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1.
Sci Rep ; 13(1): 13204, 2023 08 14.
Artigo em Inglês | MEDLINE | ID: mdl-37580336

RESUMO

Congenital renal tract malformations (RTMs) are the major cause of severe kidney failure in children. Studies to date have identified defined genetic causes for only a minority of human RTMs. While some RTMs may be caused by poorly defined environmental perturbations affecting organogenesis, it is likely that numerous causative genetic variants have yet to be identified. Unfortunately, the speed of discovering further genetic causes for RTMs is limited by challenges in prioritising candidate genes harbouring sequence variants. Here, we exploited the computer-based artificial intelligence methodology of supervised machine learning to identify genes with a high probability of being involved in renal development. These genes, when mutated, are promising candidates for causing RTMs. With this methodology, the machine learning classifier determines which attributes are common to renal development genes and identifies genes possessing these attributes. Here we report the validation of an RTM gene classifier and provide predictions of the RTM association status for all protein-coding genes in the mouse genome. Overall, our predictions, whilst not definitive, can inform the prioritisation of genes when evaluating patient sequence data for genetic diagnosis. This knowledge of renal developmental genes will accelerate the processes of reaching a genetic diagnosis for patients born with RTMs.


Assuntos
Inteligência Artificial , Sistema Urinário , Criança , Humanos , Camundongos , Animais , Rim/anormalidades , Sistema Urinário/anormalidades , Aprendizado de Máquina
2.
Front Genet ; 13: 896125, 2022.
Artigo em Inglês | MEDLINE | ID: mdl-35812751

RESUMO

Urofacial (also called Ochoa) syndrome (UFS) is an autosomal recessive congenital disorder of the urinary bladder featuring voiding dysfunction and a grimace upon smiling. Biallelic variants in HPSE2, coding for the secreted protein heparanase-2, are described in around half of families genetically studied. Hpse2 mutant mice have aberrant bladder nerves. We sought to expand the genotypic spectrum of UFS and make insights into its pathobiology. Sanger sequencing, next generation sequencing and microarray analysis were performed in four previously unreported families with urinary tract disease and grimacing. In one, the proband had kidney failure and was homozygous for the previously described pathogenic variant c.429T>A, p.(Tyr143*). Three other families each carried a different novel HPSE2 variant. One had homozygous triplication of exons 8 and 9; another had homozygous deletion of exon 4; and another carried a novel c.419C>G variant encoding the missense p.Pro140Arg in trans with c.1099-1G>A, a previously reported pathogenic splice variant. Expressing the missense heparanase-2 variant in vitro showed that it was secreted as normal, suggesting that 140Arg has aberrant functionality after secretion. Bladder autonomic neurons emanate from pelvic ganglia where resident neural cell bodies derive from migrating neural crest cells. We demonstrated that, in normal human embryos, neuronal precursors near the developing hindgut and lower urinary tract were positive for both heparanase-2 and leucine rich repeats and immunoglobulin like domains 2 (LRIG2). Indeed, biallelic variants of LRIG2 have been implicated in rare UFS families. The study expands the genotypic spectrum in HPSE2 in UFS and supports a developmental neuronal pathobiology.

3.
Sci Adv ; 8(20): eabn2265, 2022 05 20.
Artigo em Inglês | MEDLINE | ID: mdl-35584218

RESUMO

Basement membranes (BMs) are ubiquitous extracellular matrices whose composition remains elusive, limiting our understanding of BM regulation and function. By developing a bioinformatic and in vivo discovery pipeline, we define a network of 222 human proteins and their animal orthologs localized to BMs. Network analysis and screening in C. elegans and zebrafish uncovered BM regulators, including ADAMTS, ROBO, and TGFß. More than 100 BM network genes associate with human phenotypes, and by screening 63,039 genomes from families with rare disorders, we found loss-of-function variants in LAMA5, MPZL2, and MATN2 and show that they regulate BM composition and function. This cross-disciplinary study establishes the immense complexity of BMs and their impact on in human health.


Assuntos
Caenorhabditis elegans , Peixe-Zebra , Animais , Membrana Basal/metabolismo , Caenorhabditis elegans/genética , Caenorhabditis elegans/metabolismo , Matriz Extracelular/genética , Matriz Extracelular/metabolismo , Proteínas da Matriz Extracelular/metabolismo , Humanos , Peixe-Zebra/genética
4.
J Med Genet ; 59(4): 393-398, 2022 04.
Artigo em Inglês | MEDLINE | ID: mdl-33879512

RESUMO

PURPOSE: The increased adoption of genomic strategies in the clinic makes it imperative for diagnostic laboratories to improve the efficiency of variant interpretation. Clinical exome sequencing (CES) is becoming a valuable diagnostic tool, capable of meeting the diagnostic demand imposed by the vast array of different rare monogenic disorders. We have assessed a clinician-led and phenotype-based approach for virtual gene panel generation for analysis of targeted CES in patients with rare disease in a single institution. METHODS: Retrospective survey of 400 consecutive cases presumed by clinicians to have rare monogenic disorders, referred on singleton basis for targeted CES. We evaluated diagnostic yield and variant workload to characterise the usefulness of a clinician-led approach for generation of virtual gene panels that can incorporate up to three different phenotype-driven gene selection methods. RESULTS: Abnormalities of the nervous system (54.5%), including intellectual disability, head and neck (19%), skeletal system (16%), ear (15%) and eye (15%) were the most common clinical features reported in referrals. Combined phenotype-driven strategies for virtual gene panel generation were used in 57% of cases. On average, 7.3 variants (median=5) per case were retained for clinical interpretation. The overall diagnostic rate of proband-only CES using personalised phenotype-driven virtual gene panels was 24%. CONCLUSIONS: Our results show that personalised virtual gene panels are a cost-effective approach for variant analysis of CES, maintaining diagnostic yield and optimising the use of resources for clinical genomic sequencing in the clinic.


Assuntos
Exoma , Doenças Raras , Exoma/genética , Humanos , Doenças Raras/genética , Estudos Retrospectivos , Sequenciamento do Exoma , Carga de Trabalho
6.
Clin Genet ; 96(6): 515-520, 2019 12.
Artigo em Inglês | MEDLINE | ID: mdl-31441039

RESUMO

CHRM3 codes for the M3 muscarinic acetylcholine receptor that is located on the surface of smooth muscle cells of the detrusor, the muscle that effects urinary voiding. Previously, we reported brothers in a family affected by a congenital prune belly-like syndrome with mydriasis due to homozygous CHRM3 frameshift variants. In this study, we describe two sisters with bladders that failed to empty completely and pupils that failed to constrict fully in response to light, who are homozygous for the missense CHRM3 variant c.352G > A; p.(Gly118Arg). Samples were not available for genotyping from their brother, who had a history of multiple urinary tract infections and underwent surgical bladder draining in the first year of life. He died at the age of 6 years. This is the first independent report of biallelic variants in CHRM3 in a family with a rare serious bladder disorder associated with mydriasis and provides important evidence of this association.


Assuntos
Mutação de Sentido Incorreto/genética , Receptor Muscarínico M3/genética , Doenças da Bexiga Urinária/genética , Sequência de Bases , Família , Feminino , Homozigoto , Humanos , Malásia , Masculino
7.
Am J Hum Genet ; 104(5): 994-1006, 2019 05 02.
Artigo em Inglês | MEDLINE | ID: mdl-31051115

RESUMO

Congenital lower urinary-tract obstruction (LUTO) is caused by anatomical blockage of the bladder outflow tract or by functional impairment of urinary voiding. About three out of 10,000 pregnancies are affected. Although several monogenic causes of functional obstruction have been defined, it is unknown whether congenital LUTO caused by anatomical blockage has a monogenic cause. Exome sequencing in a family with four affected individuals with anatomical blockage of the urethra identified a rare nonsense variant (c.2557C>T [p.Arg853∗]) in BNC2, encoding basonuclin 2, tracking with LUTO over three generations. Re-sequencing BNC2 in 697 individuals with LUTO revealed three further independent missense variants in three unrelated families. In human and mouse embryogenesis, basonuclin 2 was detected in lower urinary-tract rudiments. In zebrafish embryos, bnc2 was expressed in the pronephric duct and cloaca, analogs of the mammalian lower urinary tract. Experimental knockdown of Bnc2 in zebrafish caused pronephric-outlet obstruction and cloacal dilatation, phenocopying human congenital LUTO. Collectively, these results support the conclusion that variants in BNC2 are strongly implicated in LUTO etiology as a result of anatomical blockage.


Assuntos
Aberrações Cromossômicas , Proteínas de Ligação a DNA/genética , Doenças Fetais/genética , Mutação , Obstrução do Colo da Bexiga Urinária/congênito , Obstrução do Colo da Bexiga Urinária/genética , Adulto , Animais , Criança , Feminino , Doenças Fetais/patologia , Genes Dominantes , Idade Gestacional , Humanos , Masculino , Camundongos , Pessoa de Meia-Idade , Linhagem , Gravidez , Obstrução do Colo da Bexiga Urinária/patologia , Peixe-Zebra
8.
Kidney Int ; 95(5): 1138-1152, 2019 05.
Artigo em Inglês | MEDLINE | ID: mdl-30885509

RESUMO

Mutations in leucine-rich-repeats and immunoglobulin-like-domains 2 (LRIG2) or in heparanase 2 (HPSE2) cause urofacial syndrome, a devastating autosomal recessive disease of functional bladder outlet obstruction. It has been speculated that urofacial syndrome has a neural basis, but it is unknown whether defects in urinary bladder innervation are present. We hypothesized that urofacial syndrome features a peripheral neuropathy of the bladder. Mice with homozygous targeted Lrig2 mutations had urinary defects resembling those found in urofacial syndrome. There was no anatomical blockage of the outflow tract, consistent with a functional bladder outlet obstruction. Transcriptome analysis revealed differential expression of 12 known transcripts in addition to Lrig2, including 8 with established roles in neurobiology. Mice with homozygous mutations in either Lrig2 or Hpse2 had increased nerve density within the body of the urinary bladder and decreased nerve density around the urinary outflow tract. In a sample of 155 children with chronic kidney disease and urinary symptoms, we discovered novel homozygous missense LRIG2 variants that were predicted to be pathogenic in 2 individuals with non-syndromic bladder outlet obstruction. These observations provide evidence that a peripheral neuropathy is central to the pathobiology of functional bladder outlet obstruction in urofacial syndrome, and emphasize the importance of LRIG2 and heparanase 2 for nerve patterning in the urinary tract.


Assuntos
Glucuronidase/genética , Glicoproteínas de Membrana/genética , Doenças do Sistema Nervoso Periférico/genética , Obstrução do Colo da Bexiga Urinária/genética , Bexiga Urinária/inervação , Doenças Urológicas/genética , Animais , Criança , Análise Mutacional de DNA , Fácies , Feminino , Perfilação da Expressão Gênica , Homozigoto , Humanos , Masculino , Camundongos , Camundongos Knockout , Mutação de Sentido Incorreto , Doenças do Sistema Nervoso Periférico/patologia , Bexiga Urinária/patologia , Obstrução do Colo da Bexiga Urinária/patologia , Doenças Urológicas/patologia
9.
Am J Med Genet A ; 179(3): 404-409, 2019 03.
Artigo em Inglês | MEDLINE | ID: mdl-30628148

RESUMO

The bladder exstrophy-epispadias complex (BEEC) comprises of a spectrum of anterior midline defects, all affecting the lower urinary tract, the external genitalia, and the bony pelvis. In extreme cases, the gastrointestinal tract is also affected. The pathogenesis of BEEC is unclear but chromosomal aberrations have been reported. In particular, duplications of 22q11.2 have been identified in eight unrelated individuals with BEEC. The current study aimed to identify chromosomal copy number variants in BEEC. Analyses was performed using the Affymetrix Genome-wide SNP6.0 assay in 92 unrelated patients cared for by two UK pediatric urology centers. Three individuals had a 22q11.2 duplication, a significantly higher number than that found in a control group of 12,500 individuals with developmental delay who had undergone microarray testing (p < .0001). Sequencing of CRKL, implicated in renal tract malformations in DiGeorge syndrome critical region at 22q11, in 89 individuals with BEEC lacking 22q11 duplications revealed no pathogenic variants. To date, 22q11.2 duplication is the genetic variant most commonly associated with BEEC. This is consistent with the hypothesis that altered expression of a single, yet to be defined, gene therein is critical to the pathogenesis of this potentially devastating congenital disorder.


Assuntos
Anormalidades Múltiplas/diagnóstico , Anormalidades Múltiplas/genética , Extrofia Vesical/diagnóstico , Extrofia Vesical/genética , Duplicação Cromossômica/genética , Síndrome de DiGeorge/diagnóstico , Síndrome de DiGeorge/genética , Predisposição Genética para Doença , Proteínas Adaptadoras de Transdução de Sinal/genética , Cromossomos Humanos Par 22/genética , Variações do Número de Cópias de DNA , Feminino , Estudos de Associação Genética , Humanos , Masculino , Razão de Chances , Fenótipo , Polimorfismo de Nucleotídeo Único , Reino Unido
10.
Pediatr Nephrol ; 34(2): 195-210, 2019 02.
Artigo em Inglês | MEDLINE | ID: mdl-29181713

RESUMO

Steroid-resistant nephrotic syndrome (SRNS) is a common cause of chronic kidney disease in childhood and has a significant risk of rapid progression to end-stage renal disease. The identification of over 50 monogenic causes of SRNS has revealed dysfunction in podocyte-associated proteins in the pathogenesis of proteinuria, highlighting their essential role in glomerular function. Recent technological advances in high-throughput sequencing have enabled indication-driven genetic panel testing for patients with SRNS. The availability of genetic testing, combined with the significant phenotypic variability of monogenic SRNS, poses unique challenges for clinicians when directing genetic testing. This highlights the need for clear clinical guidelines that provide a systematic approach for mutational screening in SRNS. The likelihood of identifying a causative mutation is inversely related to age at disease onset and is increased with a positive family history or the presence of extra-renal manifestations. An unequivocal molecular diagnosis could allow for a personalised treatment approach with weaning of immunosuppressive therapy, avoidance of renal biopsy and provision of accurate, well-informed genetic counselling. Identification of novel causative mutations will continue to unravel the pathogenic mechanisms of glomerular disease and provide new insights into podocyte biology and glomerular function.


Assuntos
Resistência a Medicamentos/genética , Testes Genéticos/normas , Glucocorticoides/farmacologia , Síndrome Nefrótica/tratamento farmacológico , Seleção de Pacientes , Fatores Etários , Idade de Início , Biópsia , Criança , Análise Mutacional de DNA/normas , Glucocorticoides/uso terapêutico , Sequenciamento de Nucleotídeos em Larga Escala/normas , Humanos , Glomérulos Renais/patologia , Anamnese , Mutação , Síndrome Nefrótica/genética , Síndrome Nefrótica/patologia , Medicina de Precisão/métodos , Resultado do Tratamento
11.
Am J Hum Genet ; 101(6): 1021-1033, 2017 Dec 07.
Artigo em Inglês | MEDLINE | ID: mdl-29220674

RESUMO

ACTB encodes ß-actin, an abundant cytoskeletal housekeeping protein. In humans, postulated gain-of-function missense mutations cause Baraitser-Winter syndrome (BRWS), characterized by intellectual disability, cortical malformations, coloboma, sensorineural deafness, and typical facial features. To date, the consequences of loss-of-function ACTB mutations have not been proven conclusively. We describe heterozygous ACTB deletions and nonsense and frameshift mutations in 33 individuals with developmental delay, apparent intellectual disability, increased frequency of internal organ malformations (including those of the heart and the renal tract), growth retardation, and a recognizable facial gestalt (interrupted wavy eyebrows, dense eyelashes, wide nose, wide mouth, and a prominent chin) that is distinct from characteristics of individuals with BRWS. Strikingly, this spectrum overlaps with that of several chromatin-remodeling developmental disorders. In wild-type mouse embryos, ß-actin expression was prominent in the kidney, heart, and brain. ACTB mRNA expression levels in lymphoblastic lines and fibroblasts derived from affected individuals were decreased in comparison to those in control cells. Fibroblasts derived from an affected individual and ACTB siRNA knockdown in wild-type fibroblasts showed altered cell shape and migration, consistent with known roles of cytoplasmic ß-actin. We also demonstrate that ACTB haploinsufficiency leads to reduced cell proliferation, altered expression of cell-cycle genes, and decreased amounts of nuclear, but not cytoplasmic, ß-actin. In conclusion, we show that heterozygous loss-of-function ACTB mutations cause a distinct pleiotropic malformation syndrome with intellectual disability. Our biological studies suggest that a critically reduced amount of this protein alters cell shape, migration, proliferation, and gene expression to the detriment of brain, heart, and kidney development.


Assuntos
Anormalidades Múltiplas/genética , Actinas/genética , Deficiências do Desenvolvimento/genética , Haploinsuficiência/genética , Actinas/biossíntese , Adolescente , Adulto , Idoso , Animais , Ciclo Celular/genética , Proliferação de Células/genética , Criança , Pré-Escolar , Códon sem Sentido/genética , Coloboma/genética , Fácies , Feminino , Mutação da Fase de Leitura/genética , Deleção de Genes , Humanos , Lactente , Recém-Nascido , Deficiência Intelectual/genética , Masculino , Malformações do Desenvolvimento Cortical/genética , Camundongos , Interferência de RNA , RNA Interferente Pequeno/genética , Adulto Jovem
12.
Am J Hum Genet ; 97(2): 291-301, 2015 Aug 06.
Artigo em Inglês | MEDLINE | ID: mdl-26235987

RESUMO

Congenital anomalies of the kidneys and urinary tract (CAKUT) are the most common cause of chronic kidney disease in the first three decades of life. Identification of single-gene mutations that cause CAKUT permits the first insights into related disease mechanisms. However, for most cases the underlying defect remains elusive. We identified a kindred with an autosomal-dominant form of CAKUT with predominant ureteropelvic junction obstruction. By whole exome sequencing, we identified a heterozygous truncating mutation (c.1010delG) of T-Box transcription factor 18 (TBX18) in seven affected members of the large kindred. A screen of additional families with CAKUT identified three families harboring two heterozygous TBX18 mutations (c.1570C>T and c.487A>G). TBX18 is essential for developmental specification of the ureteric mesenchyme and ureteric smooth muscle cells. We found that all three TBX18 altered proteins still dimerized with the wild-type protein but had prolonged protein half life and exhibited reduced transcriptional repression activity compared to wild-type TBX18. The p.Lys163Glu substitution altered an amino acid residue critical for TBX18-DNA interaction, resulting in impaired TBX18-DNA binding. These data indicate that dominant-negative TBX18 mutations cause human CAKUT by interference with TBX18 transcriptional repression, thus implicating ureter smooth muscle cell development in the pathogenesis of human CAKUT.


Assuntos
Regulação da Expressão Gênica no Desenvolvimento/genética , Genes Dominantes/genética , Músculo Liso/embriologia , Mutação/genética , Proteínas com Domínio T/genética , Ureter/embriologia , Sistema Urinário/anormalidades , Sequência de Bases , Ensaio de Desvio de Mobilidade Eletroforética , Exoma/genética , Células HEK293 , Humanos , Imuno-Histoquímica , Imunoprecipitação , Microscopia de Fluorescência , Dados de Sequência Molecular , Linhagem , Análise de Sequência de DNA
13.
Pediatr Nephrol ; 30(9): 1459-65, 2015 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-25739341

RESUMO

BACKGROUND: Mutations in podocyte and basement membrane genes are associated with a growing spectrum of glomerular disease affecting adults and children. Investigation of familial cases has helped to build understanding of both normal physiology and disease. METHODS: We investigated a consanguineous family with a wide clinical phenotype of glomerular disease using clinical, histological, and new genetic studies. RESULTS: We report striking variability in severity of nephropathy within an X-linked Alport syndrome (XLAS) family. Four siblings each carried a mutant COL4A5 allele, p.(Gly953Val) and p.(Gly1033Arg). Two boys had signs limited to hematuria and mild/moderate proteinuria. In striking contrast, a sister presented with end-stage renal disease (ESRD) at 8 years of age and an infant brother presented with nephrotic syndrome, progressing to ESRD by 3 years of age. Both were subsequently found to have homozygous variants in MYO1E, p.(Lys118Glu) and p.(Thr876Arg). MYO1E is a gene implicated in focal segmental glomerulosclerosis and it encodes a podocyte-expressed non-muscle myosin. Bioinformatic modeling demonstrated that the collagen IV-alpha3,4,5 extracellular network connected via known protein-protein interactions to intracellular myosin 1E. CONCLUSIONS: COL4A5 and MYO1E mutations may summate to perturb common signaling pathways, resulting in more severe disease than anticipated independently. We suggest screening for MYO1E and other non-COL4 'podocyte gene' mutations in XLAS when clinical nephropathy is more severe than expected for an individual's age and sex.


Assuntos
Colágeno Tipo IV/genética , Glomérulos Renais/patologia , Miosina Tipo I/genética , Nefrite Hereditária , Adulto , Criança , Pré-Escolar , Feminino , Humanos , Lactente , Padrões de Herança/genética , Masculino , Mutação , Nefrite Hereditária/diagnóstico , Nefrite Hereditária/genética , Nefrite Hereditária/fisiopatologia , Linhagem , Índice de Gravidade de Doença , Irmãos
14.
J Am Soc Nephrol ; 26(4): 797-804, 2015 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-25145936

RESUMO

Urofacial syndrome (UFS) is an autosomal recessive congenital disease featuring grimacing and incomplete bladder emptying. Mutations of HPSE2, encoding heparanase 2, a heparanase 1 inhibitor, occur in UFS, but knowledge about the HPSE2 mutation spectrum is limited. Here, seven UFS kindreds with HPSE2 mutations are presented, including one with deleted asparagine 254, suggesting a role for this amino acid, which is conserved in vertebrate orthologs. HPSE2 mutations were absent in 23 non-neurogenic neurogenic bladder probands and, of 439 families with nonsyndromic vesicoureteric reflux, only one carried a putative pathogenic HPSE2 variant. Homozygous Hpse2 mutant mouse bladders contained urine more often than did wild-type organs, phenocopying human UFS. Pelvic ganglia neural cell bodies contained heparanase 1, heparanase 2, and leucine-rich repeats and immunoglobulin-like domains-2 (LRIG2), which is mutated in certain UFS families. In conclusion, heparanase 2 is an autonomic neural protein implicated in bladder emptying, but HPSE2 variants are uncommon in urinary diseases resembling UFS.


Assuntos
Glucuronidase/genética , Sistema Urinário/fisiopatologia , Doenças Urológicas/genética , Animais , Fácies , Feminino , Humanos , Masculino , Camundongos , Camundongos Endogâmicos C57BL , Mutação , Doenças Urológicas/fisiopatologia
15.
Hum Mol Genet ; 23(16): 4302-14, 2014 Aug 15.
Artigo em Inglês | MEDLINE | ID: mdl-24691552

RESUMO

Urofacial syndrome (UFS; previously Ochoa syndrome) is an autosomal recessive disease characterized by incomplete bladder emptying during micturition. This is associated with a dyssynergia in which the urethral walls contract at the same time as the detrusor smooth muscle in the body of the bladder. UFS is also characterized by an abnormal facial expression upon smiling, and bilateral weakness in the distribution of the facial nerve has been reported. Biallelic mutations in HPSE2 occur in UFS. This gene encodes heparanase 2, a protein which inhibits the activity of heparanase. Here, we demonstrate, for the first time, an in vivo developmental role for heparanase 2. We identified the Xenopus orthologue of heparanase 2 and showed that the protein is localized to the embryonic ventrolateral neural tube where motor neurons arise. Morpholino-induced loss of heparanase 2 caused embryonic skeletal muscle paralysis, and morphant motor neurons had aberrant morphology including less linear paths and less compactly-bundled axons than normal. Biochemical analyses demonstrated that loss of heparanase 2 led to upregulation of fibroblast growth factor 2/phosphorylated extracellular signal-related kinase signalling and to alterations in levels of transcripts encoding neural- and muscle-associated molecules. Thus, a key role of heparanase 2 is to buffer growth factor signalling in motor neuron development. These results shed light on the pathogenic mechanisms underpinning the clinical features of UFS and support the contention that congenital peripheral neuropathy is a key feature of this disorder.


Assuntos
Glucuronidase/genética , Glucuronidase/metabolismo , Neurônios Motores/metabolismo , Neurogênese/fisiologia , Animais , Fácies , Fator 2 de Crescimento de Fibroblastos/metabolismo , Técnicas de Silenciamento de Genes , Músculo Esquelético/embriologia , Músculo Esquelético/metabolismo , Mutação , Tubo Neural/metabolismo , Doenças Urológicas/genética , Xenopus , eIF-2 Quinase/metabolismo
16.
Pediatr Nephrol ; 29(3): 353-60, 2014 Mar.
Artigo em Inglês | MEDLINE | ID: mdl-23584850

RESUMO

Lower urinary tract and/or kidney malformations are collectively the most common cause of end-stage renal disease in children, and they are also likely to account for a major subset of young adults requiring renal replacement therapy. Advances have been made regarding the discovery of the genetic causes of human kidney malformations. Indeed, testing for mutations of key nephrogenesis genes is now feasible for patients seen in nephrology clinics. Unfortunately, less is known about defined genetic bases of human lower urinary tract anomalies. The focus of this review is the genetic bases of congenital structural and functional disorders of the urinary bladder. Three are highlighted. First, prune belly syndrome, where mutations of CHRM3, encoding an acetylcholine receptor, HNF1B, encoding a transcription factor, and ACTA2, encoding a cytoskeletal protein, have been reported. Second, the urofacial syndrome, where mutations of LRIG2 and HPSE2, encoding proteins localised in nerves invading the fetal bladder, have been defined. Finally, we review emerging evidence that bladder exstrophy may have genetic bases, including variants in the TP63 promoter. These genetic discoveries provide a new perspective on a group of otherwise poorly understood diseases.


Assuntos
Mutação , Doenças da Bexiga Urinária/genética , Bexiga Urinária/anormalidades , Actinas/genética , Animais , Extrofia Vesical/genética , Modelos Animais de Doenças , Fácies , Predisposição Genética para Doença , Glucuronidase/genética , Fator 1-beta Nuclear de Hepatócito/genética , Humanos , Glicoproteínas de Membrana/genética , Camundongos , Fenótipo , Síndrome do Abdome em Ameixa Seca/genética , Receptor Muscarínico M3/genética , Fatores de Risco , Fatores de Transcrição/genética , Proteínas Supressoras de Tumor/genética , Bexiga Urinária/fisiopatologia , Doenças da Bexiga Urinária/congênito , Doenças da Bexiga Urinária/fisiopatologia , Doenças Urológicas/genética
17.
Pediatr Nephrol ; 29(4): 513-8, 2014 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-23832138

RESUMO

The urofacial, or Ochoa, syndrome is characterised by congenital urinary bladder dysfunction together with an abnormal grimace upon smiling, laughing and crying. It can present as fetal megacystis. Postnatal features include urinary incontinence and incomplete bladder emptying due to simultaneous detrusor muscle and bladder outlet contractions. Vesicoureteric reflux is often present, and the condition can be complicated by urosepsis and end-stage renal disease. The syndrome has long been postulated to have neural basis, and it can be familial when it is inherited in an autosomal recessive manner. Most individuals with urofacial syndrome genetically studied to date carry biallelic, postulated functionally null mutations of HPSE2 or, less commonly, of LRIG2. Little is known about the biology of the respective encoded proteins, heparanase 2 and leucine-rich repeats and immunoglobulin-like domains 2. Nevertheless, the observations that heparanase 2 can bind heparan sulphate proteolgycans and inhibit heparanase 1 enzymatic activity and that LRIG2 can modulate receptor tyrosine kinase growth factor signalling each point to biological roles relevant to tissue differentiation. Moreover, both heparanase 2 and LRIG2 proteins are detected in autonomic nerves growing into fetal bladders. The collective evidence is consistent with the hypothesis that urofacial syndrome genes code for proteins which work in a common pathway to facilitate neural growth into, and/or function within, the bladder. This molecular pathway may also have relevance to our understanding of the pathogenesis of other lower tract diseases, including Hinman-Allen syndrome, or non-neurogenic neurogenic bladder, and of the subset of individuals who have primary vesicoureteric reflux accompanied by bladder dysfunction.


Assuntos
Fácies , Bexiga Urinária/anormalidades , Doenças Urológicas , Humanos , Bexiga Urinária/inervação , Doenças Urológicas/congênito , Doenças Urológicas/genética
18.
Am J Hum Genet ; 92(2): 259-64, 2013 Feb 07.
Artigo em Inglês | MEDLINE | ID: mdl-23313374

RESUMO

Urofacial syndrome (UFS) (or Ochoa syndrome) is an autosomal-recessive disease characterized by congenital urinary bladder dysfunction, associated with a significant risk of kidney failure, and an abnormal facial expression upon smiling, laughing, and crying. We report that a subset of UFS-affected individuals have biallelic mutations in LRIG2, encoding leucine-rich repeats and immunoglobulin-like domains 2, a protein implicated in neural cell signaling and tumorigenesis. Importantly, we have demonstrated that rare variants in LRIG2 might be relevant to nonsyndromic bladder disease. We have previously shown that UFS is also caused by mutations in HPSE2, encoding heparanase-2. LRIG2 and heparanase-2 were immunodetected in nerve fascicles growing between muscle bundles within the human fetal bladder, directly implicating both molecules in neural development in the lower urinary tract.


Assuntos
Glicoproteínas de Membrana/genética , Mutação/genética , Doenças Urológicas/genética , Sequência de Bases , Criança , Pré-Escolar , Análise Mutacional de DNA , Fácies , Família , Feminino , Humanos , Imuno-Histoquímica , Lactente , Masculino , Dados de Sequência Molecular , Linhagem , Bexiga Urinária/patologia , Bexiga Urinaria Neurogênica/genética , Doenças Urológicas/fisiopatologia
19.
Am J Hum Genet ; 89(5): 668-74, 2011 Nov 11.
Artigo em Inglês | MEDLINE | ID: mdl-22077972

RESUMO

Urinary bladder malformations associated with bladder outlet obstruction are a frequent cause of progressive renal failure in children. We here describe a muscarinic acetylcholine receptor M3 (CHRM3) (1q41-q44) homozygous frameshift mutation in familial congenital bladder malformation associated with a prune-belly-like syndrome, defining an isolated gene defect underlying this sometimes devastating disease. CHRM3 encodes the M3 muscarinic acetylcholine receptor, which we show is present in developing renal epithelia and bladder muscle. These observations may imply that M3 has a role beyond its known contribution to detrusor contractions. This Mendelian disease caused by a muscarinic acetylcholine receptor mutation strikingly phenocopies Chrm3 null mutant mice.


Assuntos
Erros Inatos do Metabolismo/genética , Síndrome do Abdome em Ameixa Seca/genética , Receptor Muscarínico M3 , Bexiga Urinária , Animais , Sequência de Bases , Consanguinidade , Feminino , Mutação da Fase de Leitura/genética , Humanos , Mutação INDEL/genética , Imuno-Histoquímica , Masculino , Camundongos , Camundongos Knockout , Modelos Moleculares , Síndrome do Abdome em Ameixa Seca/patologia , Receptor Muscarínico M3/deficiência , Receptor Muscarínico M3/genética , Homologia de Sequência do Ácido Nucleico , Fatores Sexuais , Bexiga Urinária/embriologia , Bexiga Urinária/patologia , Obstrução do Colo da Bexiga Urinária/genética , Obstrução do Colo da Bexiga Urinária/patologia
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