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"Braun, Daniela A"
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Pathologies at the gateway: exploring the link between nucleoporins and inherited diseases
by
Krausel, Vanessa
,
Braun, Daniela A.
,
Jühlen, Ramona
in
Active Transport, Cell Nucleus
,
Animals
,
Binding sites
2026
Nuclear pore complexes serve as essential gatekeepers of the nuclear envelope, playing crucial roles in regulating transport across the nuclear envelope and maintaining compartmentalization between the nucleus and cytoplasm. While they are fundamental to all nucleated cells, the nucleoporins that make up these complexes are associated with various inherited diseases, often affecting specific cells, tissues, or organs. In this overview, we describe the clinical features, summarize genotype-phenotype correlations at the level of individual genes and specific alleles, and relate this information to insights from cellular biology regarding nucleoporins to illuminate potential disease mechanisms. Our aim is to include significant clinical perspectives that are frequently overlooked in standard cell biology reviews, while ensuring accessibility for readers without a medical background. At the same time, we hope to provide valuable insights for geneticists and clinicians interested in the discussed pathologies, but may have limited background in molecular cell biology.
Summary statement
Mutations in nucleoporin-encoding genes, the proteins that form nuclear pore complexes, are associated with various hereditary diseases. We summarize our emerging knowledge to connect clinical manifestations with insights from cell biology.
Journal Article
Cystin genetic variants cause autosomal recessive polycystic kidney disease associated with altered Myc expression
by
Kesterson, Robert A.
,
Guay-Woodford, Lisa M.
,
Mane, Shrikant
in
631/208/2489/144
,
692/308/1426
,
692/699/1585/1589
2021
Mutation of the
Cys1
gene underlies the renal cystic disease in the
Cys1
cpk/cpk
(
cpk
) mouse that phenocopies human autosomal recessive polycystic kidney disease (ARPKD). Cystin, the protein product of
Cys1
, is expressed in the primary apical cilia of renal ductal epithelial cells. In previous studies, we showed that cystin regulates
Myc
expression via interaction with the tumor suppressor, necdin. Here, we demonstrate rescue of the
cpk
renal phenotype by kidney-specific expression of a cystin-GFP fusion protein encoded by a transgene integrated into the
Rosa26
locus. In addition, we show that expression of the cystin-GFP fusion protein in collecting duct cells down-regulates expression of
Myc
in
cpk
kidneys. Finally, we report the first human patient with an ARPKD phenotype due to homozygosity for a deleterious splicing variant in
CYS1
. These findings suggest that mutations in
Cys1
/
CYS1
cause an ARPKD phenotype in mouse and human, respectively, and that the renal cystic phenotype in the mouse is driven by overexpression of the
Myc
proto-oncogene.
Journal Article
Acute multi-sgRNA knockdown of KEOPS complex genes reproduces the microcephaly phenotype of the stable knockout zebrafish model
2018
Until recently, morpholino oligonucleotides have been widely employed in zebrafish as an acute and efficient loss-of-function assay. However, off-target effects and reproducibility issues when compared to stable knockout lines have compromised their further use. Here we employed an acute CRISPR/Cas approach using multiple single guide RNAs targeting simultaneously different positions in two exemplar genes (osgep or tprkb) to increase the likelihood of generating mutations on both alleles in the injected F0 generation and to achieve a similar effect as morpholinos but with the reproducibility of stable lines. This multi single guide RNA approach resulted in median likelihoods for at least one mutation on each allele of >99% and sgRNA specific insertion/deletion profiles as revealed by deep-sequencing. Immunoblot showed a significant reduction for Osgep and Tprkb proteins. For both genes, the acute multi-sgRNA knockout recapitulated the microcephaly phenotype and reduction in survival that we observed previously in stable knockout lines, though milder in the acute multi-sgRNA knockout. Finally, we quantify the degree of mutagenesis by deep sequencing, and provide a mathematical model to quantitate the chance for a biallelic loss-of-function mutation. Our findings can be generalized to acute and stable CRISPR/Cas targeting for any zebrafish gene of interest.
Journal Article
Large-scale targeted sequencing comparison highlights extreme genetic heterogeneity in nephronophthisis-related ciliopathies
by
Nabhan, Marwa M
,
Schueler, Markus
,
Shendure, Jay
in
Genetic Heterogeneity
,
Genetic testing
,
Genomes
2016
Background:The term nephronophthisis-related ciliopathies (NPHP-RC) describes a group of rare autosomal-recessive cystic kidney diseases, characterised by broad genetic and clinical heterogeneity. NPHP-RC is frequently associated with extrarenal manifestations and accounts for the majority of genetically caused chronic kidney disease (CKD) during childhood and adolescence. Generation of a molecular diagnosis has been impaired by this broad genetic heterogeneity. However, recently developed high-throughput exon sequencing techniques represent powerful and efficient tools to screen large cohorts for dozens of causative genes.Methods:Therefore, we performed massively multiplexed targeted sequencing using the modified molecular inversion probe strategy (MIPs) in an international cohort of 384 patients diagnosed with NPHP-RC.Results:As a result, we established the molecular diagnoses in 81/384 unrelated individuals (21.1%). We detected 127 likely disease-causing mutations in 18 of 34 evaluated NPHP-RC genes, 22 of which were novel. We further compared a subgroup of current findings to the results of a previous study in which we used an array-based microfluidic PCR technology in the same cohort. While 78 likely disease-causing mutations were previously detected by the array-based microfluidic PCR, the MIPs approach identified 94 likely pathogenic mutations. Compared with the previous approach, MIPs redetected 66 out of 78 variants and 28 previously unidentified variants, for a total of 94 variants.Conclusions:In summary, we demonstrate that the modified MIPs technology is a useful approach to screen large cohorts for a multitude of established NPHP genes in order to identify the underlying molecular cause. Combined application of two independent library preparation and sequencing techniques, however, may still be indicated for Mendelian diseases with extensive genetic heterogeneity in order to further increase diagnostic sensitivity.
Journal Article
IFT81, encoding an IFT-B core protein, as a very rare cause of a ciliopathy phenotype
by
Cormier-Daire, Valérie
,
Saunier, Sophie
,
Fathy, Hanan M
in
Cilia - genetics
,
Cilia - pathology
,
Eye - pathology
2015
BackgroundBidirectional intraflagellar transport (IFT) consists of two major protein complexes, IFT-A and IFT-B. In contrast to the IFT-B complex, all components of IFT-A have recently been linked to human ciliopathies when defective. We therefore hypothesised that mutations in additional IFT-B encoding genes can be found in patients with multisystemic ciliopathies.MethodsWe screened 1628 individuals with reno-ocular ciliopathies by targeted next-generation sequencing of ciliary candidate genes, including all IFT-B encoding genes.ResultsConsequently, we identified a homozygous mutation in IFT81 affecting an obligatory donor splice site in an individual with nephronophthisis and polydactyly. Further, we detected a loss-of-stop mutation with extension of the deduced protein by 10 amino acids in an individual with neuronal ceroid lipofuscinosis-1. This proband presented with retinal dystrophy and brain lesions including cerebellar atrophy, a phenotype to which the IFT81 variant might contribute. Cultured fibroblasts of this latter affected individual showed a significant decrease in ciliated cell abundance compared with controls and increased expression of the transcription factor GLI2 suggesting deranged sonic hedgehog signalling.ConclusionsThis work describes identification of mutations of IFT81 in individuals with symptoms consistent with the clinical spectrum of ciliopathies. It might represent the rare case of a core IFT-B complex protein found associated with human disease. Our data further suggest that defects in the IFT-B core are an exceedingly rare finding, probably due to its indispensable role for ciliary assembly in development.
Journal Article
Defects in t6A tRNA modification due to GON7 and YRDC mutations lead to Galloway-Mowat syndrome
2019
N
6
-threonyl-carbamoylation of adenosine 37 of ANN-type tRNAs (t
6
A) is a universal modification essential for translational accuracy and efficiency. The t
6
A pathway uses two sequentially acting enzymes, YRDC and OSGEP, the latter being a subunit of the multiprotein KEOPS complex. We recently identified mutations in genes encoding four out of the five KEOPS subunits in children with Galloway-Mowat syndrome (GAMOS), a clinically heterogeneous autosomal recessive disease characterized by early-onset steroid-resistant nephrotic syndrome and microcephaly. Here we show that mutations in
YRDC
cause an extremely severe form of GAMOS whereas mutations in
GON7
, encoding the fifth KEOPS subunit, lead to a milder form of the disease. The crystal structure of the GON7/LAGE3/OSGEP subcomplex shows that the intrinsically disordered GON7 protein becomes partially structured upon binding to LAGE3. The structure and cellular characterization of GON7 suggest its involvement in the cellular stability and quaternary arrangement of the KEOPS complex.
The biosynthesis of N
6
-threonylcarbamoylated adenosine 37 in tRNA (t
6
A) involves the YRDC enzyme and the KEOPS complex. Here, the authors report mutations in
YRDC
and the KEOPS component
GON7
in Galloway-Mowat syndrome and determine the crystal structure of a GON7-containg subcomplex that suggests a role in KEOPS complex stability.
Journal Article
Mutations in nuclear pore genes NUP93, NUP205 and XPO5 cause steroid-resistant nephrotic syndrome
by
Airik, Merlin
,
Hildebrandt, Friedhelm
,
Konrad, Martin
in
631/208/1516
,
631/208/737
,
692/308/2056
2016
Friedhelm Hildebrandt and colleagues identify mutations in
NUP93
,
NUP205
or
XPO5
in patients with steroid-resistant nephrotic syndrome. They show that NUP93 and XPO5 interact with SMAD4 and that
NUP93
mutations interfere with BMP7-SMAD4 signaling in podocytes.
Nucleoporins are essential components of the nuclear pore complex (NPC)
1
. Only a few diseases have been attributed to NPC dysfunction
2
,
3
,
4
. Steroid-resistant nephrotic syndrome (SRNS), a frequent cause of chronic kidney disease, is caused by dysfunction of glomerular podocytes
5
. Here we identify in eight families with SRNS mutations in
NUP93
, its interaction partner
NUP205
or
XPO5
(encoding exportin 5) as hitherto unrecognized monogenic causes of SRNS.
NUP93
mutations caused disrupted NPC assembly.
NUP93
knockdown reduced the presence of NUP205 in the NPC, and, reciprocally, a NUP205 alteration abrogated NUP93 interaction. We demonstrate that NUP93 and exportin 5 interact with the signaling protein SMAD4 and that
NUP93
mutations abrogated interaction with SMAD4. Notably,
NUP93
mutations interfered with BMP7-induced SMAD transcriptional reporter activity. We hereby demonstrate that mutations of NUP genes cause a distinct renal disease and identify aberrant SMAD signaling as a new disease mechanism of SRNS, opening a potential new avenue for treatment.
Journal Article
Identification of 99 novel mutations in a worldwide cohort of 1,056 patients with a nephronophthisis-related ciliopathy
by
Porath, Jonathan D.
,
Halbritter, Jan
,
Kohl, Stefan
in
Adaptor Proteins, Signal Transducing - genetics
,
Bar codes
,
Biomedical and Life Sciences
2013
Nephronophthisis-related ciliopathies (NPHP-RC) are autosomal-recessive cystic kidney diseases. More than 13 genes are implicated in its pathogenesis to date, accounting for only 40 % of all cases. High-throughput mutation screenings of large patient cohorts represent a powerful tool for diagnostics and identification of novel
NPHP
genes. We here performed a new high-throughput mutation analysis method to study 13 established
NPHP
genes (
NPHP1
–
NPHP13
) in a worldwide cohort of 1,056 patients diagnosed with NPHP-RC. We first applied multiplexed PCR-based amplification using Fluidigm Access-Array™ technology followed by barcoding and next-generation resequencing on an Illumina platform. As a result, we established the molecular diagnosis in 127/1,056 independent individuals (12.0 %) and identified a single heterozygous truncating mutation in an additional 31 individuals (2.9 %). Altogether, we detected 159 different mutations in 11 out of 13 different
NPHP
genes, 99 of which were novel. Phenotypically most remarkable were two patients with truncating mutations in
INVS/NPHP2
who did not present as infants and did not exhibit extrarenal manifestations. In addition, we present the first case of Caroli disease due to mutations in
WDR19/NPHP13
and the second case ever with a recessive mutation in
GLIS2/NPHP7
. This study represents the most comprehensive mutation analysis in NPHP-RC patients, identifying the largest number of novel mutations in a single study worldwide.
Journal Article
The ciliopathy-associated CPLANE proteins direct basal body recruitment of intraflagellar transport machinery
2016
John Wallingford and colleagues combine proteomics,
in vivo
imaging and genetic analyses to identify a new ciliopathy-associated protein module, which they call CPLANE. They show that CPLANE proteins, which include Fuzzy, Inturned and Wdpcp, interact with Jbts17 at basal bodies, where they act to recruit a specific subset of intraflagellar transport proteins.
Cilia use microtubule-based intraflagellar transport (IFT) to organize intercellular signaling. Ciliopathies are a spectrum of human diseases resulting from defects in cilia structure or function. The mechanisms regulating the assembly of ciliary multiprotein complexes and the transport of these complexes to the base of cilia remain largely unknown. Combining proteomics,
in vivo
imaging and genetic analysis of proteins linked to planar cell polarity (Inturned, Fuzzy and Wdpcp), we identified and characterized a new genetic module, which we term CPLANE (ciliogenesis and planar polarity effector), and an extensive associated protein network. CPLANE proteins physically and functionally interact with the poorly understood ciliopathy-associated protein Jbts17 at basal bodies, where they act to recruit a specific subset of IFT-A proteins. In the absence of CPLANE, defective IFT-A particles enter the axoneme and IFT-B trafficking is severely perturbed. Accordingly, mutation of CPLANE genes elicits specific ciliopathy phenotypes in mouse models and is associated with ciliopathies in human patients.
Journal Article
Gene panel sequencing identifies a likely monogenic cause in 7% of 235 Pakistani families with nephrolithiasis
by
Jobst-Schwan, Tilman
,
Khaliq, Shagufta
,
Knöpfel, Thomas
in
Consanguinity
,
Family medical history
,
Genes
2019
Nephrolithiasis (NL) affects 1 in 11 individuals worldwide and causes significant patient morbidity. We previously demonstrated a genetic cause of NL can be identified in 11–29% of pre-dominantly American and European stone formers. Pakistan, which resides within the Afro-Asian stone belt, has a high prevalence of nephrolithiasis (12%) as well as high rate of consanguinity (> 50%). We recruited 235 Pakistani subjects hospitalized for nephrolithiasis from five tertiary hospitals in the Punjab province of Pakistan. Subjects were surveyed for age of onset, NL recurrence, and family history. We conducted high-throughput exon sequencing of 30 NL disease genes and variant analysis to identify monogenic causative mutations in each subject. We detected likely causative mutations in 4 of 30 disease genes, yielding a likely molecular diagnosis in 7% (17 of 235) of NL families. Only 1 of 17 causative mutations was identified in an autosomal recessive disease gene. 10 of the 12 detected mutations were novel mutations (83%). SLC34A1 was most frequently mutated (12 of 17 solved families). We observed a higher frequency of causative mutations in subjects with a positive NL family history (13/109, 12%) versus those with a negative family history (4/120, 3%). Five missense SLC34A1 variants identified through genetic analysis demonstrated defective phosphate transport. We examined the monogenic causes of NL in a novel geographic cohort and most frequently identified dominant mutations in the sodium–phosphate transporter SLC34A1 with functional validation.
Journal Article