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Autosomal Dominant (AD):
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Autosomal Recessive (AR):
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X-Linked Recessive:
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Mitochondrial Inheritance:
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Imprinting:
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Procedural Steps for Pedigree Analysis:
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What is the formula for recombination frequency (RF)?
\(RF = recombinants/total \times 100\)
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What does 1% recombination equal in mapping units?
1% recombination = 1 map unit.
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What RF value indicates linkage?
RF < 50% indicates linkage.
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Which classes are the parentals in a testcross?
Parentals are the two largest classes in testcross.
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What is the first step in the Testcross Playbook?
Identify dominant phenotypes from F1.
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What genotypes should you write in the Testcross Playbook step 2?
Write genotypes of P and F1.
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How are parental and recombinant classes identified in the Testcross Playbook step 3?
Identify parental and recombinant classes.
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Give the cis (coupling) parental example listed in the Testcross Playbook.
Parentals can be couling/ cis (AABBxaabb= F1= AB/ab)
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Give the trans (repulsion) parental example listed in the Testcross Playbook.
Or trans/repulsion when distorted to favor the 3 and 3 classes (AAbbxaaBB= F1= Ab/aB)
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What are steps 4 and 5 of the Testcross Playbook?
Calculate RF. Perform chi-square if required.
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What is the chi-square formula?
\(\chi^2 = \sum\frac{(Observed - Expected)^2}{Expected}\)
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How are degrees of freedom calculated for chi-square?
Degrees of freedom = phenotypic classes - 1.
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What is the null hypothesis example for linkage testing?
The null hypothesis example for linkage: the genes are unlinked or linked and that the two traits should assort independently, giving equal numbers of each progeny class.
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State the general null hypothesis example provided.
The null hypothesis example for...:The null hypothesis is that the genes assort independently and the observed deviation from the expected ratio occurred by chance.
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What expected ratio should be used for a Testcross?
Testcross → 1:1:1:1
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What expected ratio should be used for a Dihybrid F1 × F1 cross?
Dihybrid F1 × F1 → 9:3:3:1
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What expected ratio should be used for a Monohybrid cross?
Monohybrid → 3:1
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What expected ratio applies to Hardy-Weinberg?
HW → p²: 2pq: q²
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When should you reject the null hypothesis based on P value?
P < 0.05: reject null hypothesis (linked).
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When can you not reject the null hypothesis based on P value?
P > 0.05: cannot reject null (unlinked).
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How does sample size affect statistical confidence?
Larger sample sizes increase statistical confidence.
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What is the first step in SECTION 4: THREE-POINT MAPPING?
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What is the second step in SECTION 4: THREE-POINT MAPPING?
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How do you calculate each interval distance in SECTION 4?
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How is Expected DCO calculated in SECTION 4?
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How is Interference calculated in SECTION 4?
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What is Transition?
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Give an example and cause of Transition from the notes.
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What is Transversion?
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Give an example and cause of Transversion from the notes.
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What is Frameshift?
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What is a possible cause of Frameshift listed in the notes?
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What is Nonsense?
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What is Missense?
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What is Silent mutation?
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What does 'Nothing in coding?' note state as possibilities?
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What does the note say about 'Insertion of several letter?'
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What is the Protein Severity Ranking?
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A triplet repeat expansion is:
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Sex chromosome Examples:
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Q. If DNA sequencing shows that the genes are physically closer together than the genetic map suggests, how can this be explained?
Genetic map distance (measured in centiMorgans) reflects recombination frequency, not physical base-pair distance. Recombination does not occur uniformly across the chromosome. Some regions are recombination hotspots, where crossovers happen more frequently. This increases recombination frequency and makes genes appear farther apart on a genetic map than they are physically. Therefore, genetic distance can overestimate physical distance when recombination is elevated in that region.
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Complementaion groups→
cis/trans test
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Normal loss-of-function mutation in one gene, it should:
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What is dominant negative?
A dominant negative mutation produces a mutant protein that interferes with the normal protein's function
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How To Identify Conservative vs Non-Conservative
Look at amino acid categories: If the substitution stays in the same group → likely conservative.
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In Meselson-Stahl, what does semiconservative replication give after one generation?
semiconservative replication gives an intermediate 'hybrid' band after one generation.
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If you never see intermediate-weight DNA, then what are the possible explanations?
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What is 1 Null (Amorphic) Allele —
Complete Loss of Function
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How do frameshift problems compare between 4 base pairs and 3 base pairs?
So you'd expect MORE frameshift problems with 4 base pairs than us with 3 bp.
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Definition: (null allele)
Produces no functional protein. Gene product activity = 0%, The gene is essentially 'dead.'
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Mechanisms include: (null allele)
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Genetics pattern: (null allele)
Usually recessive Can appear dominant if haploinsufficiency
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2 Hypomorphic Allele — Partial Loss of Function (Leaky)
2 Hypomorphic Allele — Partial Loss of Function (Leaky)
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Definition: (hypomorphic allele)
Produces reduced amount or partially functional protein. Gene product activity = reduced but not zero. The gene works, just not well. Think: 'dim switch,' not off.
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Mechanisms include: (hypomorphic allele)
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Genetics pattern: (hypomorphic allele)
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Mechanisms
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Genetics pattern
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Definition:
Mutant protein interferes with normal protein function. Total activity is worse than simple heterozygous null. The mutant protein is actively harmful. Think: Normal + mutant → broken complex
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Usually when:
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SSRs are highly polymorphic (many possible alleles per locus), whereas SNPs are usually biallelic.
This provides greater variability and stronger discriminatory power.
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SSRs differ in length, so they can be easily detected using PCR and gel electrophoresis without sequencing, making them faster and more practical for forensic analysis.
SSRs can be detected using PCR and gel electrophoresis without sequencing.
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Genes can be annotated experimentally using cDNA sequencing or computationally by identifying ORFs, regulatory signals, and conserved regions.
Genes can be annotated experimentally using cDNA sequencing or computationally by identifying ORFs, regulatory signals, and conserved regions.
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Genome comparisons reveal synteny and chromosomal evolution, while exome comparisons reveal conserved proteins and evolutionary relationships.
Genome comparisons reveal synteny and chromosomal evolution.
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How do hypomorph + null explain incomplete dominance?
Incomplete dominance happens when: phenotype is proportional to gene product dosage (enzyme amount/activity)
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Key's example is snapdragons: ⚘
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So:
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Dominant
Often more severe than haploinsufficiency
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What is the table title that summarizes gene interaction and F2 genotypic ratios?
F₂ Genotypic Ratios from an F₁ Dihybrid Cross
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What description is given for additive interaction in the table?
Additive: Four distinct F2 phenotypes
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What F2 phenotypic ratio corresponds to additive interaction?
9:3:3:1
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How does the table define recessive epistasis?
Recessive epistasis: When homozygous, recessive allele of one gene masks both alleles of another gene
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What F2 phenotypic ratio is given for recessive epistasis?
9:3:4
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How does the table define reciprocal recessive epistasis?
Reciprocal recessive epistasis: When homozygous, recessive allele of each gene masks the dominant allele of the other gene
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What F2 phenotypic ratio is given for reciprocal recessive epistasis?
9:7
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How does the table define dominant epistasis I?
Dominant epistasis I: Dominant allele of one gene hides effects of both alleles of the other gene
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What F2 phenotypic ratio is given for dominant epistasis I?
12:3:1
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How does the table define dominant epistasis II?
Dominant epistasis II: Dominant allele of one gene hides effects of dominant allele of other gene
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What F2 phenotypic ratio is given for dominant epistasis II?
13:3
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How does the table define reciprocal dominant epistasis?
Reciprocal dominant epistasis: Dominant allele of each gene masks the effects of development recessive allele of the other gene
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What F2 phenotypic ratio is given for reciprocal dominant epistasis?
15:1
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Provide the example given for recessive epistasis in the table.
Labrador retriever: coat color (see Fig. 2.11b)
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Provide the example given for reciprocal recessive epistasis in the table.
Sweet pea: flower color (see Fig. 2.14b)
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Where can the table image be found as a supplementary illustration?

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Autosomal Dominant (AD):
Autosomal Recessive (AR):
X-Linked Recessive:
Mitochondrial Inheritance:
Imprinting:
Procedural Steps for Pedigree Analysis:
What is the formula for recombination frequency (RF)?
\(RF = recombinants/total \times 100\)
What does 1% recombination equal in mapping units?
1% recombination = 1 map unit.
What RF value indicates linkage?
RF < 50% indicates linkage.
Which classes are the parentals in a testcross?
Parentals are the two largest classes in testcross.
What is the first step in the Testcross Playbook?
Identify dominant phenotypes from F1.
What genotypes should you write in the Testcross Playbook step 2?
Write genotypes of P and F1.
How are parental and recombinant classes identified in the Testcross Playbook step 3?
Identify parental and recombinant classes.
Give the cis (coupling) parental example listed in the Testcross Playbook.
Parentals can be couling/ cis (AABBxaabb= F1= AB/ab)
Give the trans (repulsion) parental example listed in the Testcross Playbook.
Or trans/repulsion when distorted to favor the 3 and 3 classes (AAbbxaaBB= F1= Ab/aB)
What are steps 4 and 5 of the Testcross Playbook?
Calculate RF. Perform chi-square if required.
What is the chi-square formula?
\(\chi^2 = \sum\frac{(Observed - Expected)^2}{Expected}\)
How are degrees of freedom calculated for chi-square?
Degrees of freedom = phenotypic classes - 1.
What is the null hypothesis example for linkage testing?
The null hypothesis example for linkage: the genes are unlinked or linked and that the two traits should assort independently, giving equal numbers of each progeny class.
State the general null hypothesis example provided.
The null hypothesis example for...:The null hypothesis is that the genes assort independently and the observed deviation from the expected ratio occurred by chance.
What expected ratio should be used for a Testcross?
Testcross → 1:1:1:1
What expected ratio should be used for a Dihybrid F1 × F1 cross?
Dihybrid F1 × F1 → 9:3:3:1
What expected ratio should be used for a Monohybrid cross?
Monohybrid → 3:1
What expected ratio applies to Hardy-Weinberg?
HW → p²: 2pq: q²
When should you reject the null hypothesis based on P value?
P < 0.05: reject null hypothesis (linked).
When can you not reject the null hypothesis based on P value?
P > 0.05: cannot reject null (unlinked).
How does sample size affect statistical confidence?
Larger sample sizes increase statistical confidence.
What is the first step in SECTION 4: THREE-POINT MAPPING?
What is the second step in SECTION 4: THREE-POINT MAPPING?
How do you calculate each interval distance in SECTION 4?
How is Expected DCO calculated in SECTION 4?
How is Interference calculated in SECTION 4?
What is Transition?
Give an example and cause of Transition from the notes.
What is Transversion?
Give an example and cause of Transversion from the notes.
What is Frameshift?
What is a possible cause of Frameshift listed in the notes?
What is Nonsense?
What is Missense?
What is Silent mutation?
What does 'Nothing in coding?' note state as possibilities?
What does the note say about 'Insertion of several letter?'
What is the Protein Severity Ranking?
A triplet repeat expansion is:
Sex chromosome Examples:
Q. If DNA sequencing shows that the genes are physically closer together than the genetic map suggests, how can this be explained?
Genetic map distance (measured in centiMorgans) reflects recombination frequency, not physical base-pair distance. Recombination does not occur uniformly across the chromosome. Some regions are recombination hotspots, where crossovers happen more frequently. This increases recombination frequency and makes genes appear farther apart on a genetic map than they are physically. Therefore, genetic distance can overestimate physical distance when recombination is elevated in that region.
Complementaion groups→
cis/trans test
Normal loss-of-function mutation in one gene, it should:
What is dominant negative?
A dominant negative mutation produces a mutant protein that interferes with the normal protein's function
How To Identify Conservative vs Non-Conservative
Look at amino acid categories: If the substitution stays in the same group → likely conservative.
In Meselson-Stahl, what does semiconservative replication give after one generation?
semiconservative replication gives an intermediate 'hybrid' band after one generation.
If you never see intermediate-weight DNA, then what are the possible explanations?
What is 1 Null (Amorphic) Allele —
Complete Loss of Function
How do frameshift problems compare between 4 base pairs and 3 base pairs?
So you'd expect MORE frameshift problems with 4 base pairs than us with 3 bp.
Definition: (null allele)
Produces no functional protein. Gene product activity = 0%, The gene is essentially 'dead.'
Mechanisms include: (null allele)
Genetics pattern: (null allele)
Usually recessive Can appear dominant if haploinsufficiency
2 Hypomorphic Allele — Partial Loss of Function (Leaky)
2 Hypomorphic Allele — Partial Loss of Function (Leaky)
Definition: (hypomorphic allele)
Produces reduced amount or partially functional protein. Gene product activity = reduced but not zero. The gene works, just not well. Think: 'dim switch,' not off.
Mechanisms include: (hypomorphic allele)
Genetics pattern: (hypomorphic allele)
Mechanisms
Genetics pattern
Definition:
Mutant protein interferes with normal protein function. Total activity is worse than simple heterozygous null. The mutant protein is actively harmful. Think: Normal + mutant → broken complex
Usually when:
SSRs are highly polymorphic (many possible alleles per locus), whereas SNPs are usually biallelic.
This provides greater variability and stronger discriminatory power.
SSRs differ in length, so they can be easily detected using PCR and gel electrophoresis without sequencing, making them faster and more practical for forensic analysis.
SSRs can be detected using PCR and gel electrophoresis without sequencing.
Genes can be annotated experimentally using cDNA sequencing or computationally by identifying ORFs, regulatory signals, and conserved regions.
Genes can be annotated experimentally using cDNA sequencing or computationally by identifying ORFs, regulatory signals, and conserved regions.
Genome comparisons reveal synteny and chromosomal evolution, while exome comparisons reveal conserved proteins and evolutionary relationships.
Genome comparisons reveal synteny and chromosomal evolution.
How do hypomorph + null explain incomplete dominance?
Incomplete dominance happens when: phenotype is proportional to gene product dosage (enzyme amount/activity)
Key's example is snapdragons: ⚘
So:
Dominant
Often more severe than haploinsufficiency
What is the table title that summarizes gene interaction and F2 genotypic ratios?
F₂ Genotypic Ratios from an F₁ Dihybrid Cross
What description is given for additive interaction in the table?
Additive: Four distinct F2 phenotypes
What F2 phenotypic ratio corresponds to additive interaction?
9:3:3:1
How does the table define recessive epistasis?
Recessive epistasis: When homozygous, recessive allele of one gene masks both alleles of another gene
What F2 phenotypic ratio is given for recessive epistasis?
9:3:4
How does the table define reciprocal recessive epistasis?
Reciprocal recessive epistasis: When homozygous, recessive allele of each gene masks the dominant allele of the other gene
What F2 phenotypic ratio is given for reciprocal recessive epistasis?
9:7
How does the table define dominant epistasis I?
Dominant epistasis I: Dominant allele of one gene hides effects of both alleles of the other gene
What F2 phenotypic ratio is given for dominant epistasis I?
12:3:1
How does the table define dominant epistasis II?
Dominant epistasis II: Dominant allele of one gene hides effects of dominant allele of other gene
What F2 phenotypic ratio is given for dominant epistasis II?
13:3
How does the table define reciprocal dominant epistasis?
Reciprocal dominant epistasis: Dominant allele of each gene masks the effects of development recessive allele of the other gene
What F2 phenotypic ratio is given for reciprocal dominant epistasis?
15:1
Provide the example given for recessive epistasis in the table.
Labrador retriever: coat color (see Fig. 2.11b)
Provide the example given for reciprocal recessive epistasis in the table.
Sweet pea: flower color (see Fig. 2.14b)
Where can the table image be found as a supplementary illustration?

Procedural checklist for pedigree analysis: 1. Look for generation skipping (suggests recessive or imprinting patterns). 2. Compare male vs female incidence. 3. Search for father→son transmission (indicates autosomal). 4. Check if only mothers transmit (mitochondrial). 5. Consider parent-of-origin effects (imprinting).
Testcross playbook (practical steps): 1. Identify dominant phenotypes in F1 and set up genotypes of parents and F1. 2. Determine parental (largest) and recombinant (smaller) classes. 3. Distinguish cis (coupling) vs trans (repulsion) phase in the F1. 4. Compute RF and, if needed, perform chi-square to test expected ratios.
Stepwise procedure: 1. Identify parental classes (largest counts) and the double-crossover (DCO) class (smallest counts). 2. Compare a parental genotype to the DCO to identify the middle gene. 3. Calculate interval distances (in map units): for each interval - \(\(\text{distance} = \frac{\text{single crossovers} + \text{double crossovers}}{\text{total}} \times 100\%.\)\) 4. Expected DCO count (when using recombination fractions): - \(\(\text{expected DCO} = \text{RF}_{12} \times \text{RF}_{23} \times \text{total}\)\) (use RF as a fraction, not percent, when multiplying). 5. Interference measures how much fewer DCOs occur than expected: - \(\(\text{Interference} = 1 - \frac{\text{observed DCO}}{\text{expected DCO}}.\)\)
Protein-severity ranking (general): - Silent < Conservative missense < Nonconservative missense < Late stop < Early stop < Frameshift
How dosage explains incomplete dominance (example): - If phenotype scales with enzyme activity: \(+/+\) = 100% (wild type), \(+/m\) = 50% (intermediate), \(m/m\) = 0% (mutant), giving intermediate heterozygote phenotype (e.g., snapdragon red/pink/white).
Reciprocal dominant epistasis: \(15:1\)
See the included table for a compact summary of F2 genotypic ratios and examples.

Alt text: F2 genotypic ratios table summarizing epistasis examples.
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