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1.
Genes (Basel) ; 11(4)2020 04 18.
Article in English | MEDLINE | ID: mdl-32325768

ABSTRACT

A novel cosegregating splice site variant in the Dynactin-1 (DCTN1) gene was discovered by Next Generation Sequencing (NGS) in a family with a history of bipolar disorder (BD) and major depressive diagnosis (MDD). Psychiatric illness in this family follows an autosomal dominant pattern. DCTN1 codes for the largest dynactin subunit, namely p150Glued, which plays an essential role in retrograde axonal transport and in neuronal autophagy. A GT→TT transversion in the DCTN1 gene, uncovered in the present work, is predicted to disrupt the invariant canonical splice donor site IVS22 + 1G > T and result in intron retention and a premature termination codon (PTC). Thus, this splice site variant is predicted to trigger RNA nonsense-mediated decay (NMD) and/or result in a C-terminal truncated p150Glued protein (ct-p150Glued), thereby negatively impacting retrograde axonal transport and neuronal autophagy. BD prophylactic medications, and most antipsychotics and antidepressants, are known to enhance neuronal autophagy. This variant is analogous to the dominant-negative GLUED Gl1 mutation in Drosophila, which is responsible for a neurodegenerative phenotype. The newly identified variant may reflect an autosomal dominant cause of psychiatric pathology in this affected family. Factors that affect alternative splicing of the DCTN1 gene, leading to NMD and/or ct-p150Glued, may be of fundamental importance in contributing to our understanding of the etiology of BD as well as MDD.


Subject(s)
Bipolar Disorder/pathology , Dynactin Complex/genetics , Mutation , RNA Splice Sites , Bipolar Disorder/etiology , Female , Humans , Male , Pedigree
3.
Neurochem Res ; 42(1): 217-243, 2017 Jan.
Article in English | MEDLINE | ID: mdl-27518089

ABSTRACT

Thyroid hormones have long been known to play an essential role in brain growth and development, with cytoplasmic thyroid hormone binding proteins (THBPs) playing a critical role in thyroid hormone bioavailability. A major mammalian THBP is µ-crystallin (CRYM), which was originally characterized by its ability to strongly bind thyroid hormones in an NADPH-dependent fashion. However, in 2011 it was discovered that CRYM is also an enzyme, namely ketimine reductase (KR), which catalyzes the NAD(P)H-dependent reduction of -C=N- (imine) double bonds of a number of cyclic ketimine substrates including sulfur-containing cyclic ketimines. The enzyme activity was also shown to be potently inhibited by thyroid hormones, thus suggesting a novel reciprocal relationship between enzyme catalysis and thyroid hormone bioavailability. KR is involved in a number of amino acid metabolic pathways. However, the best documented biological function of KR is its role as a ∆1-piperideine-2-carboxylate (P2C) reductase in the pipecolate pathway of lysine metabolism. The pipecolate pathway is the main L-lysine degradation pathway in the adult brain, whereas the saccharopine pathway predominates in extracerebral tissues and in infant brain, suggesting that KR has evolved to perform specific and important roles in neural development and function. The potent regulation of KR activity by thyroid hormones adds further weight to this suggestion. KR is also involved in L-ornithine/L-glutamate/L-proline metabolism as well as sulfur-containing amino acid metabolism. This review describes the pipecolate pathway and recent discoveries related to mammalian KR function, which have important implications in normal and pathological brain functions.


Subject(s)
Brain/metabolism , Pipecolic Acids/metabolism , Signal Transduction/physiology , Thyroid Gland/metabolism , Animals , Humans , Pipecolic Acids/chemistry , Protein Binding/physiology , mu-Crystallins
4.
Amino Acids ; 47(11): 2457-61, 2015 Nov.
Article in English | MEDLINE | ID: mdl-26173510

ABSTRACT

Recently, crystalized mouse ketimine reductase/CRYM complexed with NADPH was found to have pyruvate bound in its active site. We demonstrate that the enzyme binds α-keto acids, such as pyruvate, in solution, and catalyzes the formation of N-alkyl-amino acids from alkylamines and α-keto acids (via reduction of imine intermediates), but at concentrations of these compounds not expected to be encountered in vivo. These findings confirm that, mechanistically, ketimine reductase/CRYM acts as a classical imine reductase and may explain the finding of bound pyruvate in the crystallized protein.


Subject(s)
Crystallins/chemistry , Multiprotein Complexes/chemistry , Oxidoreductases Acting on CH-NH Group Donors/chemistry , Phenylpyruvic Acids/chemistry , Animals , Catalysis , Humans , Mice , mu-Crystallins
5.
Neurochem Res ; 40(6): 1252-66, 2015 Jun.
Article in English | MEDLINE | ID: mdl-25931162

ABSTRACT

Mammalian ketimine reductase is identical to µ-crystallin (CRYM)-a protein that is also an important thyroid hormone binding protein. This dual functionality implies a role for thyroid hormones in ketimine reductase regulation and also a reciprocal role for enzyme catalysis in thyroid hormone bioavailability. In this research we demonstrate potent sub-nanomolar inhibition of enzyme catalysis at neutral pH by the thyroid hormones L-thyroxine and 3,5,3'-triiodothyronine, whereas other thyroid hormone analogues were shown to be far weaker inhibitors. We also investigated (a) enzyme inhibition by the substrate analogues pyrrole-2-carboxylate, 4,5-dibromopyrrole-2-carboxylate and picolinate, and (b) enzyme catalysis at neutral pH of the cyclic ketimines S-(2-aminoethyl)-L-cysteine ketimine (owing to the complex nomenclature trivial names are used for the sulfur-containing cyclic ketimines as per the original authors' descriptions) (AECK), Δ(1)-piperideine-2-carboxylate (P2C), Δ(1)-pyrroline-2-carboxylate (Pyr2C) and Δ(2)-thiazoline-2-carboxylate. Kinetic data obtained at neutral pH suggests that ketimine reductase/CRYM plays a major role as a P2C/Pyr2C reductase and that AECK is not a major substrate at this pH. Thus, ketimine reductase is a key enzyme in the pipecolate pathway, which is the main lysine degradation pathway in the brain. In silico docking of various ligands into the active site of the X-ray structure of the enzyme suggests an unusual catalytic mechanism involving an arginine residue as a proton donor. Given the critical importance of thyroid hormones in brain function this research further expands on our knowledge of the connection between amino acid metabolism and regulation of thyroid hormone levels.


Subject(s)
Brain/enzymology , Crystallins/metabolism , Oxidoreductases Acting on CH-NH Group Donors/metabolism , Thyroid Hormones/physiology , Amino Acids/metabolism , Catalysis , Crystallins/antagonists & inhibitors , Enzyme Inhibitors/pharmacology , Humans , Hydrogen-Ion Concentration , Imines/pharmacology , Kinetics , Metabolic Networks and Pathways/drug effects , Models, Molecular , Molecular Docking Simulation , Nitriles/pharmacology , Oxidoreductases Acting on CH-NH Group Donors/antagonists & inhibitors , Pipecolic Acids/metabolism , Substrate Specificity , Thyroxine/pharmacology , Triiodothyronine/pharmacology , mu-Crystallins
7.
Neurochem Res ; 39(3): 527-41, 2014.
Article in English | MEDLINE | ID: mdl-23314864

ABSTRACT

A key intermediate in the glutamate dehydrogenase (GDH)-catalyzed reaction is an imine. Mechanistically, therefore, GDH exhibits similarities to the ketimine reductases. In the current review, we briefly discuss (a) the metabolic importance of the GDH reaction in liver and brain, (b) the mechanistic similarities between GDH and the ketimine reductases, (c) the metabolic importance of the brain ketimine reductases, and (d) the neurochemical consequences of defective ketimine reductases. Our review contains many historical references to the early work on amino acid metabolism. This work tends to be overlooked nowadays, but is crucial for a contemporary understanding of the central importance of ketimines in nitrogen and intermediary metabolism. The ketimine reductases are important enzymes linking nitrogen flow among several key amino acids, yet have been little studied. The cerebral importance of the ketimine reductases is an area of biomedical research that deserves far more attention.


Subject(s)
Brain/enzymology , Glutamate Dehydrogenase/metabolism , Oxidoreductases Acting on CH-NH Group Donors/metabolism , Oxidoreductases/metabolism , Animals , Humans , Imines/metabolism , Nitriles/metabolism
8.
Amino Acids ; 45(6): 1249-72, 2013 Dec.
Article in English | MEDLINE | ID: mdl-24043460

ABSTRACT

The lysine catabolism pathway differs in adult mammalian brain from that in extracerebral tissues. The saccharopine pathway is the predominant lysine degradative pathway in extracerebral tissues, whereas the pipecolate pathway predominates in adult brain. The two pathways converge at the level of ∆(1)-piperideine-6-carboxylate (P6C), which is in equilibrium with its open-chain aldehyde form, namely, α-aminoadipate δ-semialdehyde (AAS). A unique feature of the pipecolate pathway is the formation of the cyclic ketimine intermediate ∆(1)-piperideine-2-carboxylate (P2C) and its reduced metabolite L-pipecolate. A cerebral ketimine reductase (KR) has recently been identified that catalyzes the reduction of P2C to L-pipecolate. The discovery that this KR, which is capable of reducing not only P2C but also other cyclic imines, is identical to a previously well-described thyroid hormone-binding protein [µ-crystallin (CRYM)], may hold the key to understanding the biological relevance of the pipecolate pathway and its importance in the brain. The finding that the KR activity of CRYM is strongly inhibited by the thyroid hormone 3,5,3'-triiodothyronine (T3) has far-reaching biomedical and clinical implications. The inter-relationship between tryptophan and lysine catabolic pathways is discussed in the context of shared degradative enzymes and also potential regulation by thyroid hormones. This review traces the discoveries of enzymes involved in lysine metabolism in mammalian brain. However, there still remain unanswered questions as regards the importance of the pipecolate pathway in normal or diseased brain, including the nature of the first step in the pathway and the relationship of the pipecolate pathway to the tryptophan degradation pathway.


Subject(s)
Brain/metabolism , Lysine/metabolism , Animals , Biocatalysis , Brain/enzymology , Humans , Oxidoreductases Acting on CH-NH Group Donors/metabolism , mu-Crystallins
9.
Arch Biochem Biophys ; 517(1): 20-9, 2012 Jan 01.
Article in English | MEDLINE | ID: mdl-22093698

ABSTRACT

Anthropogenic practices and recycling in the environment through natural processes result in release of potentially harmful levels of mercury into the biosphere. Mercury, especially organic forms, accumulates in the food chain. Mercury reacts readily with sulfur-containing compounds and often exists as a thiol S-conjugate, such as the l-cysteine (Cys)-S-conjugate of methylmercury (CH(3)Hg-S-Cys) or inorganic mercury (Cys-S-Hg-S-Cys). These S-conjugates are structurally similar to l-methionine and l-cystine/l-cystathionine, respectively. Bovine and rat glutamine transaminase K (GTK) catalyze transamination of sulfur-containing amino acids. Recombinant human GTK (rhGTK) has a relatively open catalytic active site, and we report here that this enzyme, like the rat and bovine enzymes, can also utilize sulfur-containing l-amino acids, including l-methionine, l-cystine, and l-cystathionine as substrates. The current study extends this list to include mercuric S-conjugates, and shows that CH(3)Hg-S-Cys and Cys-S-Hg-S-Cys are substrates and reversible inhibitors of rhGTK. The homocysteine S-conjugates, Hcy-S-Hg-S-Hcy and CH(3)Hg-S-Hcy, are also inhibitors. Finally, we show that HgCl(2), CH(3)Hg-S-Cys and Cys-S-Hg-S-Cys are potent irreversible inhibitors of rat cystathionine γ-lyase. The present study broadens our knowledge of the biochemistry of mercury compounds by showing that Cys S-conjugates of mercury interact with enzymes that catalyze transformations of biologically important sulfur-containing amino acids.


Subject(s)
Cystathionine gamma-Lyase/metabolism , Cystine/metabolism , Lyases/metabolism , Organomercury Compounds/metabolism , Sulfhydryl Compounds/metabolism , Transaminases/metabolism , Amino Acids, Sulfur/metabolism , Animals , Cattle , Cysteine/analogs & derivatives , Cysteine/metabolism , Humans , Mercuric Chloride/metabolism , Methylmercury Compounds/metabolism , Models, Molecular , Rats , Recombinant Proteins/metabolism , Substrate Specificity
10.
J Neurochem ; 118(3): 379-87, 2011 Aug.
Article in English | MEDLINE | ID: mdl-21332720

ABSTRACT

Ketimine reductase (E.C. 1.5.1.25) was purified to apparent homogeneity from lamb forebrain by means of a rapid multi-step chromatography protocol. The purified enzyme was identified by MS/MS (mass spectrometry) as µ-crystallin. The identity was confirmed by heterologously expressing human µ-crystallin in Escherichia coli and subsequent chromatographic purification of the protein. The purified human µ-crystallin was confirmed to have ketimine reductase activity with a maximum specific activity similar to that of native ovine ketimine reductase, and was found to catalyse a sequential reaction. The enzyme substrates are putative neuromodulator/transmitters. The thyroid hormone 3,5,3'-l-triiodothyronine (T3) was found to be a strong reversible competitive inhibitor, and may have a novel role in regulating their concentrations. µ-Crystallin is also involved in intracellular T3 storage and transport. This research is the first to demonstrate an enzyme function for µ-crystallin. This newly demonstrated enzymatic activity identifies a new role for thyroid hormones in regulating mammalian amino acid metabolism, and a possible reciprocal role of enzyme activity regulating bioavailability of intracellular T3.


Subject(s)
Crystallins/metabolism , Crystallins/physiology , Oxidoreductases Acting on CH-NH Group Donors/metabolism , Oxidoreductases Acting on CH-NH Group Donors/physiology , Prosencephalon/enzymology , Thyroid Hormones/physiology , Amino Acid Sequence , Animals , Brain/enzymology , Brain Chemistry/physiology , Chromatography, Gel , Chromatography, Ion Exchange , Crystallins/genetics , Electrophoresis, Polyacrylamide Gel , Enzyme Inhibitors/pharmacology , Escherichia coli/metabolism , Humans , Kinetics , Mass Spectrometry , Molecular Sequence Data , Oxidation-Reduction , Oxidoreductases Acting on CH-NH Group Donors/genetics , Recombinant Proteins/biosynthesis , Recombinant Proteins/genetics , Sheep , Spectrophotometry, Ultraviolet , Triiodothyronine/metabolism , mu-Crystallins
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