Independent assortment of genes and linkage

Last updated: November 01, 2022

Independent assortment of genes and linkage

Fundamentals Board Exam

Fundamentals Board Exam

Anatomical terminology
Bones of the vertebral column
Joints of the vertebral column
Muscles of the back
Anatomy of the vertebral canal
Anatomy clinical correlates: Bones, joints and muscles of the back
Anatomy clinical correlates: Vertebral canal
Carbohydrates and sugars
Fats and lipids
Proteins
Cellular structure and function
Cell membrane
Selective permeability of the cell membrane
Extracellular matrix
Cell-cell junctions
Endocytosis and exocytosis
Cytoskeleton and intracellular motility
Cell cycle
Mitosis and meiosis
Cystic fibrosis
Sickle cell disease: Clinical
Sickle cell disease (NORD)
Zellweger spectrum disorders (NORD)
Ehlers-Danlos syndrome
Marfan syndrome
Alzheimer disease
Definitions of acids and bases
Physiologic pH and buffers
Respiratory alkalosis
Respiratory acidosis
Buffering and Henderson-Hasselbalch equation
Metabolic and respiratory acidosis: Clinical
Metabolic acidosis
Metabolic alkalosis
Pharmacokinetics: Drug elimination and clearance
Introduction to pharmacology
Enzyme function
Pharmacodynamics: Drug-receptor interactions
Pharmacodynamics: Agonist, partial agonist and antagonist
Pharmacodynamics: Desensitization and tolerance
Pharmacokinetics: Drug metabolism
Sepsis
Anatomy of the arm
Muscles of the forearm
Anatomy of the elbow joint
Anatomy of the radioulnar joints
Inheritance patterns
Transcription of DNA
Bones of the upper limb
Fascia, vessels and nerves of the upper limb
Anatomy of the brachial plexus
Anatomy of the pectoral and scapular regions
Vessels and nerves of the forearm
Muscles of the hand
Anatomy of the sternoclavicular and acromioclavicular joints
Anatomy of the glenohumeral joint
Joints of the wrist and hand
Anatomy of the axilla
Anatomy clinical correlates: Clavicle and shoulder
Anatomy clinical correlates: Axilla
Anatomy clinical correlates: Arm, elbow and forearm
Anatomy clinical correlates: Wrist and hand
Anatomy clinical correlates: Median, ulnar and radial nerves
Light microscopy and staining methods
Nuclear structure
DNA structure
DNA replication
DNA damage and repair
Xeroderma pigmentosum
Hardy-Weinberg equilibrium
Huntington disease
Independent assortment of genes and linkage
Translation of mRNA
Gene regulation
Human development days 1-4
Human development days 4-7
Human development week 2
Human development week 3
Ectoderm
Mesoderm
Endoderm
Development of the cardiovascular system
Fetal circulation
Development of the respiratory system
Dementia: Pathology review
Frontotemporal dementia
Vascular dementia
Dementia with Lewy bodies
Mendelian genetics and punnett squares
ELISA (Enzyme-linked immunosorbent assay)
Fluorescence in situ hybridization
Polymerase chain reaction (PCR) and reverse-transcriptase PCR (RT-PCR)
Gel electrophoresis and genetic testing
Protein structure and synthesis
Oxygen-hemoglobin dissociation curve
Alpha-thalassemia
Beta-thalassemia
Anemia: Clinical
Bones and joints of the thoracic wall
Muscles of the thoracic wall
Vessels and nerves of the thoracic wall
Anatomy of the breast
Anatomy of the pleura
Anatomy of the lungs and tracheobronchial tree
Anatomy of the heart
Anatomy of the coronary circulation
Anatomy clinical correlates: Thoracic wall
Anatomy clinical correlates: Pleura and lungs
Anatomy clinical correlates: Heart
Anatomy of the superior mediastinum
Anatomy of the inferior mediastinum
Anatomy clinical correlates: Mediastinum
Insulin
Glucagon
Disorders of carbohydrate metabolism: Pathology review
Glycolysis
Electron transport chain and oxidative phosphorylation
Citric acid cycle
Gluconeogenesis
Glycogen metabolism
Pentose phosphate pathway
Amino acid metabolism
Disorders of amino acid metabolism: Pathology review
Anatomy of the inguinal region
Anatomy clinical correlates: Inguinal region
Nitrogen and urea cycle
Anatomy of the abdominal viscera: Blood supply of the foregut, midgut and hindgut
Abdominal quadrants, regions and planes
Anatomy of the anterolateral abdominal wall
Anatomy of the abdominal viscera: Esophagus and stomach
Anatomy of the abdominal viscera: Pancreas and spleen
Anatomy of the abdominal viscera: Kidneys, ureters and suprarenal glands
Anatomy of the abdominal viscera: Innervation of the abdominal viscera
Anatomy of the abdominal viscera: Liver, biliary ducts and gallbladder
Anatomy of the muscles and nerves of the posterior abdominal wall
Anatomy of the diaphragm
Anatomy of the vessels of the posterior abdominal wall
Fatty acid oxidation
Fatty acid synthesis
Hyperlipidemia
Familial hypercholesterolemia
Abetalipoproteinemia
Hypertriglyceridemia
Nucleotide metabolism
Phenylketonuria (NORD)
Anatomy of the pelvic girdle
Anatomy of the pelvic cavity
Anatomy of the urinary organs of the pelvis
Anatomy of the gastrointestinal organs of the pelvis and perineum
Anatomy of the male reproductive organs of the pelvis
Anatomy of the female reproductive organs of the pelvis
Arteries and veins of the pelvis
Nerves and lymphatics of the pelvis
Development of the digestive system and body cavities
Development of the gastrointestinal system
Development of the teeth
Development of the tongue
Development of the axial skeleton
Development of the limbs
Development of the muscular system
Development of the renal system
Development of the reproductive system
Clinical trials
Cell signaling pathways
Adrenocorticotropic hormone
Growth hormone and somatostatin
Growth hormone deficiency
Synthesis of adrenocortical hormones
Androgens and antiandrogens
Menstrual cycle
Bones of the lower limb
Anatomy of the anterior and medial thigh
Fascia, vessels and nerves of the lower limb
Thyroid hormones
Parathyroid hormone
Gigantism
Hyperpituitarism
Acromegaly
Hypopituitarism
Cushing syndrome
Adrenal cortical carcinoma
Interaction
Drug administration and dosing regimens
Pregnancy
Muscles of the gluteal region and posterior thigh
Anatomy of the popliteal fossa
Anatomy clinical correlates: Hip, gluteal region and thigh
Anatomy of the tibiofibular joints
Anatomy of the hip joint
Anatomy of the knee joint
Joints of the ankle and foot
Anatomy of the leg
Fat-soluble vitamin deficiency and toxicity: Pathology review
Vitamins and minerals
Water-soluble vitamin deficiency and toxicity: B1-B7: Pathology review
Coagulation (secondary hemostasis)
Coagulation disorders: Pathology review
Mixed platelet and coagulation disorders: Pathology review
Role of Vitamin K in coagulation
Stages of labor
Innate immune system
Introduction to the immune system
B- and T-cell memory
Resting membrane potential
Action potentials in myocytes
B-cell development
T-cell development
T-cell activation
B-cell activation, differentiation, and contraction
MHC class I and MHC class II molecules
Immunodeficiencies: T-cell and B-cell disorders: Pathology review
Immunodeficiencies: Combined T-cell and B-cell disorders: Pathology review
Immunodeficiencies: Clinical
HIV (AIDS)
Inflammation
Bones of the cranium
Bones of the neck
Superficial structures of the neck: Posterior triangle
Superficial structures of the neck: Anterior triangle
Fascia and spaces of the neck
Anatomy clinical correlates: Bones, fascia and muscles of the neck
Anatomy of the infratemporal fossa
Cranial nerves
Anatomy of the trigeminal nerve (CN V)
Introduction to the cranial nerves
Cranial nerve pathways
Anatomy of the orbit
Anatomy of the oculomotor (CN III), trochlear (CN IV) and abducens (CN VI) nerves
Viral structure and functions
Reading a chest X-ray
Staphylococcus aureus
Streptococcus pneumoniae
Clostridium difficile (Pseudomembranous colitis)
Klebsiella pneumoniae
Mechanisms of antibiotic resistance
Anatomy of the nose and paranasal sinuses
Anatomy of the oral cavity
Anatomy of the salivary glands
Anatomy of the facial nerve (CN VII)
Anatomy of the glossopharyngeal nerve (CN IX)
Anatomy of the vagus nerve (CN X)
Anatomy of the pterygopalatine (sphenopalatine) fossa
Vaccination and herd immunity
Vaccinations
Cell wall synthesis inhibitors: Penicillins
Infertility: Clinical
Contraception: Clinical
Development of the fetal membranes
Development of the placenta
Development of the nervous system
Development of the umbilical cord
Development of twins
Development of the integumentary system
Pharyngeal arches, pouches, and clefts
Development of the face and palate
Development of the ear
Development of the eye

Transcript

Watch video only

Inheritance is possible because of chromosomes.

These chromosomes come in pairs - one from mom and one from dad - so they’re called homologous chromosomes.

Each chromosome has genes, which are segments of DNA that carry genetic information for a specific trait.

And different versions of the same gene are called alleles.

As an example, brown eye color and blue eye color are both alleles for the eye color gene.

And each parent offers one allele of a gene.

Now, these alleles can be either dominant often represented with a capital letter, or recessive, represented with the corresponding lowercase letter, the difference being that it only takes one dominant allele for its traits to be expressed, whereas it takes two recessive alleles for its traits to be expressed.

Human somatic cells - that is, all of the cells aside from the sperm and eggs, which are called gametes - have 23 pairs of chromosomes; 22 somatic pairs and one sexual pair - adding up to 46 chromosomes in total.

These chromosomes, along with the alleles they carry, segregate during meiosis - which is the process of making new gametes.

Gametes only carry half the genetic information of the parent - so 23 chromosomes.

Once the male and female gametes merge during fertilization, their alleles combine to make the genotype —or genetic information— of the new organism.

For every gene, alleles can combine to give rise to three possible genotypes, homozygous dominant - or AA, heterozygous - or Aa - and homozygous recessive - or aa.

This determines all of a person’s features —or phenotype— such as eye color, hair color, or even whether or not they’re color blind.

Now, independent assortment means that no matter which alleles an organism inherits for one gene that codes for a trait like eye color, it won’t affect the alleles it inherits for another gene that codes for a different trait, like hair color.

Let’s start with a simple example. Let’s represent the eye color gene with the letter “a” and the hair color gene with the letter “d”.

Now, the dominant allele for eye color - A - stands for brown eyes and the recessive allele - a - stands for blue eyes.

On the other side, the dominant allele for hair color - D - stands for dark hair while the recessive allele - d - stands for blond hair.

So let’s say we have a person with a heterozygous genotype —Aa— for eye color and heterozygous genotype —Dd— for hair color.

This person would have the dominant allele features - so brown eyes and dark hair, even though they still carry a recessive allele for blond hair and blue eyes.

Now, at the molecular level we know that the eye color gene is physically located on a pair of homologous chromosomes, and in this case, let’s say that the chromosome from mom carries the dominant allele —A—, and the chromosome from dad carries the recessive allele —a— .

Similarly, let’s say that the hair color gene is actually physically located on another pair of homologous chromosomes.

And let’s say that the chromosome from mom carries the dominant allele —D— , and the chromosome from dad carries the recessive allele —d—.

Now in meiosis, different pairs of homologous chromosomes independently separate into different gametes.

In other words, how one pair of homologous chromosomes splits into daughter cells does not affect how another pair of homologous chromosomes decides to split into those same daughter cells.

As a result, a person that has a heterozygous genotype for both hair color and eye color can produce four different types of gametes: One that carries the two chromosomes from the mother, and thus the dominant alleles A and D.

One that carries the two chromosomes from the father, and thus the recessive alleles a and d.

One that carries the first chromosome from the mother and the second from the father, and thus the alleles dominant A and recessive d.

And one that carries the first chromosome from the father and the second from the mother, and thus the recessive alleles a and dominant D.

So far so good, but let’s bring two more genes along! One that determines the skin color, let’s represent it with the letter “b”.

So the dominant allele for skin color - B - stands for dark skin and the recessive allele - b - stands for white skin.

And another one that determines the type of earwax someone has let’s represent it with the letter “c”.

So the dominant allele - C - stands for wet earwax, while the recessive allele - c - stands for dry earwax.

Key Takeaways

Genes are randomly assorted during the production of sperm and eggs. This is called independent assortment. This process is responsible for the different combination of genes that children receive from their parents.

If two genes are located close together on a chromosome, they are said to be linked. If these genes are passed on to a child, they will tend to be passed on together.