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Mitochondrial depletion

MedGen UID:
868267
Concept ID:
C4022659
Finding
HPO: HP:0030059

Definition

An abnormal reduction in mitochondrial DNA content of cells. [from HPO]

Conditions with this feature

Mitochondrial DNA depletion syndrome 6 (hepatocerebral type)
MedGen UID:
338045
Concept ID:
C1850406
Disease or Syndrome
MPV17-related mitochondrial DNA (mtDNA) maintenance defect presents in the vast majority of affected individuals as an early-onset encephalohepatopathic (hepatocerebral) disease that is typically associated with mtDNA depletion, particularly in the liver. A later-onset neuromyopathic disease characterized by myopathy and neuropathy, and associated with multiple mtDNA deletions in muscle, has also rarely been described. MPV17-related mtDNA maintenance defect, encephalohepatopathic form is characterized by: Hepatic manifestations (liver dysfunction that typically progresses to liver failure, cholestasis, hepatomegaly, and steatosis); Neurologic involvement (developmental delay, hypotonia, microcephaly, and motor and sensory peripheral neuropathy); Gastrointestinal manifestations (gastrointestinal dysmotility, feeding difficulties, and failure to thrive); and Metabolic derangements (lactic acidosis and hypoglycemia). Less frequent manifestations include renal tubulopathy, nephrocalcinosis, and hypoparathyroidism. Progressive liver disease often leads to death in infancy or early childhood. Hepatocellular carcinoma has been reported.
Nemaline myopathy 2
MedGen UID:
342534
Concept ID:
C1850569
Disease or Syndrome
Nemaline myopathy-2 (NEM2) is an autosomal recessive skeletal muscle disorder with a wide range of severity. The most common clinical presentation is early-onset (in infancy or childhood) muscle weakness predominantly affecting proximal limb muscles. Muscle biopsy shows accumulation of Z-disc and thin filament proteins into aggregates named 'nemaline bodies' or 'nemaline rods,' usually accompanied by disorganization of the muscle Z discs. The clinical and histologic spectrum of entities caused by variants in the NEB gene is a continuum, ranging in severity. The distribution of weakness can vary from generalized muscle weakness, more pronounced in proximal limb muscles, to distal-only involvement, although neck flexor weakness appears to be rather consistent. Histologic patterns range from a severe usually nondystrophic disturbance of the myofibrillar pattern to an almost normal pattern, with or without nemaline bodies, sometimes combined with cores (summary by Lehtokari et al., 2014). Genetic Heterogeneity of Nemaline Myopathy See also NEM1 (255310), caused by mutation in the tropomyosin-3 gene (TPM3; 191030) on chromosome 1q22; NEM3 (161800), caused by mutation in the alpha-actin-1 gene (ACTA1; 102610) on chromosome 1q42; NEM4 (609285), caused by mutation in the beta-tropomyosin gene (TPM2; 190990) on chromosome 9p13; NEM5A (605355), also known as Amish nemaline myopathy, NEM5B (620386), and NEM5C (620389), all caused by mutation in the troponin T1 gene (TNNT1; 191041) on chromosome 19q13; NEM6 (609273), caused by mutation in the KBTBD13 gene (613727) on chromosome 15q22; NEM7 (610687), caused by mutation in the cofilin-2 gene (CFL2; 601443) on chromosome 14q13; NEM8 (615348), caused by mutation in the KLHL40 gene (615340), on chromosome 3p22; NEM9 (615731), caused by mutation in the KLHL41 gene (607701) on chromosome 2q31; NEM10 (616165), caused by mutation in the LMOD3 gene (616112) on chromosome 3p14; and NEM11 (617336), caused by mutation in the MYPN gene (608517) on chromosome 10q21. Several of the genes encode components of skeletal muscle sarcomeric thin filaments (Sanoudou and Beggs, 2001). Mutations in the NEB gene are the most common cause of nemaline myopathy (Lehtokari et al., 2006).
Early-onset myopathy with fatal cardiomyopathy
MedGen UID:
435983
Concept ID:
C2673677
Disease or Syndrome
Salih myopathy is characterized by muscle weakness (manifest during the neonatal period or in early infancy) and delayed motor development; children acquire independent walking between ages 20 months and four years. In the first decade of life, global motor performance is stable or tends to improve. Moderate joint and neck contractures and spinal rigidity may manifest in the first decade but become more obvious in the second decade. Scoliosis develops after age 11 years. Cardiac dysfunction manifests between ages five and 16 years, progresses rapidly, and leads to death between ages eight and 20 years, usually from heart rhythm disturbances.
Mitochondrial DNA depletion syndrome 13
MedGen UID:
815922
Concept ID:
C3809592
Disease or Syndrome
FBXL4-related encephalomyopathic mitochondrial DNA (mtDNA) depletion syndrome is a multi-system disorder characterized primarily by congenital or early-onset lactic acidosis and growth failure, feeding difficulty, hypotonia, and developmental delay. Other neurologic manifestations can include seizures, movement disorders, ataxia, autonomic dysfunction, and stroke-like episodes. All affected individuals alive at the time they were reported (median age: 3.5 years) demonstrated significant developmental delay. Other findings can involve the heart (hypertrophic cardiomyopathy, congenital heart malformations, arrhythmias), liver (mildly elevated transaminases), eyes (cataract, strabismus, nystagmus, optic atrophy), hearing (sensorineural hearing loss), and bone marrow (neutropenia, lymphopenia). Survival varies; the median age of reported deaths was two years (range 2 days – 75 months), although surviving individuals as old as 36 years have been reported. To date FBXL4-related mtDNA depletion syndrome has been reported in 50 individuals.

Professional guidelines

PubMed

Sasaki K, Sakamoto S, Uchida H, Narumoto S, Shigeta T, Fukuda A, Ito R, Irie R, Yoshioka T, Murayama K, Kasahara M
Transplant Proc 2017 Jun;49(5):1097-1102. doi: 10.1016/j.transproceed.2017.03.065. PMID: 28583535

Recent clinical studies

Etiology

Vara R, Pinon M, Fratter C, Hegarty R, Hadzic N
J Inherit Metab Dis 2023 Jul;46(4):634-648. Epub 2023 May 28 doi: 10.1002/jimd.12633. PMID: 37204315
Heuer B
J Am Assoc Nurse Pract 2021 Sep 1;33(9):673-675. doi: 10.1097/JXX.0000000000000646. PMID: 34491238
Bychkov IO, Itkis YS, Tsygankova PG, Krylova TD, Mikhaylova SV, Klyushnikov SA, Pechatnikova NL, Degtyareva AV, Nikolaeva EA, Seliverstov YA, Kurbatov SA, Dadali EL, Rudenskaya GE, Illarioshkin SN, Zakharova EY
Mitochondrion 2021 Mar;57:205-212. Epub 2021 Jan 21 doi: 10.1016/j.mito.2021.01.004. PMID: 33486010
Ishii K, Kobayashi H, Taguchi K, Guan N, Li A, Tong C, Davidoff O, Tran PV, Sharma M, Chandel NS, Kapp ME, Fogo AB, Brooks CR, Haase VH
Kidney Int 2021 Mar;99(3):657-670. Epub 2020 Nov 4 doi: 10.1016/j.kint.2020.10.013. PMID: 33159962Free PMC Article
Kiechle FL, Zhang X
Arch Pathol Lab Med 2002 Mar;126(3):255-62. doi: 10.5858/2002-126-0255-TPE. PMID: 11860296

Diagnosis

Jankowska I, Czubkowski P, Rokicki D, Lipiński P, Piekutowska-Abramczuk D, Ciara E, Płoski R, Kaliciński P, Szymczak M, Pawłowska J, Socha P
Clin Res Hepatol Gastroenterol 2021 Jan;45(1):101408. Epub 2020 Apr 8 doi: 10.1016/j.clinre.2020.02.018. PMID: 32278775
Waich S, Roscher A, Brunner-Krainz M, Cortina G, Köstl G, Feichtinger RG, Entenmann A, Müller T, Knisely AS, Mayr JA, Janecke AR, Vodopiutz J
J Pediatr Gastroenterol Nutr 2019 Jan;68(1):e1-e6. doi: 10.1097/MPG.0000000000002149. PMID: 30589726
Kropach N, Shkalim-Zemer V, Orenstein N, Scheuerman O, Straussberg R
Neuropediatrics 2017 Dec;48(6):456-462. Epub 2017 May 8 doi: 10.1055/s-0037-1601867. PMID: 28482374
Finsterer J, Ahting U
Can J Neurol Sci 2013 Sep;40(5):635-44. doi: 10.1017/s0317167100014852. PMID: 23968935
Fellman V, Kotarsky H
Semin Fetal Neonatal Med 2011 Aug;16(4):222-8. Epub 2011 Jun 15 doi: 10.1016/j.siny.2011.05.002. PMID: 21680270

Therapy

Lavorato M, Nakamaru-Ogiso E, Mathew ND, Herman E, Shah N, Haroon S, Xiao R, Seiler C, Falk MJ
JCI Insight 2022 Aug 22;7(16) doi: 10.1172/jci.insight.156346. PMID: 35881484Free PMC Article
Burt R, Dey A, Aref S, Aguiar M, Akarca A, Bailey K, Day W, Hooper S, Kirkwood A, Kirschner K, Lee SW, Lo Celso C, Manji J, Mansour MR, Marafioti T, Mitchell RJ, Muirhead RC, Cheuk Yan Ng K, Pospori C, Puccio I, Zuborne-Alapi K, Sahai E, Fielding AK
Blood 2019 Oct 24;134(17):1415-1429. doi: 10.1182/blood.2019001398. PMID: 31501154Free PMC Article
Torres S, Baulies A, Insausti-Urkia N, Alarcón-Vila C, Fucho R, Solsona-Vilarrasa E, Núñez S, Robles D, Ribas V, Wakefield L, Grompe M, Lucena MI, Andrade RJ, Win S, Aung TA, Kaplowitz N, García-Ruiz C, Fernández-Checa JC
Gastroenterology 2019 Aug;157(2):552-568. Epub 2019 Apr 25 doi: 10.1053/j.gastro.2019.04.023. PMID: 31029706
Barreto R, Waning DL, Gao H, Liu Y, Zimmers TA, Bonetto A
Oncotarget 2016 Jul 12;7(28):43442-43460. doi: 10.18632/oncotarget.9779. PMID: 27259276Free PMC Article
Osaki Y, Nishino I, Murakami N, Matsubayashi K, Tsuda K, Yokoyama YI, Morita M, Onishi S, Goto YI, Nonaka I
Muscle Nerve 1998 May;21(5):637-9. doi: 10.1002/(sici)1097-4598(199805)21:5<637::aid-mus10>3.0.co;2-s. PMID: 9572243

Prognosis

Heuer B
J Am Assoc Nurse Pract 2021 Sep 1;33(9):673-675. doi: 10.1097/JXX.0000000000000646. PMID: 34491238
Jankowska I, Czubkowski P, Rokicki D, Lipiński P, Piekutowska-Abramczuk D, Ciara E, Płoski R, Kaliciński P, Szymczak M, Pawłowska J, Socha P
Clin Res Hepatol Gastroenterol 2021 Jan;45(1):101408. Epub 2020 Apr 8 doi: 10.1016/j.clinre.2020.02.018. PMID: 32278775
Kropach N, Shkalim-Zemer V, Orenstein N, Scheuerman O, Straussberg R
Neuropediatrics 2017 Dec;48(6):456-462. Epub 2017 May 8 doi: 10.1055/s-0037-1601867. PMID: 28482374
Ashar FN, Moes A, Moore AZ, Grove ML, Chaves PHM, Coresh J, Newman AB, Matteini AM, Bandeen-Roche K, Boerwinkle E, Walston JD, Arking DE
J Mol Med (Berl) 2015 Feb;93(2):177-186. Epub 2014 Dec 4 doi: 10.1007/s00109-014-1233-3. PMID: 25471480Free PMC Article
Osaki Y, Nishino I, Murakami N, Matsubayashi K, Tsuda K, Yokoyama YI, Morita M, Onishi S, Goto YI, Nonaka I
Muscle Nerve 1998 May;21(5):637-9. doi: 10.1002/(sici)1097-4598(199805)21:5<637::aid-mus10>3.0.co;2-s. PMID: 9572243

Clinical prediction guides

Bhattacharya S, Yin J, Huo W, Chaum E
Stem Cell Res Ther 2022 Jun 17;13(1):260. doi: 10.1186/s13287-022-02937-6. PMID: 35715869Free PMC Article
Jankowska I, Czubkowski P, Rokicki D, Lipiński P, Piekutowska-Abramczuk D, Ciara E, Płoski R, Kaliciński P, Szymczak M, Pawłowska J, Socha P
Clin Res Hepatol Gastroenterol 2021 Jan;45(1):101408. Epub 2020 Apr 8 doi: 10.1016/j.clinre.2020.02.018. PMID: 32278775
Torres S, Baulies A, Insausti-Urkia N, Alarcón-Vila C, Fucho R, Solsona-Vilarrasa E, Núñez S, Robles D, Ribas V, Wakefield L, Grompe M, Lucena MI, Andrade RJ, Win S, Aung TA, Kaplowitz N, García-Ruiz C, Fernández-Checa JC
Gastroenterology 2019 Aug;157(2):552-568. Epub 2019 Apr 25 doi: 10.1053/j.gastro.2019.04.023. PMID: 31029706
Barreto R, Waning DL, Gao H, Liu Y, Zimmers TA, Bonetto A
Oncotarget 2016 Jul 12;7(28):43442-43460. doi: 10.18632/oncotarget.9779. PMID: 27259276Free PMC Article
Merkle AN, Nascene DR, McKinney AM
AJNR Am J Neuroradiol 2012 Mar;33(3):E34-5. Epub 2011 Apr 21 doi: 10.3174/ajnr.A2455. PMID: 21511859Free PMC Article

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