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Dive into the research topics where Edgar A. Otto is active.

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Featured researches published by Edgar A. Otto.


Nature Genetics | 2003

Mutations in INVS encoding inversin cause nephronophthisis type 2, linking renal cystic disease to the function of primary cilia and left-right axis determination

Edgar A. Otto; Bernhard Schermer; Tomoko Obara; John F. O'Toole; Karl S. Hiller; Adelheid M. Mueller; Rainer G. Ruf; Julia Hoefele; Frank Beekmann; Daniel Landau; John Foreman; Judith A. Goodship; Tom Strachan; Andreas Kispert; Matthias Wolf; Marie F. Gagnadoux; Hubert Nivet; Corinne Antignac; Gerd Walz; Iain A. Drummond; Thomas Benzing; Friedhelm Hildebrandt

Nephronophthisis (NPHP), an autosomal recessive cystic kidney disease, leads to chronic renal failure in children. The genes mutated in NPHP1 and NPHP4 have been identified, and a gene locus associated with infantile nephronophthisis (NPHP2) was mapped. The kidney phenotype of NPHP2 combines clinical features of NPHP and polycystic kidney disease (PKD). Here, we identify inversin (INVS) as the gene mutated in NPHP2 with and without situs inversus. We show molecular interaction of inversin with nephrocystin, the product of the gene mutated in NPHP1 and interaction of nephrocystin with β-tubulin, a main component of primary cilia. We show that nephrocystin, inversin and β-tubulin colocalize to primary cilia of renal tubular cells. Furthermore, we produce a PKD-like renal cystic phenotype and randomization of heart looping by knockdown of invs expression in zebrafish. The interaction and colocalization in cilia of inversin, nephrocystin and β-tubulin connect pathogenetic aspects of NPHP to PKD, to primary cilia function and to left-right axis determination.


Nature | 2001

Barttin is a Cl- channel beta-subunit crucial for renal Cl- reabsorption and inner ear K+ secretion.

Raúl Estévez; Thomas Boettger; Valentin Stein; Ralf Birkenhäger; Edgar A. Otto; Friedhelm Hildebrandt; Thomas J. Jentsch

Renal salt loss in Bartters syndrome is caused by impaired transepithelial transport in the loop of Henle. Sodium chloride is taken up apically by the combined activity of NKCC2 (Na+-K--2Cl- cotransporters) and ROMK potassium channels. Chloride ions exit from the cell through basolateral ClC-Kb chloride channels. Mutations in the three corresponding genes have been identified that correspond to Bartters syndrome types 1–3. The gene encoding the integral membrane protein barttin is mutated in a form of Bartters syndrome that is associated with congenital deafness and renal failure. Here we show that barttin acts as an essential β-subunit for ClC-Ka and ClC-Kb chloride channels, with which it colocalizes in basolateral membranes of renal tubules and of potassium-secreting epithelia of the inner ear. Disease-causing mutations in either ClC-Kb or barttin compromise currents through heteromeric channels. Currents can be stimulated further by mutating a proline-tyrosine (PY) motif on barttin. This work describes the first known β-subunit for CLC chloride channels and reveals that heteromers formed by ClC-K and barttin are crucial for renal salt reabsorption and potassium recycling in the inner ear.


Nature Genetics | 2006

The centrosomal protein nephrocystin-6 is mutated in Joubert syndrome and activates transcription factor ATF4

John A. Sayer; Edgar A. Otto; John F. O'Toole; Gudrun Nürnberg; Michael A. Kennedy; Christian F. W. Becker; Hans Christian Hennies; Juliana Helou; Massimo Attanasio; Blake V. Fausett; Boris Utsch; Hemant Khanna; Yan Liu; Iain A. Drummond; Isao Kawakami; Takehiro Kusakabe; Motoyuki Tsuda; Li Ma; Hwankyu Lee; Ronald G. Larson; Susan J. Allen; Christopher J. Wilkinson; Erich A. Nigg; Chengchao Shou; Concepción Lillo; David S. Williams; Bernd Hoppe; Markus J. Kemper; Thomas J. Neuhaus; Melissa A. Parisi

The molecular basis of nephronophthisis, the most frequent genetic cause of renal failure in children and young adults, and its association with retinal degeneration and cerebellar vermis aplasia in Joubert syndrome are poorly understood. Using positional cloning, we here identify mutations in the gene CEP290 as causing nephronophthisis. It encodes a protein with several domains also present in CENPF, a protein involved in chromosome segregation. CEP290 (also known as NPHP6) interacts with and modulates the activity of ATF4, a transcription factor implicated in cAMP-dependent renal cyst formation. NPHP6 is found at centrosomes and in the nucleus of renal epithelial cells in a cell cycle–dependent manner and in connecting cilia of photoreceptors. Abrogation of its function in zebrafish recapitulates the renal, retinal and cerebellar phenotypes of Joubert syndrome. Our findings help establish the link between centrosome function, tissue architecture and transcriptional control in the pathogenesis of cystic kidney disease, retinal degeneration, and central nervous system development.


Nature Genetics | 2006

Positional cloning uncovers mutations in PLCE1 responsible for a nephrotic syndrome variant that may be reversible

Bernward Hinkes; Roger C. Wiggins; Rasheed Gbadegesin; Christopher N. Vlangos; Dominik Seelow; Gudrun Nürnberg; Puneet Garg; Rakesh Verma; Hassan Chaib; Bethan E. Hoskins; Shazia Ashraf; Christian F. W. Becker; Hans Christian Hennies; Meera Goyal; Bryan L. Wharram; Asher D. Schachter; Sudha Mudumana; Iain A. Drummond; Dontscho Kerjaschki; Rüdiger Waldherr; Alexander Dietrich; Fatih Ozaltin; Aysin Bakkaloglu; Roxana Cleper; Lina Basel-Vanagaite; Martin Pohl; Martin Griebel; Alexey N. Tsygin; Alper Soylu; Dominik Müller

Nephrotic syndrome, a malfunction of the kidney glomerular filter, leads to proteinuria, edema and, in steroid-resistant nephrotic syndrome, end-stage kidney disease. Using positional cloning, we identified mutations in the phospholipase C epsilon gene (PLCE1) as causing early-onset nephrotic syndrome with end-stage kidney disease. Kidney histology of affected individuals showed diffuse mesangial sclerosis (DMS). Using immunofluorescence, we found PLCε1 expression in developing and mature glomerular podocytes and showed that DMS represents an arrest of normal glomerular development. We identified IQ motif–containing GTPase-activating protein 1 as a new interaction partner of PLCε1. Two siblings with a missense mutation in an exon encoding the PLCε1 catalytic domain showed histology characteristic of focal segmental glomerulosclerosis. Notably, two other affected individuals responded to therapy, making this the first report of a molecular cause of nephrotic syndrome that may resolve after therapy. These findings, together with the zebrafish model of human nephrotic syndrome generated by plce1 knockdown, open new inroads into pathophysiology and treatment mechanisms of nephrotic syndrome.


Nature Genetics | 2001

Mutation of BSND causes Bartter syndrome with sensorineural deafness and kidney failure

Ralf Birkenhäger; Edgar A. Otto; Maria J. Schürmann; Martin Vollmer; Eva Maria Ruf; Irina Maier-Lutz; Frank Beekmann; Andrea Fekete; Heymut Omran; Delphine Feldmann; David V. Milford; Nicola Jeck; Martin Konrad; Daniel Landau; N.V.A.M. Knoers; Corinne Antignac; Ralf Sudbrak; Andreas Kispert; Friedhelm Hildebrandt

Antenatal Bartter syndrome (aBS) comprises a heterogeneous group of autosomal recessive salt-losing nephropathies. Identification of three genes that code for renal transporters and channels as responsible for aBS has resulted in new insights into renal salt handling, diuretic action and blood-pressure regulation. A gene locus of a fourth variant of aBS called BSND, which in contrast to the other forms is associated with sensorineural deafness (SND) and renal failure, has been mapped to chromosome 1p. We report here the identification by positional cloning, in a region not covered by the human genome sequencing projects, of a new gene, BSND, as the cause of BSND. We examined ten families with BSND and detected seven different mutations in BSND that probably result in loss of function. In accordance with the phenotype, BSND is expressed in the thin limb and the thick ascending limb of the loop of Henle in the kidney and in the dark cells of the inner ear. The gene encodes a hitherto unknown protein with two putative transmembrane α-helices and thus might function as a regulator for ion-transport proteins involved in aBS, or else as a new transporter or channel itself.


Nature Genetics | 2005

Nephrocystin-5, a ciliary IQ domain protein, is mutated in Senior-Loken syndrome and interacts with RPGR and calmodulin

Edgar A. Otto; Bart Loeys; Hemant Khanna; Jan Hellemans; Ralf Sudbrak; Shuling Fan; Ulla Muerb; John F. O'Toole; Juliana Helou; Massimo Attanasio; Boris Utsch; John A. Sayer; Concepción Lillo; David Jimeno; Paul Coucke; Anne De Paepe; Richard Reinhardt; Sven Klages; Motoyuki Tsuda; Isao Kawakami; Takehiro Kusakabe; Heymut Omran; Anita Imm; Melissa Tippens; Pamela A. Raymond; Jo Hill; Phil L. Beales; Shirley He; Andreas Kispert; Benjamin Margolis

Nephronophthisis (NPHP) is the most frequent genetic cause of chronic renal failure in children. Identification of four genes mutated in NPHP subtypes 1–4 (refs. 4–9) has linked the pathogenesis of NPHP to ciliary functions. Ten percent of affected individuals have retinitis pigmentosa, constituting the renal-retinal Senior-Loken syndrome (SLSN). Here we identify, by positional cloning, mutations in an evolutionarily conserved gene, IQCB1 (also called NPHP5), as the most frequent cause of SLSN. IQCB1 encodes an IQ-domain protein, nephrocystin-5. All individuals with IQCB1 mutations have retinitis pigmentosa. Hence, we examined the interaction of nephrocystin-5 with RPGR (retinitis pigmentosa GTPase regulator), which is expressed in photoreceptor cilia and associated with 10–20% of retinitis pigmentosa. We show that nephrocystin-5, RPGR and calmodulin can be coimmunoprecipitated from retinal extracts, and that these proteins localize to connecting cilia of photoreceptors and to primary cilia of renal epithelial cells. Our studies emphasize the central role of ciliary dysfunction in the pathogenesis of SLSN.


Nature Genetics | 2003

Mutations in a novel gene, NPHP3, cause adolescent nephronophthisis, tapeto-retinal degeneration and hepatic fibrosis.

Heike Olbrich; Manfred Fliegauf; Julia Hoefele; Andreas Kispert; Edgar A. Otto; Andreas Volz; Matthias Wolf; Gürsel Sasmaz; Ute Trauer; Richard Reinhardt; Ralf Sudbrak; Corinne Antignac; Norbert Gretz; Gerd Walz; Bernhard Schermer; Thomas Benzing; Friedhelm Hildebrandt; Heymut Omran

Nephronophthisis (NPHP), a group of autosomal recessive cystic kidney disorders, is the most common genetic cause of progressive renal failure in children and young adults. NPHP may be associated with Leber congenital amaurosis, tapeto-retinal degeneration, cerebellar ataxia, cone-shaped epiphyses, congenital oculomotor apraxia and hepatic fibrosis. Loci associated with an infantile type of NPHP on 9q22–q31 (NPHP2), juvenile types of NPHP on chromosomes 2q12–q13 (NPHP1) and 1p36 (NPHP4) and an adolescent type of NPHP on 3q21–q22 (NPHP3) have been mapped. NPHP1 and NPHP4 have been identified, and interaction of the respective encoded proteins nephrocystin and nephrocystin-4 has been shown. Here we report the identification of NPHP3, encoding a novel 1,330-amino acid protein that interacts with nephrocystin. We describe mutations in NPHP3 in families with isolated NPHP and in families with NPHP with associated hepatic fibrosis or tapeto-retinal degeneration. We show that the mouse ortholog Nphp3 is expressed in the node, kidney tubules, retina, respiratory epithelium, liver, biliary tract and neural tissues. In addition, we show that a homozygous missense mutation in Nphp3 is probably responsible for the polycystic kidney disease (pcy) mouse phenotype. Interventional studies in the pcy mouse have shown beneficial effects by modification of protein intake and administration of methylprednisolone, suggesting therapeutic strategies for treating individuals with NPHP3.


Nature Reviews Genetics | 2005

Cilia and centrosomes: a unifying pathogenic concept for cystic kidney disease?

Friedhelm Hildebrandt; Edgar A. Otto

Cystic kidney diseases are among the most frequent lethal genetic diseases. Positional cloning of novel cystic kidney disease genes revealed that their products (cystoproteins) are expressed in sensory organelles called primary cilia, in basal bodies or in centrosomes. Primary cilia link mechanosensory, visual, osmotic, gustatory and other stimuli to mechanisms of cell-cycle control and epithelial cell polarity. The ciliary expression of cystoproteins explains why many other organs might be also affected in patients with cystic kidney disease. Protein–protein interactions among cystoproteins, and their strong evolutionary conservation, provide a basis for a multidisciplinary approach to unravelling the novel signalling mechanisms that are involved in this disease group.


Nature Genetics | 2011

TTC21B contributes both causal and modifying alleles across the ciliopathy spectrum

Erica E. Davis; Qi Zhang; Qin Liu; Bill H. Diplas; Lisa Davey; Jane Hartley; Corinne Stoetzel; Katarzyna Szymanska; Gokul Ramaswami; Clare V. Logan; Donna M. Muzny; Alice C. Young; David A. Wheeler; Pedro Cruz; Margaret Morgan; Lora Lewis; Praveen F. Cherukuri; Baishali Maskeri; Nancy F. Hansen; James C. Mullikin; Robert W. Blakesley; Gerard G. Bouffard; Gabor Gyapay; Susanne Rieger; Burkhard Tönshoff; Ilse Kern; Neveen A. Soliman; Thomas J. Neuhaus; Kathryn J. Swoboda; Hülya Kayserili

Ciliary dysfunction leads to a broad range of overlapping phenotypes, collectively termed ciliopathies. This grouping is underscored by genetic overlap, where causal genes can also contribute modifier alleles to clinically distinct disorders. Here we show that mutations in TTC21B, which encodes the retrograde intraflagellar transport protein IFT139, cause both isolated nephronophthisis and syndromic Jeune asphyxiating thoracic dystrophy. Moreover, although resequencing of TTC21B in a large, clinically diverse ciliopathy cohort and matched controls showed a similar frequency of rare changes, in vivo and in vitro evaluations showed a significant enrichment of pathogenic alleles in cases (P < 0.003), suggesting that TTC21B contributes pathogenic alleles to ∼5% of ciliopathy cases. Our data illustrate how genetic lesions can be both causally associated with diverse ciliopathies and interact in trans with other disease-causing genes and highlight how saturated resequencing followed by functional analysis of all variants informs the genetic architecture of inherited disorders.


Nature Genetics | 2009

A common allele in RPGRIP1L is a modifier of retinal degeneration in ciliopathies.

Hemant Khanna; Erica E. Davis; Carlos A. Murga-Zamalloa; Alejandro Estrada-Cuzcano; Irma Lopez; Anneke I. den Hollander; Marijke N Zonneveld; Mohammad Othman; Naushin Waseem; Christina Chakarova; Cecilia Maubaret; Anna Diaz-Font; Ian M. MacDonald; Donna M. Muzny; David A. Wheeler; Margaret Morgan; Lora Lewis; Clare V. Logan; Perciliz L. Tan; Michael Beer; Chris F. Inglehearn; Richard Alan Lewis; Samuel G. Jacobson; Carsten Bergmann; Philip L. Beales; Tania Attié-Bitach; Colin A. Johnson; Edgar A. Otto; Shomi S. Bhattacharya; Friedhelm Hildebrandt

Despite rapid advances in the identification of genes involved in disease, the predictive power of the genotype remains limited, in part owing to poorly understood effects of second-site modifiers. Here we demonstrate that a polymorphic coding variant of RPGRIP1L (retinitis pigmentosa GTPase regulator-interacting protein-1 like), a ciliary gene mutated in Meckel-Gruber (MKS) and Joubert (JBTS) syndromes, is associated with the development of retinal degeneration in individuals with ciliopathies caused by mutations in other genes. As part of our resequencing efforts of the ciliary proteome, we identified several putative loss-of-function RPGRIP1L mutations, including one common variant, A229T. Multiple genetic lines of evidence showed this allele to be associated with photoreceptor loss in ciliopathies. Moreover, we show that RPGRIP1L interacts biochemically with RPGR, loss of which causes retinal degeneration, and that the Thr229-encoded protein significantly compromises this interaction. Our data represent an example of modification of a discrete phenotype of syndromic disease and highlight the importance of a multifaceted approach for the discovery of modifier alleles of intermediate frequency and effect.

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Matthias Wolf

University of Texas Southwestern Medical Center

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Weibin Zhou

University of Michigan

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Jan Halbritter

Boston Children's Hospital

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