BIOD210 GENETICS | PORTAGE LEARNING | COMPLETE EXAM PACKAGE 2026/2027 Exams | Actual Questions & Verified Answers | Comprehensive Genetics Assessment | Pass Guarantee

BIOD210 GENETICS | PORTAGE LEARNING | COMPLETE EXAM
PACKAGE 2026/2027 Exams | Actual Questions & Verified Answers |
Comprehensive Genetics Assessment | Pass Guarantee




BIOD210 Exam 1: Mendelian Foundations

1.​ In garden peas, the trait for tall stems (T) is dominant to short (t). If a
heterozygous tall plant is crossed with a short plant, what proportion of the
offspring will be short?​
A. 1/4​
B. 1/2​
C. 3/4​
D. 0​
Correct Answer: B​
Rationale: Cross = Tt × tt → 1/2 Tt (tall) : 1/2 tt (short).​
Why others wrong: A assumes Tt self-cross; C reverses ratio; D ignores tt class.


2.​ Mendel’s principle of segregation states that:​
A. Genes for different traits assort independently.​
B. Alleles separate during gamete formation.​
C. Dominant alleles always mask recessive.​
D. Genetic material replicates before division.​
Correct Answer: B​
Rationale: Segregation = alleles of a locus separate into different gametes.​
Why others wrong: A = independent assortment; C = dominance definition; D =
basic mitosis.


3.​ A monohybrid cross produces a 3:1 phenotypic ratio in F₂. This ratio reflects:​
A. Complete dominance​
B. Codominance​
C. Epistasis​
D. Polygenic inheritance​
Correct Answer: A​

, Rationale: 3 dominant : 1 recessive hallmark of complete dominance.​
Why others wrong: Codominance shows both phenotypes together; epistasis &
polygenic modify ratios.


4.​ In humans, unattached earlobes (E) are dominant. Two parents with unattached
earlobes have a child with attached earlobes. What are the parental genotypes?​
A. EE × Ee​
B. Ee × Ee​
C. EE × EE​
D. Ee × ee​
Correct Answer: B​
Rationale: Attached child = ee → each parent must carry e.​
Why others wrong: A & C cannot produce ee; D would give 1/2 attached, but both
parents show unattached.


5.​ (Problem) In pea plants, yellow seed (Y) is dominant to green (y) and round (R)
dominant to wrinkled (r). A plant heterozygous for both traits is self-crossed.
What proportion of offspring will be green and wrinkled?​
A. 1/16​
B. 3/16​
C. 9/16​
D. 1/4​
Correct Answer: A​
Work: YyRr × YyRr → 1/4 yy × 1/4 rr = 1/16 yyrr.​
Why others wrong: B = single recessive; C = dominant both; D = 1/4 only one trait
recessive.


6.​ The Punnett square visually represents:​
A. Gene linkage​
B. Random fertilization following gamete formation​
C. Epistatic interactions​
D. Chromosome mapping​
Correct Answer: B​
Rationale: Gametes placed on axes show all possible zygote combinations.​
Why others wrong: Linkage & mapping require locus distance; epistasis needs
modifier genes.