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Dive into the research topics where Eugen Widmeier is active.

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Featured researches published by Eugen Widmeier.


PLOS ONE | 2012

Role of the Polarity Protein Scribble for Podocyte Differentiation and Maintenance

Björn Hartleben; Eugen Widmeier; Nicola Wanner; Miriam Schmidts; Sung Tae Kim; Lisa Schneider; Britta Mayer; Dontscho Kerjaschki; Jeffrey H. Miner; Gerd Walz; Tobias B. Huber

The kidney filter represents a unique assembly of podocyte epithelial cells that tightly enwrap the glomerular capillaries with their complex foot process network. While deficiency of the polarity proteins Crumbs and aPKC result in impaired podocyte foot process architecture, the function of basolateral polarity proteins for podocyte differentiation and maintenance remained unclear. Here we report, that Scribble is expressed in developing podocytes, where it translocates from the lateral aspects of immature podocytes to the basal cell membrane and foot processes of mature podocytes. Immunogold electron microscopy reveals membrane associated localisation of Scribble predominantly at the basolateral site of foot processes. To further study the role of Scribble for podocyte differentiation Scribbleflox/flox mice were generated by introducing loxP-sites into the Scribble introns 1 and 8 and these mice were crossed to NPHS2.Cre mice and Cre deleter mice. Podocyte-specific Scribble knockout mice develop normally and display no histological, ultrastructural or clinical abnormalities up to 12 months of age. In addition, no increased susceptibility to glomerular stress could be detected in these mice. In contrast, constitutive Scribble knockout animals die during embryonic development indicating the fundamental importance of Scribble for embryogenesis. Like in podocyte-specific Scribble knockout mice, the development of podocyte foot processes and the slit diaphragm was unaffected in kidney cultures from constitutive Scribble knockout animals. In summary these results indicate that basolateral polarity signaling via Scribble is dispensable for podocyte function, highlighting the unique feature of podocyte development with its significant apical membrane expansions being dominated by apical polarity complexes rather than by basolateral polarity signaling.


Journal of Clinical Investigation | 2017

Mutations in sphingosine-1-phosphate lyase cause nephrosis with ichthyosis and adrenal insufficiency

Svjetlana Lovric; Sara Goncalves; Heon Yung Gee; Babak Oskouian; Honnappa Srinivas; Won Il Choi; Shirlee Shril; Shazia Ashraf; Weizhen Tan; Jia Rao; Merlin Airik; David Schapiro; Daniela A. Braun; Carolin E. Sadowski; Eugen Widmeier; Tilman Jobst-Schwan; Johanna Magdalena Schmidt; Vladimir Girik; Guido Capitani; Jung H. Suh; Noelle Lachaussée; Christelle Arrondel; Julie Patat; Olivier Gribouval; Monica Furlano; Olivia Boyer; Alain Schmitt; Vincent Vuiblet; Seema Hashmi; Rainer Wilcken

Steroid-resistant nephrotic syndrome (SRNS) causes 15% of chronic kidney disease cases. A mutation in 1 of over 40 monogenic genes can be detected in approximately 30% of individuals with SRNS whose symptoms manifest before 25 years of age. However, in many patients, the genetic etiology remains unknown. Here, we have performed whole exome sequencing to identify recessive causes of SRNS. In 7 families with SRNS and facultative ichthyosis, adrenal insufficiency, immunodeficiency, and neurological defects, we identified 9 different recessive mutations in SGPL1, which encodes sphingosine-1-phosphate (S1P) lyase. All mutations resulted in reduced or absent SGPL1 protein and/or enzyme activity. Overexpression of cDNA representing SGPL1 mutations resulted in subcellular mislocalization of SGPL1. Furthermore, expression of WT human SGPL1 rescued growth of SGPL1-deficient dpl1&Dgr; yeast strains, whereas expression of disease-associated variants did not. Immunofluorescence revealed SGPL1 expression in mouse podocytes and mesangial cells. Knockdown of Sgpl1 in rat mesangial cells inhibited cell migration, which was partially rescued by VPC23109, an S1P receptor antagonist. In Drosophila, Sply mutants, which lack SGPL1, displayed a phenotype reminiscent of nephrotic syndrome in nephrocytes. WT Sply, but not the disease-associated variants, rescued this phenotype. Together, these results indicate that SGPL1 mutations cause a syndromic form of SRNS.


Journal of The American Society of Nephrology | 2013

aPKCλ/ι and aPKCζ Contribute to Podocyte Differentiation and Glomerular Maturation

Björn Hartleben; Eugen Widmeier; Martina Suhm; Kirstin Worthmann; Christoph Schell; Martin Helmstädter; Thorsten Wiech; Gerd Walz; Michael Leitges; Mario Schiffer; Tobias B. Huber

Precise positioning of the highly complex interdigitating podocyte foot processes is critical to form the normal glomerular filtration barrier, but the molecular programs driving this process are unknown. The protein atypical protein kinase C (aPKC)--a component of the Par complex, which localizes to tight junctions and interacts with slit diaphragm proteins--may play a role. Here, we found that the combined deletion of the aPKCλ/ι and aPKCζ isoforms in podocytes associated with incorrectly positioned centrosomes and Golgi apparatus and mislocalized molecules of the slit diaphragm. Furthermore, aPKC-deficient podocytes failed to form the normal network of foot processes, leading to defective glomerular maturation with incomplete capillary formation and mesangiolysis. Our results suggest that aPKC isoforms orchestrate the formation of the podocyte processes essential for normal glomerular development and kidney function. Defective aPKC signaling results in a dramatically simplified glomerular architecture, causing severe proteinuria and perinatal death.


Kidney International | 2018

Whole exome sequencing frequently detects a monogenic cause in early onset nephrolithiasis and nephrocalcinosis

Ankana Daga; Amar J. Majmundar; Daniela A. Braun; Heon Yung Gee; Jennifer A. Lawson; Shirlee Shril; Tilman Jobst-Schwan; Asaf Vivante; David Schapiro; Weizhen Tan; Jillian K. Warejko; Eugen Widmeier; Caleb P. Nelson; Hanan M. Fathy; Zoran Gucev; Neveen A. Soliman; Seema Hashmi; Jan Halbritter; Margarita Halty; Jameela A. Kari; Sherif El-Desoky; Michael A. J. Ferguson; Michael J. Somers; Avram Z. Traum; Deborah Stein; Ghaleb Daouk; Nancy Rodig; Avi Katz; Christian Hanna; Andrew L. Schwaderer

The incidence of nephrolithiasis continues to rise. Previously, we showed that a monogenic cause could be detected in 11.4% of individuals with adult-onset nephrolithiasis or nephrocalcinosis and in 16.7-20.8% of individuals with onset before 18 years of age, using gene panel sequencing of 30 genes known to cause nephrolithiasis/nephrocalcinosis. To overcome the limitations of panel sequencing, we utilized whole exome sequencing in 51 families, who presented before age 25 years with at least one renal stone or with a renal ultrasound finding of nephrocalcinosis to identify the underlying molecular genetic cause of disease. In 15 of 51 families, we detected a monogenic causative mutation by whole exome sequencing. A mutation in seven recessive genes (AGXT, ATP6V1B1, CLDN16, CLDN19, GRHPR, SLC3A1, SLC12A1), in one dominant gene (SLC9A3R1), and in one gene (SLC34A1) with both recessive and dominant inheritance was detected. Seven of the 19 different mutations were not previously described as disease-causing. In one family, a causative mutation in one of 117 genes that may represent phenocopies of nephrolithiasis-causing genes was detected. In nine of 15 families, the genetic diagnosis may have specific implications for stone management and prevention. Several factors that correlated with the higher detection rate in our cohort were younger age at onset of nephrolithiasis/nephrocalcinosis, presence of multiple affected members in a family, and presence of consanguinity. Thus, we established whole exome sequencing as an efficient approach toward a molecular genetic diagnosis in individuals with nephrolithiasis/nephrocalcinosis who manifest before age 25 years.


Clinical Journal of The American Society of Nephrology | 2018

Whole Exome Sequencing of Patients with Steroid-Resistant Nephrotic Syndrome

Jillian K. Warejko; Weizhen Tan; Ankana Daga; David Schapiro; Jennifer A. Lawson; Shirlee Shril; Svjetlana Lovric; Shazia Ashraf; Jia Rao; Tobias Hermle; Tilman Jobst-Schwan; Eugen Widmeier; Amar J. Majmundar; Ronen Schneider; Heon Yung Gee; J. Magdalena Schmidt; Asaf Vivante; Amelie T. van der Ven; Hadas Ityel; Jing Chen; Carolin E. Sadowski; Stefan Kohl; Werner L. Pabst; Makiko Nakayama; Michael J. Somers; Nancy Rodig; Ghaleb Daouk; Michelle A. Baum; Deborah Stein; Michael A. J. Ferguson

BACKGROUND AND OBJECTIVES Steroid-resistant nephrotic syndrome overwhelmingly progresses to ESRD. More than 30 monogenic genes have been identified to cause steroid-resistant nephrotic syndrome. We previously detected causative mutations using targeted panel sequencing in 30% of patients with steroid-resistant nephrotic syndrome. Panel sequencing has a number of limitations when compared with whole exome sequencing. We employed whole exome sequencing to detect monogenic causes of steroid-resistant nephrotic syndrome in an international cohort of 300 families. DESIGN, SETTING, PARTICIPANTS, & MEASUREMENTS Three hundred thirty-five individuals with steroid-resistant nephrotic syndrome from 300 families were recruited from April of 1998 to June of 2016. Age of onset was restricted to <25 years of age. Exome data were evaluated for 33 known monogenic steroid-resistant nephrotic syndrome genes. RESULTS In 74 of 300 families (25%), we identified a causative mutation in one of 20 genes known to cause steroid-resistant nephrotic syndrome. In 11 families (3.7%), we detected a mutation in a gene that causes a phenocopy of steroid-resistant nephrotic syndrome. This is consistent with our previously published identification of mutations using a panel approach. We detected a causative mutation in a known steroid-resistant nephrotic syndrome gene in 38% of consanguineous families and in 13% of nonconsanguineous families, and 48% of children with congenital nephrotic syndrome. A total of 68 different mutations were detected in 20 of 33 steroid-resistant nephrotic syndrome genes. Fifteen of these mutations were novel. NPHS1, PLCE1, NPHS2, and SMARCAL1 were the most common genes in which we detected a mutation. In another 28% of families, we detected mutations in one or more candidate genes for steroid-resistant nephrotic syndrome. CONCLUSIONS Whole exome sequencing is a sensitive approach toward diagnosis of monogenic causes of steroid-resistant nephrotic syndrome. A molecular genetic diagnosis of steroid-resistant nephrotic syndrome may have important consequences for the management of treatment and kidney transplantation in steroid-resistant nephrotic syndrome.


Journal of The American Society of Nephrology | 2017

A Dominant Mutation in Nuclear Receptor Interacting Protein 1 Causes Urinary Tract Malformations via Dysregulation of Retinoic Acid Signaling

Asaf Vivante; Nina Mann; Hagith Yonath; Anna-Carina Weiss; Maike Getwan; Michael M. Kaminski; Tobias Bohnenpoll; Catherine Teyssier; Jing Chen; Shirlee Shril; Amelie T. van der Ven; Hadas Ityel; Johanna Magdalena Schmidt; Eugen Widmeier; Stuart B. Bauer; Simone Sanna-Cherchi; Ali G. Gharavi; Weining Lu; Daniella Magen; Rachel Shukrun; Richard P. Lifton; Velibor Tasic; Horia Stanescu; Vincent Cavaillès; Robert Kleta; Yair Anikster; Benjamin Dekel; Andreas Kispert; Soeren S. Lienkamp; Friedhelm Hildebrandt

Congenital anomalies of the kidney and urinary tract (CAKUT) are the most common cause of CKD in the first three decades of life. However, for most patients with CAKUT, the causative mutation remains unknown. We identified a kindred with an autosomal dominant form of CAKUT. By whole-exome sequencing, we identified a heterozygous truncating mutation (c.279delG, p.Trp93fs*) of the nuclear receptor interacting protein 1 gene (NRIP1) in all seven affected members. NRIP1 encodes a nuclear receptor transcriptional cofactor that directly interacts with the retinoic acid receptors (RARs) to modulate retinoic acid transcriptional activity. Unlike wild-type NRIP1, the altered NRIP1 protein did not translocate to the nucleus, did not interact with RARα, and failed to inhibit retinoic acid-dependent transcriptional activity upon expression in HEK293 cells. Notably, we also showed that treatment with retinoic acid enhanced NRIP1 binding to RARα RNA in situ hybridization confirmed Nrip1 expression in the developing urogenital system of the mouse. In explant cultures of embryonic kidney rudiments, retinoic acid stimulated Nrip1 expression, whereas a pan-RAR antagonist strongly reduced it. Furthermore, mice heterozygous for a null allele of Nrip1 showed a CAKUT-spectrum phenotype. Finally, expression and knockdown experiments in Xenopus laevis confirmed an evolutionarily conserved role for NRIP1 in renal development. These data indicate that dominant NRIP1 mutations can cause CAKUT by interference with retinoic acid transcriptional signaling, shedding light on the well documented association between abnormal vitamin A levels and renal malformations in humans, and suggest a possible gene-environment pathomechanism in this disease.


Nature Communications | 2018

Mutations in six nephrosis genes delineate a pathogenic pathway amenable to treatment

Shazia Ashraf; Hiroki Kudo; Jia Rao; Atsuo Kikuchi; Eugen Widmeier; Jennifer A. Lawson; Weizhen Tan; Tobias Hermle; Jillian K. Warejko; Shirlee Shril; Merlin Airik; Tilman Jobst-Schwan; Svjetlana Lovric; Daniela A. Braun; Heon Yung Gee; David Schapiro; Amar J. Majmundar; Carolin E. Sadowski; Werner L. Pabst; Ankana Daga; Amelie T. van der Ven; Johanna Magdalena Schmidt; Boon Chuan Low; Anjali Gupta; Brajendra K. Tripathi; Jenny S. Wong; Kirk N. Campbell; Kay Metcalfe; Denny Schanze; Tetsuya Niihori

No efficient treatment exists for nephrotic syndrome (NS), a frequent cause of chronic kidney disease. Here we show mutations in six different genes (MAGI2, TNS2, DLC1, CDK20, ITSN1, ITSN2) as causing NS in 17 families with partially treatment-sensitive NS (pTSNS). These proteins interact and we delineate their roles in Rho-like small GTPase (RLSG) activity, and demonstrate deficiency for mutants of pTSNS patients. We find that CDK20 regulates DLC1. Knockdown of MAGI2, DLC1, or CDK20 in cultured podocytes reduces migration rate. Treatment with dexamethasone abolishes RhoA activation by knockdown of DLC1 or CDK20 indicating that steroid treatment in patients with pTSNS and mutations in these genes is mediated by this RLSG module. Furthermore, we discover ITSN1 and ITSN2 as podocytic guanine nucleotide exchange factors for Cdc42. We generate Itsn2-L knockout mice that recapitulate the mild NS phenotype. We, thus, define a functional network of RhoA regulation, thereby revealing potential therapeutic targets.Nephrotic syndrome is the second most common chronic kidney disease but there are no targeted treatment strategies available. Here the authors identify mutations of six genes codifying for proteins involved in cytoskeleton remodelling and modulation of small GTPases in 17 families with nephrotic syndrome.


Journal of Clinical Investigation | 2018

Mutations in multiple components of the nuclear pore complex cause nephrotic syndrome

Daniela A. Braun; Svjetlana Lovric; David Schapiro; Ronen Schneider; Jonathan Marquez; Maria Asif; Muhammad Sajid Hussain; Ankana Daga; Eugen Widmeier; Jia Rao; Shazia Ashraf; Weizhen Tan; C. Patrick Lusk; Amy Kolb; Tilman Jobst-Schwan; Johanna Magdalena Schmidt; Charlotte A. Hoogstraten; Kaitlyn Eddy; Thomas M. Kitzler; Shirlee Shril; Abubakar Moawia; Kathrin Schrage; Arwa Ishaq A. Khayyat; Jennifer A. Lawson; Heon Yung Gee; Jillian K. Warejko; Tobias Hermle; Amar J. Majmundar; Hannah Hugo; Birgit Budde

Steroid-resistant nephrotic syndrome (SRNS) almost invariably progresses to end-stage renal disease. Although more than 50 monogenic causes of SRNS have been described, a large proportion of SRNS remains unexplained. Recently, it was discovered that mutations of NUP93 and NUP205, encoding 2 proteins of the inner ring subunit of the nuclear pore complex (NPC), cause SRNS. Here, we describe mutations in genes encoding 4 components of the outer rings of the NPC, namely NUP107, NUP85, NUP133, and NUP160, in 13 families with SRNS. Using coimmunoprecipitation experiments, we showed that certain pathogenic alleles weakened the interaction between neighboring NPC subunits. We demonstrated that morpholino knockdown of nup107, nup85, or nup133 in Xenopus disrupted glomerulogenesis. Re-expression of WT mRNA, but not of mRNA reflecting mutations from SRNS patients, mitigated this phenotype. We furthermore found that CRISPR/Cas9 knockout of NUP107, NUP85, or NUP133 in podocytes activated Cdc42, an important effector of SRNS pathogenesis. CRISPR/Cas9 knockout of nup107 or nup85 in zebrafish caused developmental anomalies and early lethality. In contrast, an in-frame mutation of nup107 did not affect survival, thus mimicking the allelic effects seen in humans. In conclusion, we discovered here that mutations in 4 genes encoding components of the outer ring subunits of the NPC cause SRNS and thereby provide further evidence that specific hypomorphic mutations in these essential genes cause a distinct, organ-specific phenotype.


Journal of Clinical Investigation | 2017

Advillin acts upstream of phospholipase C ϵ1 in steroid-resistant nephrotic syndrome

Jia Rao; Shazia Ashraf; Weizhen Tan; Amelie T. van der Ven; Heon Yung Gee; Daniela A. Braun; Krisztina Fehér; Sudeep P. George; Amin Esmaeilniakooshkghazi; Won Il Choi; Tilman Jobst-Schwan; Ronen Schneider; Johanna Magdalena Schmidt; Eugen Widmeier; Jillian K. Warejko; Tobias Hermle; David Schapiro; Svjetlana Lovric; Shirlee Shril; Ankana Daga; Ahmet Nayir; Mohan Shenoy; Y Tse; Martin Bald; Udo Helmchen; Sevgi Mir; Afig Berdeli; Jameela A. Kari; Sherif El Desoky; Neveen A. Soliman

Steroid-resistant nephrotic syndrome (SRNS) is a frequent cause of chronic kidney disease. Here, we identified recessive mutations in the gene encoding the actin-binding protein advillin (AVIL) in 3 unrelated families with SRNS. While all AVIL mutations resulted in a marked loss of its actin-bundling ability, truncation of AVIL also disrupted colocalization with F-actin, thereby leading to impaired actin binding and severing. Additionally, AVIL colocalized and interacted with the phospholipase enzyme PLCE1 and with the ARP2/3 actin-modulating complex. Knockdown of AVIL in human podocytes reduced actin stress fibers at the cell periphery, prevented recruitment of PLCE1 to the ARP3-rich lamellipodia, blocked EGF-induced generation of diacylglycerol (DAG) by PLCE1, and attenuated the podocyte migration rate (PMR). These effects were reversed by overexpression of WT AVIL but not by overexpression of any of the 3 patient-derived AVIL mutants. The PMR was increased by overexpression of WT Avil or PLCE1, or by EGF stimulation; however, this increased PMR was ameliorated by inhibition of the ARP2/3 complex, indicating that ARP-dependent lamellipodia formation occurs downstream of AVIL and PLCE1 function. Together, these results delineate a comprehensive pathogenic axis of SRNS that integrates loss of AVIL function with alterations in the action of PLCE1, an established SRNS protein.


PLOS ONE | 2018

A homozygous missense variant in VWA2, encoding an interactor of the Fraser-complex, in a patient with vesicoureteral reflux

Amelie T. van der Ven; Birgit Kobbe; Stefan Kohl; Shirlee Shril; Hans-Martin Pogoda; Thomas Imhof; Hadas Ityel; Asaf Vivante; Jing Chen; Daw-Yang Hwang; Dervla M. Connaughton; Nina Mann; Eugen Widmeier; Mary Taglienti; Johanna Magdalena Schmidt; Makiko Nakayama; Prabha Senguttuvan; Selvin Kumar; Velibor Tasic; Elijah O. Kehinde; Shrikant Mane; Richard P. Lifton; Neveen A. Soliman; Weining Lu; Stuart B. Bauer; Matthias Hammerschmidt; Raimund Wagener; Friedhelm Hildebrandt

Congenital anomalies of the kidney and urinary tract (CAKUT) are the most common cause (40–50%) of chronic kidney disease (CKD) in children. About 40 monogenic causes of CAKUT have so far been discovered. To date less than 20% of CAKUT cases can be explained by mutations in these 40 genes. To identify additional monogenic causes of CAKUT, we performed whole exome sequencing (WES) and homozygosity mapping (HM) in a patient with CAKUT from Indian origin and consanguineous descent. We identified a homozygous missense mutation (c.1336C>T, p.Arg446Cys) in the gene Von Willebrand factor A domain containing 2 (VWA2). With immunohistochemistry studies on kidneys of newborn (P1) mice, we show that Vwa2 and Fraser extracellular matrix complex subunit 1 (Fras1) co-localize in the nephrogenic zone of the renal cortex. We identified a pronounced expression of Vwa2 in the basement membrane of the ureteric bud (UB) and derivatives of the metanephric mesenchyme (MM). By applying in vitro assays, we demonstrate that the Arg446Cys mutation decreases translocation of monomeric VWA2 protein and increases translocation of aggregated VWA2 protein into the extracellular space. This is potentially due to the additional, unpaired cysteine residue in the mutated protein that is used for intermolecular disulfide bond formation. VWA2 is a known, direct interactor of FRAS1 of the Fraser-Complex (FC). FC-encoding genes and interacting proteins have previously been implicated in the pathogenesis of syndromic and/or isolated CAKUT phenotypes in humans. VWA2 therefore constitutes a very strong candidate in the search for novel CAKUT-causing genes. Our results from in vitro experiments indicate a dose-dependent neomorphic effect of the Arg446Cys homozygous mutation in VWA2.

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Shirlee Shril

Boston Children's Hospital

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David Schapiro

Boston Children's Hospital

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Weizhen Tan

Boston Children's Hospital

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Shazia Ashraf

Boston Children's Hospital

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Ankana Daga

Boston Children's Hospital

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Daniela A. Braun

Boston Children's Hospital

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Jia Rao

Boston Children's Hospital

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Amar J. Majmundar

Boston Children's Hospital

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