without a widow’s peak ____
· Is there a cross between Mrs. and Mr. Wilson that produces a child with a widow’s peak?
|
Punnett Square |
||
INCOMPLETE DOMINANCE IN MONOHYBRID CROSSES
Incomplete dominance is a genetic inheritance pattern where neither of the two alleles for a specific gene is completely dominant over the other. Instead, in the heterozygous condition, the phenotypic expression is an intermediate or blended trait that falls between the phenotypes of the homozygous dominant and homozygous recessive genotypes.
For example, in a flower color trait where the red allele (B) is dominant and the blue allele (b) is recessive, an individual with a heterozygous genotype (Bb) would display a purple phenotype, representing the blending of the dominant red and recessive blue colors.
|
Punnett Square |
B |
b |
|
B |
BB red |
Bb purple |
|
b |
Bb purple |
bb white |
In complete and incomplete dominance, the genotypic ratios are 1:2:1. However, the phenotypic ratios with incomplete dominance are 1:2:1 instead of 3:1 as we saw in complete dominance. This highlights the interaction of the two alleles with each other creating
Problem 7: A plant can have red flowers (RR), white flowers (rr), or an intermediate phenotype of pink (Rr). A white plant is crossed to a pink plant
QUESTION 29. White Plant Genotype _____ Pink Plant Genotype ______
QUESTION 30. White Plant Gametes:_____ Pink Plant Gametes: ______
Write down the phenotypes as you complete the problem
|
Punnett Square F1 Generation |
||
QUESTION 31. Use the Punnett Square to determine genotypic ratios of the F1 plants?
QUESTION 32. Use the Punnett Square. What are the chances that their offspring will have yellow seeds? What are phenotypic ratios of the F1 plants?
Problem 8: Dogs can have straight hair (AA), curly (aa), or an intermediate phenotype of wavy hair (Aa). A straight-haired dog mates with a curly haired dog.
QUESTION 33. Straight-haired dog genotype:_____ Curly-haired dog genotype: ______
QUESTION 34. Straight-haired dog gametes:_____ Curly-haired dog gametes: ______
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Punnett Square F1 Generation |
||
QUESTION 35. Look at Punnett Square. What are genotypic ratios of the F1 dogs? Genotypic ratios:
QUESTION 36. Look at Punnett Square. What are phenotypic ratios of the F1 dogs?
Figure 8.2 Speckled Chicken displays both black and white feathers.
CODOMINANCE IN MONOHYBRID CROSSES
Codominance is a genetic inheritance pattern where both alleles of a specific gene are fully expressed in the heterozygous condition, resulting in the simultaneous and distinguishable presence of both traits in the phenotype. Unlike incomplete dominance, where the traits blend, in codominance, each allele is expressed. For example, speckled chickens which have alleles for black and white feathers, express both (Figure 8.2).
Problem 9: Cows can be red (RR = all red hairs), white (WW = all white hairs), or roan (RW = red & white hairs together). A red cow is crossed to a purely white cow.
QUESTION 37. Red cow gametes: _____ White cow gametes: ______
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Punnett Square F1 |
||
QUESTION 38. Look at Punnett Square. What are phenotypic ratios of the F1 dogs? What are the phenotypes of the F1 generation.
Problem 10: The lubber grasshopper can have red stripes (RR), yellow stripes (YY), or red and yellow stripes (RY). A red & yellow-striped grasshopper is crossed to a yellow-striped grasshopper.
QUESTION 39. Red & yellow-striped grasshopper genotype: _____
Yellow-striped grasshopper genotype: _____
QUESTION 40. Red & yellow-striped grasshopper gametes: _____
Yellow-striped grasshopper gametes: _____
|
Punnett Square F1 Generation |
||
QUESTION 41. Look at Punnett Square. What are genotypes of the F1 generation? Genotypic ratios:
QUESTION 42. Look at Punnett Square. What are the phenotypes of the F1 generation?
DIHYBRID CROSSES
Mendel’s law of independent assortment states that genes do not influence each other with regard to the sorting of alleles into gametes, and every possible combination of alleles for every gene is equally likely to occur. Consider the dihybrid cross of the F1 generation with genotypes TtPp for two traits: height (T for tall, t for dwarf) and flower color (P for purple, p for white). The Punnett Square below demonstrates the possible genetic combinations and their corresponding phenotypes.
Each gamete gets one allele from each gene due to the law of segregation. The combinations for TtPp would be:
1. First allele from the first gene (T) with the first allele from the second gene (P), TtPp, resulting in TP.
2. First allele from the first gene (T) with the second allele from the second gene (p), TtPp, resulting in Tp.
3. Second allele from the first gene (t) with the first allele from the second gene (P), TtPp, resulting in tP,
4. Second allele from the first gene (t) with the second allele from the second gene (p), TtPp, resulting in tp.
An individual with the genotype TtPp can produce four types of gametes: TP, Tp, tP, and tp. This is a fundamental principle of Mendelian genetics, illustrating how alleles for different traits segregate independently of one another during gamete formation. Write each gamete in the Punnett square.
|
Square
|
TP |
Tp |
tP |
tp |
|
TP |
TTPP Tall, Purple |
TTPp Tall, Purple |
TtPP Tall, Purple |
TtPp Tall, Purple |
|
Tp |
TTPp Tall, Purple |
TTpp Tall, White |
TtPp Tall, Purple |
Ttpp Tall, White |
|
tP |
TtPP Tall, Purple |
TtPp Tall, Purple |
ttPP Dwarf, Purple |
ttPp Dwarf, Purple |
|
tp |
TtPp Tall, Purple |
Ttpp Tall, White |
ttPp Dwarf, Purple |
ttpp Dwarf, White |
Note: I kept the same genes alleles together and in the same order, then wrote capital letters first to make it easier to compare.
The genotypic ratio for this cross is:
1 TTPP : 2 TTPp : 1 TTpp : 2 TtPP : 4 TtPp : 2 Ttpp : 1 ttPP : 2 ttPp : 1 ttpp
The phenotypic radio is the classic Mendelian ratio of 9:3:3:1, characterized as follows:
· 9 Tall, Purple: This results from genotypes where at least one dominant allele for height (T) and one dominant allele for flower color (P) are present.
· 3 Tall, White: These phenotypes result from having at least one dominant allele for height (T) but being homozygous recessive for flower color (pp).
· 3 Dwarf, Purple: These occur when the organism is homozygous recessive for height (tt) but has at least one dominant allele for flower color (P).
· 1 Dwarf, White: This phenotype is observed when the organism is homozygous recessive for both traits (ttpp).
Problem 11: Round seeds (R) are completely dominant over wrinkled seeds (r). Green pod color (G) is completely dominant over yellow color (g). You cross a male plant that is homozygous for round seeds and yellow pods to a female plant that has wrinkled seeds with pure breeding (homozygous) green pods.
QUESTION 43. Male Genotype ______ Female Genotype ______
QUESTION 44. What are the gametes produced by the male and female plants?
QUESTION 45. What are the genotypes of the F1 generation?
QUESTION 46. What are the phenotypes of the F1 generation?
Problem 12: Round seeds (R) are completely dominant over wrinkled seeds (r). Green pod color (G) is completely dominant over yellow color (g). You cross a male plant that is heterozygous for round seeds and heterozygous for green pods back to itself.
QUESTION 47. What is the genotype of the plant?
QUESTION 48. What gametes are produced by the plant?
|
Punnett Square |
||||
QUESTION 49. Use the Punnett square, what are the genotypic ratios of the F1 generation?
QUESTION 50. Use the Punnett square, What are the phenotypic ratios of the F1 generation?
Post Lab Knowledge Check
Show your level of knowledge about the following concepts by putting a “x” in the box that best describes your understanding in Table 2.
Table 2: Assess your understanding of the concepts.
|
Concept |
Never heard of the term |
Heard of the term, but do not know the meaning. |
Limited understanding |
Some Understanding |
Good Understanding |
|
Gene |
|||||
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Allele |
|||||
|
Genotype |
|||||
|
Phenotype |
|||||
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Dominant/ Recessive Inheritance |
|||||
|
Incomplete Inheritance |
|||||
|
Codominance |
Post-Lab Assignment Submission Instructions:
Once you have finished this lab activity, you will need to submit your answers using the post-lab assignment on Canvas. Please follow these instructions:
1. You will not turn in this document, the lab protocol.
2. In Canvas, navigate to the corresponding Chapter 8 and Lab 8 module and under Labs, open the post-lab.
3. All the blue Questions have been converted to multiple choice questions on the post lab, pick the best answer.
4. Take a picture of your Punnett squares that you created for each question. Upload the image of Punnett Square into a Word document (import image). When all Punnett squares you created are visible on the Word document, save it as a .pdf.
5. Upload the PDF file of your completed Punnett Squares to the designated area in Canvas for submission.
By following these steps, you will successfully submit your post-lab assignment for assessment.
References:
Sucher, N. (n.d.). 11 Mendelian Genetics | Laboratory Manual For SCI103 Biology I at Roxbury Community College. https://myrcc.rcc.mass.edu/ICS/103_lab_manual/mendelian-genetics.html. CC BY-SA 3.0 DEED
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5
image1.emf
image2.png
image3.jpeg
,
Click "Download" in the upper right, save, and open in
MS Word (preferred) or Google Docs. This version is not editable.
Lab 8 Data Sheet
Name: _________________ Date: _______________
INITIAL KNOWLEDGE CHECK
LAB DATA QUESTION 1. Table 8-1: Assess your understanding of the concepts.
|
Term |
Unfamiliar |
Somewhat Familiar |
Proficient |
Expert |
|
Gene |
||||
|
Allele |
||||
|
Genotype |
||||
|
Phenotype |
||||
|
Complete Dominance |
||||
|
Incomplete Dominance |
||||
|
Codominance |
Problem 1: Round seeds (R) are completely dominant over wrinkled seeds (r). You cross a plant that is homozygous for round seeds (male) with a plant that is heterozygous for round seeds (female).
Write down the phenotypes as you complete the problem
|
Punnett Square |
||
Problem 2: Green pods (G) are completely dominant over yellow pods (g). You cross a plant that is heterozygous green pods (male) with another plant that has homozygous for yellow pods.
Write down the phenotypes in the Punnett square as you complete the problem
|
Punnett Square |
||
Problem 3: Inflated pods (I) are completely dominant over constricted pods (i). You cross two heterozygous (one male and one female) pea plants.
Write down the phenotypes in the Punnett square as you complete the problem
|
Punnett Square |
||
Problem 4: Round seeds (R) are completely dominant over wrinkled seeds (r). If a male pea plant is heterozygous for round seeds, can any of this plant’s offspring have round seeds? Wrinkled seeds? Think about the different genotypes (females) with which you can cross the heterozygous parent: homozygous dominant, heterozygous, and homozygous recessive.
What is the genotype of the male plant? ____
Unknown female plant, list the three possible genotypes:
____, ____, ____
· Use the same “Dad” but use a different “Mom” for each cross.
· Write down the phenotypes as you complete each square
|
Punnett Square |
||
|
Punnett Square |
||
|
Punnett Square |
||
Problem 5: Yellow seeds (G) are completely dominant over green seeds (g). You cross two pea plants (male and female) that are heterozygous for green seeds.
Write down the phenotypes in the Punnett square as you complete the problem
|
Punnett Square |
||
Problem 6: Tall plants (T) are dominant over short plants (t). You cross a tall plant (male) with a short plant (female).
List the Possible Male Plant Genotype(s) ____, _____.
Genotype Short Female Plant. ______
· Use a different “Dad” but use the same “Mom” for each cross.
· Write down the phenotypes in the Punnett square as you complete the problem
|
Punnett Square |
||
|
Punnett Square |
||
Problem 7: Mrs. and Mr. Williams both have widow’s peaks (W). Their first child also has widow’s peak, but their second child doesn’t. Mr. Williams accuses Mrs. Williams of being unfaithful to him. Is he justified? Why or why not?
· What are the possible genotypes for Mrs. and Mr. Wilson? ____, ____
· What are the possible genotypes for the child with a widows peak ____, ___
· What is the possible genotype for a child without a widow’s peak ____
· Is there a cross between Mrs. and Mr. Wilson that produces a child with a widow’s peak?
|
Punnett Square |
||
INCOMPLETE DOMINANCE IN MONOHYBRID CROSSES
Problem 8: A plant can have red flowers (RR), white flowers (rr), or an intermediate phenotype of pink (Rr). A white plant is crossed to a pink plant
Write down the phenotypes as you complete the problem
|
Punnett Square F1 Generation |
||
Problem 9: Dogs can have straight hair (AA), curly (aa), or an intermediate phenotype of wavy hair (Aa). A straight-haired dog mates with a curly haired dog.
Write down the phenotypes as you complete the problem
|
Punnett Square F1 Generation |
||
Problem 10: Cows can be red (RR = all red hairs), white (WW = all white hairs), or roan (RW = red & white hairs together). A red cow is crossed to a purely white cow.
Write down the phenotypes as you complete the problem
|
Punnett Square F1 |
||
Problem 11: The lubber grasshopper can have red stripes (RR), yellow stripes (YY), or red and yellow stripes (RY). A red & yellow-striped grasshopper is crossed to a yellow-striped grasshopper.
Write down the phenotypes as you complete the problem
|
Punnett Square F1 Generation |
||
Problem 12: Round seeds (R) are completely dominant over wrinkled seeds (r). Green pod color (G) is completely dominant over yellow color (g). You cross a male plant that is homozygous for round seeds and yellow pods to a female plant that has wrinkled seeds with pure breeding (homozygous) green pods.
· Male Genotype: ______ Female Genotype: ______
· What are the gametes produced by the male and female plants?
· What are the genotypes of the F1 generation?
· What are the phenotypes of the F1 generation?
Problem 13: Round seeds (R) are completely dominant over wrinkled seeds (r). Green pod color (G) is completely dominant over yellow color (g). You cross a male plant that is heterozygous for round seeds and heterozygous for green pods back to itself.
Write down the phenotypes as you complete the problem
|
Punnett Square |
||||
POST LAB KNOWLEDGE CHECK
Table 2: Assess your understanding of the concepts.
|
Term |
Unfamiliar |
Somewhat Familiar |
Proficient |
Expert |
|
Gene |
||||
|
Allele |
||||
|
Genotype |
||||
|
Phenotype |
||||
|
Complete Dominance |
||||
|
Incomplete Dominance |
||||
|
Codominance |
Post-Lab Assignment Submission Instructions:
Once you have finished this lab activity, you will need to submit your answers using the post-lab assignment on Canvas. Please follow these instructions:
1. You will turn in this document, the lab data sheet. Be sure and save it as a PDF file before submitting.
2. Upload the PDF file of your completed Punnett Squares to last question on Post Lab 8 in Canvas for submission.
By following these steps, you will successfully submit your post-lab assignment for assessment.
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