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Dominance (genetics)

life science Maturity 9-11

Some traits hide from us.

Autosomal dominant and recessive.svg
Autosomal dominant and recessive.svg
One trait can cover another. This makes one look stronger. It is like a loud voice. The other trait stays quiet. Do you see this in plants?
MonohydrideF1.png
MonohydrideF1.png
Can you find it?

41 words

Some traits can hide.

Autosomal dominant and recessive.svg
Autosomal dominant and recessive.svg
One trait can cover another. This makes one look stronger. It is called being dominant. The quiet trait is called recessive.
MonohydrideF1.png
MonohydrideF1.png
This happens in pea plants. A round pea can hide a wrinkled one. The plant will still look round. A red flower can also hide a white one. But sometimes, they mix. A red and white flower can make pink.
Incomplete dominance.svg
Incomplete dominance.svg
This is a special way traits work. It is fun to see how traits change!

87 words

Have you ever wondered why you look like your parents? It all comes down to genes.

Autosomal dominant and recessive.svg
Autosomal dominant and recessive.svg
Genes come in different versions. We call these versions alleles. Sometimes, one allele can hide another. This is called dominance. The allele that hides the other is dominant. The hidden allele is called recessive.
MonohydrideF1.png
MonohydrideF1.png

Gregor Mendel studied this using pea plants. He saw that round peas are dominant. Wrinkled peas are recessive. If a pea has one round allele and one wrinkled allele, it stays round. The round allele masks the wrinkled one.

But genes do not always work this way. Sometimes they mix. This is called incomplete dominance. For example, a red flower and a white flower might make a pink flower.

Incomplete dominance.svg
Incomplete dominance.svg

Other times, both alleles show up at once. This is called co-dominance. In humans, this happens with blood types. A person can have both type A and type B. Their blood is type AB because both show up.

ABO system codominance.svg
ABO system codominance.svg

Dominance can change depending on the trait. One allele might be dominant for color but not for size. It is a complex and wonderful system.

192 words

Have you ever wondered how traits move from parents to their children? It all starts with genes on chromosomes.

Autosomal dominant and recessive.svg
Autosomal dominant and recessive.svg
Genes come in different versions called alleles. Sometimes, one allele can mask or override another. The version that does the masking is called the dominant allele. The version that gets hidden is called the recessive allele. This relationship is a key part of how living things inherit their features.
MonohydrideF1.png
MonohydrideF1.png

To understand how this works, think about garden peas. A pea can have a round shape or a wrinkled shape. These shapes are linked to specific alleles. If a pea has two round alleles, it is round. If it has two wrinkled alleles, it is wrinkled. But what happens if it has one of each? In this case, the round allele is dominant. It masks the wrinkled allele, so the pea still looks round. This specific mix is called a heterozygote.

DihydrideF1.png
DihydrideF1.png

A scientist named Gregor Mendel discovered these rules in the 1860s. He is often called the "Father of Genetics." Mendel studied many traits in pea plants, like seed color and plant height. He noticed that certain traits would disappear in one generation and reappear in the next. He used capital letters for dominant alleles and lowercase letters for recessive ones. This system is still used by scientists today. Later, in 1928, Ronald Fisher suggested that natural selection plays a role in dominance.

Journal of Agricultural Research (1917) (14582377398).jpg
Journal of Agricultural Research (1917) (14582377398).jpg

Dominance does not always mean one allele completely hides the other. Sometimes, we see incomplete dominance. This happens when the two alleles create a middle ground. For example, a red snapdragon flower and a white snapdragon flower can make a pink flower. The red trait is expressed, but not as strongly as before.

Incomplete dominance.svg
Incomplete dominance.svg
Other times, we see co-dominance. In co-dominance, both alleles show their traits at the same time. Neither one masks the other. You might see a flower with both red and white spots.
Co-dominance in Roan Cattle.svg
Co-dominance in Roan Cattle.svg

Human blood types are a great example of co-dominance in action. We have three alleles that control our blood groups. The A and B alleles are both dominant over the O allele. However, A and B are also co-dominant with each other. If a person inherits an A allele and a B allele, they have type AB blood. Both types of modifications show up on their blood cells.

ABO system codominance.svg
ABO system codominance.svg
This shows that genetics is a very diverse and interesting system.

416 words

In the study of genetics, dominance describes how different versions of a gene interact. These versions are called alleles. Every individual carries two alleles for a specific gene, one on each copy of a chromosome. Dominance occurs when one allele masks or overrides the effect of the other. The allele that performs the masking is called the dominant allele. The allele that is hidden is called the recessive allele. This interaction determines the phenotype, which is the observable physical trait of the organism.

Autosomal dominant and recessive.svg
Autosomal dominant and recessive.svg

To understand this mechanism, we can look at how alleles combine. When an organism has two identical alleles, it is called a homozygote. If it has two different alleles, it is a heterozygote. In complete dominance, a heterozygote will look exactly like a homozygote that carries only the dominant allele. For example, in pea plants, a round seed allele (R) is dominant over a wrinkled seed allele (r). A plant with the genotype RR is round. A plant with the genotype Rr is also round because the R allele masks the r allele. Only the rr genotype results in wrinkled peas.

MonohydrideF1.png
MonohydrideF1.png

There are different ways these patterns manifest in nature. Complete dominance is the most famous type, following the rules established by Gregor Mendel. However, other patterns exist, such as incomplete dominance. In this case, the heterozygote shows a phenotype that is an intermediate blend of the two parents. A classic example is the snapdragon flower. If you cross a red snapdragon with a white one, the offspring are pink. The red trait is not completely dominant; it is expressed less strongly.

Incomplete dominance.svg
Incomplete dominance.svg

Another distinct pattern is co-dominance. In co-dominance, neither allele masks the other. Instead, both alleles are fully visible in the phenotype. This is different from incomplete dominance because the traits do not blend into a middle ground. Instead, they coexist. For instance, if a red cow and a white cow mate, their offspring might show both red and white hairs. This creates a spotted or patterned appearance.

Co-dominance in Roan Cattle.svg
Co-dominance in Roan Cattle.svg

Gregor Johann Mendel discovered these principles in the 1860s while studying garden peas. He observed that certain traits, like tall versus short plants, appeared in predictable patterns. When he crossed different plant lines, one trait would often disappear in the first generation. However, that trait would reappear in the next generation in a specific 3:1 ratio. Mendel used capital letters for dominant alleles and lowercase letters for recessive ones. This notation is still the standard in science today.

Journal of Agricultural Research (1917) (14582377398).jpg
Journal of Agricultural Research (1917) (14582377398).jpg

Scientists have continued to refine these ideas for over a century. In 1928, Ronald Fisher proposed that dominance might be influenced by natural selection through modifier genes. In 1929, Sewall Wright suggested that dominance is a physiological result of metabolic pathways. We also study how multiple genes work together. This includes dihybrid inheritance, where two different pairs of genes are tracked at once. In a dihybrid cross between heterozygotes, the offspring show a phenotypic ratio of 9:3:3:1.

DihydrideF1.png
DihydrideF1.png

Human biology provides clear evidence of these complex rules. The ABO blood group system is a perfect example of co-dominance. There are three alleles involved: IA, IB, and i. The IA and IB alleles are both dominant over the recessive i allele. However, IA and IB are co-dominant with each other. An individual with both IA and IB alleles will have type AB blood. This happens because both alleles produce different chemical modifications on the surface of the blood cells.

ABO system codominance.svg
ABO system codominance.svg

Dominance is a relative concept rather than a permanent trait. An allele might be dominant over one partner but recessive to another. It is also possible for one allele to be dominant for one specific trait but not for others. It is important to distinguish dominance from epistasis. Epistasis is a different phenomenon where one gene masks the effect of a completely different gene. Understanding these layers helps scientists predict how traits move through entire populations.

664 words
🖼️ Images & Media (7)
File:Autosomal dominant and recessive.svg
Autosomal dominant and recessive.svg
File:Journal of Agricultural Research (1917) (14582377398).jpg
Journal of Agricultural Research (1917)...
File:MonohydrideF1.png
MonohydrideF1.png
File:DihydrideF1.png
DihydrideF1.png
File:Incomplete dominance.svg
Incomplete dominance.svg
File:ABO system codominance.svg
ABO system codominance.svg
File:Co-dominance in Roan Cattle.svg
Co-dominance in Roan Cattle.svg
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