Down syndrome (Trisomy 21)

Last updated: October 05, 2024

Down syndrome (Trisomy 21)

Adv. P/P II

Adv. P/P II

Prader-Willi syndrome
Angelman syndrome
Fragile X syndrome
Beckwith-Wiedemann syndrome
Turner syndrome
Klinefelter syndrome
Cri du chat syndrome
Cystic fibrosis
Phenylketonuria (NORD)
Down syndrome (Trisomy 21)
Edwards syndrome (Trisomy 18)
Patau syndrome (Trisomy 13)
Familial hypercholesterolemia
Spinal muscular atrophy
Wiskott-Aldrich syndrome
Tay-Sachs disease (NORD)
Marfan syndrome
Systemic lupus erythematosus
Graves disease
Hashimoto thyroiditis
Rheumatoid arthritis
HIV (AIDS)
Epstein-Barr virus (Infectious mononucleosis)
Cytomegalovirus
Cytokines
Introduction to the immune system
Cytokines
Innate immune system
Complement system
T-cell development
B-cell development
T-cell activation
B-cell activation, differentiation, and contraction
Cell-mediated immunity of CD4 cells
Cell-mediated immunity of natural killer and CD8 cells
Antibody classes
Vaccinations
Type I hypersensitivity
Type II hypersensitivity
Type III hypersensitivity
Type IV hypersensitivity
Crohn disease
Colorectal cancer
Ulcerative colitis
Irritable bowel syndrome
Peptic ulcer
Clostridium difficile (Pseudomembranous colitis)
Diverticulosis and diverticulitis
Wilson disease
Gastroesophageal reflux disease (GERD)
Hirschsprung disease
Pyloric stenosis
Cleft lip and palate
Enteric nervous system
Esophageal motility
Carbohydrates and sugars
Proteins
Fats and lipids
Cushing syndrome
Primary adrenal insufficiency
Diabetes mellitus
Diabetic nephropathy
Diabetic retinopathy
Eating disorders: Pathology review
Bulimia nervosa
Anorexia nervosa
Kidney stones
Lower urinary tract infection
Acute pyelonephritis
Chronic pyelonephritis
Poststreptococcal glomerulonephritis
Membranoproliferative glomerulonephritis
Acute kidney injury: Clinical
Chronic kidney disease
Nephroblastoma (Wilms tumor)
Renal system anatomy and physiology
Glomerular filtration
Regulation of renal blood flow
Renal azotemia
Prerenal azotemia
Postrenal azotemia
Focal segmental glomerulosclerosis (NORD)
Membranous nephropathy
Rapidly progressive glomerulonephritis
IgA nephropathy (NORD)
Minimal change disease
Hydronephrosis
Lupus nephritis
Delayed puberty
Precocious puberty
Polycystic ovary syndrome
Menopause
Premenstrual dysphoric disorder
Urethritis
Priapism
Varicocele
Testicular and scrotal conditions: Pathology review
Cryptorchidism
Orchitis
Epididymitis
Prostatitis
Testicular torsion
Benign prostatic hyperplasia
Pelvic inflammatory disease
Gardnerella vaginalis (Bacterial vaginosis)
Sexually transmitted infections: Vaginitis and cervicitis: Pathology review
Human papillomavirus
Treponema pallidum (Syphilis)
Neisseria gonorrhoeae
Herpes simplex virus
Poxvirus (Smallpox and Molluscum contagiosum)
Pediculus humanus and Phthirus pubis (Lice)
Uterine disorders: Pathology review
Amenorrhea
Osteoarthritis
Osteoporosis
Bone disorders: Pathology review
Ankylosing spondylitis
Gout
Gout and pseudogout: Pathology review
Fibromyalgia
Myalgias and myositis: Pathology review
Polymyositis
Dermatomyositis
Inclusion body myopathy
Rhabdomyosarcoma
Osteomalacia and rickets
Paget disease of bone
Osteomyelitis
Osgood-Schlatter disease (traction apophysitis)
Atopic dermatitis
Contact dermatitis
Psoriasis
Pityriasis rosea
Lichen planus
Hidradenitis suppurativa
Rosacea
Bullous pemphigoid
Vesiculobullous and desquamating skin disorders: Pathology review
Varicella zoster virus
Urticaria
Scleroderma
Waterhouse-Friderichsen syndrome
Hyperaldosteronism
Hyperthyroidism
Thyroid storm
Hypothyroidism
Hyperprolactinemia
Prolactinoma
Gigantism
Acromegaly
Hypopituitarism
Adrenal insufficiency: Pathology review
Hyperthyroidism: Pathology review
Hypothyroidism: Pathology review
Diabetes mellitus: Pathology review
Cushing syndrome and Cushing disease: Pathology review
Diabetes insipidus and SIADH: Pathology review
Burns
Skin cancer: Pathology review
Skin cancer
Mitosis and meiosis
Cell cycle

Transcript

Watch video only

Content Reviewers

Down syndrome or trisomy 21 is a genetic condition associated with a partial or complete copy of the 21st chromosome. Down syndrome is named after a British doctor John Langdon Down, who first described this condition as “mongolism” because the physical features of these individuals were similar to the physical characteristics of people from Blumenbach’s Mongolian race. Since the name was inaccurate and pejorative, in the 1970s, the name was changed to Down syndrome.

As you’re probably well-aware, our DNA is like this humongous blueprint of information on how to make a human. Usually this massive document is packaged up nicely into a storage bin called a chromosome. Actually, usually we have 46 chromosomes that we use to neatly organize all our information, depending on how you define organize. Each of the 46 chromosomes is actually part of a pair of chromosomes, since you get one from each parent, so 23 pairs.

If you wanted to make another human, first you’d have to find someone that feels the same way, and then you both contribute half of your chromosomes, so one from each pair, right? Fifty-fifty. Now, what if someone contributes one too many? Say Dad contributes 23 and Mom contributes 24, is that possible? Yes, and it’s the basis of one of the most common chromosomal disorders—Down Syndrome. Someone with Down syndrome has 47 chromosomes instead of 46, specifically they have an extra copy of chromosome 21, so instead of two, they have three, so Down Syndrome’s also known as trisomy 21, in other words, “three chromosome 21s”.

Alright, so in order to package up half the chromosomes into either a sperm cell or an egg cell, you actually start with a single cell that has 46 chromosomes, let’s just say we’re making an egg cell for the mother, I’m just going to show one pair of chromosomes, but remember that all 23 pairs do this. So the process of meiosis starts, which is what produces our sex cells, and the chromosomes replicate, and so now they’re sort of shaped like an ‘X’—even though there are two copies of DNA here, we still say it’s one chromosome since they’re hooked together in the middle by this thing called a centromere.

OK then the cell splits in two, and pulls apart the paired chromosomes, so in each of these cells you’ve now got 23 chromosomes. Now the two copies of the chromosome get pulled apart, and the cells split again, which means four cells, each still with 23 chromosomes. Now these are ready to pair up with a sperm cell from dad that has 23 chromosomes as well, totaling to 46 chromosomes, and voila–nine months down the road you’ve got yourself a baby.

Now a major risk factor for Down syndrome is maternal age, the age of the mother. Moreover, this condition occurs about once in about 1500 births where the mother is younger than 20 years old, contrasted to about one in 25 births where the mother’s older than 45 years old.

Now, there are three cytogenetic types of Down syndrome: free trisomy 21, Robertsonian translocation and finally, mosaicism. Free trisomy 21 occurs as a result of a process called nondisjunction and accounts for about 95% of cases. Non-disjunction means the chromosomes don’t split apart. If the chromosomes in this first step don’t split apart, then one cell ends up with both chromosomes and the other gets none. Then the final result is 2 cells with an extra chromosome, and two cells missing a chromosome.

Nondisjunction can also happen in the second step though, so first steps goes great, and both cells have a chromosome, but if they don’t split apart in the second step, then the final result is one cell with an extra chromosome, one cell missing chromosome, and two with the right number of chromosomes.

Now, if a sperm cell combines with any of these that have a duplicate of chromosome 21, then the combined cell will have one extra copy of chromosome 21, in other words, “three chromosome 21s”, or trisomy 21. In case you were wondering, the sperm could also combine with these cells that have the missing chromosome, if that’s the case then there would be a total of only one chromosome 21, and we would call it monosomy 21.

In my example, we followed the egg cell from the mother, but this process could happen the opposite way where the sperm starts out with too many or too few copies of chromosome 21.

Apart from nondisjunction, Robertsonian translocation accounts for about 4% of trisomy 21 cases. Translocation, in this case, is a fancy way of saying move from one place to another; so a part of one chromosome moves and switches places with a part from another chromosome. In this case, the long arm of chromosome 21 translocates over to chromosome 14, and you end up with two hybrids, one with both long arms and one with both short arms. This little guy with the short arms carries just a little bit of, usually nonessential genetic information, and is typically lost by the end of meiosis.

So there are a few ways this can go down, first, including the translocated chromosomes, they replicate, and now these could split into one with both normal chromosomes, and one with the long guy and short guy, in which case after splitting again you’d have two normal cells and two cells with a big guy, since we lost the little guy along the way. So now contribute the other parents DNA, and you’ve got a two normal cases, and then these two cases are called “balanced carriers”, and we say it’s balanced because you’ve got both long arms, and so most of the genes are still here, kind of like a two-for-one deal.

Ok now let’s say the normal chromosome 14 ends up with the short, and normal chromosome 21 with the long. Now you get two cells with the normal and long-arm, and two cells with the normal and short arm, which remember is usually lost. So these ones have one extra chromosome 21, since the long arms carry most of the genetic material for both chromosomes 14 and 21, and these ones are missing chromosomes.