Miscellaneous genetic disorders: Pathology review

Last updated: November 01, 2022

Miscellaneous genetic disorders: Pathology review

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Congenital heart defects: Clinical
Acyanotic congenital heart defects: Pathology review
Hypoplastic left heart syndrome
Congenital syphilis
Congenital pulmonary airway malformation
Congenital diaphragmatic hernia
Pulmonary hypertension
Development of the respiratory system
Development of the gastrointestinal system
Development of the cardiovascular system
Development of the nervous system
Disorders of carbohydrate metabolism: Pathology review
Newborn management: Clinical
Neonatal ICU conditions: Clinical
Congenital TORCH infections: Pathology review
Perinatal infections: Clinical
Congenital disorders: Clinical
Autosomal trisomies: Pathology review
Miscellaneous genetic disorders: Pathology review
Disorders of amino acid metabolism: Pathology review
Disorders of fatty acid metabolism: Pathology review
Glycogen storage disorders: Pathology review
Lysosomal storage disorders: Pathology review
Respiratory distress syndrome: Pathology review
Hypoxia
Necrosis and apoptosis
Ischemia
Lung volumes and capacities
Clinical Skills: Mechanical ventilation - conventional ventilators
Respiratory system anatomy and physiology
Reading a chest X-ray
Anatomic and physiologic dead space
Alveolar surface tension and surfactant
Compliance of lungs and chest wall
Combined pressure-volume curves for the lung and chest wall
Ventilation
Zones of pulmonary blood flow
Regulation of pulmonary blood flow
Pulmonary shunts
Ventilation-perfusion ratios and V/Q mismatch
Breathing cycle
Airflow, pressure, and resistance
Ideal (general) gas law
Boyle's law
Dalton's law
Henry's law
Graham's law
Gas exchange in the lungs, blood and tissues
Diffusion-limited and perfusion-limited gas exchange
Alveolar gas equation
Oxygen binding capacity and oxygen content
Oxygen-hemoglobin dissociation curve
Carbon dioxide transport in blood
Breathing control
Pulmonary chemoreceptors and mechanoreceptors
Pulmonary changes at high altitude and altitude sickness
Pulmonary changes during exercise
Sensitivity and specificity
Positive and negative predictive value
Test precision and accuracy
Incidence and prevalence
Relative and absolute risk
Odds ratio
Attributable risk (AR)
Mortality rates and case-fatality
Dilated cardiomyopathy
Restrictive cardiomyopathy
Hypertrophic cardiomyopathy
Persistent truncus arteriosus
Transposition of the great vessels
Total anomalous pulmonary venous return
Tetralogy of Fallot
Patent ductus arteriosus
Coarctation of the aorta
Atrial septal defect
ECG basics
ECG axis
ECG rate and rhythm
ECG intervals
Osteomalacia and rickets
Hemolytic disease of the newborn
Transient tachypnea of the newborn
Complications during pregnancy: Pathology review
Hypertensive disorders of pregnancy: Clinical
Jaundice
Jaundice: Pathology review
Jaundice: Clinical
Beta-thalassemia
Neonatal hepatitis
Congenital cytomegalovirus (NORD)
Primary biliary cholangitis
Biliary atresia
Development of the digestive system and body cavities
Blood histology
Pediatric lower airway conditions: Clinical
Pediatric upper airway conditions: Clinical
Pressure-volume loops
Changes in pressure-volume loops

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At the clinic, 30 year old Linda comes with her 2 year old toddler for a yearly pediatric checkup. Linda tells the pediatrician that, while she was bathing her son, she noticed that his testes are unusually large. Clinical examination confirms enlarged testes, and additionally, the pediatrician noticed dysmorphic facial features including a long, narrow face; prominent forehead and jaw; and large, protruding ears. Later that day, 27 year old Samantha comes to the clinic with her 5 year old son because she noticed that he often has strange episodes of laughter and smiling. In addition, she mentions that he had experienced seizures several months ago.

Based on the clinical findings, the pediatrician concludes that both children have some form of genetic disorder, and orders genetic testing to confirm the diagnosis. Now, let’s go over genetic disorders such as fragile X syndrome, imprinting disorders, Cri-du-chat syndrome, and Williams syndrome.

First, let’s start with fragile X syndrome. This is an X-linked disorder caused by inactivation of the FMR1 gene, which is located on the long arm of the X chromosome. These individuals have over 200 CGG trinucleotide repeats on the FMR1 gene, which leads to its hypermethylation and subsequent inactivation. Fragile X syndrome is the most common cause of inherited intellectual disability, and the second most common cause of genetically associated psychiatric disorders, after Down syndrome. Individuals with fragile X syndrome can have delayed speech and motor development. In addition, individuals may have anxiety disorders, autism, and attention deficit-hyperactivity disorder; as well as mitral valve prolapse. For your exam, it’s important to know the key physical findings of fragile X syndrome includes enlarged testes, also known as macroorchidism; and dysmorphic facial features, like a long narrow face, with large protruding ears, and prominent forehead and jaw. The treatment of fragile X syndrome includes speech, occupational, and physical therapy. Clinicians should also focus on the prevention of common medical problems associated with the disorder such as gastroesophageal reflux, sinusitis, and otitis media.

Now, let’s move on to imprinting disorders. For most genes, both the maternal and paternal copies are expressed. However, certain genes undergo a normal process called genomic imprinting, where they are silenced via methylation depending on which parent passes them down. Some genes are supposed to be silenced if they are passed down the paternal side, and some are silenced only if they come from the maternal side.

Now, imprinting disorders can be caused by defects in the imprinting process, or due to uniparental disomy, which occurs when a person receives two copies of the same chromosome. Now if both chromosomes come from the father, the child won’t have any active paternally imprinted genes associated with that chromosome. Imprinting disorders may occur sporadically, or can be passed down from an asymptomatic parent. Let’s say in this case, a maternal imprinted gene is mutated and does not work. A biological male gets the mutated gene from their mother, but they’ll be asymptomatic since the maternal version is silenced. However if they pass on this mutated gene to their children, they’ll have a paternal version of the gene that’s active and can develop the disease.

Two well known imprinting disorders are Prader-Willi syndrome and Angelman syndrome. It’s important to note that both syndromes involve defects in chromosome 15, but in Prader-Willi syndrome, the maternal gene is imprinted, so the defect usually comes from the paternal gene. On the other hand, in AngelMan syndrome, the paternal gene is normally imprinted so the defect is in the maternal gene.

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. "Public Health Literature Review of Fragile X Syndrome" Pediatrics (2017)
  4. "‘Puppet’ Children A Report on Three Cases" Developmental Medicine & Child Neurology (2008)
  5. "Preventive Management of Children with Congenital Anomalies and Syndromes" Cambridge University Press (2000)
  6. "Cri du Chat syndrome" Orphanet Journal of Rare Diseases (2006)