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Published in: Journal of Inherited Metabolic Disease 6/2018

01-11-2018 | Original Article

Cerebrospinal fluid monoamines, pterins, and folate in patients with mitochondrial diseases: systematic review and hospital experience

Authors: Marta Batllori, Marta Molero-Luis, Aida Ormazabal, Raquel Montero, Cristina Sierra, Antonia Ribes, Julio Montoya, Eduardo Ruiz-Pesini, Mar O’Callaghan, Leticia Pias, Andrés Nascimento, Francesc. Palau, Judith Armstrong, Delia Yubero, Juan D. Ortigoza-Escobar, Angels García-Cazorla, Rafael Artuch

Published in: Journal of Inherited Metabolic Disease | Issue 6/2018

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Abstract

Mitochondrial diseases are a group of genetic disorders leading to the dysfunction of mitochondrial energy metabolism pathways. We aimed to assess the clinical phenotype and the biochemical cerebrospinal fluid (CSF) biogenic amine profiles of patients with different diagnoses of genetic mitochondrial diseases. We recruited 29 patients with genetically confirmed mitochondrial diseases harboring mutations in either nuclear or mitochondrial DNA (mtDNA) genes. Signs and symptoms of impaired neurotransmission and neuroradiological data were recorded. CSF monoamines, pterins, and 5-methyltetrahydrofolate (5MTHF) concentrations were analyzed using high-performance liquid chromatography with electrochemical and fluorescence detection procedures. The mtDNA mutations were studied by Sanger sequencing, Southern blot, and real-time PCR, and nuclear DNA was assessed either by Sanger or next-generation sequencing. Five out of 29 cases showed predominant dopaminergic signs not attributable to basal ganglia involvement, harboring mutations in different nuclear genes. A chi-square test showed a statistically significant association between high homovanillic acid (HVA) values and low CSF 5-MTHF values (chi-square = 10.916; p = 0.001). Seven out of the eight patients with high CSF HVA values showed cerebral folate deficiency. Five of them harbored mtDNA deletions associated with Kearns-Sayre syndrome (KSS), one had a mitochondrial point mutation at the mtDNA ATPase6 gene, and one had a POLG mutation. In conclusion, dopamine deficiency clinical signs were present in some patients with mitochondrial diseases with different genetic backgrounds. High CSF HVA values, together with a severe cerebral folate deficiency, were observed in KSS patients and in other mtDNA mutation syndromes.
Literature
go back to reference Alebouyeh M, Takeda M, Onozato ML et al (2003) Expression of human organic anion transporters in the choroid plexus and their interactions with neurotransmitter metabolites. J Pharmacol Sci 93:430–436CrossRefPubMed Alebouyeh M, Takeda M, Onozato ML et al (2003) Expression of human organic anion transporters in the choroid plexus and their interactions with neurotransmitter metabolites. J Pharmacol Sci 93:430–436CrossRefPubMed
go back to reference Allen RJ, DiMauro S, Coulter DL, Papadimitriou A, Rothenberg SP (1983) Kearns-Sayre syndrome with reduced plasma and cerebrospinal fluid folate. Ann Neurol 13:679–682CrossRefPubMed Allen RJ, DiMauro S, Coulter DL, Papadimitriou A, Rothenberg SP (1983) Kearns-Sayre syndrome with reduced plasma and cerebrospinal fluid folate. Ann Neurol 13:679–682CrossRefPubMed
go back to reference Asencio C, Rodríguez-Hernandez MA et al (2016) Severe encephalopathy associated to pyruvate dehydrogenase mutations and unbalanced coenzyme Q10 content. Eur J Hum Genet 24:367–372CrossRefPubMed Asencio C, Rodríguez-Hernandez MA et al (2016) Severe encephalopathy associated to pyruvate dehydrogenase mutations and unbalanced coenzyme Q10 content. Eur J Hum Genet 24:367–372CrossRefPubMed
go back to reference Aylett SB, Neergheen V, Hargreaves IP et al (2013) Levels of 5-methyltetrahydrofolate and ascorbic acid in cerebrospinal fluid are correlated: implications for the accelerated degradation of folate by reactive oxygen species. Neurochem Int 63:750–755CrossRefPubMed Aylett SB, Neergheen V, Hargreaves IP et al (2013) Levels of 5-methyltetrahydrofolate and ascorbic acid in cerebrospinal fluid are correlated: implications for the accelerated degradation of folate by reactive oxygen species. Neurochem Int 63:750–755CrossRefPubMed
go back to reference De Grandis E, Serrano M, Pérez-Dueñas B et al (2010) Cerebrospinal fluid alterations of the serotonin product, 5- hydroxyindolacetic acid, in neurological disorders. J Inherit Metab Dis 33:803–809CrossRefPubMed De Grandis E, Serrano M, Pérez-Dueñas B et al (2010) Cerebrospinal fluid alterations of the serotonin product, 5- hydroxyindolacetic acid, in neurological disorders. J Inherit Metab Dis 33:803–809CrossRefPubMed
go back to reference Dougados M, Zittoun J, Laplane D, Castaigne P (1983) Folate metabolism disorder in Kearns-Sayre syndrome. Ann Neurol 13:687CrossRefPubMed Dougados M, Zittoun J, Laplane D, Castaigne P (1983) Folate metabolism disorder in Kearns-Sayre syndrome. Ann Neurol 13:687CrossRefPubMed
go back to reference García-Cazorla A, Serrano M, Pérez-Dueñas B et al (2007) Secondary abnormalities of neurotransmitters in infants with neurological disorders. Dev Med Child Neurol 49:740–744CrossRefPubMed García-Cazorla A, Serrano M, Pérez-Dueñas B et al (2007) Secondary abnormalities of neurotransmitters in infants with neurological disorders. Dev Med Child Neurol 49:740–744CrossRefPubMed
go back to reference Garcia-Cazorla A, Duarte S, Serrano M et al (2008a) Mitochondrial diseases mimicking neurotransmitter defects. Mitochondrion 8:273–278CrossRefPubMed Garcia-Cazorla A, Duarte S, Serrano M et al (2008a) Mitochondrial diseases mimicking neurotransmitter defects. Mitochondrion 8:273–278CrossRefPubMed
go back to reference Garcia-Cazorla A, Quadros EV, Nascimento A et al (2008b) Mitochondrial diseases associated with cerebral folate deficiency. Neurology 70:1360–1362CrossRefPubMed Garcia-Cazorla A, Quadros EV, Nascimento A et al (2008b) Mitochondrial diseases associated with cerebral folate deficiency. Neurology 70:1360–1362CrossRefPubMed
go back to reference Grapp M, Wrede A, Schweizer M et al (2013) Choroid plexus transcytosis and exosome shuttling deliver folate into brain parenchyma. Nat Commun 4:2123CrossRefPubMed Grapp M, Wrede A, Schweizer M et al (2013) Choroid plexus transcytosis and exosome shuttling deliver folate into brain parenchyma. Nat Commun 4:2123CrossRefPubMed
go back to reference Haddad D, Nakamura K (2015) Understanding the susceptibility of dopamine neurons to mitochondrial stressors in Parkinson’s disease. FEBS Lett 589:3702–3713CrossRefPubMedPubMedCentral Haddad D, Nakamura K (2015) Understanding the susceptibility of dopamine neurons to mitochondrial stressors in Parkinson’s disease. FEBS Lett 589:3702–3713CrossRefPubMedPubMedCentral
go back to reference Hasselmann O, Blau N, Ramaekers VT, Quadros EV, Sequeira JM, Weissert M (2010) Cerebral folate deficiency and CNS inflammatory markers in Alpers disease. Mol Genet Metab 99:58–61CrossRefPubMed Hasselmann O, Blau N, Ramaekers VT, Quadros EV, Sequeira JM, Weissert M (2010) Cerebral folate deficiency and CNS inflammatory markers in Alpers disease. Mol Genet Metab 99:58–61CrossRefPubMed
go back to reference Horvath GA, Demos M, Shyr C et al (2016) Secondary neurotransmitter deficiencies in epilepsy caused by voltage-gated sodium channelopathies: a potential treatment target? Mol Genet Metab 117:42–48CrossRefPubMed Horvath GA, Demos M, Shyr C et al (2016) Secondary neurotransmitter deficiencies in epilepsy caused by voltage-gated sodium channelopathies: a potential treatment target? Mol Genet Metab 117:42–48CrossRefPubMed
go back to reference Hyland K, Surtees RA, Heales SJ, Bowron A, Howells DW, Smith I (1993) Cerebrospinal fluid concentrations of pterins and metabolites of serotonin and dopamine in a pediatric reference population. Pediatr Res 34:10–14CrossRefPubMed Hyland K, Surtees RA, Heales SJ, Bowron A, Howells DW, Smith I (1993) Cerebrospinal fluid concentrations of pterins and metabolites of serotonin and dopamine in a pediatric reference population. Pediatr Res 34:10–14CrossRefPubMed
go back to reference Invernizzi F, Varanese S, Thomas A, Carrara F, Onofrj M, Zeviani M (2008) Two novel POLG1 mutations in a patient with progressive external ophthalmoplegia, levodopa-responsive pseudo-orthostatic tremor and parkinsonism. Neuromuscul Disord 18:460–464CrossRefPubMed Invernizzi F, Varanese S, Thomas A, Carrara F, Onofrj M, Zeviani M (2008) Two novel POLG1 mutations in a patient with progressive external ophthalmoplegia, levodopa-responsive pseudo-orthostatic tremor and parkinsonism. Neuromuscul Disord 18:460–464CrossRefPubMed
go back to reference Kurian MA, Gissen P, Smith M, Heales S Jr, Clayton PT (2011) The monoamine neurotransmitter disorders: an expanding range of neurological syndromes. Lancet Neurol 10:721–733CrossRefPubMed Kurian MA, Gissen P, Smith M, Heales S Jr, Clayton PT (2011) The monoamine neurotransmitter disorders: an expanding range of neurological syndromes. Lancet Neurol 10:721–733CrossRefPubMed
go back to reference Kuster A, Arnoux JB, Barth M et al (2018) Diagnostic approach to neurotransmitter monoamine disorders: experience from clinical, biochemical, and genetic profiles. J Inherit Metab Dis 41:129–139CrossRefPubMed Kuster A, Arnoux JB, Barth M et al (2018) Diagnostic approach to neurotransmitter monoamine disorders: experience from clinical, biochemical, and genetic profiles. J Inherit Metab Dis 41:129–139CrossRefPubMed
go back to reference Marecos C, Ng J, Kurian MA (2014) What is new for monoamine neurotransmitter disorders? J Inherit Metab Dis 37:619–626CrossRefPubMed Marecos C, Ng J, Kurian MA (2014) What is new for monoamine neurotransmitter disorders? J Inherit Metab Dis 37:619–626CrossRefPubMed
go back to reference Miguel R, Gago MF, Martins J (2014) POLG1-related levodopa-responsive parkinsonism. Clin Neurol Neurosurg 126:47–54CrossRefPubMed Miguel R, Gago MF, Martins J (2014) POLG1-related levodopa-responsive parkinsonism. Clin Neurol Neurosurg 126:47–54CrossRefPubMed
go back to reference Molero-Luis M, Fernández-Ureña S, Jordán I et al (2013a) Cerebrospinal fluid neopterin analysis in neuropediatric patients: establishment of a new cut off-value for the identification of inflammatory-immune mediated processes. PLoS One 8:e83237CrossRefPubMedPubMedCentral Molero-Luis M, Fernández-Ureña S, Jordán I et al (2013a) Cerebrospinal fluid neopterin analysis in neuropediatric patients: establishment of a new cut off-value for the identification of inflammatory-immune mediated processes. PLoS One 8:e83237CrossRefPubMedPubMedCentral
go back to reference Molero-Luis M, Serrano M, Ormazábal A et al (2013b) Homovanillic acid in cerebrospinal fluid of 1388 children with neurological disorders. Dev Med Child Neurol 55:559–566CrossRefPubMed Molero-Luis M, Serrano M, Ormazábal A et al (2013b) Homovanillic acid in cerebrospinal fluid of 1388 children with neurological disorders. Dev Med Child Neurol 55:559–566CrossRefPubMed
go back to reference Montiel-Sosa JF, Herrero MD, Munoz M de L et al (2013) Phylogenetic analysis of mitochondrial DNA in a patient with Kearns-Sayre syndrome containing a novel 7629-bp deletion. Mitochondrial DNA 24:420–431CrossRefPubMed Montiel-Sosa JF, Herrero MD, Munoz M de L et al (2013) Phylogenetic analysis of mitochondrial DNA in a patient with Kearns-Sayre syndrome containing a novel 7629-bp deletion. Mitochondrial DNA 24:420–431CrossRefPubMed
go back to reference Moran MM, Allen NM, Treacy EP, King MD (2011) “Stiff neonate” with mitochondrial DNA depletion and secondary neurotransmitter defects. Pediatr Neurol 45:403–405CrossRefPubMed Moran MM, Allen NM, Treacy EP, King MD (2011) “Stiff neonate” with mitochondrial DNA depletion and secondary neurotransmitter defects. Pediatr Neurol 45:403–405CrossRefPubMed
go back to reference Mori S, Takanaga H, Ohtsuki S et al (2003) Rat organic anion transporter 3 (rOAT3) is responsible for brain-to-blood efflux of homovanillic acid at the abluminal membrane of brain capillary endothelial cells. J Cereb Blood Flow Metab 23:432–440CrossRefPubMed Mori S, Takanaga H, Ohtsuki S et al (2003) Rat organic anion transporter 3 (rOAT3) is responsible for brain-to-blood efflux of homovanillic acid at the abluminal membrane of brain capillary endothelial cells. J Cereb Blood Flow Metab 23:432–440CrossRefPubMed
go back to reference Moy LY, Wang SP, Sonsalla PK (2007) Mitochondrial stress-induced dopamine efflux and neuronal damage by malonate involves the dopamine transporter. J Pharmacol Exp Ther 320:747–756CrossRefPubMed Moy LY, Wang SP, Sonsalla PK (2007) Mitochondrial stress-induced dopamine efflux and neuronal damage by malonate involves the dopamine transporter. J Pharmacol Exp Ther 320:747–756CrossRefPubMed
go back to reference Murthy VN, De Camilli P (2003) Cell biology of the presynaptic terminal. Annu Rev Neurosci 26:701–728CrossRefPubMed Murthy VN, De Camilli P (2003) Cell biology of the presynaptic terminal. Annu Rev Neurosci 26:701–728CrossRefPubMed
go back to reference Ng J, Papandreou A, Heales SJ, Kurian MA (2015) Monoamine neurotransmitter disorders–clinical advances and future perspectives. Nat Rev Neurol 11:567–584CrossRefPubMed Ng J, Papandreou A, Heales SJ, Kurian MA (2015) Monoamine neurotransmitter disorders–clinical advances and future perspectives. Nat Rev Neurol 11:567–584CrossRefPubMed
go back to reference O'Callaghan MM, Emperador S, Pineda M et al (2015) Mutation loads in different tissues from six pathogenic mtDNA point mutations. Mitochondrion 22:17–22CrossRefPubMed O'Callaghan MM, Emperador S, Pineda M et al (2015) Mutation loads in different tissues from six pathogenic mtDNA point mutations. Mitochondrion 22:17–22CrossRefPubMed
go back to reference Orešković D, Radoš M, Klarica M (2017) Role of choroid plexus in cerebrospinal fluid hydrodynamics. Neuroscience 354:69–87CrossRefPubMed Orešković D, Radoš M, Klarica M (2017) Role of choroid plexus in cerebrospinal fluid hydrodynamics. Neuroscience 354:69–87CrossRefPubMed
go back to reference Ormazabal A, García-Cazorla A, Fernández Y, Fernández-Alvarez E, Campistol J, Artuch R (2005) HPLC with electrochemical and fluorescence detection procedures for the diagnosis of inborn errors of biogenic amines and pterins. J Neurosci Methods 142:153–158CrossRefPubMed Ormazabal A, García-Cazorla A, Fernández Y, Fernández-Alvarez E, Campistol J, Artuch R (2005) HPLC with electrochemical and fluorescence detection procedures for the diagnosis of inborn errors of biogenic amines and pterins. J Neurosci Methods 142:153–158CrossRefPubMed
go back to reference Ormazabal A, García-Cazorla A, Pérez-Dueñas B et al (2006) Determination of 5-methyltetrahydrofolate in cerebrospinal fluid of paediatric patients: reference values for a paediatric population. Clin Chim Acta 371:159–162CrossRefPubMed Ormazabal A, García-Cazorla A, Pérez-Dueñas B et al (2006) Determination of 5-methyltetrahydrofolate in cerebrospinal fluid of paediatric patients: reference values for a paediatric population. Clin Chim Acta 371:159–162CrossRefPubMed
go back to reference Ortigoza-Escobar JD, Molero-Luis M, Arias A et al (2016) Free-thiamine is a potential biomarker of thiamine transporter-2 deficiency: a treatable cause of Leigh syndrome. Brain 139:31–38CrossRefPubMed Ortigoza-Escobar JD, Molero-Luis M, Arias A et al (2016) Free-thiamine is a potential biomarker of thiamine transporter-2 deficiency: a treatable cause of Leigh syndrome. Brain 139:31–38CrossRefPubMed
go back to reference Pearl PL, Capp PK, Novotny EJ, Gibson KM (2005) Inherited disorders of neurotransmitters in children and adults. Clin Biochem 38:1051–1058CrossRefPubMed Pearl PL, Capp PK, Novotny EJ, Gibson KM (2005) Inherited disorders of neurotransmitters in children and adults. Clin Biochem 38:1051–1058CrossRefPubMed
go back to reference Pérez-Dueñas B, Ormazábal A, Toma C et al (2011) Cerebral folate deficiency syndromes in childhood: clinical, analytical, and etiologic aspects. Arch Neurol 68:615–621CrossRefPubMed Pérez-Dueñas B, Ormazábal A, Toma C et al (2011) Cerebral folate deficiency syndromes in childhood: clinical, analytical, and etiologic aspects. Arch Neurol 68:615–621CrossRefPubMed
go back to reference Pineda M, Ormazabal A, Lopez-Gallardo E et al (2006) Cerebral folate deficiency and leukoencephalopathy caused by a mitochondrial DNA deletion. Ann Neurol 59:394–398CrossRefPubMed Pineda M, Ormazabal A, Lopez-Gallardo E et al (2006) Cerebral folate deficiency and leukoencephalopathy caused by a mitochondrial DNA deletion. Ann Neurol 59:394–398CrossRefPubMed
go back to reference Ramaekers VT, Weis J, Sequeira JM, Quadros EV, Blau N (2007) Mitochondrial complex I encephalomyopathy and cerebral 5-methyltetrahydrofolate deficiency. Neuropediatrics 38:184–187CrossRefPubMed Ramaekers VT, Weis J, Sequeira JM, Quadros EV, Blau N (2007) Mitochondrial complex I encephalomyopathy and cerebral 5-methyltetrahydrofolate deficiency. Neuropediatrics 38:184–187CrossRefPubMed
go back to reference Rodan LH, Gibson KM, Pearl PL (2015) Clinical use of CSF neurotransmitters. Pediatr Neurol 53:277–286CrossRefPubMed Rodan LH, Gibson KM, Pearl PL (2015) Clinical use of CSF neurotransmitters. Pediatr Neurol 53:277–286CrossRefPubMed
go back to reference Serrano M, García-Silva MT, Martin-Hernandez E et al (2010) Kearns-Sayre syndrome: cerebral folate deficiency, MRI findings and new cerebrospinal fluid biochemical features. Mitochondrion 10:429–432CrossRefPubMed Serrano M, García-Silva MT, Martin-Hernandez E et al (2010) Kearns-Sayre syndrome: cerebral folate deficiency, MRI findings and new cerebrospinal fluid biochemical features. Mitochondrion 10:429–432CrossRefPubMed
go back to reference Spector R (2010) Nature and consequences of mammalian brain and CSF efflux transporters: four decades of progress. J Neurochem 112:13–23CrossRefPubMed Spector R (2010) Nature and consequences of mammalian brain and CSF efflux transporters: four decades of progress. J Neurochem 112:13–23CrossRefPubMed
go back to reference Tanji K, Schon EA, DiMauro S, Bonilla E (2000) Kearns-Sayre syndrome: oncocytic transformation of choroid plexus epithelium. J Neurol Sci 178:29–36CrossRefPubMed Tanji K, Schon EA, DiMauro S, Bonilla E (2000) Kearns-Sayre syndrome: oncocytic transformation of choroid plexus epithelium. J Neurol Sci 178:29–36CrossRefPubMed
go back to reference Tondo M, Málaga I, O'Callaghan M et al (2011) Biochemical parameters to assess choroid plexus dysfunction in Kearns-Sayre syndrome patients. Mitochondrion 11:867–870CrossRefPubMed Tondo M, Málaga I, O'Callaghan M et al (2011) Biochemical parameters to assess choroid plexus dysfunction in Kearns-Sayre syndrome patients. Mitochondrion 11:867–870CrossRefPubMed
go back to reference Tzoulis C, Tran GT, Schwarzlmüller T et al (2013) Severe nigrostriatal degeneration without clinical parkinsonism in patients with polymerase gamma mutations. Brain 136:2393–2404CrossRefPubMed Tzoulis C, Tran GT, Schwarzlmüller T et al (2013) Severe nigrostriatal degeneration without clinical parkinsonism in patients with polymerase gamma mutations. Brain 136:2393–2404CrossRefPubMed
go back to reference Tzoulis C, Schwarzlmüller T, Biermann M, Haugarvoll K, Bindoff LA (2016) Mitochondrial DNA homeostasis is essential for nigrostriatal integrity. Mitochondrion 28:33–37CrossRefPubMed Tzoulis C, Schwarzlmüller T, Biermann M, Haugarvoll K, Bindoff LA (2016) Mitochondrial DNA homeostasis is essential for nigrostriatal integrity. Mitochondrion 28:33–37CrossRefPubMed
go back to reference Van Der Heyden JC, Rotteveel JJ, Wevers RA et al (2003) Decreased homovanillic acid concentrations in cerebrospinal fluid in children without a known defect in dopamine metabolism. Eur J Paediatr Neurol 7:31–37CrossRef Van Der Heyden JC, Rotteveel JJ, Wevers RA et al (2003) Decreased homovanillic acid concentrations in cerebrospinal fluid in children without a known defect in dopamine metabolism. Eur J Paediatr Neurol 7:31–37CrossRef
Metadata
Title
Cerebrospinal fluid monoamines, pterins, and folate in patients with mitochondrial diseases: systematic review and hospital experience
Authors
Marta Batllori
Marta Molero-Luis
Aida Ormazabal
Raquel Montero
Cristina Sierra
Antonia Ribes
Julio Montoya
Eduardo Ruiz-Pesini
Mar O’Callaghan
Leticia Pias
Andrés Nascimento
Francesc. Palau
Judith Armstrong
Delia Yubero
Juan D. Ortigoza-Escobar
Angels García-Cazorla
Rafael Artuch
Publication date
01-11-2018
Publisher
Springer Netherlands
Published in
Journal of Inherited Metabolic Disease / Issue 6/2018
Print ISSN: 0141-8955
Electronic ISSN: 1573-2665
DOI
https://doi.org/10.1007/s10545-018-0224-x

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