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Petriman, N. A.

Publications and source records attributed to Petriman, N. A..

4 recordsLinked to original sources

CAKUT variants in PRPF8, DYRK2, and CEP78: implications for splicing and ciliogenesis

IntroductionCongenital anomalies of the kidney and urinary tract (CAKUT) are the leading cause of chronic kidney disease in children and young adults. Although over 50 monogenic causes have been identified, many remain unresolved. PRPF8 is a core spliceosome component, essential for pre-mRNA splicing, and further localizes to the distal mother centriole to promote ciliogenesis. MethodsWe performed trio exome sequencing in 208 CAKUT families and identified strong variants in PRPF8 and the EDD-DYRK2-DDB1VprBP complex. Functional validation included splicing assays in yeast (Saccharomyces cerevisiae), Sonic hedgehog (Shh) signaling in RPE-1 cells, co-immunoprecipitation for protein complex assembly, and in situ hybridization in mouse embryos. Protein interactions were modeled using AlphaFold. ResultsWe identified heterozygous de novo or inherited variants in PRPF8, DYRK2, DDB1, EDD and CEP78. Yeast assays revealed that while most PRPF8 variants preserved growth and splicing at consensus splice sites, the de novo PRPF8R1681W variant impaired splicing of non-consensus splice sites and was inviable at elevated temperature. CAKUT variants failed to rescue prp28-1 and U4-cs1 alleles but showed variant-specific synthetic interactions with brr2-1, including weak suppression or synthetic sickness at elevated temperatures. Shh signaling was reduced in [~]50% of PRPF8 variants expressed in RPE-1 cells. CEP78 truncating variants abrogated binding to CEP350 and VPRBP. Two DYRK2 variants disrupted EDD-DYRK2-DDB1VprBP complex formation without affecting kinase activity. In situ hybridization revealed strong Prpf8 expression in the developing collecting duct and urothelium. ConclusionVariants in PRPF8 and components of the EDD-DYRK2-DDB1VprBP complex may contribute to CAKUT through impaired pre-mRNA splicing and defective ciliogenesis. These findings uncover an entirely new functional network of candidate genes for CAKUT and ciliopathies, significantly broadening our understanding of disease mechanisms and offering novel entry points for mechanistic studies. Translational StatementOur study identifies a previously unrecognized molecular network involving PRPF8 and the EDD-DYRK2-DDB1VprBP complex, revealing a novel pathogenic mechanism in CAKUT. These results introduce a new class of candidate genes and pathways essential for kidney development. As the genetic etiology of CAKUT remains unknown in most patients, our findings underscore the need for targeted genetic testing and functional studies to enhance diagnosis, advance mechanistic insight, and enable more personalized clinical management.

genetics↗

Intraflagellar transport protein IFT172 contains a C-terminal ubiquitin-binding U-box-like domain involved in ciliary signaling

Intraflagellar transport (IFT) is a fundamental process driving ciliogenesis in most eukaryotic organisms. IFT172, the largest protein of the IFT complex, plays a crucial role in cilium formation and several disease-causing IFT172 variants have been identified in ciliopathy patients. While IFT172 is tethered to the IFT-B complex via its N-terminal domains, the function of its C-terminal domains has remained elusive. Here, we reveal that the C-terminal part of IFT172 interacts with IFT-A complex subunits, providing a molecular basis for the role of IFT172 in bridging IFT-A and IFT-B complexes. We determine the crystal structure of the C-terminal part of IFT172, uncovering a conserved U-box-like domain often found in E3 ubiquitin ligases. This domain exhibits ubiquitin-binding properties and IFT172 undergoes ubiquitin conjugation in vitro, an activity which is reduced in the C1727R patient ciliopathy variant. We use CRISPR-engineered RPE-1 cells to demonstrate that the U-box-like domain is essential for IFT172 protein stability and proper cilium formation. Notably, RPE-1 cells with heterozygous deletion of the U-box domain show altered TGF-{beta} signaling responses, particularly in SMAD2 phosphorylation levels and AKT activation. Our findings suggest that IFT172, beyond its structural role in bridging IFT-A and IFT-B complexes within IFT trains, harbors a conserved U-box-like domain with potential involvement in ciliary ubiquitination processes and signaling, providing new insights into the molecular mechanisms underlying IFT172-related ciliopathies.

biochemistry↗

Biochemically validated structural model of the 15-subunit IFT-B complex

Cilia are ubiquitous eukaryotic organelles important to cellular motility, signalling and sensory reception. Cilium formation requires intraflagellar transport for trafficking of structural and signalling components. The large MDa IFT-B complex constitutes the backbone of polymeric IFT trains that carry ciliary cargo between the cilium and the cell body. Currently, high-resolution structures are only available for smaller IFT-B sub-complexes leaving >50% of the IFT-B complex structurally uncharacterized. We have used recent advances in protein structure prediction as implemented in Alphafold to assemble a structural model for the 15-subunit IFT-B complex. The model was validated using crosslinking/MS data on reconstituted IFT-B complexes, X-ray scattering in solution and diffraction from crystals as well as site-directed mutagenesis and protein binding assays. The IFT-B structural model reveals an elongated and highly flexible complex consistent with cryo-electron tomographic reconstructions of IFT trains. The >400[A] long IFT-B complex can roughly be divided into IFT-B1 and IFT-B2 parts with binding sites for ciliary cargo and the inactive IFT dynein motor, respectively. Interestingly, our structural modelling and crosslinking/MS results are consistent with two different binding sites for IFT81/74 on IFT88/70/52/46 suggesting the possibility of two different structural architectures for the IFT-B1 complex. Our data present a structural framework to understand IFT-B complex assembly, function, and ciliopathy variants.

biochemistry↗

The IFT81-IFT74 complex enhances GTP hydrolysis to inactivate RabL2 during early steps of intraflagellar transport

Cilia are important organelles for signaling and motility and are constructed via intraflagellar transport (IFT). RabL2 is a small Rab-like GTPase that localizes to the basal body of cilia via an interaction with the centriolar protein CEP19 before downstream association with the IFT machinery to regulate the initiation of IFT. We have mapped the interaction with RabL2 to residues 107-195 of CEP19, purified the RabL2-CEP19 complex to show that CEP19 is not a GTPase activator protein for RabL2. In contrast, a reconstituted pentameric IFT complex containing IFT81/74 enhances the GTP hydrolysis in RabL2 by 20-fold. The binding site on IFT81/74 that promotes GTP hydrolysis in RabL2 is mapped to a 70 amino acid long coiled-coil region of IFT81/74. We present structural models for minimal IFT81/74-RabL2 complexes and demonstrate that the Chlamydomonas IFT81/74 complex enhances GTP hydrolysis of human RabL2 suggesting an ancient evolutionarily conserved function. Our results provide a mechanistic understanding of RabL2 function in the initiation step of IFT and a molecular rationale for why RabL2 dissociates from anterograde IFT trains soon after departure from the ciliary base.

biochemistry↗