Complex Genetics
1. Codominance and Incomplete Dominance
Learning outcomes
- I can distinguish between complete dominance, codominance, and incomplete dominance.
- I can explain how codominance affects phenotype expression.
- I can explain how incomplete dominance affects phenotype expression.
- I can predict inheritance outcomes involving codominance.
- I can predict inheritance outcomes involving incomplete dominance.
Alleles Do Not Always Show Simple Dominance
In many introductory genetics problems, one allele is:
dominant
and another is:
recessive.
This is called:
complete dominance.
However, alleles do not always interact this way.
Two important alternative inheritance patterns are:
incomplete dominance
and:
codominance.
These patterns affect the phenotype of:
heterozygous individuals.
Understanding what happens in the heterozygote is the key to distinguishing the three inheritance patterns.
Review: Complete Dominance
In complete dominance, one allele completely determines the phenotype of a heterozygous individual.
Suppose:
B = black fur
b = brown fur
and B is dominant.
Then:
BB → black
Bb → black
bb → brown
Notice that:
BB and Bb have the same phenotype.
The heterozygous individual shows the:
dominant phenotype.
Complete Dominance
A simple way to remember complete dominance is:
One allele masks the phenotype associated with the other allele in the heterozygote.
For example:
AA → Trait A
Aa → Trait A
aa → Trait B
Therefore:
Aa resembles AA.
This is the pattern we have used in many basic Punnett-square problems.
What Is Incomplete Dominance?
In incomplete dominance, neither allele completely dominates the:
other.
The heterozygous individual has a phenotype that is different from either homozygous phenotype and is often:
intermediate.
For example:
Red + White → Pink
The alleles themselves do not blend or disappear.
Instead, the heterozygous genotype produces an intermediate:
phenotype.
Example: Snapdragon Flowers
Flower colour in snapdragons is a classic example used to illustrate:
incomplete dominance.
We can represent the alleles as:
Cᴿ = red allele
Cᵂ = white allele
Then:
CᴿCᴿ → red flowers
CᴿCᵂ → pink flowers
CᵂCᵂ → white flowers
The heterozygous plant is:
pink.
Why Use Different Genetic Notation?
With complete dominance, we often use:
A and a.
However, this notation can be misleading for incomplete dominance because neither allele is completely:
dominant.
Instead, we can use a common gene symbol with different superscripts:
Cᴿ
and:
Cᵂ.
This makes it clear that both are alleles of the same gene without suggesting that one is:
dominant.
Incomplete Does Not Mean the Alleles Blend
This is an important distinction.
Suppose:
CᴿCᵂ → pink.
The red and white alleles do not physically blend together to create a new pink:
allele.
The plant still possesses:
Cᴿ and Cᵂ.
During meiosis, these alleles separate normally.
The plant can produce gametes carrying:
Cᴿ
or:
Cᵂ.
Crossing Two Pink Flowers
Suppose two heterozygous pink flowers are crossed:
CᴿCᵂ × CᴿCᵂ
Each parent produces two possible gametes:
Cᴿ
or:
Cᵂ.
We can predict the offspring using a Punnett:
square.
Punnett Square: Pink × Pink
| Cᴿ | Cᵂ | |
|---|---|---|
| Cᴿ | CᴿCᴿ | CᴿCᵂ |
| Cᵂ | CᴿCᵂ | CᵂCᵂ |
The possible genotypes are:
CᴿCᴿ
CᴿCᵂ
CᴿCᵂ
CᵂCᵂ.
Predicting the Phenotypes
Remember:
CᴿCᴿ → red
CᴿCᵂ → pink
CᵂCᵂ → white
Therefore:
25% red
50% pink
25% white.
The phenotype ratio is:
1 red : 2 pink : 1 white.
An Important Difference
In complete dominance, a heterozygous cross:
Aa × Aa
usually gives a phenotype ratio of:
3 : 1.
In incomplete dominance, a heterozygous cross such as:
CᴿCᵂ × CᴿCᵂ
gives a phenotype ratio of:
1 : 2 : 1.
Why?
Because all three genotypes produce distinguishable:
phenotypes.
Genotype and Phenotype Ratios
For incomplete dominance:
CᴿCᴿ : CᴿCᵂ : CᵂCᵂ
gives a genotype ratio of:
1 : 2 : 1.
The phenotype ratio is also:
1 : 2 : 1.
This happens because each genotype produces a different:
phenotype.
Crossing Red and White Flowers
Now consider:
CᴿCᴿ × CᵂCᵂ.
The red parent produces only:
Cᴿ gametes.
The white parent produces only:
Cᵂ gametes.
Every offspring receives:
CᴿCᵂ.
Therefore:
100% pink offspring.
Crossing Pink and White Flowers
Consider:
CᴿCᵂ × CᵂCᵂ.
| Cᴿ | Cᵂ | |
|---|---|---|
| Cᵂ | CᴿCᵂ | CᵂCᵂ |
| Cᵂ | CᴿCᵂ | CᵂCᵂ |
Therefore:
50% CᴿCᵂ → pink
50% CᵂCᵂ → white.
The phenotype ratio is:
1 pink : 1 white.
What Is Codominance?
In codominance, both alleles are fully expressed in the phenotype of a:
heterozygous individual.
Neither allele masks the other.
Neither produces an intermediate blend.
Instead:
both characteristics appear.
This is the key idea behind:
codominance.
Example: Roan Cattle
Coat colour in some cattle provides a commonly used example of:
codominance.
Suppose:
Cᴿ = red hair allele
Cᵂ = white hair allele
Then:
CᴿCᴿ → red
CᵂCᵂ → white
CᴿCᵂ → roan
A roan animal has both:
red hairs and white hairs.
The hairs do not become an intermediate pink colour.
Both characteristics are:
expressed.
Codominance Is Not Blending
Suppose a red-haired animal and a white-haired animal produce a roan:
offspring.
The offspring does not have hairs that are halfway between red and:
white.
Instead, it has:
red hairs and white hairs.
Both alleles contribute visibly to the:
phenotype.
This is codominance.
Codominant Genetic Notation
Because neither allele is recessive, capital and lowercase notation is usually not:
appropriate.
Instead, alleles can be written using superscripts.
For example:
Cᴿ
and:
Cᵂ.
Then:
CᴿCᴿ → red
CᴿCᵂ → roan
CᵂCᵂ → white.
Crossing Two Roan Cattle
Suppose:
CᴿCᵂ × CᴿCᵂ.
Each parent produces:
Cᴿ
or:
Cᵂ.
The Punnett square is:
| Cᴿ | Cᵂ | |
|---|---|---|
| Cᴿ | CᴿCᴿ | CᴿCᵂ |
| Cᵂ | CᴿCᵂ | CᵂCᵂ |
Predicting the Offspring
The genotype probabilities are:
25% CᴿCᴿ
50% CᴿCᵂ
25% CᵂCᵂ.
The phenotype probabilities are:
25% red
50% roan
25% white.
Again, the phenotype ratio is:
1 : 2 : 1.
Incomplete Dominance vs Codominance
These inheritance patterns can look similar in Punnett squares because both may produce:
1 : 2 : 1 phenotype ratios.
The difference is what happens in the:
heterozygote.
In incomplete dominance:
the heterozygote has an intermediate phenotype.
In codominance:
both phenotypes are expressed together.
A Useful Visual Comparison
Imagine two alleles produce:
red
and:
white.
Complete dominance
RR → red
RW → red
WW → white
The heterozygote resembles one homozygote.
Incomplete dominance
RR → red
RW → pink
WW → white
The heterozygote is intermediate.
Codominance
RR → red
RW → red AND white
WW → white
The heterozygote expresses both.
The Three Patterns Compared
| Pattern | Heterozygous Phenotype |
|---|---|
| Complete dominance | Same as dominant homozygote |
| Incomplete dominance | Intermediate between the homozygotes |
| Codominance | Both allele-associated characteristics are expressed |
This is the most important comparison to:
remember.
Complete Dominance Example
Suppose:
B = black
b = white
with complete dominance.
Then:
BB → black
Bb → black
bb → white.
The heterozygous phenotype is:
black.
It matches one of the homozygous phenotypes.
Incomplete Dominance Example
Suppose:
Cᴿ = red
Cᵂ = white.
Then:
CᴿCᴿ → red
CᴿCᵂ → pink
CᵂCᵂ → white.
The heterozygous phenotype is:
intermediate.
Codominance Example
Suppose:
Cᴿ = red hair
Cᵂ = white hair.
Then:
CᴿCᴿ → red
CᴿCᵂ → red AND white hairs
CᵂCᵂ → white.
The heterozygous phenotype displays:
both characteristics.
Human ABO Blood Groups
The human ABO blood group system provides an important real-world example of:
codominance.
There are three commonly discussed alleles:
Iᴬ
Iᴮ
and:
i.
Iᴬ and Iᴮ are:
codominant.
Both Iᴬ and Iᴮ are dominant over:
i.
ABO Genotypes and Phenotypes
| Genotype | Blood Group |
|---|---|
| IᴬIᴬ | A |
| Iᴬi | A |
| IᴮIᴮ | B |
| Iᴮi | B |
| IᴬIᴮ | AB |
| ii | O |
The genotype:
IᴬIᴮ
produces blood group:
AB.
Both A and B antigens are expressed on red blood:
cells.
This is an example of:
codominance.
Predicting ABO Inheritance
Suppose one parent has genotype:
Iᴬi
and another has:
Iᴮi.
The first parent can produce gametes containing:
Iᴬ or i.
The second can produce:
Iᴮ or i.
ABO Punnett Square
| Iᴬ | i | |
|---|---|---|
| Iᴮ | IᴬIᴮ | Iᴮi |
| i | Iᴬi | ii |
Possible blood groups are:
AB
B
A
O.
Each has a probability of:
25%.
What Does the ABO Example Teach Us?
The ABO system demonstrates that a single gene can involve more than:
two alleles in a population.
It also demonstrates that allele relationships can include both:
codominance
and:
dominance.
Iᴬ and Iᴮ are codominant with each other.
Both are dominant over:
i.
Genetic inheritance can therefore be more complex than a simple dominant-recessive:
model.
Worked Example 1: Identify the Pattern
A red-flowered plant is crossed with a white-flowered plant.
All offspring are:
pink.
What inheritance pattern is suggested?
The heterozygous offspring have an intermediate phenotype.
Therefore, the pattern is:
incomplete dominance.
Worked Example 2: Identify the Pattern
A black-feathered bird is crossed with a white-feathered bird.
The heterozygous offspring have both black and white:
feathers.
What inheritance pattern is suggested?
Both characteristics are expressed.
Therefore:
codominance.
Worked Example 3: Identify the Pattern
A black animal crossed with a white animal produces heterozygous offspring that are all:
black.
The heterozygote resembles one homozygous parent.
Therefore:
complete dominance.
Worked Example 4: Incomplete Dominance
Suppose flower colour shows incomplete dominance:
CᴿCᴿ = red
CᴿCᵂ = pink
CᵂCᵂ = white.
Cross:
CᴿCᵂ × CᵂCᵂ.
The offspring are:
50% CᴿCᵂ
50% CᵂCᵂ.
Therefore:
50% pink
50% white.
Worked Example 5: Codominance
Suppose feather colour shows codominance:
FᴮFᴮ = black
FᵂFᵂ = white
FᴮFᵂ = black and white.
Cross:
FᴮFᵂ × FᴮFᵂ.
Expected offspring:
25% black
50% black and white
25% white.
How to Solve an Incomplete Dominance Problem
Use this process:
Step 1: Identify the two alleles.
Step 2: Determine the phenotype of each homozygous genotype.
Step 3: Determine the intermediate heterozygous phenotype.
Step 4: Write the parent genotypes.
Step 5: Identify possible gametes.
Step 6: Construct the Punnett square.
Step 7: Calculate genotype probabilities.
Step 8: Convert the genotypes into phenotypes.
How to Solve a Codominance Problem
The process is almost the same.
Step 1: Identify the alleles.
Step 2: Determine the phenotype associated with each allele.
Step 3: Remember that the heterozygote expresses both.
Step 4: Write the parent genotypes.
Step 5: Identify the gametes.
Step 6: Construct the Punnett square.
Step 7: Calculate genotype probabilities.
Step 8: Determine phenotype probabilities.
How Can You Tell Which Pattern Is Present?
Focus on the:
heterozygote.
Ask:
Does it look like one homozygous phenotype?
Then it may show:
complete dominance.
Is it intermediate between the two homozygous phenotypes?
Then it may show:
incomplete dominance.
Does it clearly express both allele-associated characteristics?
Then it may show:
codominance.
Why the Heterozygote Is So Important
Suppose we observe only:
AA
and:
BB.
We know the two homozygous phenotypes, but we do not yet know how the alleles interact.
We need to observe:
AB.
The phenotype of the heterozygote provides evidence about the inheritance:
pattern.
Predicting from Offspring Evidence
Suppose red and white parents produce offspring.
If the offspring are:
red
this could indicate complete dominance of the red-associated allele.
If they are:
pink
this could indicate incomplete dominance.
If they show:
red and white simultaneously
this could indicate codominance.
The offspring phenotype therefore provides evidence about how the alleles:
interact.
Ratios Can Provide Evidence
Suppose two heterozygous organisms are crossed.
The offspring appear in three phenotypes in approximately:
1 : 2 : 1 proportions.
This pattern may suggest:
incomplete dominance or codominance.
However, the ratio alone cannot tell us which one.
We must examine what the heterozygous phenotype actually:
looks like.
Why a 1:2:1 Ratio Appears
Consider:
A¹A² × A¹A².
The genotypes are:
A¹A¹
A¹A²
A¹A²
A²A².
Therefore, the genotype ratio is:
1 : 2 : 1.
If all three genotypes have distinguishable phenotypes, the phenotype ratio is also:
1 : 2 : 1.
This occurs in many simple examples of incomplete dominance and:
codominance.
Complete Dominance Produces a Different Phenotype Ratio
For:
Aa × Aa
the genotype ratio is still:
1 AA : 2 Aa : 1 aa.
But AA and Aa have the same:
phenotype.
Therefore, the phenotype ratio becomes:
3 dominant : 1 recessive.
This shows how allele interactions change phenotype:
predictions.
Genotype Ratios Can Stay the Same
This is an important insight.
A heterozygous cross can produce the same:
1 : 2 : 1 genotype ratio
under:
- complete dominance
- incomplete dominance
- codominance
What changes is the relationship between genotype and:
phenotype.
Therefore, inheritance pattern affects the:
phenotype ratio.
Common Mistake: Incomplete Dominance Means the Alleles Mix
The alleles themselves do not:
blend.
A pink flower with genotype:
CᴿCᵂ
still has two distinct alleles:
Cᴿ and Cᵂ.
It can pass either allele to its:
offspring.
This is why red and white phenotypes can reappear in later generations.
Common Mistake: Codominance Produces an Intermediate
Codominance does not normally produce a blended intermediate:
phenotype.
Instead:
both allele-associated characteristics are expressed.
For example:
Red + white hairs → red AND white hairs
not:
Red + white hairs → pink hairs.
Common Mistake: Incomplete Dominance Means One Allele Is Recessive
In incomplete dominance, neither allele completely masks the:
other.
It is therefore usually inappropriate to describe one allele as simply dominant and the other as:
recessive.
The heterozygous phenotype is distinct from both homozygous phenotypes.
Common Mistake: Codominant Means Both Alleles Are Dominant Over Each Other
Codominance means both alleles are:
expressed in the heterozygote.
It does not mean that the alleles somehow defeat or overpower each:
other.
Dominance terminology describes phenotype expression, not physical competition between:
alleles.
Common Mistake: Every Trait Is Complete Dominance
Simple dominant-recessive inheritance is useful for introducing:
genetics.
But real inheritance includes many other:
patterns.
These include:
- incomplete dominance
- codominance
- multiple alleles
- polygenic inheritance
- sex-linked inheritance
- gene interactions
Inheritance is therefore much richer than:
dominant versus recessive.
Common Mistake: Phenotype Ratios Are Guaranteed
A cross predicting:
25% red
50% pink
25% white
does not guarantee that four offspring will include exactly:
one red, two pink, and one white.
These values represent:
probabilities.
Actual offspring numbers can differ because fertilization involves:
chance.
Comparing the Three Patterns
| Feature | Complete Dominance | Incomplete Dominance | Codominance |
|---|---|---|---|
| Heterozygous phenotype | Same as one homozygote | Intermediate | Both characteristics expressed |
| One allele masks another? | Yes, phenotypically | No | No |
| Three distinguishable phenotypes from heterozygous cross? | Usually no | Yes | Yes |
| Typical heterozygous cross phenotype ratio | 3:1 | 1:2:1 | 1:2:1 |
| Example | Mendelian pea traits | Snapdragon flower colour | ABO AB blood group / roan cattle |
Real-World Importance
Understanding different allele relationships helps scientists explain why inheritance does not always follow simple:
dominant-recessive patterns.
These concepts are important in:
- medicine
- blood typing
- plant breeding
- animal breeding
- genetics research
- conservation
- agriculture
They also demonstrate that phenotype depends not only on which alleles are present, but on:
how those alleles interact.
Check Your Understanding
1. Define complete dominance.
2. Define incomplete dominance.
3. Define codominance.
4. What happens to the heterozygous phenotype in complete dominance?
5. What happens to the heterozygous phenotype in incomplete dominance?
6. What happens to the heterozygous phenotype in codominance?
7. Why is the heterozygote useful for identifying an inheritance pattern?
8. A red flower crossed with a white flower produces pink offspring. Which inheritance pattern is suggested?
9. A red-haired animal crossed with a white-haired animal produces offspring with both red and white hairs. Which pattern is suggested?
10. Explain the difference between blending and incomplete dominance.
11. Why do alleles remain distinct during incomplete dominance?
12. If CᴿCᴿ is red, CᴿCᵂ is pink, and CᵂCᵂ is white, what pattern is shown?
13. Cross CᴿCᵂ × CᴿCᵂ.
14. What percentage of the offspring are expected to be red?
15. What percentage are expected to be pink?
16. What percentage are expected to be white?
17. What is the phenotype ratio?
18. Cross CᴿCᴿ × CᵂCᵂ. What phenotype is expected in all offspring?
19. Cross CᴿCᵂ × CᵂCᵂ. What phenotype ratio is expected?
20. Explain why codominance does not produce an intermediate phenotype.
21. Give an example of codominance.
22. Explain why blood group AB demonstrates codominance.
23. What are the three commonly discussed alleles of the ABO blood group gene?
24. What blood group results from IᴬIᴮ?
25. Cross Iᴬi × Iᴮi. What four blood groups are possible?
26. Why can incomplete dominance and codominance both produce a 1:2:1 phenotype ratio?
27. Why does complete dominance usually produce a 3:1 phenotype ratio from a heterozygous cross?
28. Can a 1:2:1 ratio alone distinguish incomplete dominance from codominance? Explain.
29. How would you use offspring phenotypes to distinguish among complete dominance, incomplete dominance, and codominance?
30. Explain why understanding allele interactions improves our ability to predict inheritance.
Key Terms
- Complete dominance: Inheritance pattern in which the heterozygote has the same phenotype as the dominant homozygote.
- Incomplete dominance: Inheritance pattern in which the heterozygote has a phenotype different from either homozygote and often intermediate between them.
- Codominance: Inheritance pattern in which both alleles are expressed in the heterozygous phenotype.
- Allele: Alternative version of a gene.
- Homozygous: Having two identical alleles for a gene.
- Heterozygous: Having two different alleles for a gene.
- Genotype: Allele combination possessed by an organism.
- Phenotype: Observable characteristic of an organism.
- Punnett square: Diagram used to predict possible offspring genotypes.
- Probability: Measure of the likelihood of an outcome.
- Phenotype ratio: Relative proportion of different phenotypes expected among offspring.
- Genotype ratio: Relative proportion of different genotypes expected among offspring.
- Multiple alleles: More than two forms of a gene existing within a population.
- ABO blood group: Human blood-group system involving the Iᴬ, Iᴮ, and i alleles.
Key Takeaways
- Complete dominance, incomplete dominance, and codominance describe different relationships between alleles.
- The heterozygous phenotype is the key to distinguishing the three patterns.
- In complete dominance, the heterozygote resembles the dominant homozygote.
- In incomplete dominance, the heterozygote has a distinct phenotype that is often intermediate.
- In codominance, both allele-associated characteristics are expressed.
- Incomplete dominance does not mean that the alleles themselves blend together.
- Codominance does not produce an intermediate or blended phenotype.
- Genetic notation should reflect the inheritance pattern being studied.
- Superscripts are useful when neither allele is simply dominant or recessive.
- A heterozygous cross often produces a 1:2:1 genotype ratio.
- Under complete dominance, that genotype ratio typically produces a 3:1 phenotype ratio.
- Under incomplete dominance, the same cross can produce a 1:2:1 phenotype ratio.
- Under codominance, the same cross can also produce a 1:2:1 phenotype ratio.
- Therefore, genotype ratios alone do not necessarily identify the inheritance pattern.
- The phenotype of the heterozygote provides essential evidence.
- Red, pink, and white snapdragon flowers are a classic example used to explain incomplete dominance.
- Roan cattle provide a common example used to explain codominance.
- Human AB blood group demonstrates codominance between Iᴬ and Iᴮ.
- The ABO blood group system also demonstrates multiple alleles.
- Iᴬ and Iᴮ are codominant with each other, while both are dominant over i.
- Punnett squares can predict inheritance under incomplete dominance and codominance just as they can under complete dominance.
- The meaning assigned to each genotype determines the phenotype prediction.
- Predicted ratios are probabilities rather than guaranteed numbers of offspring.
- Different allele interactions help explain the diversity of inheritance patterns found in living organisms.
- Understanding these patterns prepares us to investigate multiple alleles, blood groups, pedigrees, and more complex genetic inheritance.