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1.
Arch Biochem Biophys ; 749: 109792, 2023 11.
Article in English | MEDLINE | ID: mdl-37863349

ABSTRACT

Phenylketonuria (PKU) is the most common inherited metabolic disorders caused by severe deficiency or absence of phenylalanine hydroxylase activity that converts phenylalanine (Phe) to tyrosine. PKU patients were treated with a Phe restricted diet supplemented with a special formula containing l-carnitine (L-car), well-known antioxidant compound. The lack of treatment can cause neurological and cognitive impairment, as severe mental retardation, neuronal cell loss and synaptic density reduction. Although Phe has been widely demonstrated to be involved in PKU neurotoxicity, the mechanisms responsible for the CNS injury are still not fully known. In this work, we evaluated markers of neurodegeneration, namely BDNF (brain-derived neurotrophic factor), PAI-1 total (Plasminogen activator inhibitor-1 total), Cathepsin D, PDGF AB/BB (platelet-derived growth factor), and NCAM (neuronal adhesion molecule) in plasma of PKU patients at early and late diagnosis and under treatment. We found decreased Phe levels and increased L-car concentrations in PKU patients treated with L-car compared to the other groups, indicating that the proposed treatment was effective. Furthermore, we found increased BDNF levels in the patients under treatment compared to patients at early diagnosis, and a positive correlation between BDNF and L-car and a negative correlation between BDNF and Phe. Our results may indicate that in PKU patients treated with L-car there is an attempt to adjust neuronal plasticity and recover the damage suffered, reflecting a compensatory response to brain injury.


Subject(s)
Carnitine , Phenylketonurias , Humans , Brain-Derived Neurotrophic Factor , Phenylketonurias/drug therapy , Dietary Supplements , Antioxidants , Phenylalanine , Becaplermin
2.
Cell Biochem Funct ; 41(4): 490-500, 2023 Jun.
Article in English | MEDLINE | ID: mdl-37170672

ABSTRACT

Phenylketonuria (PKU) was the first genetic disease to have an effective therapy, which consists of phenylalanine intake restriction. However, there are patients who do not adhere to treatment and/or are not submitted to neonatal screening. PKU patients present L-carnitine (L-car) deficiency, compound that has demonstrated an antioxidant and anti-inflammatory role in metabolic diseases. This study evaluated the effect caused by exposure time to high Phe levels in PKU patients at early and late diagnosis, through pro- and anti-inflammatory cytokines, as well as the L-car effect in patients under treatment. It was observed that there was a decrease in phenylalanine levels in treated patients compared to patients at diagnosis, and an increase in L-car levels in the patients under treatment. Inverse correlation between Phe versus L-car and nitrate plus nitrite versus L-car in PKU patients was also showed. We found increased proinflammatory cytokines levels: interleukin (IL)-1ß, interferons (IFN)-gamma, IL-2, tumor necrosis factor (TNF)-alpha, IL-8 and IL-6 in the patients at late diagnosis compared to controls, and IL-8 in the patients at early diagnosis and treatment compared to controls. Increased IL-2, TNF-alpha, IL-6 levels in the patients at late diagnosis compared to early diagnosis were shown, and reduced IL-6 levels in the treated patients compared to patients at late diagnosis. Moreover, it verified a negative correlation between IFN-gamma and L-car in treated patients. Otherwise, it was observed that there were increased IL-4 levels in the patients at late diagnosis compared to early diagnosis, and reduction in treated patients compared to late diagnosed patients. In urine, there was an increase in 8-isoprostane levels in the patients at diagnosis compared to controls and a decrease in oxidized guanine species in the treated patients compared to the diagnosed patients. Our results demonstrate for the first time in literature that time exposure to high Phe concentrations generates a proinflammatory status, especially in PKU patients with late diagnosis. A pro-oxidant status was verified in not treated PKU patients. Our results demonstrate the importance of early diagnosis and prompt start of treatment, in addition to the importance of L-car supplementation, which can improve cellular defense against inflammation and oxidative damage in PKU patients.


Subject(s)
Cytokines , Phenylketonurias , Infant, Newborn , Humans , Phenylalanine , Delayed Diagnosis , Interleukin-2 , Interleukin-6 , Interleukin-8 , Carnitine/pharmacology , Phenylketonurias/diagnosis , Phenylketonurias/drug therapy , Phenylketonurias/urine , Tumor Necrosis Factor-alpha
3.
Naunyn Schmiedebergs Arch Pharmacol ; 396(7): 1563-1569, 2023 07.
Article in English | MEDLINE | ID: mdl-36795166

ABSTRACT

Niemann-Pick type C1 (NP-C1) is a lysosomal storage disease (LSD) caused by mutations in NPC1 gene that lead to defective synthesis of the respective lysosomal transporter protein and cholesterol accumulation in late endosomes/lysosomes (LE/L) compartments, as well as glycosphingolipids GM2 and GM3 in the central nervous system (CNS). Clinical presentation varies according to the age of onset and includes visceral and neurological symptoms, such as hepatosplenomegaly and psychiatric disorders. Studies have been associating the pathophysiology of NP-C1 with oxidative damage to lipids and proteins, as well as evaluating the benefits of adjuvant therapy with antioxidants for this disease. In this work, we evaluated the DNA damage in fibroblasts culture from patients with NP-C1 treated with miglustat, as well as the in vitro effect of the antioxidant compounds N-acetylcysteine (NAC) and Coenzyme Q10 (CoQ10), using the alkaline comet assay. Our preliminary results demonstrate that NP-C1 patients have increased DNA damage compared to healthy individuals and that the treatments with antioxidants can mitigate it. DNA damage may be due to an increase in reactive species since it has been described that NP-C1 patients have increased peripheral markers of damage to other biomolecules. Our study suggests that NP-C1 patients could benefit from the use of adjuvant therapy with NAC and CoQ10, which should be better evaluated in a future clinical trial.


Subject(s)
Niemann-Pick Disease, Type C , Humans , Niemann-Pick Disease, Type C/drug therapy , Niemann-Pick Disease, Type C/genetics , Niemann-Pick Disease, Type C/metabolism , Acetylcysteine/pharmacology , Acetylcysteine/therapeutic use , Antioxidants/pharmacology , Antioxidants/therapeutic use , DNA Damage
4.
Metab Brain Dis ; 36(7): 1957-1968, 2021 10.
Article in English | MEDLINE | ID: mdl-34216350

ABSTRACT

Although phenylalanine (Phe) is known to be neurotoxic in phenylketonuria (PKU), its exact pathogenetic mechanisms of brain damage are still poorly known. Furthermore, much less is known about the role of the Phe derivatives phenylacetic (PAA), phenyllactic (PLA) and phenylpyruvic (PPA) acids that also accumulate in this this disorder on PKU neuropathology. Previous in vitro and in vivo studies have shown that Phe elicits oxidative stress in brain of rodents and that this deleterious process also occurs in peripheral tissues of phenylketonuric patients. In the present study, we investigated whether Phe and its derivatives PAA, PLA and PPA separately or in combination could induce reactive oxygen species (ROS) formation and provoke DNA damage in C6 glial cells. We also tested the role of L-carnitine (L-car), which has been recently considered an antioxidant agent and easily cross the blood brain barrier on the alterations of C6 redox status provoked by Phe and its metabolites. We first observed that cell viability was not changed by Phe and its metabolites. Furthermore, Phe, PAA, PLA and PPA, at concentrations found in plasma of PKU patients, provoked marked DNA damage in the glial cells separately and when combined. Of note, these effects were totally prevented (Phe, PAA and PPA) or attenuated (PLA) by L-car pre-treatment. In addition, a potent ROS formation also induced by Phe and PAA, whereas only moderate increases of ROS were caused by PPA and PLA. Pre-treatment with L-car also prevented Phe- and PAA-induced ROS generation, but not that provoked by PLA and PPA. Thus, our data show that Phe and its major metabolites accumulated in PKU provoke extensive DNA damage in glial cells probably by ROS formation and that L-car may potentially represent an adjuvant therapeutic agent in PKU treatment.


Subject(s)
Brain Injuries , Phenylketonurias , Brain Injuries/drug therapy , Carnitine/pharmacology , Carnitine/therapeutic use , Humans , Keto Acids/pharmacology , Oxidative Stress , Phenylalanine/pharmacology , Phenylalanine/therapeutic use
5.
Arch Biochem Biophys ; 709: 108970, 2021 09 30.
Article in English | MEDLINE | ID: mdl-34181873

ABSTRACT

Glutaric acidemia type 1 (GA1) is caused by glutaryl-CoA dehydrogenase deficiency that leads to a blockage in the metabolic route of the amino acids lysine and tryptophan and subsequent accumulation of glutaric acid (GA), 3-hydroxyglutaric acids and glutarylcarnitine (C5DC). Patients predominantly manifest neurological symptoms, associated with acute striatal degeneration, as well as progressive cortical and striatum injury whose pathogenesis is not yet fully established. Current treatment includes protein/lysine restriction and l-carnitine supplementation of (L-car). The aim of this work was to evaluate behavior parameters and pro-inflammatory factors (cytokines IL-1ß, TNF-α and cathepsin-D levels), as well as the anti-inflammatory cytokine IL10 in striatum of knockout mice (Gcdh-/-) and wild type (WT) mice submitted to a normal or a high Lys diet. The potential protective effects of L-car treatment on these parameters were also evaluated. Gcdh-/- mice showed behavioral changes, including lower motor activity (decreased number of crossings) and exploratory activity (reduced number of rearings). Also, Gcdh-/- mice had significantly higher concentrations of glutarylcarnitine (C5DC) in blood and cathepsin-D (CATD), interleukin IL-1ß and tumor factor necrosis alpha (TNF-α) in striatum than WT mice. Noteworthy, L-car treatment prevented most behavioral alterations, normalized CATD levels and attenuated IL-1ß levels in striatum of Gcdh-/- mice. Finally, IL-1ß was positively correlated with CATD and C5DC levels and L-car was negatively correlated with CATD. Our results demonstrate behavioral changes and a pro-inflammatory status in striatum of the animal model of GA1 and, most importantly, L-car showed important protective effects on these alterations.


Subject(s)
Amino Acid Metabolism, Inborn Errors/drug therapy , Brain Diseases, Metabolic/drug therapy , Carnitine/therapeutic use , Glutaryl-CoA Dehydrogenase/deficiency , Inflammation/drug therapy , Neuroprotective Agents/therapeutic use , Amino Acid Metabolism, Inborn Errors/genetics , Animals , Brain Diseases, Metabolic/genetics , Carnitine/analogs & derivatives , Carnitine/metabolism , Cathepsin D/metabolism , Corpus Striatum/drug effects , Corpus Striatum/metabolism , Glutaryl-CoA Dehydrogenase/genetics , Grooming/drug effects , Inflammation/genetics , Interleukin-1beta/metabolism , Locomotion/drug effects , Lysine/pharmacology , Mice, Knockout , Open Field Test/drug effects , Transforming Growth Factor beta/metabolism
6.
Biochim Biophys Acta Mol Basis Dis ; 1865(9): 2420-2427, 2019 09 01.
Article in English | MEDLINE | ID: mdl-31181292

ABSTRACT

The deficiency of the enzyme glutaryl-CoA dehydrogenase leads to predominant accumulation of glutaric acid (GA) in the organism and is known as glutaric acidemia type I (GA1). Despite the mechanisms of brain damage involved in GA1 are not fully understood, oxidative stress may be involved in this process. Treatment is based on protein/lysine (Lys) restriction and l-carnitine (L-car) supplementation. L-car was recently shown to have an important antioxidant role. A knockout mice model (Gcdh-/-) submitted to a dietary overload of Lys was developed to better understand the GA1 pathogenesis. In this study, we evaluated L-car and glutarylcarnitine levels, the lipid and protein damage, reactive oxygen species (ROS) production and antioxidant enzymes activities in striatum of Gcdh-/- and wild-type (WT) mice. We also determined the effect of the L-car treatment on these parameters. Thirty-day-old Gcdh-/- and WT mice were fed a normal chow (0.9% Lys) or submitted to a high Lys diet (4.7%) for 72 h. Additionally, these animals were administered with three intraperitoneal injections of saline or L-car in different times. Gcdh-/- mice were deficient in L-car and presented a higher glutarylcarnitine levels. They also presented lipid and protein damage, an increased ROS production and altered antioxidant enzymes compared to WT mice. Additionally, mice exposed to Lys overload presented higher alterations in these parameters than mice under normal diet, which were significantly decreased or normalized in those receiving L-car. Thus, we demonstrated a new beneficial effect of the L-car treatment attenuating or abolishing the oxidative stress process in Gcdh-/- mice.


Subject(s)
Carnitine/pharmacology , Corpus Striatum/metabolism , Glutaryl-CoA Dehydrogenase/genetics , Lysine/pharmacology , Oxidative Stress/drug effects , Amino Acid Metabolism, Inborn Errors/metabolism , Amino Acid Metabolism, Inborn Errors/pathology , Amino Acid Metabolism, Inborn Errors/veterinary , Animals , Brain Diseases, Metabolic/metabolism , Brain Diseases, Metabolic/pathology , Brain Diseases, Metabolic/veterinary , Carnitine/analogs & derivatives , Carnitine/metabolism , Diet/veterinary , Disease Models, Animal , Glutaryl-CoA Dehydrogenase/deficiency , Glutaryl-CoA Dehydrogenase/metabolism , Glutathione Peroxidase/metabolism , Lysine/blood , Mice , Mice, Knockout , Reactive Oxygen Species/metabolism , Superoxide Dismutase/metabolism
7.
Arch Biochem Biophys ; 668: 16-22, 2019 06 15.
Article in English | MEDLINE | ID: mdl-31047871

ABSTRACT

3-hydroxy-3-methylglutaric aciduria (HMGA) is an inherited disorder of the leucine catabolic pathway in which occurs a deficiency of the 3-hydroxy-3-methylglutaryl-CoA lyase enzyme. Therefore, the organic acids 3-hydroxy-3-methylglutaric (HMG) and 3-methylglutaric (MGA), mainly, accumulate in tissues of affected patients. Lately, much attention has been focused on free radicals as mediators of tissue damage in human diseases, causing lipid peroxidation, protein oxidation and DNA damage. The treatment of this disease is based in a restricted protein ingest and supplementation with l-carnitine (LC), an antioxidant and detoxifying agent. In the present work, we investigated the in vitro oxidative damage to DNA induced by the accumulation of organic acids and oxidative stress parameters in vivo of patients with 3-HMG, as well as the effect of the recommended therapy. The in vitro DNA damage was analyzed by the alkaline comet assay in leukocytes incubated with HMG and MGA (1 mM, 2.5 mM and 5 mM) and co-incubated with LC (90 µM and 150 µM). The in vivo urinary 15-F2t-isoprostane levels and urinary oxidized guanine species were measured by ELISA kits in patient's urine before and after the treatment with LC. HMG and MGA induced a DNA damage index (DI) significantly higher than that of the control group. The DI was significantly reduced in the presence of LC. It was also verified a significant increase of oxidized guanine species and urinary isoprostane levels, biomarker of oxidative DNA damage and lipid peroxidation respectively, in patients before treatment. After the treatment and supplementation with LC, patients presented significantly lower levels of those biomarkers. Analyzing the data together, we can conclude that HMGA patients present oxidative lipid and DNA damage, which is induced by HMG and MGA, and the antioxidant therapy with LC can prevent that kind of injuries.


Subject(s)
Acetyl-CoA C-Acetyltransferase/deficiency , Amino Acid Metabolism, Inborn Errors/drug therapy , Carnitine/therapeutic use , DNA Damage/drug effects , Meglutol/analogs & derivatives , Meglutol/metabolism , 8-Hydroxy-2'-Deoxyguanosine/urine , Acetyl-CoA C-Acetyltransferase/metabolism , Acetyl-CoA C-Acetyltransferase/urine , Adolescent , Amino Acid Metabolism, Inborn Errors/metabolism , Amino Acid Metabolism, Inborn Errors/urine , Child , Child, Preschool , Dinoprost/analogs & derivatives , Dinoprost/urine , Guanine/analogs & derivatives , Guanine/urine , Guanosine/analogs & derivatives , Guanosine/urine , Humans , Infant , Lipid Peroxidation/drug effects
8.
Toxicol In Vitro ; 57: 194-202, 2019 Jun.
Article in English | MEDLINE | ID: mdl-30853490

ABSTRACT

Maple syrup urine disease (MSUD) is an inherited deficiency of the branched-chain α-keto dehydrogenase complex, characterized by accumulation of the branched-chain amino acids (BCAAs) and their respective branched chain α-keto-acids (BCKAs), as well as by the presence of alloisoleucine (Allo). Studies have shown that oxidative stress is involved in the pathophysiology of MSUD. In this work, we investigated using the comet assay whether Allo, BCAAs and BCKAs could induce in vitro DNA damage, as well as the influence of l-Carnitine (L-Car) upon DNA damage. We also evaluated urinary 8-hydroxydeoguanosine (8-OHdG) levels, an oxidative DNA damage biomarker, in MSUD patients submitted to a restricted diet supplemented or not with L-Car. All tested concentrations of metabolites (separated or incubated together) induced in vitro DNA damage, and the co-treatment with L-Car reduced these effects. We found that Allo induced the higher DNA damage class and verified a potentiation of DNA damage induced by synergistic action between metabolites. In vivo, it was observed a significant increase in 8-OHdG levels, which was reversed by L-Car. We demonstrated for the first time that oxidative DNA damage is induced not only by BCAAs and BCKAs but also by Allo and we reinforce the protective effect of L-Car.


Subject(s)
Amino Acids/administration & dosage , Carnitine/therapeutic use , DNA Damage , Dietary Supplements , Maple Syrup Urine Disease , Protective Agents/therapeutic use , 8-Hydroxy-2'-Deoxyguanosine , Amino Acids/blood , Amino Acids/urine , Child , Child, Preschool , Comet Assay , Deoxyguanosine/analogs & derivatives , Deoxyguanosine/urine , Humans , Maple Syrup Urine Disease/blood , Maple Syrup Urine Disease/diet therapy , Maple Syrup Urine Disease/genetics , Maple Syrup Urine Disease/urine
9.
Cell Mol Neurobiol ; 38(8): 1505-1516, 2018 Nov.
Article in English | MEDLINE | ID: mdl-30302628

ABSTRACT

X-linked adrenoleukodystrophy (X-ALD) is an inherited neurometabolic disorder caused by disfunction of the ABCD1 gene, which encodes a peroxisomal protein responsible for the transport of the very long-chain fatty acids from the cytosol into the peroxisome, to undergo ß-oxidation. The mainly accumulated saturated fatty acids are hexacosanoic acid (C26:0) and tetracosanoic acid (C24:0) in tissues and body fluids. This peroxisomal disorder occurs in at least 1 out of 20,000 births. Considering that pathophysiology of this disease is not well characterized yet, and glial cells are widely used in studies of protective mechanisms against neuronal oxidative stress, we investigated oxidative damages and inflammatory effects of vesicles containing lecithin and C26:0, as well as the protection conferred by N-acetyl-L-cysteine (NAC), trolox (TRO), and rosuvastatin (RSV) was assessed. It was verified that glial cells exposed to C26:0 presented oxidative DNA damage (measured by comet assay and endonuclease III repair enzyme), enzymatic oxidative imbalance (high catalase activity), nitrative stress [increased nitric oxide (NO) levels], inflammation [high Interleukin-1beta (IL-1ß) levels], and induced lipid peroxidation (increased isoprostane levels) compared to native glial cells without C26:0 exposure. Furthermore, NAC, TRO, and RSV were capable to mitigate some damages caused by the C26:0 in glial cells. The present work yields experimental evidence that inflammation, oxidative, and nitrative stress may be induced by hexacosanoic acid, the main accumulated metabolite in X-ALD, and that antioxidants might be considered as an adjuvant therapy for this severe neurometabolic disease.


Subject(s)
Acetylcysteine/pharmacology , Chromans/pharmacology , Fatty Acids/pharmacology , Inflammation/pathology , Neuroglia/pathology , Nitrosative Stress , Oxidative Stress , Rosuvastatin Calcium/pharmacology , Animals , Antioxidants/metabolism , Catalase/metabolism , Cell Survival/drug effects , Cytoplasmic Vesicles/metabolism , DNA Damage , Interleukin-1beta/metabolism , Isoprostanes/metabolism , Neuroglia/metabolism , Neuroprotective Agents/pharmacology , Nitrates/metabolism , Nitrites/metabolism , Nitrosative Stress/drug effects , Oxidative Stress/drug effects , Rats
10.
J Cell Biochem ; 119(12): 10021-10032, 2018 12.
Article in English | MEDLINE | ID: mdl-30129250

ABSTRACT

The deficiency of the enzyme glutaryl-CoA dehydrogenase, known as glutaric acidemia type I (GA-I), leads to the accumulation of glutaric acid (GA) and glutarilcarnitine (C5DC) in the tissues and body fluids, unleashing important neurotoxic effects. l-carnitine (l-car) is recommended for the treatment of GA-I, aiming to induce the excretion of toxic metabolites. l-car has also demonstrated an important role as antioxidant and anti-inflammatory in some neurometabolic diseases. This study evaluated GA-I patients at diagnosis moment and treated the oxidative damage to lipids, proteins, and the inflammatory profile, as well as in vivo and in vitro DNA damage, reactive nitrogen species (RNS), and antioxidant capacity, verifying if the actual treatment with l-car (100 mg kg-1 day-1 ) is able to protect the organism against these processes. Significant increases of GA and C5DC were observed in GA-I patients. A deficiency of carnitine in patients before the supplementation was found. GA-I patients presented significantly increased levels of isoprostanes, di-tyrosine, urinary oxidized guanine species, and the RNS, as well as a reduced antioxidant capacity. The l-car supplementation induced beneficial effects reducing these biomarkers levels and increasing the antioxidant capacity. GA, in three different concentrations, significantly induced DNA damage in vitro, and the l-car was able to prevent this damage. Significant increases of pro-inflammatory cytokines IL-6, IL-8, GM-CSF, and TNF-α were shown in patients. Thus, the beneficial effects of l-car presented in the treatment of GA-I are due not only by increasing the excretion of accumulated toxic metabolites, but also by preventing oxidative damage.


Subject(s)
Amino Acid Metabolism, Inborn Errors/metabolism , Brain Diseases, Metabolic/metabolism , Carnitine/pharmacology , DNA Damage , Glutaryl-CoA Dehydrogenase/deficiency , Oxidative Stress , Antioxidants/pharmacology , Antioxidants/therapeutic use , Carnitine/therapeutic use , Child , Child, Preschool , Female , Glutaryl-CoA Dehydrogenase/drug effects , Glutaryl-CoA Dehydrogenase/metabolism , Humans , Infant , Male , Protective Agents/pharmacology , Protective Agents/therapeutic use , Reactive Nitrogen Species
11.
Metab Brain Dis ; 30(5): 1167-74, 2015 Oct.
Article in English | MEDLINE | ID: mdl-26002427

ABSTRACT

Maple Syrup Urine Disease (MSUD) is a metabolic disorder caused by a severe deficiency of the branched-chain α-keto acid dehydrogenase complex activity which leads to the accumulation of branched-chain amino acids (BCAA) leucine (Leu), isoleucine and valine and their respective α-keto-acids in body fluids. The main symptomatology presented by MSUD patients includes ketoacidosis, failure to thrive, poor feeding, apnea, ataxia, seizures, coma, psychomotor delay and mental retardation, but, the neurological pathophysiologic mechanisms are poorly understood. The treatment consists of a low protein diet and a semi-synthetic formula restricted in BCAA and supplemented with essential amino acids. It was verified that MSUD patients present L-carnitine (L-car) deficiency and this compound has demonstrated an antioxidant and anti-inflammatory role in metabolic diseases. Since there are no studies in the literature reporting the inflammatory profile of MSUD patients and the L-car role on the inflammatory response in this disorder, the present study evaluates the effect of L-car supplementation on plasma inflammatory cytokines interleukin-1ß (IL-1ß), interleukin-6 (IL-6), interferon-gamma (INF-É£), and a correlation with malondialdehyde (MDA), as a marker of oxidative damage, and with free L-car plasma levels in treated MSUD patients. Significant increases of IL-1ß, IL-6, and INF-É£ were observed before the treatment with L-car. Moreover, there is a negative correlation between all cytokines tested and L-car concentrations and a positive correlation among the MDA content and IL-1ß and IL-6 values. Our data show that L-car supplementation can improve cellular defense against inflammation and oxidative stress in MSUD patients and may represent an additional therapeutic approach to the patients affected by this disease.


Subject(s)
Carnitine/therapeutic use , Dietary Supplements , Inflammation Mediators/blood , Maple Syrup Urine Disease/blood , Maple Syrup Urine Disease/drug therapy , Child , Child, Preschool , Female , Humans , Inflammation/blood , Inflammation/drug therapy , Male
12.
Mutat Res ; 775: 43-7, 2015 May.
Article in English | MEDLINE | ID: mdl-25867118

ABSTRACT

Maple syrup urine disease (MSUD) is an inherited disorder caused by severe deficient activity of the branched-chain α-keto acid dehydrogenase complex involved in the degradation pathway of branched-chain amino acids (BCAAs) and their α-ketoacid derivatives. MSUD patients generally present ketoacidosis, poor feeding, ataxia, coma, psychomotor delay, mental retardation and brain abnormalites. Treatment consists of dietary restriction of the BCAA (low protein intake) supplemented by a BCAA-free amino acid mixture. Although the mechanisms of brain damage in MSUD are poorly known, previous studies have shown that oxidative stress may be involved in the neuropathology of this disorder. In this regard, it was recently reported that MSUD patients have deficiency of l-carnitine (l-car), a compound with antioxidant properties that is used as adjuvant therapy in various inborn errors of metabolism. In this work, we investigated DNA damage determined by the alkaline comet assay in peripheral whole blood leukocytes of MSUD patients submitted to a BCAA-restricted diet supplemented or not with l-car. We observed a significant increase of DNA damage index (DI) in leukocytes from MSUD patients under BCAA-restricted diet as compared to controls and that l-car supplementation significantly decreased DNA DI levels. It was also found a positive correlation between DI and MDA content, a marker of lipid peroxidation, and an inverse correlation between DI and l-car levels. Taken together, our present results suggest a role for reactive species and the involvement of oxidative stress in DNA damage in this disorder. Since l-car reduced DNA damage, it is presumed that dietary supplementation of this compound may serve as an adjuvant therapeutic strategy for MSUD patients in addition to other therapies.


Subject(s)
Carnitine/administration & dosage , DNA Damage , Leukocytes/metabolism , Maple Syrup Urine Disease/drug therapy , Maple Syrup Urine Disease/metabolism , Oxidative Stress/drug effects , Vitamin B Complex/administration & dosage , Child , Child, Preschool , Female , Humans , Leukocytes/pathology , Male , Maple Syrup Urine Disease/genetics , Maple Syrup Urine Disease/pathology
13.
Int J Dev Neurosci ; 42: 10-4, 2015 May.
Article in English | MEDLINE | ID: mdl-25680940

ABSTRACT

Maple syrup urine disease (MSUD) is a disorder of branched-chain amino acids (BCAA). The defect in the branched-chain α-keto acid dehydrogenase complex activity leads to an accumulation of these compounds and their corresponding α-keto-acids and α-hydroxy-acids. Studies have shown that oxidative stress may be involved in neuropathology of MSUD. L-carnitine (L-car), which has demonstrated an important role as antioxidant by reducing and scavenging free radicals formation and by enhancing the activity of antioxidant enzymes, have been used in the treatment of some metabolic rare disorders. This study evaluated the oxidative stress parameters, di-tyrosine, isoprostanes and antioxidant capacity, in urine of MSUD patients under protein-restricted diet supplemented or not with L-car capsules at a dose of 50 mg kg(-1) day(-1). It was also determined urinary α-keto isocaproic acid levels as well as blood free L-car concentrations in blood. It was found a deficiency of carnitine in patients before the L-car supplementation. Significant increases of di-tyrosine and isoprostanes, as well as reduced antioxidant capacity, were observed before the treatment with L-car. The L-car supplementation induced beneficial effects on these parameters reducing the di-tyrosine and isoprostanes levels and increasing the antioxidant capacity. It was also showed a significant increase in urinary of α-ketoisocaproic acid after 2 months of L-car treatment, compared to control group. In conclusion, our results suggest that L-car may have beneficial effects in the treatment of MSUD by preventing oxidative damage to the cells and that urine can be used to monitorize oxidative damage in patients affected by this disease.


Subject(s)
Biomarkers/urine , Dietary Supplements , Maple Syrup Urine Disease/urine , Amino Acids/urine , Analysis of Variance , Antioxidants/metabolism , Child , Child, Preschool , Dinoprost/analogs & derivatives , Enzyme-Linked Immunosorbent Assay , Female , Humans , Isoprostanes/urine , Keto Acids/urine , Male , Maple Syrup Urine Disease/diet therapy , Tandem Mass Spectrometry , Tyrosine/urine
14.
Gene ; 548(2): 294-8, 2014 Sep 15.
Article in English | MEDLINE | ID: mdl-25046137

ABSTRACT

Maple syrup urine disease (MSUD) is an inherited aminoacidopathy caused by a deficiency in branched-chain α-keto acid dehydrogenase complex activity that leads to the accumulation of the branched-chain amino acids (BCAAs) leucine (Leu), isoleucine, and valine and their respective α-keto-acids, α-ketoisocaproic acid (KIC), α keto-ß-methylvaleric acid, and α-ketoisovaleric acid. The major clinical features presented by MSUD patients include ketoacidosis, failure to thrive, poor feeding, apnea, ataxia, seizures, coma, psychomotor delay, and mental retardation; however, the pathophysiology of this disease is poorly understood. MSUD treatment consists of a low protein diet supplemented with a mixture containing micronutrients and essential amino acids but excluding BCAAs. Studies have shown that oxidative stress may be involved in the neuropathology of MSUD, with the existence of lipid and protein oxidative damage in affected patients. In recent years, studies have demonstrated the antioxidant role of L-carnitine (L-Car), which plays a central function in cellular energy metabolism and for which MSUD patients have a deficiency. In this work, we investigated the in vitro effect of Leu and KIC in the presence or absence of L-Car on DNA damage in peripheral whole blood leukocytes using the alkaline comet assay with silver staining and visual scoring. Leu and KIC resulted in a DNA damage index that was significantly higher than that of the control group, and L-Car was able to significantly prevent this damage, mainly that due to KIC.


Subject(s)
Carnitine/pharmacology , DNA Damage/drug effects , Keto Acids/metabolism , Leucine/metabolism , Maple Syrup Urine Disease/metabolism , Vitamin B Complex/pharmacology , Comet Assay , Energy Metabolism/drug effects , Humans , Leukocytes/metabolism , Maple Syrup Urine Disease/pathology , Oxidative Stress
15.
Int J Dev Neurosci ; 31(1): 21-4, 2013 Feb.
Article in English | MEDLINE | ID: mdl-23137711

ABSTRACT

Maple syrup urine disease (MSUD) is an inborn error of metabolism biochemically characterized by elevated levels of the branched chain amino acids (BCAA) leucine, isoleucine, valine and the corresponding branched-chain α-keto acids. This disorder is clinically characterized by ketoacidosis, seizures, coma, psychomotor delay and mental retardation whose pathophysiology is not completely understood. Recent studies have shown that oxidative stress may be involved in neuropathology of MSUD. l-Carnitine (l-Car) plays a central role in the cellular energy metabolism because it transports long-chain fatty acids for oxidation and ATP generation. In recent years many studies have demonstrated the antioxidant role of this compound. In this work, we investigated the effect of BCAA-restricted diet supplemented or not with l-Car on lipid peroxidation and in protein oxidation in MSUD patients. We found a significant increase of malondialdehyde and of carbonyl content in plasma of MSUD patients under BCAA-restricted diet compared to controls. Furthermore, patients under BCAA-restricted diet plus l-Car supplementation presented a marked reduction of malondialdehyde content in relation to controls, reducing the lipid peroxidation. In addition, free l-Car concentrations were negatively correlated with malondialdehyde levels. Our data show that l-Car may have an antioxidant effect, protecting against the lipid peroxidation and this could represent an additional therapeutic approach to the patients affected by MSUD.


Subject(s)
Carnitine/therapeutic use , Lipid Metabolism/drug effects , Maple Syrup Urine Disease/drug therapy , Maple Syrup Urine Disease/metabolism , Proteins/metabolism , Vitamin B Complex/therapeutic use , Amino Acids/metabolism , Analysis of Variance , Child , Child, Preschool , Female , Humans , Male , Malondialdehyde/metabolism , Protein Carbonylation/drug effects
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