human disorder
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2021 ◽  
Vol 11 (1) ◽  
Author(s):  
Taichi Suzuki ◽  
Yo Hirai ◽  
Tomoko Uehara ◽  
Rie Ohga ◽  
Kenjiro Kosaki ◽  
...  

AbstractTrrap (transformation/transcription domain-associated protein) is a component shared by several histone acetyltransferase (HAT) complexes and participates in transcriptional regulation and DNA repair; however, the developmental functions of Trrap in vertebrates are not fully understood. Recently, it has been reported that human patients with genetic mutations in the TRRAP gene show various symptoms, including facial dysmorphisms, microcephaly and global developmental delay. To investigate the physiological functions of Trrap, we established trrap gene-knockout zebrafish and examined loss-of-function phenotypes in the mutants. The trrap zebrafish mutants exhibited smaller eyes and heads than the wild-type zebrafish. The size of the ventral pharyngeal arches was reduced and the mineralization of teeth was impaired in the trrap mutants. Whole-mount in situ hybridization analysis revealed that dlx3 expression was narrowly restricted in the developing ventral pharyngeal arches, while dlx2b expression was diminished in the trrap mutants. These results suggest that trrap zebrafish mutants are useful model organisms for a human disorder associated with genetic mutations in the human TRRAP gene.


Author(s):  
Eva Lausberg ◽  
Sebastian Gießelmann ◽  
Joseph P. Dewulf ◽  
Elsa Wiame ◽  
Anja Holz ◽  
...  

Brain ◽  
2021 ◽  
Author(s):  
Denisa Hathazi ◽  
Dan Cox ◽  
Adele D'Amico ◽  
Giorgio Tasca ◽  
Richard Charlton ◽  
...  

Abstract Marinesco-Sjögren syndrome (MSS) is a rare human disorder caused by biallelic mutations in SIL1 characterized by cataracts in infancy, myopathy and ataxia, symptoms that are also associated with a novel disorder caused by mutations in INPP5K. While these phenotypic similarities may suggest commonalties at a molecular level, an overlapping pathomechanism has not been established yet. In this study, we present six new INPP5K patients and expand the current mutational and phenotypical spectrum of the disease showing the clinical overlap between MSS and the INPP5K-phenotype. We applied unbiased proteomic profiling on cells derived from MSS- and INPP5K-patients and identified alterations in D-3-phosphoglycerate dehydrogenase as a common molecular feature. D-3-phosphoglycerate dehydrogenase modulates the production of L-serine and mutations in this enzyme were previously associated with a neurological phenotype, which clinically overlaps with MSS and INPP5K-disease. As, L-serine administration represents a promising therapeutic strategy for D-3-phosphoglycerate dehydrogenase patients, we tested the effect of L-serine in generated sil1, phgdh and inpp5k a + b zebrafish models which showed an improvement in their neuronal phenotype. Thus our study defines a core phenotypical feature underpinning a key common molecular mechanism in three rare diseases and reveals a common and novel therapeutic target for these patients.


Author(s):  
Diana van den Heuvel ◽  
Yana van der Weegen ◽  
Daphne E.C. Boer ◽  
Tomoo Ogi ◽  
Martijn S. Luijsterburg
Keyword(s):  

2020 ◽  
Author(s):  
Harvey Perez ◽  
May F. Abdallah ◽  
Jose I. Chavira ◽  
Martin T. Egeland ◽  
Karen L. Vo ◽  
...  

AbstractAtaxia Telangiectasia (A-T) is caused by null mutations in the genome stability gene, ATM (A-T mutated). In mice, similar null mutations do not replicate A-T’s characteristic severe ataxia with associated cerebellar dysfunction and atrophy. By increasing genotoxic stress, through the insertion of null mutations in the Atm (nonsense) and related Aptx (knockout) genes, we have generated a novel A-T mouse that first develops mild ataxia, associated with abnormal Purkinje neuron (PN) activity and decreased size, progressing to severe ataxia correlated with further reduced PN activity as well as PN loss and overall cerebellar atrophy. These mice also exhibit high incidences of cancer and immune abnormalities that are all hallmarks of the human disorder. Enabled by the insertion of a clinically relevant nonsense mutation in Atm, we demonstrate that small molecule readthrough (SMRT) compounds can restore ATM production, indicating their potential as a future A-T therapeutic.


2020 ◽  
Vol 14 (1) ◽  
Author(s):  
Natalia I. Krupenko ◽  
Jaspreet Sharma ◽  
Peter Pediaditakis ◽  
Kristi L. Helke ◽  
Madeline S. Hall ◽  
...  

Abstract Background Mitochondrial folate enzyme ALDH1L2 (aldehyde dehydrogenase 1 family member L2) converts 10-formyltetrahydrofolate to tetrahydrofolate and CO2 simultaneously producing NADPH. We have recently reported that the lack of the enzyme due to compound heterozygous mutations was associated with neuro-ichthyotic syndrome in a male patient. Here, we address the role of ALDH1L2 in cellular metabolism and highlight the mechanism by which the enzyme regulates lipid oxidation. Methods We generated Aldh1l2 knockout (KO) mouse model, characterized its phenotype, tissue histology, and levels of reduced folate pools and applied untargeted metabolomics to determine metabolic changes in the liver, pancreas, and plasma caused by the enzyme loss. We have also used NanoString Mouse Inflammation V2 Code Set to analyze inflammatory gene expression and evaluate the role of ALDH1L2 in the regulation of inflammatory pathways. Results Both male and female Aldh1l2 KO mice were viable and did not show an apparent phenotype. However, H&E and Oil Red O staining revealed the accumulation of lipid vesicles localized between the central veins and portal triads in the liver of Aldh1l2-/- male mice indicating abnormal lipid metabolism. The metabolomic analysis showed vastly changed metabotypes in the liver and plasma in these mice suggesting channeling of fatty acids away from β-oxidation. Specifically, drastically increased plasma acylcarnitine and acylglycine conjugates were indicative of impaired β-oxidation in the liver. Our metabolomics data further showed that mechanistically, the regulation of lipid metabolism by ALDH1L2 is linked to coenzyme A biosynthesis through the following steps. ALDH1L2 enables sufficient NADPH production in mitochondria to maintain high levels of glutathione, which in turn is required to support high levels of cysteine, the coenzyme A precursor. As the final outcome, the deregulation of lipid metabolism due to ALDH1L2 loss led to decreased ATP levels in mitochondria. Conclusions The ALDH1L2 function is important for CoA-dependent pathways including β-oxidation, TCA cycle, and bile acid biosynthesis. The role of ALDH1L2 in the lipid metabolism explains why the loss of this enzyme is associated with neuro-cutaneous diseases. On a broader scale, our study links folate metabolism to the regulation of lipid homeostasis and the energy balance in the cell.


2020 ◽  
Vol 29 (13) ◽  
pp. 2109-2123 ◽  
Author(s):  
Jennifer L Sloan ◽  
Nathan P Achilly ◽  
Madeline L Arnold ◽  
Jerrel L Catlett ◽  
Trevor Blake ◽  
...  

Abstract Cobalamin C (cblC) deficiency, the most common inborn error of intracellular cobalamin metabolism, is caused by mutations in MMACHC, a gene responsible for the processing and intracellular trafficking of vitamin B12. This recessive disorder is characterized by a failure to metabolize cobalamin into adenosyl- and methylcobalamin, which results in the biochemical perturbations of methylmalonic acidemia, hyperhomocysteinemia and hypomethioninemia caused by the impaired activity of the downstream enzymes, methylmalonyl-CoA mutase and methionine synthase. Cobalamin C deficiency can be accompanied by a wide spectrum of clinical manifestations, including progressive blindness, and, in mice, manifests with very early embryonic lethality. Because zebrafish harbor a full complement of cobalamin metabolic enzymes, we used genome editing to study the loss of mmachc function and to develop the first viable animal model of cblC deficiency. mmachc mutants survived the embryonic period but perished in early juvenile life. The mutants displayed the metabolic and clinical features of cblC deficiency including methylmalonic acidemia, severe growth retardation and lethality. Morphologic and metabolic parameters improved when the mutants were raised in water supplemented with small molecules used to treat patients, including hydroxocobalamin, methylcobalamin, methionine and betaine. Furthermore, mmachc mutants bred to express rod and/or cone fluorescent reporters, manifested a retinopathy and thin optic nerves (ON). Expression analysis using whole eye mRNA revealed the dysregulation of genes involved in phototransduction and cholesterol metabolism. Zebrafish with mmachc deficiency recapitulate the several of the phenotypic and biochemical features of the human disorder, including ocular pathology, and show a response to established treatments.


Generally, a not unusual skin ailment in human disorder. In laptop imaginative and prescient applications, coloration is a sturdy indication for this sickness. This machine identifies pores and skin cancer based totally on the picture of the pores and skin. Initially, the skin image is filtered using filters and segmented Gausian the use of energetic contour segmentation. Segmented pix are fed as an input to the feature extraction. Pictures extracted classified the use of class strategies such as Support Vector Machine classifiers(SVM) and k Nearest Neighbor(kNN) classifiers. SVM classifier provided better results than kNN classifier


2019 ◽  
Vol 20 (21) ◽  
pp. 5504 ◽  
Author(s):  
Murat Seker ◽  
Cármen Fernández-Rodríguez ◽  
Luis Martínez-Cruz ◽  
Dominik Müller

In higher organisms, epithelia separate compartments in order to guarantee their proper function. Such structures are able to seal but also to allow substances to pass. Within the paracellular pathway, a supramolecular structure, the tight junction transport is largely controlled by the temporospatial regulation of its major protein family called claudins. Besides the fact that the expression of claudins has been identified in different forms of human diseases like cancer, clearly defined mutations in the corresponding claudin genes have been shown to cause distinct human disorders. Such disorders comprise the skin and its adjacent structures, liver, kidney, the inner ear, and the eye. From the phenotype analysis, it has also become clear that different claudins can cause a complex phenotype when expressed in different organs. To gain deeper insights into the physiology and pathophysiology of claudin-associated disorders, several mouse models have been generated. In order to model human disorders in detail, they have been designed either as full knockouts, knock-downs or knock-ins by a variety of techniques. Here, we review human disorders caused by CLDN mutations and their corresponding mouse models that have been generated thus far and assess their usefulness as a model for the corresponding human disorder.


2019 ◽  
Author(s):  
Jung Hwan Kim ◽  
Monika Singh ◽  
Geng Pan ◽  
Adrian Lopez ◽  
Nicholas Zito ◽  
...  

ABSTRACTA frameshift mutation in Yippee-like (YPEL) 3 was recently found from a rare human disorder with peripheral neurological conditions including hypotonia and areflexia. The YPEL gene family is highly conserved from yeast to human, but their functions are poorly defined. Moreover, the pathogenicity of the human YPEL3 variant is completely unknown. To tackle these issues, we generated a Drosophila model of human YPEL3 variant by CRISPR-mediated In-del mutagenesis. Gene-trap analysis suggests that Drosophila YPEL3 (dYPEL3) is predominantly expressed in subsets of neurons, including nociceptors. Analysis on chemical nociception induced by allyl-isothiocyanate (AITC), a natural chemical stimulant, revealed a reduced nociceptive response in dYPEL3 mutants. Subsequent circuit analysis showed a reduction in the activation of second-order neurons (SONs) in the pathway without affecting nociceptor activation upon AITC treatment. Although the gross axonal and dendritic development of nociceptors was not affected, the synaptic contact between nociceptors and SONs were decreased by dYPEL3 mutations. Together, these suggest that the frameshift mutation in human YPEL3 causes neurological conditions by weakening synaptic connection through presynaptic mechanisms.


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