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1.
Proc Natl Acad Sci U S A ; 121(9): e2322582121, 2024 Feb 27.
Article in English | MEDLINE | ID: mdl-38381787

ABSTRACT

Nascent proteins destined for the cell membrane and the secretory pathway are targeted to the endoplasmic reticulum (ER) either posttranslationally or cotranslationally. The signal-independent pathway, containing the protein TMEM208, is one of three pathways that facilitates the translocation of nascent proteins into the ER. The in vivo function of this protein is ill characterized in multicellular organisms. Here, we generated a CRISPR-induced null allele of the fruit fly ortholog CG8320/Tmem208 by replacing the gene with the Kozak-GAL4 sequence. We show that Tmem208 is broadly expressed in flies and that its loss causes lethality, although a few short-lived flies eclose. These animals exhibit wing and eye developmental defects consistent with impaired cell polarity and display mild ER stress. Tmem208 physically interacts with Frizzled (Fz), a planar cell polarity (PCP) receptor, and is required to maintain proper levels of Fz. Moreover, we identified a child with compound heterozygous variants in TMEM208 who presents with developmental delay, skeletal abnormalities, multiple hair whorls, cardiac, and neurological issues, symptoms that are associated with PCP defects in mice and humans. Additionally, fibroblasts of the proband display mild ER stress. Expression of the reference human TMEM208 in flies fully rescues the loss of Tmem208, and the two proband-specific variants fail to rescue, suggesting that they are loss-of-function alleles. In summary, our study uncovers a role of TMEM208 in development, shedding light on its significance in ER homeostasis and cell polarity.


Subject(s)
Drosophila Proteins , Humans , Child , Animals , Mice , Drosophila Proteins/genetics , Drosophila Proteins/metabolism , Cell Polarity/genetics , Drosophila/genetics , Signal Transduction/genetics , Endoplasmic Reticulum/genetics , Endoplasmic Reticulum/metabolism , Membrane Proteins/genetics , Membrane Proteins/metabolism
2.
J Med Genet ; 61(3): 212-223, 2024 Feb 21.
Article in English | MEDLINE | ID: mdl-37788905

ABSTRACT

INTRODUCTION: Chediak-Higashi syndrome (CHS) is a rare autosomal recessive disorder characterised by partial oculocutaneous albinism, a bleeding diathesis, immunological dysfunction and neurological impairment. Bi-allelic loss-of-function variants in LYST cause CHS. LYST encodes the lysosomal trafficking regulator, a highly conserved 429 kDa cytoplasmic protein with an unknown function. METHODS: To further our understanding of the pathogenesis of CHS, we conducted clinical evaluations on individuals with CHS enrolled in our natural history study. Using genomic DNA Sanger sequencing, we identified novel pathogenic LYST variants. Additionally, we performed an extensive literature review to curate reported LYST variants and classified these novel and reported variants according to the American College of Medical Genetics/Association for Molecular Pathology variant interpretation guidelines. RESULTS: Our investigation unveiled 11 novel pathogenic LYST variants in eight patients with a clinical diagnosis of CHS, substantiated by the presence of pathognomonic giant intracellular granules. From these novel variants, together with a comprehensive review of the literature, we compiled a total of 147 variants in LYST, including 61 frameshift variants (41%), 44 nonsense variants (30%), 23 missense variants (16%), 13 splice site variants or small genomic deletions for which the coding effect is unknown (9%), 5 in-frame variants (3%) and 1 start-loss variant (1%). Notably, a genotype-phenotype correlation emerged, whereby individuals harbouring at least one missense or in-frame variant generally resulted in milder disease, while those with two nonsense or frameshift variants generally had more severe disease. CONCLUSION: The identification of novel pathogenic LYST variants and improvements in variant classification will provide earlier diagnoses and improved care to individuals with CHS.


Subject(s)
Chediak-Higashi Syndrome , Humans , Chediak-Higashi Syndrome/genetics , Chediak-Higashi Syndrome/diagnosis , Chediak-Higashi Syndrome/pathology , Mutation , Proteins/genetics , Mutation, Missense , Base Sequence , Vesicular Transport Proteins/genetics
3.
Am J Hum Genet ; 110(4): 663-680, 2023 04 06.
Article in English | MEDLINE | ID: mdl-36965478

ABSTRACT

The vast majority of human genes encode multiple isoforms through alternative splicing, and the temporal and spatial regulation of those isoforms is critical for organismal development and function. The spliceosome, which regulates and executes splicing reactions, is primarily composed of small nuclear ribonucleoproteins (snRNPs) that consist of small nuclear RNAs (snRNAs) and protein subunits. snRNA gene transcription is initiated by the snRNA-activating protein complex (SNAPc). Here, we report ten individuals, from eight families, with bi-allelic, deleterious SNAPC4 variants. SNAPC4 encoded one of the five SNAPc subunits that is critical for DNA binding. Most affected individuals presented with delayed motor development and developmental regression after the first year of life, followed by progressive spasticity that led to gait alterations, paraparesis, and oromotor dysfunction. Most individuals had cerebral, cerebellar, or basal ganglia volume loss by brain MRI. In the available cells from affected individuals, SNAPC4 abundance was decreased compared to unaffected controls, suggesting that the bi-allelic variants affect SNAPC4 accumulation. The depletion of SNAPC4 levels in HeLa cell lines via genomic editing led to decreased snRNA expression and global dysregulation of alternative splicing. Analysis of available fibroblasts from affected individuals showed decreased snRNA expression and global dysregulation of alternative splicing compared to unaffected cells. Altogether, these data suggest that these bi-allelic SNAPC4 variants result in loss of function and underlie the neuroregression and progressive spasticity in these affected individuals.


Subject(s)
Alternative Splicing , DNA-Binding Proteins , Paraparesis, Spastic , Transcription Factors , Paraparesis, Spastic/genetics , Humans , DNA-Binding Proteins/genetics , Transcription Factors/genetics , HeLa Cells , Protein Isoforms/genetics , RNA-Seq , Male , Female , Pedigree , Alleles , Infant , Child, Preschool , Child , Adolescent , Protein Structure, Secondary , RNA, Small Nuclear/genetics
4.
Front Genet ; 14: 1072784, 2023.
Article in English | MEDLINE | ID: mdl-36968585

ABSTRACT

Introduction: Chediak-Higashi syndrome (CHS) is rare autosomal recessive disorder caused by bi-allelic variants in the Lysosomal Trafficking Regulator (LYST) gene. Diagnosis is established by the detection of pathogenic variants in LYST in combination with clinical evidence of disease. Conventional molecular genetic testing of LYST by genomic DNA (gDNA) Sanger sequencing detects the majority of pathogenic variants, but some remain undetected for several individuals clinically diagnosed with CHS. In this study, cDNA Sanger sequencing was pursued as a complementary method to identify variant alleles that are undetected by gDNA Sanger sequencing and to increase molecular diagnostic yield. Methods: Six unrelated individuals with CHS were clinically evaluated and included in this study. gDNA Sanger sequencing and cDNA Sanger sequencing were performed to identify pathogenic LYST variants. Results: Ten novel LYST alleles were identified, including eight nonsense or frameshift variants and two in-frame deletions. Six of these were identified by conventional gDNA Sanger sequencing; cDNA Sanger sequencing was required to identify the remaining variant alleles. Conclusion: By utilizing cDNA sequencing as a complementary technique to identify LYST variants, a complete molecular diagnosis was obtained for all six CHS patients. In this small CHS cohort, the molecular diagnostic yield was increased, and canonical splice site variants identified from gDNA Sanger sequencing were validated by cDNA sequencing. The identification of novel LYST alleles will aid in diagnosing patients and these molecular diagnoses will also lead to genetic counseling, access to services and treatments and clinical trials in the future.

5.
NPJ Genom Med ; 8(1): 4, 2023 Feb 10.
Article in English | MEDLINE | ID: mdl-36765070

ABSTRACT

Autophagy regulates the degradation of damaged organelles and protein aggregates, and is critical for neuronal development, homeostasis, and maintenance, yet few neurodevelopmental disorders have been associated with pathogenic variants in genes encoding autophagy-related proteins. We report three individuals from two unrelated families with a neurodevelopmental disorder characterized by speech and motor impairment, and similar facial characteristics. Rare, conserved, bi-allelic variants were identified in ATG4D, encoding one of four ATG4 cysteine proteases important for autophagosome biogenesis, a hallmark of autophagy. Autophagosome biogenesis and induction of autophagy were intact in cells from affected individuals. However, studies evaluating the predominant substrate of ATG4D, GABARAPL1, demonstrated that three of the four ATG4D patient variants functionally impair ATG4D activity. GABARAPL1 is cleaved or "primed" by ATG4D and an in vitro GABARAPL1 priming assay revealed decreased priming activity for three of the four ATG4D variants. Furthermore, a rescue experiment performed in an ATG4 tetra knockout cell line, in which all four ATG4 isoforms were knocked out by gene editing, showed decreased GABARAPL1 priming activity for the two ATG4D missense variants located in the cysteine protease domain required for priming, suggesting that these variants impair the function of ATG4D. The clinical, bioinformatic, and functional data suggest that bi-allelic loss-of-function variants in ATG4D contribute to the pathogenesis of this syndromic neurodevelopmental disorder.

6.
Article in English | MEDLINE | ID: mdl-33424983

ABSTRACT

Since the initial description of Chediak-Higashi syndrome (CHS), over 75 years ago, several studies have been conducted to underscore the role of the lysosomal trafficking regulator (LYST) gene in the pathogenesis of disease. CHS is a rare autosomal recessive disorder, which is caused by biallelic mutations in the highly conserved LYST gene. The disease is characterized by partial oculocutaneous albinism, prolonged bleeding, immune and neurologic dysfunction, and risk for the development of hemophagocytic lympohistiocytosis (HLH). The presence of giant secretory granules in leukocytes is the classical diagnostic feature, which distinguishes CHS from closely related Griscelli and Hermansky-Pudlak syndromes. While the exact mechanism of the formation of the giant granules in CHS patients is not understood, dysregulation of LYST function in regulating lysosomal biogenesis has been proposed to play a role. In this review, we discuss the clinical characteristics of the disease and highlight the functional consequences of enlarged lysosomes and lysosome-related organelles (LROs) in CHS.

7.
Am J Hum Genet ; 103(5): 794-807, 2018 11 01.
Article in English | MEDLINE | ID: mdl-30401460

ABSTRACT

Ca2+ signaling is vital for various cellular processes including synaptic vesicle exocytosis, muscle contraction, regulation of secretion, gene transcription, and cellular proliferation. The endoplasmic reticulum (ER) is the largest intracellular Ca2+ store, and dysregulation of ER Ca2+ signaling and homeostasis contributes to the pathogenesis of various complex disorders and Mendelian disease traits. We describe four unrelated individuals with a complex multisystem disorder characterized by woolly hair, liver dysfunction, pruritus, dysmorphic features, hypotonia, and global developmental delay. Through whole-exome sequencing and family-based genomics, we identified bi-allelic variants in CCDC47 that encodes the Ca2+-binding ER transmembrane protein CCDC47. CCDC47, also known as calumin, has been shown to bind Ca2+ with low affinity and high capacity. In mice, loss of Ccdc47 leads to embryonic lethality, suggesting that Ccdc47 is essential for early development. Characterization of cells from individuals with predicted likely damaging alleles showed decreased CCDC47 mRNA expression and protein levels. In vitro cellular experiments showed decreased total ER Ca2+ storage, impaired Ca2+ signaling mediated by the IP3R Ca2+ release channel, and reduced ER Ca2+ refilling via store-operated Ca2+ entry. These results, together with the previously described role of CCDC47 in Ca2+ signaling and development, suggest that bi-allelic loss-of-function variants in CCDC47 underlie the pathogenesis of this multisystem disorder.

8.
Nat Commun ; 9(1): 337, 2018 01 18.
Article in English | MEDLINE | ID: mdl-29348635

ABSTRACT

The originally published version of this Article contained errors in Figure 1. In panel c, the grey shading denoting evolutionary conservation and the arrowheads indicating amino acids affected in Snyder-Robinson syndrome were displaced relative to the sequence. These errors have now been corrected in both the PDF and HTML versions of the manuscript.

9.
Nat Commun ; 8(1): 1257, 2017 11 02.
Article in English | MEDLINE | ID: mdl-29097652

ABSTRACT

Polyamines are tightly regulated polycations that are essential for life. Loss-of-function mutations in spermine synthase (SMS), a polyamine biosynthesis enzyme, cause Snyder-Robinson syndrome (SRS), an X-linked intellectual disability syndrome; however, little is known about the neuropathogenesis of the disease. Here we show that loss of dSms in Drosophila recapitulates the pathological polyamine imbalance of SRS and causes survival defects and synaptic degeneration. SMS deficiency leads to excessive spermidine catabolism, which generates toxic metabolites that cause lysosomal defects and oxidative stress. Consequently, autophagy-lysosome flux and mitochondrial function are compromised in the Drosophila nervous system and SRS patient cells. Importantly, oxidative stress caused by loss of SMS is suppressed by genetically or pharmacologically enhanced antioxidant activity. Our findings uncover some of the mechanisms underlying the pathological consequences of abnormal polyamine metabolism in the nervous system and may provide potential therapeutic targets for treating SRS and other polyamine-associated neurological disorders.


Subject(s)
Autophagy/genetics , Brain/metabolism , Drosophila Proteins/genetics , Lysosomes/metabolism , Mental Retardation, X-Linked/genetics , Oxidative Stress/genetics , Polyamines/metabolism , Spermine Synthase/genetics , Synapses/ultrastructure , Animals , Animals, Genetically Modified , Antioxidants/pharmacology , Brain/drug effects , Brain/ultrastructure , Disease Models, Animal , Drosophila melanogaster , Electron Transport Complex IV/metabolism , Electroretinography , Humans , Mental Retardation, X-Linked/metabolism , Microscopy, Electron, Transmission , Reactive Oxygen Species/metabolism , Retinal Neurons/drug effects , Retinal Neurons/ultrastructure , Spermidine/metabolism , Spermine Synthase/deficiency , Spermine Synthase/metabolism , Survival Rate , Synapses/drug effects
10.
Nucleus ; 7(6): 560-571, 2016 Nov.
Article in English | MEDLINE | ID: mdl-27813696

ABSTRACT

Mutations in SMARCAL1, which encodes a DNA annealing helicase with roles in DNA replication fork restart, DNA repair, and gene expression modulation, cause Schimke immuno-osseous dysplasia (SIOD), an autosomal recessive disease characterized by skeletal dysplasia, renal disease, T-cell immunodeficiency, and arteriosclerosis. The clinical features of SIOD arise from pathological changes in gene expression; however, the underlying mechanism for these gene expression alterations remains unclear. We hypothesized that changes of the epigenome alter gene expression in SIOD. To test this, we performed a genetic screen for interaction between Marcal1, the Drosophila melanogaster ortholog of SMARCAL1, and the genes of the trithorax group (trxG) and Polycomb group (PcG), which encode epigenetic regulators. SMARCAL1 and Marcal1 genetically interacted with trxG and PcG members. A homozygous null mutation of Marcal1 suppressed the wing-to-haltere transformation, ectopic Ultrabithorax (Ubx) expression, and ectopic Ubx minigene expression caused by PcG deficiency. The suppression of ectopic Ubx expression correlated with reduced chromatin accessibility of the Ubx promoter. To our knowledge, this is the first in vivo evidence for deficiency of a SMARCAL1 ortholog altering the chromatin structure of a gene.


Subject(s)
Arteriosclerosis/genetics , Arteriosclerosis/metabolism , Chromatin/metabolism , DNA Helicases/deficiency , Gene Expression Regulation , Immunologic Deficiency Syndromes/genetics , Immunologic Deficiency Syndromes/metabolism , Nephrotic Syndrome/genetics , Nephrotic Syndrome/metabolism , Osteochondrodysplasias/genetics , Osteochondrodysplasias/metabolism , Pulmonary Embolism/genetics , Pulmonary Embolism/metabolism , Animals , DNA Helicases/metabolism , Drosophila Proteins/metabolism , Drosophila melanogaster , Homeodomain Proteins/metabolism , Humans , Polycomb-Group Proteins/metabolism , Primary Immunodeficiency Diseases , Sequence Homology, Nucleic Acid , Transcription Factors/metabolism
11.
Orphanet J Rare Dis ; 11(1): 149, 2016 11 05.
Article in English | MEDLINE | ID: mdl-27816064

ABSTRACT

BACKGROUND: Schimke immuno-osseous dysplasia (SIOD) is a multisystemic disorder caused by biallelic mutations in the SWI/SNF-related matrix-associated actin-dependent regulator of chromatin, subfamily A-like 1 (SMARCAL1) gene. Changes in gene expression underlie the arteriosclerosis and T-cell immunodeficiency of SIOD; therefore, we hypothesized that SMARCAL1 deficiency causes the focal segmental glomerulosclerosis (FSGS) of SIOD by altering renal gene expression. We tested this hypothesis by gene expression analysis of an SIOD patient kidney and verified these findings through immunofluorescent analysis in additional SIOD patients and a genetic interaction analysis in Drosophila. RESULTS: We found increased expression of components and targets of the Wnt and Notch signaling pathways in the SIOD patient kidney, increased levels of unphosphorylated ß-catenin and Notch1 intracellular domain in the glomeruli of most SIOD patient kidneys, and genetic interaction between the Drosophila SMARCAL1 homologue Marcal1 and genes of the Wnt and Notch signaling pathways. CONCLUSIONS: We conclude that increased Wnt and Notch activity result from SMARCAL1 deficiency and, as established causes of FSGS, contribute to the renal disease of most SIOD patients. This further clarifies the pathogenesis of SIOD and will hopefully direct potential therapeutic approaches for SIOD patients.


Subject(s)
Arteriosclerosis/metabolism , Glomerulosclerosis, Focal Segmental/metabolism , Immunologic Deficiency Syndromes/metabolism , Kidney Diseases/metabolism , Nephrotic Syndrome/metabolism , Osteochondrodysplasias/metabolism , Pulmonary Embolism/metabolism , Receptors, Notch/metabolism , Wnt Proteins/metabolism , Animals , Arteriosclerosis/genetics , Child , Child, Preschool , DNA Helicases/genetics , DNA Helicases/metabolism , Drosophila melanogaster/genetics , Drosophila melanogaster/metabolism , Fluorescent Antibody Technique, Indirect , Glomerulosclerosis, Focal Segmental/genetics , Humans , Immunologic Deficiency Syndromes/genetics , Kidney Diseases/genetics , Male , Nephrotic Syndrome/genetics , Osteochondrodysplasias/genetics , Primary Immunodeficiency Diseases , Pulmonary Embolism/genetics , Wnt Proteins/genetics
12.
Orphanet J Rare Dis ; 11(1): 62, 2016 05 14.
Article in English | MEDLINE | ID: mdl-27179618

ABSTRACT

BACKGROUND: Mutations of TCF4, which encodes a basic helix-loop-helix transcription factor, cause Pitt-Hopkins syndrome (PTHS) via multiple genetic mechanisms. TCF4 is a complex locus expressing multiple transcripts by alternative splicing and use of multiple promoters. To address the relationship between mutation of these transcripts and phenotype, we report a three-generation family segregating mild intellectual disability with a chromosomal translocation disrupting TCF4. RESULTS: Using whole genome sequencing, we detected a complex unbalanced karyotype disrupting TCF4 (46,XY,del(14)(q23.3q23.3)del(18)(q21.2q21.2)del(18)(q21.2q21.2)inv(18)(q21.2q21.2)t(14;18)(q23.3;q21.2)(14pter®14q23.3::18q21.2®18q21.2::18q21.1®18qter;18pter®18q21.2::14q23.3®14qter). Subsequent transcriptome sequencing, qRT-PCR and nCounter analyses revealed that cultured skin fibroblasts and peripheral blood had normal expression of genes along chromosomes 14 or 18 and no marked changes in expression of genes other than TCF4. Affected individuals had 12-33 fold higher mRNA levels of TCF4 than did unaffected controls or individuals with PTHS. Although the derivative chromosome generated a PLEKHG3-TCF4 fusion transcript, the increased levels of TCF4 mRNA arose from transcript variants originating distal to the translocation breakpoint, not from the fusion transcript. CONCLUSIONS: Although validation in additional patients is required, our findings suggest that the dysmorphic features and severe intellectual disability characteristic of PTHS are partially rescued by overexpression of those short TCF4 transcripts encoding a nuclear localization signal, a transcription activation domain, and the basic helix-loop-helix domain.


Subject(s)
Basic Helix-Loop-Helix Leucine Zipper Transcription Factors/genetics , Intellectual Disability/genetics , Protein Isoforms/genetics , Transcription Factors/genetics , Translocation, Genetic/genetics , Alternative Splicing/genetics , Child , Facies , Female , Humans , Hyperventilation/genetics , Mutation/genetics , Polymerase Chain Reaction , Polymorphism, Single Nucleotide/genetics , Promoter Regions, Genetic/genetics , Transcription Factor 4
13.
Clin Immunol ; 161(2): 355-65, 2015 Dec.
Article in English | MEDLINE | ID: mdl-26499378

ABSTRACT

Schimke immuno-osseous dysplasia (SIOD) is an autosomal recessive, fatal childhood disorder associated with skeletal dysplasia, renal dysfunction, and T-cell immunodeficiency. This disease is linked to biallelic loss-of-function mutations of the SMARCAL1 gene. Although recurrent infection, due to T-cell deficiency, is a leading cause of morbidity and mortality, the etiology of the T-cell immunodeficiency is unclear. Here, we demonstrate that the T cells of SIOD patients have undetectable levels of protein and mRNA for the IL-7 receptor alpha chain (IL7Rα) and are unresponsive to stimulation with IL-7, indicating a loss of functional receptor. No pathogenic mutations were detected in the exons of IL7R in these patients; however, CpG sites in the IL7R promoter were hypermethylated in SIOD T cells. We propose therefore that the lack of IL7Rα expression, associated with hypermethylation of the IL7R promoter, in T cells and possibly their earlier progenitors, restricts T-cell development in SIOD patients.


Subject(s)
Arteriosclerosis/genetics , Immunologic Deficiency Syndromes/genetics , Nephrotic Syndrome/genetics , Osteochondrodysplasias/genetics , Pulmonary Embolism/genetics , Receptors, Interleukin-7/genetics , T-Lymphocytes/metabolism , Adolescent , Adult , Arteriosclerosis/metabolism , Arteriosclerosis/pathology , Cells, Cultured , Child , Child, Preschool , DNA Helicases/genetics , DNA Methylation , Flow Cytometry , Gene Expression , Humans , Immunohistochemistry , Immunologic Deficiency Syndromes/metabolism , Immunologic Deficiency Syndromes/pathology , Interleukin-17/pharmacology , Leukocytes, Mononuclear/drug effects , Leukocytes, Mononuclear/metabolism , Mutation , Nephrotic Syndrome/metabolism , Nephrotic Syndrome/pathology , Osteochondrodysplasias/metabolism , Osteochondrodysplasias/pathology , Primary Immunodeficiency Diseases , Promoter Regions, Genetic/genetics , Pulmonary Embolism/metabolism , Pulmonary Embolism/pathology , Receptors, Interleukin-7/metabolism , Reverse Transcriptase Polymerase Chain Reaction , Sequence Analysis, DNA , Young Adult
14.
Pediatr Res ; 78(6): 609-17, 2015 Dec.
Article in English | MEDLINE | ID: mdl-26309238

ABSTRACT

BACKGROUND: Schimke immuno-osseous dysplasia (SIOD) is an autosomal recessive disorder caused by mutations in SMARCAL1. A frequent complication is arteriosclerosis associated with reduced elastin expression; however, the mechanism underlying the reduced elastin expression remains unknown. METHODS: Expression of transcriptional regulators of elastin (ELN) and microRNA (miRNA) regulators of ELN messenger RNA (mRNA), ELN promoter methylation, and ELN mRNA poly(A) tail length were assessed by quantitative RT-PCR, bisulfite Sanger sequencing, and the Poly(A) Tail Length Assay Kit, respectively, in unaffected developing human aortae and in an SIOD aorta. RESULTS: Comparing unaffected fetal and adult aortae, ELN precursor mRNA (pre-mRNA) levels remained nearly constant, whereas mRNA levels declined by ~10(2)-fold. This corresponded with a reduction in poly(A) tail length but not with changes in the other parameters. In contrast, compared to the unaffected fetal aortae, the SIOD aorta had 18-fold less ELN pre-mRNA and 10(4)-fold less mRNA. This corresponded with increased expression of miRNA regulators and shorter ELN mRNA poly(A) tail lengths but not with altered expression of ELN transcriptional regulators or ELN promoter methylation. CONCLUSION: Posttranscriptional mechanisms account for the reduction in ELN mRNA levels in unaffected aortae, whereas transcriptional and posttranscriptional mechanisms reduce elastin expression in SIOD aorta and predispose to arteriosclerosis.


Subject(s)
Aorta/metabolism , Arteriosclerosis/genetics , Elastin/genetics , Immunologic Deficiency Syndromes/genetics , Nephrotic Syndrome/genetics , Osteochondrodysplasias/genetics , Pulmonary Embolism/genetics , RNA Precursors/genetics , RNA Processing, Post-Transcriptional , RNA, Messenger/genetics , Transcription, Genetic , Adolescent , Adult , Aorta/embryology , Aorta/pathology , Arteriosclerosis/embryology , Arteriosclerosis/metabolism , Arteriosclerosis/pathology , Case-Control Studies , Cells, Cultured , Child , Child, Preschool , DNA Methylation , Down-Regulation , Elastin/metabolism , Female , Gestational Age , Humans , Immunologic Deficiency Syndromes/embryology , Immunologic Deficiency Syndromes/metabolism , Immunologic Deficiency Syndromes/pathology , Male , MicroRNAs/genetics , MicroRNAs/metabolism , Middle Aged , Nephrotic Syndrome/embryology , Nephrotic Syndrome/metabolism , Nephrotic Syndrome/pathology , Osteochondrodysplasias/embryology , Osteochondrodysplasias/metabolism , Osteochondrodysplasias/pathology , Primary Immunodeficiency Diseases , Promoter Regions, Genetic , Pulmonary Embolism/embryology , Pulmonary Embolism/metabolism , Pulmonary Embolism/pathology , RNA Precursors/metabolism , RNA, Messenger/metabolism , Transcription Factors/genetics , Transcription Factors/metabolism
15.
Biology (Basel) ; 2(3): 976-1033, 2013 Jul 09.
Article in English | MEDLINE | ID: mdl-24040563

ABSTRACT

This review summarizes the current understanding of the role of nuclear bodies in regulating gene expression. The compartmentalization of cellular processes, such as ribosome biogenesis, RNA processing, cellular response to stress, transcription, modification and assembly of spliceosomal snRNPs, histone gene synthesis and nuclear RNA retention, has significant implications for gene regulation. These functional nuclear domains include the nucleolus, nuclear speckle, nuclear stress body, transcription factory, Cajal body, Gemini of Cajal body, histone locus body and paraspeckle. We herein review the roles of nuclear bodies in regulating gene expression and their relation to human health and disease.

16.
Orphanet J Rare Dis ; 7: 70, 2012 Sep 22.
Article in English | MEDLINE | ID: mdl-22998683

ABSTRACT

BACKGROUND: Arteriosclerosis and emphysema develop in individuals with Schimke immuno-osseous dysplasia (SIOD), a multisystem disorder caused by biallelic mutations in SMARCAL1 (SWI/SNF-related, matrix-associated, actin-dependent regulator of chromatin, subfamily a-like 1). However, the mechanism by which the vascular and pulmonary disease arises in SIOD remains unknown. METHODS: We reviewed the records of 65 patients with SMARCAL1 mutations. Molecular and immunohistochemical analyses were conducted on autopsy tissue from 4 SIOD patients. RESULTS: Thirty-two of 63 patients had signs of arteriosclerosis and 3 of 51 had signs of emphysema. The arteriosclerosis was characterized by intimal and medial hyperplasia, smooth muscle cell hyperplasia and fragmented and disorganized elastin fibers, and the pulmonary disease was characterized by panlobular enlargement of air spaces. Consistent with a cell autonomous disorder, SMARCAL1 was expressed in arterial and lung tissue, and both the aorta and lung of SIOD patients had reduced expression of elastin and alterations in the expression of regulators of elastin gene expression. CONCLUSIONS: This first comprehensive study of the vascular and pulmonary complications of SIOD shows that these commonly cause morbidity and mortality and might arise from impaired elastogenesis. Additionally, the effect of SMARCAL1 deficiency on elastin expression provides a model for understanding other features of SIOD.


Subject(s)
Arteriosclerosis/physiopathology , Emphysema/physiopathology , Immunologic Deficiency Syndromes/physiopathology , Nephrotic Syndrome/physiopathology , Osteochondrodysplasias/physiopathology , Pulmonary Embolism/physiopathology , Adult , Arteriosclerosis/genetics , Autopsy , Child , Child, Preschool , DNA Helicases/genetics , Emphysema/genetics , Female , Humans , Immunohistochemistry , Immunologic Deficiency Syndromes/genetics , Male , Nephrotic Syndrome/genetics , Osteochondrodysplasias/genetics , Primary Immunodeficiency Diseases , Pulmonary Embolism/genetics
17.
Hum Mol Genet ; 21(11): 2572-87, 2012 Jun 01.
Article in English | MEDLINE | ID: mdl-22378147

ABSTRACT

Biallelic mutations of the DNA annealing helicase SMARCAL1 (SWI/SNF-related, matrix-associated, actin-dependent regulator of chromatin, subfamily a-like 1) cause Schimke immuno-osseous dysplasia (SIOD, MIM 242900), an incompletely penetrant autosomal recessive disorder. Using human, Drosophila and mouse models, we show that the proteins encoded by SMARCAL1 orthologs localize to transcriptionally active chromatin and modulate gene expression. We also show that, as found in SIOD patients, deficiency of the SMARCAL1 orthologs alone is insufficient to cause disease in fruit flies and mice, although such deficiency causes modest diffuse alterations in gene expression. Rather, disease manifests when SMARCAL1 deficiency interacts with genetic and environmental factors that further alter gene expression. We conclude that the SMARCAL1 annealing helicase buffers fluctuations in gene expression and that alterations in gene expression contribute to the penetrance of SIOD.


Subject(s)
Alleles , Arteriosclerosis/genetics , DNA Helicases/genetics , Gene Expression , Immunologic Deficiency Syndromes/genetics , Mutation , Nephrotic Syndrome/genetics , Osteochondrodysplasias/genetics , Pulmonary Embolism/genetics , Animals , Arteriosclerosis/metabolism , Chromatin/metabolism , DNA Helicases/metabolism , Disease Models, Animal , Drosophila/enzymology , Embryo, Nonmammalian/metabolism , Environment , Humans , Immunologic Deficiency Syndromes/metabolism , Mice , Nephrotic Syndrome/metabolism , Osteochondrodysplasias/metabolism , Penetrance , Primary Immunodeficiency Diseases , Pulmonary Embolism/metabolism
18.
J Mol Histol ; 43(1): 95-106, 2012 Feb.
Article in English | MEDLINE | ID: mdl-22113624

ABSTRACT

NAD(P) steroid dehydrogenase-like (NSDHL) is an X-linked gene that encodes a 3ß-hydroxysteroid dehydrogenase in the cholesterol biosynthetic pathway. Loss-of-function mutations in NSDHL cause Congenital Hemidysplasia with Ichthyosiform erythroderma and Limb Defects (CHILD) and CK syndromes. CHILD syndrome is a male lethal X-linked dominant disorder characterized by asymmetric skin and limb anomalies in affected females. CK syndrome is an intellectual disability disorder characterized by disproportionate short stature, brain malformations, and dysmorphic features in affected males. To understand better the relationship of the expression of mRNA and protein encoded by human NSDHL to the peripheral malformations of these disorders, we characterized the peripheral expression of the mRNA and protein by quantitative reverse transcriptase polymerase chain reaction (qRT-PCR), immunoblotting and immunohistochemistry. We also profiled the mRNA expression of mouse Nsdhl by in situ hybridization. Expression of the mRNA and protein encoded by human NSDHL parallels that of mouse Nsdhl mRNA for most but not all tissues. Furthermore, human NSDHL protein and mouse Nsdhl mRNA were expressed in tissues synthesizing cholesterol and steroids and in all peripheral tissues affected by CHILD or CK syndromes.


Subject(s)
3-Hydroxysteroid Dehydrogenases/genetics , 3-Hydroxysteroid Dehydrogenases/metabolism , Gene Expression Profiling , Abnormalities, Multiple/genetics , Abnormalities, Multiple/metabolism , Adolescent , Animals , Child , Child, Preschool , Female , Fetus , Humans , Ichthyosiform Erythroderma, Congenital/genetics , Ichthyosiform Erythroderma, Congenital/metabolism , Immunohistochemistry , In Situ Hybridization , Infant , Limb Deformities, Congenital/genetics , Limb Deformities, Congenital/metabolism , Male , Mice , Organ Specificity , Syndrome
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