Wilson disease

Wilson disease

Modulo 3 BPT

Modulo 3 BPT

Nuclear structure
DNA structure
Transcription of DNA
Translation of mRNA
Gene regulation
Epigenetics
Amino acids and protein folding
Protein structure and synthesis
Nucleotide metabolism
DNA replication
Lac operon
DNA damage and repair
Cell cycle
Mitosis and meiosis
DNA mutations
Lesch-Nyhan syndrome
Orotic aciduria
Adenosine deaminase deficiency
Xeroderma pigmentosum
Li-Fraumeni syndrome
Bloom syndrome
Fanconi anemia
McCune-Albright syndrome
Acute radiation syndrome
Purine and pyrimidine synthesis and metabolism disorders: Pathology review
Polymerase chain reaction (PCR) and reverse-transcriptase PCR (RT-PCR)
Gel electrophoresis and genetic testing
ELISA (Enzyme-linked immunosorbent assay)
Karyotyping
DNA cloning
Fluorescence in situ hybridization
Mendelian genetics and punnett squares
Hardy-Weinberg equilibrium
Inheritance patterns
Independent assortment of genes and linkage
Evolution and natural selection
Down syndrome (Trisomy 21)
Edwards syndrome (Trisomy 18)
Patau syndrome (Trisomy 13)
Fragile X syndrome
Huntington disease
Myotonic dystrophy
Friedreich ataxia
Turner syndrome
Klinefelter syndrome
Prader-Willi syndrome
Angelman syndrome
Beckwith-Wiedemann syndrome
Cri du chat syndrome
Williams syndrome
Alagille syndrome (NORD)
Achondroplasia
Polycystic kidney disease
Familial adenomatous polyposis
Familial hypercholesterolemia
Hereditary spherocytosis
Marfan syndrome
Multiple endocrine neoplasia
Neurofibromatosis
Tuberous sclerosis
von Hippel-Lindau disease
Albinism
Cystic fibrosis
Gaucher disease (NORD)
Glycogen storage disease type I
Glycogen storage disease type II (NORD)
Glycogen storage disease type III
Glycogen storage disease type IV
Glycogen storage disease type V
Hemochromatosis
Mucopolysaccharide storage disease type 1 (Hurler syndrome) (NORD)
Krabbe disease
Leukodystrophy
Niemann-Pick disease types A and B (NORD)
Niemann-Pick disease type C
Primary ciliary dyskinesia
Phenylketonuria (NORD)
Sickle cell disease (NORD)
Tay-Sachs disease (NORD)
Alpha-thalassemia
Beta-thalassemia
Wilson disease
Alport syndrome
X-linked agammaglobulinemia
Fabry disease (NORD)
Glucose-6-phosphate dehydrogenase (G6PD) deficiency
Hemophilia
Mucopolysaccharide storage disease type 2 (Hunter syndrome) (NORD)
Muscular dystrophy
Ornithine transcarbamylase deficiency
Wiskott-Aldrich syndrome
Mitochondrial myopathy
Autosomal trisomies: Pathology review
Muscular dystrophies and mitochondrial myopathies: Pathology review
Miscellaneous genetic disorders: Pathology review
Blood histology
Blood components
Erythropoietin
Blood groups and transfusions
Platelet plug formation (primary hemostasis)
Coagulation (secondary hemostasis)
Role of Vitamin K in coagulation
Clot retraction and fibrinolysis
Iron deficiency anemia
Sideroblastic anemia
Anemia of chronic disease
Lead poisoning
Hemolytic disease of the newborn
Autoimmune hemolytic anemia
Pyruvate kinase deficiency
Paroxysmal nocturnal hemoglobinuria
Aplastic anemia
Megaloblastic anemia
Folate (Vitamin B9) deficiency
Vitamin B12 deficiency
Diamond-Blackfan anemia
Acute intermittent porphyria
Porphyria cutanea tarda
Vitamin K deficiency
Bernard-Soulier syndrome
Glanzmann's thrombasthenia
Hemolytic-uremic syndrome
Immune thrombocytopenia
Thrombotic thrombocytopenic purpura
Von Willebrand disease
Disseminated intravascular coagulation
Heparin-induced thrombocytopenia
Antithrombin III deficiency
Factor V Leiden
Protein C deficiency
Protein S deficiency
Antiphospholipid syndrome
Hodgkin lymphoma
Non-Hodgkin lymphoma
Chronic leukemia
Acute leukemia
Myelodysplastic syndromes
Polycythemia vera (NORD)
Myelofibrosis (NORD)
Essential thrombocythemia (NORD)
Langerhans cell histiocytosis
Mastocytosis (NORD)
Microcytic anemia: Pathology review
Non-hemolytic normocytic anemia: Pathology review
Intrinsic hemolytic normocytic anemia: Pathology review
Extrinsic hemolytic normocytic anemia: Pathology review
Macrocytic anemia: Pathology review
Heme synthesis disorders: Pathology review
Coagulation disorders: Pathology review
Platelet disorders: Pathology review
Mixed platelet and coagulation disorders: Pathology review
Thrombosis syndromes (hypercoagulability): Pathology review
Lymphomas: Pathology review
Leukemias: Pathology review
Plasma cell disorders: Pathology review
Myeloproliferative disorders: Pathology review
Ribonucleotide reductase inhibitors
Topoisomerase inhibitors
Platinum containing medications
Anti-tumor antibiotics
Microtubule inhibitors
DNA alkylating medications
Monoclonal antibodies
Antimetabolites for cancer treatment
Prostate cancer
Benign prostatic hyperplasia
Testicular cancer
Ovarian surface epithelial tumors
Ovarian germ cell tumors
Ovarian sex-cord stromal tumors
Endometrial cancer
Cervical cancer
Breast cancer
Disorders of sex chromosomes: Pathology review
Testicular tumors: Pathology review
Ovarian cysts and tumors: Pathology review
Cervical cancer: Pathology review
Breast cancer: Pathology review
Colorectal cancer
Carcinoid syndrome
Irritable bowel syndrome
Colorectal polyps and cancer: Pathology review
Seizures and epilepsy
Dementia: Pathology review
Movement disorders: Pathology review
Demyelinating disorders: Pathology review
Neuromuscular junction disorders: Pathology review
Adult brain tumors: Pathology review
Inflammatory bowel disease: Pathology review
Bowel obstruction

Transcript

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One essential mineral that our body needs to get through the diet is copper, and typically we take in about 1 to 2 mg per day from the food we eat, things like whole grains, beans, nuts and potatoes; but really our body only needs about 0.75 mg / day, so that extra copper is excreted.

About 90% of the excess copper is excreted into the bile, where it eventually ends up as fecal copper, and the other 10% is excreted in the urine.

In Wilson disease, there’s genetic defect that results in the excess copper being kept in the body and deposited in various tissues...where it’s not supposed to be, and just like iron, free copper reacts with hydrogen peroxide in the body to form the hydroxyl radical, a reactive oxygen species that’s pretty good at damaging tissue, so over time those tissues are seriously damaged by free radical generation.

Now your liver cells, or hepatocytes, play a really important role in helping the body get rid of excess copper.

So usually the copper from the diet is absorbed in the small intestine via enterocytes, and passed off into the portal vein to the liver.

Once it’s in the liver it’s sent to a special transport protein called ATP7B, which has a couple super important jobs.

The first job, is that it binds copper to apoceruloplasmin, which is the major copper-carrying protein in the blood and is responsible for carrying 95% of the copper in blood.

After it binds copper it’s then just called ceruloplasmin, and this guy can haul 6 molecules of copper at once.

ATP7B’s other job is to gather up the rest of the copper into vesicles to be exocytosed into into the bile canaliculi, where it goes into the bile and is eventually excreted.

With Wilson disease, there’s an autosomal recessive defect in this ATP7B transport protein. As you could probably guess, that means it can’t incorporate the copper into ceruloplasmin or excrete it into the bile.

Since it’s not doing either of these things anymore, the copper builds up inside the hepatocyte and starts to produce free radicals.

Eventually, all this built up copper and free-radical damage injures or destroys the hepatocyte, causing free copper to spill out into the interstitial space and from there into the blood supply, where it’s circulated to and deposited in other tissues, where it also causes free radical damage over time.

One organ in particular is the brain, and for this reason Wilson disease can have serious neurological symptoms and complications.

Depending on where it deposits, it can cause different disorders, if it deposits in the basal ganglia, it can cause a movement disorder that’s a lot like parkinsonism.

If it gets to the cerebral cortex it can be toxic to neurons, and can lead to neuronal cell death and dementia.

Key Takeaways

Wilson disease is a rare autosomal recessive genetic disorder that causes excessive accumulation of copper in various tissues of the body, particularly the liver, and brain as a result of a mutation in the ATP7B gene. Symptoms of Wilson disease can vary widely and may include fatigue, abdominal pain, muscle stiffness or tremors, and a characteristic brown ring around the cornea of the eye known as a Kayser-Fleischer ring. Over time, copper accumulation in the liver can lead to liver disease and cirrhosis, and copper accumulation in the brain can cause neurological symptoms such as movement disorders, psychiatric symptoms, and cognitive decline.

Sources

  1. "Robbins Basic Pathology" Elsevier (2017)
  2. "Harrison's Principles of Internal Medicine, Twentieth Edition (Vol.1 & Vol.2)" McGraw-Hill Education / Medical (2018)
  3. "Pathophysiology of Disease: An Introduction to Clinical Medicine 8E" McGraw-Hill Education / Medical (2018)
  4. "CURRENT Medical Diagnosis and Treatment 2020" McGraw-Hill Education / Medical (2019)
  5. "Molecular pathogenesis of Wilson and Menkes disease: correlation of mutations with molecular defects and disease phenotypes" Journal of Medical Genetics (2007)
  6. "Molecular pathogenesis of Wilson and Menkes disease: correlation of mutations with molecular defects and disease phenotypes" Journal of Medical Genetics (2007)
  7. "A practice guideline on Wilson disease" Hepatology (2003)