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1.
bioRxiv ; 2024 Apr 03.
Article En | MEDLINE | ID: mdl-38617352

Circadian (~24 h) rhythms are a fundamental feature of life, and their disruption increases the risk of infectious diseases, metabolic disorders, and cancer1-6. Circadian rhythms couple to the cell cycle across eukaryotes7,8 but the underlying mechanism is unknown. We previously identified an evolutionarily conserved circadian oscillation in intracellular potassium concentration, [K+]i9,10. As critical events in the cell cycle are regulated by intracellular potassium11,12, an enticing hypothesis is that circadian rhythms in [K+]i form the basis of this coupling. We used a minimal model cell, the alga Ostreococcus tauri, to uncover the role of potassium in linking these two cycles. We found direct reciprocal feedback between [K+]i and circadian gene expression. Inhibition of proliferation by manipulating potassium rhythms was dependent on the phase of the circadian cycle. Furthermore, we observed a total inhibition of cell proliferation when circadian gene expression is inhibited. Strikingly, under these conditions a sudden enforced gradient of extracellular potassium was sufficient to induce a round of cell division. Finally, we provide evidence that interactions between potassium and circadian rhythms also influence proliferation in mammalian cells. These results establish circadian regulation of intracellular potassium levels as a primary factor coupling the cell- and circadian cycles across diverse organisms.

2.
Commun Biol ; 4(1): 1147, 2021 09 30.
Article En | MEDLINE | ID: mdl-34593975

The cellular landscape changes dramatically over the course of a 24 h day. The proteome responds directly to daily environmental cycles and is additionally regulated by the circadian clock. To quantify the relative contribution of diurnal versus circadian regulation, we mapped proteome dynamics under light:dark cycles compared with constant light. Using Ostreococcus tauri, a prototypical eukaryotic cell, we achieved 85% coverage, which allowed an unprecedented insight into the identity of proteins that facilitate rhythmic cellular functions. The overlap between diurnally- and circadian-regulated proteins was modest and these proteins exhibited different phases of oscillation between the two conditions. Transcript oscillations were generally poorly predictive of protein oscillations, in which a far lower relative amplitude was observed. We observed coordination between the rhythmic regulation of organelle-encoded proteins with the nuclear-encoded proteins that are targeted to organelles. Rhythmic transmembrane proteins showed a different phase distribution compared with rhythmic soluble proteins, indicating the existence of a circadian regulatory process specific to the biogenesis and/or degradation of membrane proteins. Our observations argue that the cellular spatiotemporal proteome is shaped by a complex interaction between intrinsic and extrinsic regulatory factors through rhythmic regulation at the transcriptional as well as post-transcriptional, translational, and post-translational levels.


Algal Proteins/genetics , Chlorophyta/physiology , Environment , Periodicity , Proteome/genetics , Algal Proteins/metabolism , Chlorophyta/genetics , Proteome/metabolism , Spatio-Temporal Analysis
4.
Commun Biol ; 3(1): 211, 2020 05 06.
Article En | MEDLINE | ID: mdl-32376902

The methyl cycle is a universal metabolic pathway providing methyl groups for the methylation of nuclei acids and proteins, regulating all aspects of cellular physiology. We have previously shown that methyl cycle inhibition in mammals strongly affects circadian rhythms. Since the methyl cycle and circadian clocks have evolved early during evolution and operate in organisms across the tree of life, we sought to determine whether the link between the two is also conserved. Here, we show that methyl cycle inhibition affects biological rhythms in species ranging from unicellular algae to humans, separated by more than 1 billion years of evolution. In contrast, the cyanobacterial clock is resistant to methyl cycle inhibition, although we demonstrate that methylations themselves regulate circadian rhythms in this organism. Mammalian cells with a rewired bacteria-like methyl cycle are protected, like cyanobacteria, from methyl cycle inhibition, providing interesting new possibilities for the treatment of methylation deficiencies.


Circadian Rhythm , Methylation , Animals , Arabidopsis/physiology , Caenorhabditis elegans/physiology , Chlamydomonas reinhardtii/physiology , Chlorophyta/physiology , Drosophila melanogaster/physiology , Humans , Mice/physiology , Synechococcus/physiology , Zebrafish/physiology
5.
Mol Psychiatry ; 24(11): 1641-1654, 2019 11.
Article En | MEDLINE | ID: mdl-31481758

Although the underlying neurobiology of major mental illness (MMI) remains unknown, emerging evidence implicates a role for oligodendrocyte-myelin abnormalities. Here, we took advantage of a large family carrying a balanced t(1;11) translocation, which substantially increases risk of MMI, to undertake both diffusion tensor imaging and cellular studies to evaluate the consequences of the t(1;11) translocation on white matter structural integrity and oligodendrocyte-myelin biology. This translocation disrupts among others the DISC1 gene which plays a crucial role in brain development. We show that translocation-carrying patients display significant disruption of  white matter integrity compared with familial controls. At a cellular level, we observe dysregulation of key pathways controlling oligodendrocyte development and morphogenesis in induced pluripotent stem cell (iPSC) derived case oligodendrocytes. This is associated with reduced proliferation and a stunted morphology in vitro. Further, myelin internodes in a humanized mouse model that recapitulates the human translocation as well as after transplantation of t(1;11) oligodendrocyte progenitors were significantly reduced when  compared with controls. Thus we provide evidence that the t(1;11) translocation has biological effects at both the systems and cellular level that together suggest oligodendrocyte-myelin dysfunction.


Myelin Sheath/metabolism , Oligodendroglia/metabolism , Translocation, Genetic/genetics , Adult , Animals , Chromosomes, Human, Pair 1/genetics , Chromosomes, Human, Pair 11/genetics , Diffusion Tensor Imaging/methods , Female , Humans , Induced Pluripotent Stem Cells/metabolism , Male , Mental Disorders/genetics , Mice , Middle Aged , Nerve Tissue Proteins/genetics , Nerve Tissue Proteins/metabolism , White Matter/metabolism , White Matter/physiology
6.
Transl Psychiatry ; 8(1): 184, 2018 09 06.
Article En | MEDLINE | ID: mdl-30190480

The neuromodulatory gene DISC1 is disrupted by a t(1;11) translocation that is highly penetrant for schizophrenia and affective disorders, but how this translocation affects DISC1 function is incompletely understood. N-methyl-D-aspartate receptors (NMDAR) play a central role in synaptic plasticity and cognition, and are implicated in the pathophysiology of schizophrenia through genetic and functional studies. We show that the NMDAR subunit GluN2B complexes with DISC1-associated trafficking factor TRAK1, while DISC1 interacts with the GluN1 subunit and regulates dendritic NMDAR motility in cultured mouse neurons. Moreover, in the first mutant mouse that models DISC1 disruption by the translocation, the pool of NMDAR transport vesicles and surface/synaptic NMDAR expression are increased. Since NMDAR cell surface/synaptic expression is tightly regulated to ensure correct function, these changes in the mutant mouse are likely to affect NMDAR signalling and synaptic plasticity. Consistent with these observations, RNASeq analysis of the translocation carrier-derived human neurons indicates abnormalities of excitatory synapses and vesicle dynamics. RNASeq analysis of the human neurons also identifies many differentially expressed genes previously highlighted as putative schizophrenia and/or depression risk factors through large-scale genome-wide association and copy number variant studies, indicating that the translocation triggers common disease pathways that are shared with unrelated psychiatric patients. Altogether, our findings suggest that translocation-induced disease mechanisms are likely to be relevant to mental illness in general, and that such disease mechanisms include altered NMDAR dynamics and excitatory synapse function. This could contribute to the cognitive disorders displayed by translocation carriers.


Carrier Proteins/metabolism , Nerve Tissue Proteins/metabolism , Receptors, N-Methyl-D-Aspartate/metabolism , Translocation, Genetic , Adaptor Proteins, Vesicular Transport , Animals , Carrier Proteins/genetics , Genome-Wide Association Study , Humans , Mice , Models, Animal , Mood Disorders/genetics , Mutation , Nerve Tissue Proteins/genetics , Neuronal Plasticity , Neurons/metabolism , Receptors, N-Methyl-D-Aspartate/genetics , Schizophrenia/genetics , Sequence Analysis, RNA , Synapses/metabolism
7.
Front Biol (Beijing) ; 8(1): 1-31, 2013 Feb 01.
Article En | MEDLINE | ID: mdl-23550053

Psychiatric disorders are highly heritable, and in many individuals likely arise from the combined effects of genes and the environment. A substantial body of evidence points towards DISC1 being one of the genes that influence risk of schizophrenia, bipolar disorder and depression, and functional studies of DISC1 consequently have the potential to reveal much about the pathways that lead to major mental illness. Here, we review the evidence that DISC1 influences disease risk through effects upon multiple critical pathways in the developing and adult brain.

8.
ACS Chem Neurosci ; 3(6): 459-72, 2012 Jun 20.
Article En | MEDLINE | ID: mdl-22860215

Mental disorders have a complex etiology resulting from interactions between multiple genetic risk factors and stressful life events. Orphan G protein-coupled receptor 50 (GPR50) has been identified as a genetic risk factor for bipolar disorder and major depression in women, and there is additional genetic and functional evidence linking GPR50 to neurite outgrowth, lipid metabolism, and adaptive thermogenesis and torpor. However, in the absence of a ligand, a specific function has not been identified. Adult GPR50 expression has previously been reported in brain regions controlling the HPA axis, but its developmental expression is unknown. In this study, we performed extensive expression analysis of GPR50 and three protein interactors using rt-PCR and immunohistochemistry in the developing and adult mouse brain. Gpr50 is expressed at embryonic day 13 (E13), peaks at E18, and is predominantly expressed by neurons. Additionally we identified novel regions of Gpr50 expression, including brain stem nuclei involved in neurotransmitter signaling: the locus coeruleus, substantia nigra, and raphe nuclei, as well as nuclei involved in metabolic homeostasis. Gpr50 colocalizes with yeast-two-hybrid interactors Nogo-A, Abca2, and Cdh8 in the hypothalamus, amygdala, cortex, and selected brain stem nuclei at E18 and in the adult. With this study, we identify a link between GPR50 and neurotransmitter signaling and strengthen a likely role in stress response and energy homeostasis.


Brain/embryology , Brain/metabolism , Gene Expression Regulation, Developmental , Nerve Tissue Proteins/biosynthesis , Receptors, G-Protein-Coupled/biosynthesis , Amino Acid Sequence , Animals , Cell Line, Tumor , Female , HEK293 Cells , Humans , Mice , Mice, Inbred C57BL , Molecular Sequence Data , Nerve Tissue Proteins/genetics , Neurotransmitter Agents/genetics , Receptors, G-Protein-Coupled/genetics , Signal Transduction/genetics
9.
Mol Cell Neurosci ; 42(4): 363-71, 2009 Dec.
Article En | MEDLINE | ID: mdl-19699797

G protein-coupled receptors (GPCRs) form a link between the cell and their environment when signalling pathways are activated upon ligand binding. However, the ligands and functions for many GPCRs remain to be determined. We sought to understand the function of one such orphan, G protein-coupled receptor 50 (GPR50), through identification of protein interactors. GPR50 was previously discovered as a candidate gene for psychiatric illness and lipid metabolism. Here, we identified neurite outgrowth inhibitor NOGO-A as an interacting partner of GPR50 by yeast two-hybrid studies. We confirmed the interaction in mammalian cells and found an enrichment of both Gpr50 and neuronal Nogo-A at the synapse. In contrast to neuronal NOGO-A overexpression, overexpression of GPR50 increased neurite length and filopodia- and lamellipodia-like structures in differentiated Neuroscreen-1 cells. The results are markedly similar to a recent study in Nogo-A KO mice and support the involvement of GPR50 in mental disorders with links to several disease mechanisms.


Myelin Proteins/metabolism , Nerve Tissue Proteins/metabolism , Neurites/physiology , Receptors, G-Protein-Coupled/metabolism , Amino Acid Sequence , Animals , Brain/cytology , Brain/metabolism , Cell Line , Female , Humans , Mice , Molecular Sequence Data , Myelin Proteins/genetics , Nerve Tissue Proteins/genetics , Neurites/ultrastructure , Nogo Proteins , Receptors, G-Protein-Coupled/genetics , Recombinant Fusion Proteins/genetics , Recombinant Fusion Proteins/metabolism , Two-Hybrid System Techniques
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