Research into identifying the molecular causes of bipolar affective disorder (BPAD) has been disappointing. The molecular genetics of this study builds on decades of Amish longitudinal research revealing co-segregation of BPAD and Ellis-van Creveld (EvC) dwarfism where no EvC individual has been diagnosed BPAD. The DNA change causing EvC confers protection from BPAD by disrupting ciliary sonic hedgehog (Shh) signaling. Molecules in the sonic hedgehog signaling pathway converge with Wnt/β-catenin signaling which play critical roles in mood stabilizing and antidepressant treatments: lithium, valproate, SSRIs, and ECT. The fact that the Amish EvC DNA change disrupts Shh signaling and blocks BPAD strongly suggests that a molecular change causing BPAD does so by altering Shh pathway expression. In this study, we will compare the serum levels of Shh protein in bipolar I individuals to the Shh serum levels in controls
A correction to this article has been published and is linked from the HTML and PDF versions of this paper. The error has been fixed in the paper.
Mutations in GBA1 encountered in Gaucher disease are a leading risk factor for Parkinson disease and associated Lewy body disorders. Many GBA1 mutation carriers, especially those with severe or null GBA1 alleles, have earlier and more progressive parkinsonism. To model the effect of partial glucocerebrosidase deficiency on neurological progression in vivo, mice with a human A53T α-synuclein (SNCAA53T) transgene were crossed with heterozygous null gba mice (gba+/-). Survival analysis of 84 mice showed that in gba+/-//SNCAA53T hemizygotes and homozygotes, the symptom onset was significantly earlier than in gba+/+//SNCAA53T mice (p-values 0.023-0.0030), with exacerbated disease progression (p-value <0.0001). Over-expression of SNCAA53T had no effect on glucocerebrosidase levels or activity. Immunoblotting demonstrated that gba haploinsufficiency did not lead to increased levels of either monomeric SNCA or insoluble high molecular weight SNCA in this model. Immunohistochemical analyses demonstrated that the abundance and distribution of SNCA pathology was also unaltered by gba haploinsufficiency. Thus, while the underlying mechanism is not clear, this model shows that gba deficiency impacts the age of onset and disease duration in aged SNCAA53T mice, providing a valuable resource to identify modifiers, pathways and possible moonlighting roles of glucocerebrosidase in Parkinson pathogenesis.
Dogs naturally suffer the same complex diseases as humans, including mental illness. The dog is uniquely suited as a model organism to explore the genetics of neuropsychiatric disorders. Historical breed demo-graphics have enriched purebred populations for founder effect mutations with tractable architectures, making genotypic analyses advantageous. Over a pet's lifetime, owners observe the animal's stress tolerance, arousal, and anxiety, and can inform on rich behavioral profiles for phenotypic analyses. Here we leverage these strengths in a search for inherited factors that exacerbate canine compulsive disorder (CCD), the dog counterpart to human obsesssive compulsive disorder (OCD). Our rationale is that identifying pathways that predispose to disease severity will expand therapeutic options, and ultimately bring relief to those patients suffering the most. We have performed a GWAS of purebred Doberman pinschers that compares severely affected cases to moderately affected cases (24: 70). This GWAS identified two statistically sig-nificant risk loci, on CFA34 and CFA11, and a third with suggestive evidence on CFA16. The locus on CFA34 includes a cluster of 5-HT3 receptor genes (HTR3C, HTR3D, and HTR3E) that implicate a serotonergic pathway that is routinely targeted by anti-OCD medications. The locus on CFA11 is syntenic with human CTXN3-SLC12A2 (5q35.1), an inherited risk factor for schiz-ophrenia. The third locus harbors teneurin-3 (TENM3), a modulator of the hypothalamic-pituitary-adrenal (HPA) axis, with effects on stress tolerance and stress-related behavior. We dis-cuss candidate genes and putative functional variants in light of pharmacological responsiveness, psychiatric comorbidity, and the potential for gene-by-environment interactions in the genetic etiology of OCD and CCD.
Glucocerebrosidase is a lysosomal hydrolase involved in the breakdown of glucosylceramide. Gaucher disease, a recessive lysosomal storage disorder, is caused by mutations in the gene GBA1. Dysfunctional glucocerebrosidase leads to accumulation of glucosylceramide and glycosylsphingosine in various cell types and organs. Mutations in GBA1 are also a common genetic risk factor for Parkinson disease and related synucleinopathies. In recent years, research on the pathophysiology of Gaucher disease, the molecular link between Gaucher and Parkinson disease, and novel therapeutics, have accelerated the need for relevant cell models with GBA1 mutations. While induced pluripotent stem cells, primary rodent neurons, and transfected neuroblastoma cell lines have been used to study the effect of glucocerebrosidase deficiency on neuronal function, these models have limitations because of challenges in culturing and propagating the cells, low yield, and the introduction of exogenous mutant GBA1. To address some of these difficulties, we established a high yield, easy-to-culture mouse neuronal cell model with nearly complete glucocerebrosidase deficiency representative of Gaucher disease. We successfully immortalized cortical neurons from embryonic null allele gba−/− mice and the control littermate (gba+/+) by infecting differentiated primary cortical neurons in culture with an EF1α-SV40T lentivirus. Immortalized gba−/− neurons lack glucocerebrosidase protein and enzyme activity, and exhibit a dramatic increase in glucosylceramide and glucosylsphingosine accumulation, enlarged lysosomes, and an impaired ATP-dependent calcium-influx response; these phenotypical characteristics were absent in gba+/+ neurons. This null allele gba−/− mouse neuronal model provides a much needed tool to study the pathophysiology of Gaucher disease and to evaluate new therapies.
BackgroundEarly childhood malnutrition affects 113 million children worldwide, impacting health and increasing vulnerability for cognitive and behavioral disorders later in life. Molecular signatures after childhood malnutrition, including the potential for intergenerational transmission, remain unexplored.MethodsWe surveyed blood DNA methylomes (~483,000 individual CpG sites) in 168 subjects across two generations, including 50 generation 1 individuals hospitalized during the first year of life for moderate to severe protein-energy malnutrition, then followed up to 48 years in the Barbados Nutrition Study. Attention deficits and cognitive performance were evaluated with the Connors Adult Attention Rating Scale and Wechsler Abbreviated Scale of Intelligence. Expression of nutrition-sensitive genes was explored by quantitative reverse transcriptase polymerase chain reaction in rat prefrontal cortex.ResultsWe identified 134 nutrition-sensitive, differentially methylated genomic regions, with most (87%) specific for generation 1. Multiple neuropsychiatric risk genes, including COMT, IFNG, MIR200B, SYNGAP1, and VIPR2 showed associations of specific methyl-CpGs with attention and IQ. IFNG expression was decreased in prefrontal cortex of rats showing attention deficits after developmental malnutrition.ConclusionsEarly childhood malnutrition entails long-lasting epigenetic signatures associated with liability for attention and cognition, and limited potential for intergenerational transmission.
The recent finding that the neuronal cadherin gene CDH2 confers a highly significant risk for canine compulsive disorder led us to investigate whether missense variants within the human ortholog CDH2 are associated with altered susceptibility to obsessive-compulsive disorder (OCD), Tourette disorder (TD) and related disorders. Exon resequencing of CDH2 in 320 individuals identified four non-synonymous single-nucleotide variants, which were subsequently genotyped in OCD probands, Tourette disorder probands and relatives, and healthy controls (total N=1161). None of the four variants was significantly associated with either OCD or TD. One variant, N706S, was found only in the OCD/TD groups, but not in controls. By examining clinical data, we found there were significant TD-related phenotype differences between those OCD probands with and without the N845S variant with regard to the co-occurrence of TD (Fisher's exact test P=0.014, OR=6.03). Both N706S and N845S variants conferred reduced CDH2 protein expression in transfected cells. Although our data provide no overall support for association of CDH2 rare variants in these disorders considered as single entities, the clinical features and severity of probands carrying the uncommon non-synonymous variants suggest that CDH2, along with other cadherin and cell adhesion genes, is an interesting gene to pursue as a plausible contributor to OCD, TD and related disorders with repetitive behaviors, including autism spectrum disorders.
Clinical, epidemiological and experimental studies confirm a connection between the common degenerative movement disorder Parkinson's disease (PD) that affects over 1 million individuals, and Gaucher disease, the most prevalent lysosomal storage disorder. Recently, human imaging studies have implicated impaired striatal dopaminergic neurotransmission in early PD pathogenesis in the context of Gaucher disease mutations, but the underlying mechanisms have yet to be characterized. In this report we describe and characterize two novel long-lived transgenic mouse models of Gba deficiency, along with a subchronic conduritol-ß-epoxide (CBE) exposure paradigm. All three murine models revealed striking glial activation within nigrostriatal pathways, accompanied by abnormal α-synuclein accumulation. Importantly, the CBE-induced, pharmacological Gaucher mouse model replicated this change in dopamine neurotransmission, revealing a markedly reduced evoked striatal dopamine release (approximately 2-fold) that indicates synaptic dysfunction. Other changes in synaptic plasticity markers, including microRNA profile and a 24.9% reduction in post-synaptic density size, were concomitant with diminished evoked dopamine release following CBE exposure. These studies afford new insights into the mechanisms underlying the Parkinson's-Gaucher disease connection, and into the physiological impact of related abnormal α-synuclein accumulation and neuroinflammation on nigrostriatal dopaminergic neurotransmission.
Estrogen signaling pathways affect cortical function and metabolism, are thought to play a role in the pathophysiology of schizophrenia, and exert neuroprotective effects in female subjects at risk. However, the molecular signatures of estrogen signaling in normal and diseased cerebral cortex remain largely unexplored. Expression of the estrogen-sensitive small RNA, microRNA-30b (miR-30b), was studied in 30 controls and 30 matched samples from subjects diagnosed with schizophrenia from prefrontal cortex (PFC), as well as in 23 samples from parietal cortex (12 controls and 11 schizophrenia cases). The majority of case and control samples were genotyped for an estrogen receptor α (Esr1) sequence variant (rs2234693) previously associated with genetic risk, and a subset of them were subjected to further analysis to determine expression of mature and precursor forms of miR-30b (pre/pri-miR-30b). Gender-dimorphic expression was also explored in mouse frontal cortex and hippocampus. A significant interaction between gender and diagnosis was discovered for changes in mature miR-30b levels, so that miR-30b expression was significantly reduced in the cerebral cortex of female but not male subjects with schizophrenia. In addition, disease-related changes in miR-30b expression in a subset of female subjects were further modulated by Esr1 genotype. Changes after antipsychotic drug exposure remained insignificant. These preliminary findings point to the possibility that disease-related changes in the expression of small noncoding RNAs such as miR-30b in schizophrenia could be influenced by gender and potentially regulated by estrogen signaling.
Background: Type 2 Gaucher disease is a rare and progressive subtype of this lysosomal storage disorder, marked by rapid, early-onset neurodegeneration. Distinguishing type 2 from types 1 and 3 Gaucher disease has remained challenging, due to the lack of a clear correlation between phenotype and enzymatic activity or genotype. beta-glucocerebrosidase, the enzyme deficient in Gaucher disease, also has an essential role in maintaining epidermal permeability function, by regulating the ratio of ceramides to glucosylceramides in the stratum corneum of the skin.Objectives: To further assess the diagnostic utility of epidermal evaluations in distinguishing patients with type 2 Gaucher disease in an expanded cohort.Study design: Epidermal samples were evaluated from twenty children with type 2, three patients with type 3 Gaucher disease and two adults with type 1 Gaucher disease with different clinical manifestations and genotypes. Electron microscopy on ruthenium tetroxide post-fixed tissue was performed. Results: Compared to controls and subjects with type 1 and type 3 Gaucher disease, only patients with type 2 Gaucher disease displayed characteristic electron dense, non-lamellar clefts and immature-lamellar membranes.Conclusion: The appearance of characteristic alterations in epidermal ultrastructure provides an early and specific diagnostic tool to help in distinguishing type 2 from the other types of Gaucher disease. (C) 2011 Elsevier Inc. All rights reserved.
BACKGROUND:Prefrontal deficits in gamma-aminobutyric acid (GABA)ergic gene expression, including neuropeptide Y (NPY), somatostatin (SST), and parvalbumin (PV) messenger RNAs (mRNAs), have been reported for multiple schizophrenia cohorts. Preclinical models suggest that a subset of these GABAergic markers (NPY/SST) is regulated by brain-derived neurotrophic factor (BDNF), which in turn is under the inhibitory influence of small noncoding RNAs. However, it remains unclear if these mechanisms are important determinants for dysregulated NPY and SST expression in prefrontal cortex (PFC) of subjects with schizophrenia.METHODS:Using a postmortem case-control design, the association between BDNF protein, NPY/SST/PV mRNAs, and two BDNF-regulating microRNAs (miR-195 and miR-30a-5p) was determined in samples from the PFC of 20 schizophrenia and 20 control subjects. Complementary studies were conducted in cerebral cortex of mice subjected to antipsychotic treatment or a brain-specific ablation of the Bdnf gene.RESULTS:Subjects with schizophrenia showed deficits in NPY and PV mRNAs. Within-pair differences in BDNF protein levels showed strong positive correlations with NPY and SST and a robust inverse association with miR-195 levels, which in turn were not affected by antipsychotic treatment or genetic ablation of Bdnf.CONCLUSIONS:Taken together, these results suggest that prefrontal deficits in a subset of GABAergic mRNAs, including NPY, are dependent on the regional supply of BDNF, which in turn is fine-tuned through a microRNA (miRNA)-mediated mechanism.
Background: There are numerous reports of abnormalities in the expression of the sodium- and potassium-activated adenosine triphosphatase (Na,K-ATPase) in response to an ionic stress with ethacrynic acid (ECA) challenge in bipolar subjects. However, all of these studies have been in out-bred populations. In an attempt to reduce the genetic variability associated with this observation, we examined this phenomenon within an isolated breeding population.Methods: We studied 36 lymphoblastoid cell lines obtained from Old Order Amish individuals who had bipolar disorder, type I (16), or were unaffected siblings of the same gender (9) or unrelated normal controls(11). Cells were treated with 10(-5) M ECA for 3 days after which Na,K-ATPase alpha 1 protein expression and activity ([H-3]-ouabain binding, Rb-86-uptake, and intracellular sodium and potassium concentrations) were measured.Results: Cells from bipolar patients expressed less Na,K-ATPase as measured by immunoblot analysis after ECA treatment (0.94 +/- SD 0.13 relative units) compared to unaffected siblings (1.06 +/- 0.12, P=0.029) and Old Order Amish normal controls (1.06 +/- 0.14, P=0.0004). None of the other variables studied were different.Limitations: This is a study of peripheral cells which do not express all of the Na,K-ATPase expressed in the brain. The observed difference is small.Conclusions: Ethacrynic-acid-stimulated lymphoblast sodium pump expression in Old Order Amish bipolar subjects is reduced compared to Amish controls. (C) 2009 Elsevier B.V. All rights reserved.
Abstract Ellis–van Creveld syndrome, EvC, is an inherited, autosomal recessive, chondrodysplastic dwarfism, frequently associated with congenital heart disease. The consistently observed clinical manifestations include short-limbed disproportionate dwarfism, shortened ribs, postaxial polydactyly, and dysplastic nails and teeth. Weyers acrofacial dysostosis is an autosomal dominant disorder sharing the hallmark manifestations of EvC, but with a less severe presentation and without cardiac abnormalities. Weyers acrofacial dysostosis and EvC syndrome are allelic and genetically heterogeneous conditions. Homozygous or compound heterozygote mutations in EVC or EVC2 result in EvC syndrome, while a heterozygous, dominant mutation in either EVC or EVC2 leads to Weyers acrofacial dysostosis. Other than predicted transmembrane domains, no obvious homologies or motifs give clues regarding the functions of the EVC2 protein. It is clear that EVC and EVC2 have a tightly linked genomic organization, are divergently transcribed, and have multiple start sites and numerous splice variants. These genomic features may reMect a transcriptional regulatory scheme that coordinates the expression of these two genes in a way that is critical to normal skeletal and cardiac development. Sonography, radiologic findings, and fetoscopy have been used for prenatal diagnosis of EvC syndrome, while DNA mutation analyses still do not generally provide genotype–phenotype correlations that are useful for genetic counseling. The finding that mutations affecting the expression of the EVC or EVC2 genes can result in either EvC syndrome or Weyers acrofacial dysostosis adds another dimension not only to the clinical diagnosis of these disorders but also to the interpretation of genetic information used for prenatal diagnosis and genetic counseling.