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Genetic disorder

life science Maturity 11-13

Our bodies have tiny plans.

Human karyotype with bands and sub-bands.png
Human karyotype with bands and sub-bands.png
These plans tell us how to grow. Sometimes, a plan has a small mistake. This can cause health problems. These problems can come from parents. Do you want to learn more?

42 words

Our bodies have tiny plans.

Human karyotype with bands and sub-bands.png
Human karyotype with bands and sub-bands.png
These plans tell us how to grow. Sometimes, a plan has a mistake. This can cause health problems.

These mistakes can come from parents. This is called being inherited. Some mistakes happen on their own.

Some problems come from one small part of the plan. Other problems come from many parts.

Down Syndrome Karyotype.png
Down Syndrome Karyotype.png
Some problems come from a whole set of plans.

There are many kinds of these problems. Most are very rare. Doctors can treat some of them.

Scientists are always finding new ones. It is a big and busy field of study.

104 words

Our bodies use a set of plans called a genome. Sometimes, these plans have mistakes. These mistakes cause genetic disorders.

Human karyotype with bands and sub-bands.png
Human karyotype with bands and sub-bands.png

Some disorders come from one single gene. A gene is a small part of our DNA. A mutation is a change in that gene. Some changes happen on their own. Other changes are inherited from parents.

Personal genomics gene therapy flowchart.png
Personal genomics gene therapy flowchart.png

There are different ways to inherit these changes. In autosomal dominant types, one changed gene is enough. In autosomal recessive types, a person needs two changed genes. Some changes happen on the X chromosome. We call this X-linked inheritance.

Other disorders come from whole chromosomes. A chromosome is a large part of the genome.

Down Syndrome Karyotype.png
Down Syndrome Karyotype.png

There are over 6,000 known genetic disorders. Most of these are rare. About 1 in 50 people have a single-gene disorder. About 1 in 263 people have a chromosomal disorder. Scientists are always finding new ones. Doctors can treat more than 600 of these disorders.

163 words

A genetic disorder is a health problem caused by mistakes in the genome. The genome is the complete set of plans for a living thing. These mistakes can happen in a single gene or in many genes at once. Sometimes, the problem is with a whole chromosome.

Human karyotype with bands and sub-bands.png
Human karyotype with bands and sub-bands.png
A mutation is a change in the genetic code. Some mutations happen spontaneously before a baby even begins to grow. These are called de novo mutations. Other changes are passed down from parents to children. When a person inherits a disorder, it is called a hereditary disease.

There are different ways these changes move through families. In autosomal dominant disorders, a person only needs one changed gene to be affected. Each affected person usually has one parent with the same condition. In autosomal recessive disorders, a person must have two changed genes. Often, the parents are just carriers, meaning they have one changed gene but no symptoms.

Personal genomics gene therapy flowchart.png
Personal genomics gene therapy flowchart.png
Some changes happen on the X chromosome, which is called X-linked inheritance. Because males have only one X chromosome, they are often affected more often by these types. Very few changes happen on the Y chromosome or in mitochondrial DNA.

Scientists and doctors are constantly learning about these conditions. There are well over 6,000 known genetic disorders in medical books. New ones are being discovered all the time. While many are rare, doctors can now treat more than 600 of them.

Down Syndrome Karyotype.png
Down Syndrome Karyotype.png
Some disorders are more common than others. For example, about 1 in 50 people have a single-gene disorder. About 1 in 263 people have a chromosomal disorder. Most genetic disorders are considered rare, which means they affect fewer than 1 in 2,000 people.

Specific disorders have different patterns and numbers. For example, sickle cell anaemia is an autosomal recessive condition that affects about 1 in 625 people. Cystic fibrosis is another recessive disorder affecting 1 in 2,000 people. Some dominant conditions, like Huntington's disease, affect 1 in 15,000 people. Hemophilia is an X-linked recessive disorder that affects 1 in 10,000 people.

Down Syndrome Karyotype.png
Down Syndrome Karyotype.png
There are also polygenic disorders. These are caused by many genes working together with things like our environment. Heart disease and diabetes are examples of these complex disorders.

Understanding genetics helps us see how our bodies work. Most cancers are actually acquired diseases rather than hereditary ones. This is because they involve mutations in only a small part of the body's cells. However, some cancers, like those caused by BRCA mutations, are hereditary.

Personal genomics gene therapy flowchart.png
Personal genomics gene therapy flowchart.png
Some people use special medical tools like in vitro fertilization. This helps them check an embryo for a disorder before it is born. This science helps families understand the path their health might take.

453 words

A genetic disorder is a health problem caused by abnormalities in the genome. The genome contains the complete set of genetic instructions for a living thing. These abnormalities can occur in a single gene, which is called a monogenic disorder. They can also involve multiple genes, known as polygenic disorders. Sometimes, the issue involves an entire chromosome rather than just a single gene.

Human karyotype with bands and sub-bands.png
Human karyotype with bands and sub-bands.png
While polygenic disorders are the most common, the term is often used for single-cause conditions. Understanding these disorders is vital for modern medicine and human health.

Mutations, or changes in the genetic code, can happen in several ways. A de novo mutation occurs spontaneously before an embryo even begins to develop. Other mutations are inherited from parents. If a disorder is passed from parents to children, it is called a hereditary disease. This is different from an acquired disease, which develops later in life. For example, most cancers are acquired diseases because they involve mutations in only a small number of cells. However, some cancers are hereditary, such as those caused by BRCA mutations.

Single-gene disorders follow specific patterns of inheritance. In autosomal dominant disorders, a person only needs one mutated copy of a gene to be affected. Each affected person usually has one parent with the disorder. There is a 50% chance a child will inherit the mutation. Some dominant conditions have reduced penetrance, meaning not everyone with the mutation develops the disease. An example is Huntington's disease. In autosomal recessive disorders, a person must inherit two mutated copies. These parents are often unaffected carriers who each hold one faulty gene. Each pregnancy between two carriers carries a 25% risk of an affected child. Examples include cystic fibrosis and sickle cell anaemia.

Personal genomics gene therapy flowchart.png
Personal genomics gene therapy flowchart.png
Some disorders are linked to the sex chromosomes. X-linked inheritance involves mutations on the X chromosome. In X-linked recessive disorders, males are affected more frequently because they have only one X chromosome. Females can be carriers, but they may also be affected by skewed X-inactivation. Hemophilia and Duchenne muscular dystrophy are examples of X-linked recessive conditions. X-linked dominant disorders can be fatal for males in utero. Y-linked disorders are even rarer and only pass from men to sons. Finally, mitochondrial DNA is inherited only from the mother. This is known as maternal inheritance, and Leber's hereditary optic neuropathy is one example.

Down Syndrome Karyotype.png
Down Syndrome Karyotype.png
Complex or polygenic disorders involve many genes and environmental factors. These include heart disease, diabetes, and asthma. They do not follow the simple patterns seen in Mendelian genetics. Because they are influenced by lifestyle, it is difficult to predict a person's exact risk. Scientists use different methods to study them. The genotype-first approach identifies genetic variants in patients first. The phenotype-first approach looks at the physical symptoms first. These studies help researchers understand how genes and environments interact to cause disease.

There are over 6,000 known genetic disorders in medical literature. New disorders are being discovered constantly. Most genetic disorders are rare, meaning they affect fewer than 1 in 2,000 people. However, about 1 in 21 people are affected by a disorder classified as rare. Around 1 in 50 people have a known single-gene disorder. Chromosomal disorders affect about 1 in 263 people. Approximately 65% of people have a health problem resulting from congenital genetic mutations. Despite the many types, more than 600 genetic disorders are now treatable.

Down Syndrome Karyotype.png
Down Syndrome Karyotype.png
Specific disorders show how prevalence varies across the population. For autosomal dominant conditions, familial hypercholesterolemia affects 1 in 500 people. Myotonic dystrophy type 1 affects 1 in 2,100. In the recessive category, sickle cell anaemia affects 1 in 625. Cystic fibrosis affects 1 in 2,000. X-linked recessive hemophilia affects 1 in 10,000. These numbers help doctors understand how common a condition might be. Some recessive disorders became common because they once provided protection against diseases like malaria.

Medical technology provides new ways to manage these conditions. Families wishing to avoid passing on a single-gene disorder may use in vitro fertilization. This process allows for preimplantation genetic diagnosis. This technique checks the embryo for specific genetic disorders before it is implanted. This science helps bridge the gap between understanding a mutation and managing its effects on future generations.

701 words
🖼️ Images & Media (3)
File:Human karyotype with bands and sub-bands.png
Human karyotype with bands and sub-bands.png
File:Down_Syndrome_Karyotype.png
Down_Syndrome_Karyotype.png
File:Personal_genomics_gene_therapy_flowchart.png
Personal_genomics_gene_therapy_flowchart.png
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