Lysosomal storage disorders: Pathology review

Last updated: November 01, 2022

Lysosomal storage disorders: Pathology review

NBME

NBME

Amino acid metabolism
Nitrogen and urea cycle
Citric acid cycle
Electron transport chain and oxidative phosphorylation
Gluconeogenesis
Glycogen metabolism
Glycolysis
Pentose phosphate pathway
Physiological changes during exercise
Cholesterol metabolism
Fatty acid oxidation
Fatty acid synthesis
Ketone body metabolism
Alkaptonuria
Cystinuria (NORD)
Hartnup disease
Homocystinuria
Maple syrup urine disease
Ornithine transcarbamylase deficiency
Phenylketonuria (NORD)
Essential fructosuria
Galactosemia
Glucose-6-phosphate dehydrogenase (G6PD) deficiency
Hereditary fructose intolerance
Lactose intolerance
Pyruvate dehydrogenase deficiency
Abetalipoproteinemia
Familial hypercholesterolemia
Hyperlipidemia
Hypertriglyceridemia
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
Mucopolysaccharide storage disease type 1 (Hurler syndrome) (NORD)
Mucopolysaccharide storage disease type 2 (Hunter syndrome) (NORD)
Fabry disease (NORD)
Gaucher disease (NORD)
Krabbe disease
Leukodystrophy
Metachromatic leukodystrophy (NORD)
Niemann-Pick disease type C
Niemann-Pick disease types A and B (NORD)
Tay-Sachs disease (NORD)
Cystinosis
Disorders of amino acid metabolism: Pathology review
Disorders of carbohydrate metabolism: Pathology review
Disorders of fatty acid metabolism: Pathology review
Dyslipidemias: Pathology review
Glycogen storage disorders: Pathology review
Lysosomal storage disorders: Pathology review
Carbohydrates and sugars
Fats and lipids
Proteins
Excess Vitamin A
Excess Vitamin D
Vitamin D deficiency
Vitamin K deficiency
Kwashiorkor
Marasmus
Iodine deficiency
Zinc deficiency
Beriberi
Folate (Vitamin B9) deficiency
Niacin (Vitamin B3) deficiency
Vitamin B12 deficiency
Vitamin C deficiency
Wernicke-Korsakoff syndrome
Fat-soluble vitamin deficiency and toxicity: Pathology review
Water-soluble vitamin deficiency and toxicity: B1-B7: Pathology review
Zinc deficiency and protein-energy malnutrition: Pathology review
Cell membrane
Cell signaling pathways
Cell-cell junctions
Cellular structure and function
Cytoskeleton and intracellular motility
Endocytosis and exocytosis
Extracellular matrix
Nernst equation
Osmosis
Resting membrane potential
Selective permeability of the cell membrane
Alport syndrome
Ehlers-Danlos syndrome
Marfan syndrome
Osteogenesis imperfecta
Primary ciliary dyskinesia
Adrenoleukodystrophy (NORD)
Zellweger spectrum disorders (NORD)
Cytoskeleton and elastin disorders: Pathology review
Peroxisomal disorders: Pathology review
DNA cloning
ELISA (Enzyme-linked immunosorbent assay)
Fluorescence in situ hybridization
Gel electrophoresis and genetic testing
Karyotyping
Polymerase chain reaction (PCR) and reverse-transcriptase PCR (RT-PCR)
Amino acids and protein folding
Cell cycle
DNA damage and repair
DNA mutations
DNA replication
DNA structure
Epigenetics
Gene regulation
Lac operon
Mitosis and meiosis
Nuclear structure
Nucleotide metabolism
Protein structure and synthesis
Transcription of DNA
Translation of mRNA
Adenosine deaminase deficiency
Lesch-Nyhan syndrome
Orotic aciduria
Bloom syndrome
Fanconi anemia
Li-Fraumeni syndrome
McCune-Albright syndrome
Xeroderma pigmentosum
Acute radiation syndrome
Purine and pyrimidine synthesis and metabolism disorders: Pathology review
Human development days 1-4
Human development days 4-7
Human development week 2
Human development week 3
Development of the digestive system and body cavities
Development of the fetal membranes
Development of the placenta
Development of the umbilical cord
Development of twins
Hedgehog signaling pathway
Ectoderm
Endoderm
Mesoderm
Development of the cardiovascular system
Fetal circulation
Development of the ear
Development of the eye
Development of the face and palate
Pharyngeal arches, pouches, and clefts
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 nervous system
Development of the renal system
Development of the reproductive system
Development of the respiratory system
Evolution and natural selection
Hardy-Weinberg equilibrium
Independent assortment of genes and linkage
Inheritance patterns
Mendelian genetics and punnett squares
Achondroplasia
Alagille syndrome (NORD)
Familial adenomatous polyposis
Hereditary spherocytosis
Huntington disease
Multiple endocrine neoplasia
Myotonic dystrophy
Neurofibromatosis
Polycystic kidney disease
Treacher Collins syndrome
Tuberous sclerosis
von Hippel-Lindau disease
Albinism
Alpha-thalassemia
Beta-thalassemia
Cystic fibrosis
Friedreich ataxia
Hemochromatosis
Sickle cell disease (NORD)
Wilson disease
Cri du chat syndrome
Williams syndrome
Angelman syndrome
Prader-Willi syndrome
Beckwith-Wiedemann syndrome
Mitochondrial myopathy
Klinefelter syndrome
Turner syndrome
Fragile X syndrome
Down syndrome (Trisomy 21)
Edwards syndrome (Trisomy 18)
Patau syndrome (Trisomy 13)
Hemophilia
Muscular dystrophy
Wiskott-Aldrich syndrome
X-linked agammaglobulinemia
Autosomal trisomies: Pathology review
Miscellaneous genetic disorders: Pathology review
Muscular dystrophies and mitochondrial myopathies: Pathology review
Bacterial structure and functions
Bacillus anthracis (Anthrax)
Bacillus cereus (Food poisoning)
Corynebacterium diphtheriae (Diphtheria)
Listeria monocytogenes
Clostridium botulinum (Botulism)
Clostridium difficile (Pseudomembranous colitis)
Clostridium perfringens
Clostridium tetani (Tetanus)
Actinomyces israelii
Nocardia
Staphylococcus aureus
Staphylococcus epidermidis
Staphylococcus saprophyticus
Streptococcus agalactiae (Group B Strep)
Streptococcus pneumoniae
Streptococcus pyogenes (Group A Strep)
Streptococcus viridans
Enterococcus
Bacteroides fragilis
Bartonella henselae (Cat-scratch disease and Bacillary angiomatosis)
Enterobacter
Escherichia coli
Klebsiella pneumoniae
Legionella pneumophila (Legionnaires disease and Pontiac fever)
Proteus mirabilis
Pseudomonas aeruginosa
Salmonella (non-typhoidal)
Salmonella typhi (typhoid fever)
Serratia marcescens
Shigella
Yersinia enterocolitica
Yersinia pestis (Plague)
Campylobacter jejuni
Helicobacter pylori
Vibrio cholerae (Cholera)
Moraxella catarrhalis
Neisseria gonorrhoeae
Neisseria meningitidis
Bordetella pertussis (Whooping cough)
Brucella
Francisella tularensis (Tularemia)
Haemophilus ducreyi (Chancroid)
Haemophilus influenzae
Pasteurella multocida
Mycobacterium tuberculosis (Tuberculosis)
Mycobacterium avium complex (NORD)
Mycobacterium leprae
Chlamydia pneumoniae
Chlamydia trachomatis
Gardnerella vaginalis (Bacterial vaginosis)
Mycoplasma pneumoniae
Coxiella burnetii (Q fever)
Ehrlichia and Anaplasma
Rickettsia rickettsii (Rocky Mountain spotted fever) and other Rickettsia species
Borrelia burgdorferi (Lyme disease)
Borrelia species (Relapsing fever)
Leptospira
Treponema pallidum (Syphilis)
Malassezia (Tinea versicolor and Seborrhoeic dermatitis)
Aspergillus fumigatus
Candida
Cryptococcus neoformans
Mucormycosis
Pneumocystis jirovecii (Pneumocystis pneumonia)
Sporothrix schenckii
Blastomycosis
Coccidioidomycosis and paracoccidioidomycosis
Histoplasmosis
Pediculus humanus and Phthirus pubis (Lice)
Sarcoptes scabiei (Scabies)
Acanthamoeba
Naegleria fowleri (Primary amebic meningoencephalitis)
Toxoplasma gondii (Toxoplasmosis)
Cryptosporidium
Entamoeba histolytica (Amebiasis)
Giardia lamblia
Babesia
Plasmodium species (Malaria)
Leishmania
Trichomonas vaginalis
Trypanosoma brucei
Trypanosoma cruzi (Chagas disease)
Diphyllobothrium latum
Echinococcus granulosus (Hydatid disease)
Ancylostoma duodenale and Necator americanus
Angiostrongylus (Eosinophilic meningitis)
Anisakis
Ascaris lumbricoides
Enterobius vermicularis (Pinworm)
Guinea worm (Dracunculiasis)
Loa loa (Eye worm)
Onchocerca volvulus (River blindness)
Strongyloides stercoralis
Toxocara canis (Visceral larva migrans)
Trichinella spiralis
Trichuris trichiura (Whipworm)
Wuchereria bancrofti (Lymphatic filariasis)
Clonorchis sinensis
Paragonimus westermani
Schistosomes
Viral structure and functions
Adenovirus
Hepatitis B and Hepatitis D virus
Cytomegalovirus
Epstein-Barr virus (Infectious mononucleosis)
Herpes simplex virus
Human herpesvirus 6 (Roseola)
Human herpesvirus 8 (Kaposi sarcoma)
Varicella zoster virus
Human papillomavirus
Parvovirus B19
BK virus (Hemorrhagic cystitis)
JC virus (Progressive multifocal leukoencephalopathy)
Poxvirus (Smallpox and Molluscum contagiosum)
Lymphocytic choriomeningitis virus
Hantavirus
Norovirus
Coronaviruses
Ebola virus
Dengue virus
Hepatitis C virus
West Nile virus
Yellow fever virus
Zika virus
Influenza virus
Human parainfluenza viruses
Measles virus
Mumps virus
Respiratory syncytial virus
Hepatitis A and Hepatitis E virus
Coxsackievirus
Poliovirus
Rhinovirus
Rotavirus
HIV (AIDS)
Human T-lymphotropic virus
Rabies virus
Eastern and Western equine encephalitis virus
Rubella virus
Prions (Spongiform encephalopathy)
Antimetabolites: Sulfonamides and trimethoprim
Antituberculosis medications
Cell wall synthesis inhibitors: Cephalosporins
Cell wall synthesis inhibitors: Penicillins
DNA synthesis inhibitors: Fluoroquinolones
DNA synthesis inhibitors: Metronidazole
Mechanisms of antibiotic resistance
Miscellaneous cell wall synthesis inhibitors
Miscellaneous protein synthesis inhibitors
Protein synthesis inhibitors: Aminoglycosides
Protein synthesis inhibitors: Tetracyclines
Azoles
Echinocandins
Miscellaneous antifungal medications
Anthelmintic medications
Anti-mite and louse medications
Antimalarials
Hepatitis medications
Herpesvirus medications
Integrase and entry inhibitors
Neuraminidase inhibitors
Non-nucleoside reverse transcriptase inhibitors (NNRTIs)
Nucleoside reverse transcriptase inhibitors (NRTIs)
Protease inhibitors
Introduction to pharmacology
Enzyme function
Drug administration and dosing regimens
Pharmacodynamics: Agonist, partial agonist and antagonist
Pharmacodynamics: Desensitization and tolerance
Pharmacodynamics: Drug-receptor interactions
Pharmacokinetics: Drug absorption and distribution
Pharmacokinetics: Drug elimination and clearance
Pharmacokinetics: Drug metabolism
Adrenergic antagonists: Alpha blockers
Adrenergic antagonists: Beta blockers
Adrenergic antagonists: Presynaptic
Adrenergic receptors
Cholinergic receptors
Cholinomimetics: Direct agonists
Cholinomimetics: Indirect agonists (anticholinesterases)
Muscarinic antagonists
Sympatholytics: Alpha-2 agonists
Sympathomimetics: Direct agonists
Selective serotonin reuptake inhibitors
Atypical antidepressants
Monoamine oxidase inhibitors
Serotonin and norepinephrine reuptake inhibitors
Tricyclic antidepressants
Atypical antipsychotics
Typical antipsychotics
Anticonvulsants and anxiolytics: Barbiturates
Anticonvulsants and anxiolytics: Benzodiazepines
Lithium
Nonbenzodiazepine anticonvulsants
Psychomotor stimulants
Calcium channel blockers
cGMP mediated smooth muscle vasodilators
Class I antiarrhythmics: Sodium channel blockers
Class II antiarrhythmics: Beta blockers
Class III antiarrhythmics: Potassium channel blockers
Class IV antiarrhythmics: Calcium channel blockers and others
ACE inhibitors, ARBs and direct renin inhibitors
Thiazide and thiazide-like diuretics
Lipid-lowering medications: Fibrates
Lipid-lowering medications: Statins
Miscellaneous lipid-lowering medications
Positive inotropic medications
Adrenal hormone synthesis inhibitors
Mineralocorticoids and mineralocorticoid antagonists
Hypoglycemics: Insulin secretagogues
Insulins
Miscellaneous hypoglycemics
Hyperthyroidism medications
Hypothyroidism medications

Transcript

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At the pediatric clinic, Abigail, a 5-month-old girl of Ashkenazi Jewish descent, is brought in by her parents because of recurring episodes of seizures, which started about a month ago. Her parents have also noticed that Abigail startles easily at loud noises. Physical examination reveals a low muscle tone with exaggerated reflexes. Upon palpation of the abdomen, the liver and spleen are of normal size. On ophthalmologic examination, a cherry red spot is found on the maculae of both eyes. Next in the clinic, there’s 2-year-old Harry. According to his mother, he recently stopped walking and speaking in sentences, and instead started crawling and babbling again. On further questioning, his mother mentions that Harry seems to have a hard time sitting still and often shows aggressive behavior. Physical examination reveals a prominent forehead, a nose with a flattened bridge and flared nostrils, an enlarged tongue, and thickened lips. On ophthalmologic examination, no corneal clouding is observed.

Based on the initial presentation, both Abigail and Harry seem to have some form of lysosomal storage disorder. These are a group of inherited metabolic disorders that result in the inability to break down certain substances in lysosomes, causing them to build up, and ultimately leading to cell damage and death. Lysosomal storage disorders include sphingolipidoses, caused by the accumulation of a certain type of lipids called sphingolipids. Mucopolysaccharidoses are caused by the accumulation of a type of complex sugars called mucopolysaccharides or glycosaminoglycans. Finally, there’s also mucolipidoses, which are caused by the accumulation of both sphingolipids and mucopolysaccharides.

Okay, let’s start with sphingolipidoses! Gaucher disease is the most common lysosomal storage disorder. It is caused by a mutation in the GBA gene, which codes for the enzyme glucocerebrosidase, also known as beta-glucosidase. For your exams, remember that Gaucher disease is autosomal recessive, meaning that an individual needs to inherit two copies of the mutated gene, one from each parent, to develop the condition. Another thing to note is that Gaucher disease is more common in those of Ashkenazi Jewish heritage.

Now, glucocerebroside is a glycolipid that's included in the membrane of many different cells. When these cells become old or damaged, they are often engulfed by macrophages, and digested in their lysosomes. That’s where glucocerebrosidase breaks down glucocerebroside. In Gaucher disease, glucocerebroside can’t be broken down, so it accumulates inside the lysosomes of macrophages. These macrophages are called Gaucher cells and can build up in multiple organs and tissues, including the bone marrow, liver, and spleen. And that’s a high yield fact! Signs and symptoms vary depending on the tissue affected. So, if that's the bone marrow, there can be anemia with fatigue, and leukopenia with increased susceptibility to infections. Bone infarctions can also be caused by reduced blood flow to part of the bone, and can manifest as a painful “bone crisis” or result in physical deformity and avascular necrosis, or death of bone tissue, mostly involving the femur. These individuals may also be more susceptible to fractures due to osteoporosis. For your exams, another extremely high yield finding is hepatosplenomegaly, meaning that both the liver and spleen can become enlarged. And when platelets are sequestered, or trapped, within the enlarged spleen, this can cause thrombocytopenia or low platelet count, leading to bleeding and easy bruising. If glucocerebroside builds up in the brain, neurological symptoms can also appear, including loss of motor skills, hypotonia or decreased muscle tone, muscle spasms, seizures, and dysphagia or trouble swallowing. Over time, this can progress to severe breathing and feeding difficulties, which, if left untreated, can progress to death within the first few years of life.

Diagnosis of Gaucher disease relies on measuring glucocerebrosidase enzyme activity in white blood cells, as well as genetic testing, to look for mutations in the GBA gene. A high yield fact is that, on a tissue biopsy, Gaucher cells have a characteristic lipid-laden, or “fatty” appearance, similar to “crumpled tissue-paper.”

Treatment depends on the severity of the condition. Symptoms can be managed with supportive therapy. In addition, some individuals can get enzyme replacement therapy with a synthetic form of glucocerebrosidase, as well as substrate reduction therapy designed to block the production of glucocerebroside.

Another high yield sphingolipidosis is Tay-Sachs disease or TSD for short, which is an autosomal recessive disorder, caused by a mutation in the HEX-A gene. This results in hexosaminidase A, or HEX-A deficiency, which normally breaks down a GM2 ganglioside. GM2 is found mainly in neurons, so when it builds up inside lysosomes, it results in progressive neurodegeneration. For your exams, keep in mind that Tay-Sachs disease is also more common in those of Ashkenazi Jewish heritage. Symptoms typically begin between 2 and 6 months of age and include progressive loss of motor and cognitive skills, along with hypotonia or decreased muscle tone, hyperreflexia, or abnormally increased reflexes, seizures, hyperacusis, or increased sensitivity to normal sounds, as well as feeding problems and vision loss. What’s extremely important to remember is that GM2 can also build up in the retinal cells around the central macular area, causing a “cherry red spot” in the macula of the eye that can be seen with fundoscopy during an ophthalmologic examination. Diagnosis of TSD is done by determining the activity of HEX-A in serum, leukocytes, tears, or any other body tissue, as well as genetic testing to look for mutations in the HEX-A gene. On histologic exam, neurons are distended with cytoplasmic vacuoles due to lysosomes filled with GM2, which give a characteristic onion skin appearance. Treatment involves supportive care to manage symptoms.

Moving on to Fabry disease, this is caused by a mutation in the GLA gene that codes for alpha galactosidase A. For your exams, remember that this is an X-linked recessive disorder, which means that all carrier males develop the disease because they have only one X chromosome and thus one GLA gene available. On the other hand, females have two X chromosomes, so even if they have a defective GLA gene on one chromosome, they still have another functional one.

Now, alpha galactosidase A normally breaks down a sphingolipid called ceramide trihexoside, otherwise known as globotriaosylceramide or GL3 for short. Without alpha galactosidase A, GL3 builds up in the lysosomes of endothelial cells lining blood vessels, as well as cells of the peripheral nervous systems, kidney, and heart cells. Symptoms start in childhood and include a classic triad of peripheral neuropathy, hypohidrosis, and angiokeratomas. Peripheral neuropathy typically manifests as burning, tingling, prickling, and pain in the hands and feet, and is frequently triggered by exercise, fatigue, stress, or illness. Hypohidrosis means there’s a gradual decrease of sweating, which may progress to anhidrosis or an entire lack of sweating. And angiokeratomas are small reddish-purple rashes that usually appear around the lower abdomen and “bathing trunk” region of the body. In addition to this classic triad, individuals may present gastrointestinal symptoms like cramping, frequent bowel movements, constipation, or diarrhea. A slit lamp eye exam might also reveal a whorl-like pattern of brown or gray corneal opacities, called cornea verticillata, which results from GL3 buildup in the cornea, but remember that it doesn’t typically affect vision. Later on, individuals with Fabry disease can develop complications, such as kidney disease with progressive renal failure, cardiomyopathy with heart enlargement, and an increased risk of stroke.

Diagnosis of Fabry disease starts with blood tests showing low alpha galactosidase A levels, and is confirmed via genetic testing of the GLA gene.

Treatment options include enzyme replacement therapy with a synthetic alpha galactosidase A, or chaperone therapy with migalastat to help enhance residual enzyme activity.

Another sphingolipidoses is Krabbe disease, which originates from a mutation in the GALC gene, resulting in a deficiency of the enzyme galactocerebrosidase, also known as galactosylceramidase. Normally, galactocerebrosidase breaks down galactosylceramides, such as galactocerebroside and galactosylsphingosine, also known as psychosine. As a result, these molecules build up in the glial cells in the central and peripheral nervous system, resulting in demyelination and impaired nerve impulse transmission. The most important thing to remember for your exams is that demyelination occurs both in the central as well as the peripheral nervous system. Galactosylceramides can also accumulate inside macrophages, which become these gigantic, multinucleated macrophages called globoid cells that move in to clear out the damaged glial cells. And these globoid cells are a classic finding in Krabbe disease.

Symptoms typically begin before 6 months of age. Common symptoms of central nervous system demyelination include muscle stiffness, seizures, optic atrophy with visual disturbances, and developmental delay with difficulty in speaking, walking, or swallowing; while symptoms of peripheral nervous system demyelination may include loss of sensation in the extremities, along with hyporeflexia or diminished deep tendon reflexes. Unfortunately, most infants die by the age of two. Diagnosis is based on measuring the activity of galactocerebroside in leukocytes, along with genetic testing to look for mutations in the GALC gene. There’s no cure for Krabbe disease, so treatment is mainly supportive.

Next is metachromatic leukodystrophy or MLD, which is an autosomal recessive disorder caused by a mutation in the ARSA gene, which codes for arylsulfatase A. This enzyme normally breaks down cerebroside sulfate, so without it, sulfatide accumulates in neurons and myelin-producing cells of the central and peripheral nervous system, resulting in demyelination. What’s important to remember here is that symptoms vary by the age of onset. So, there’s a late infantile form, where symptoms develop within the first three years of life, and include severe muscle weakness, difficulty walking, irritability, and developmental delay, meaning a delay in reaching certain developmental milestones. In the juvenile form, symptoms usually develop between the age of 4 and adolescence, which is around 12 and 14 years of age, and include behavioral changes and decreased ability in school. In the adult form, symptoms usually develop after the age of 16 and include memory loss and psychosis. As the symptoms progress, all forms of MLD can result in blindness, paralysis, unresponsiveness, dementia, and psychosis.

Diagnosis is based on measuring arylsulfatase A enzyme activity in white blood cells, measuring the sulfatide levels in the urine, as well as genetic testing to confirm the ARSA gene mutation. A brain MRI might also show areas of hyperintensity in the white matter regions, which indicate the loss of myelin. And again, there’s no cure, so treatment involves supportive care to manage symptoms.

Okay, the last sphingolipidoses is Niemann-Pick disease, which is an autosomal recessive disorder, more common in those of Ashkenazi Jewish descent. There are three types of Niemann-Pick disease. So, in types A and B, there’s a mutation in the SMPD1 gene that causes a defect in the production of sphingomyelinase. This leads to an inability to break down sphingomyelin, which ends up accumulating in the lysosomes. In contrast, Niemann-Pick disease type C, or NPC, is caused by mutations in either the NPC1 or NPC2 genes. Normally, cholesterol is processed by lysosomes, then carried up to the lysosomal membrane by the NPC2 protein, and finally transported out of the lysosome and into the cytoplasm with the help of NPC1 protein, so that it can be incorporated into the cell membrane. So with NPC1 or NPC2 mutations, intracellular cholesterol transport is impaired, and instead, cholesterol ends up accumulating inside lysosomes.

Now, the accumulated sphingomyelin and cholesterol can affect many different kinds of cells, causing a variety of symptoms. The most common ones are progressive neurologic symptoms, but remember that these typically only appear in types A and C and can include a delay in reaching developmental motor milestones, like lifting the head or crawling, as well as a developmental regression, meaning that a child may lose certain developmental skills that they had previously acquired. In all three types, ophthalmologic examination may show a “cherry red spot” in the macula of the eye, resulting from the buildup of material in the retinal cells around the central macular area. Another high-yield symptom is hepatosplenomegaly, which is often accompanied by jaundice and thrombocytopenia, which causes easy bruising and bleeding issues. In a test question, you should compare Niemann-Pick disease to Tay-Sachs, which also has that cherry red macular spot and is more common in Ashkenazi Jews, but a key difference is that Tay-Sachs doesn’t cause hepatosplenomegaly.

Sources

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  5. "Molecular Medicine" John Wiley & Sons (2016)
  6. "Disorders of Lipid Metabolism" Springer Science & Business Media (2012)
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  8. "Laboratory diagnosis of Niemann–Pick disease type C: The filipin staining test" Methods in Cell Biology (2015)
  9. "Mucolipidosis II: a single causal mutation in the N-acetylglucosamine-1-phosphotransferase gene (GNPTAB) in a French Canadian founder population" Clinical Genetics (2008)