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PADINJAT, R.

Publications and source records attributed to PADINJAT, R..

3 recordsLinked to original sources

Genomic sequencing of Lowe syndrome trios reveal a mechanism for the heterogeneity of neurodevelopmental phenotypes

Lowe syndrome is an X-linked recessive monogenic disorder resulting from mutations in the OCRL gene that encodes a phosphatidylinositol 4,5 bisphosphate 5-phosphatase. The disease affects three organs-the kidney, brain and eye and clinically manifests as proximal renal tubule dysfunction, neurodevelopmental delay and congenital cataract. Although Lowe syndrome is a monogenic disorder, there is considerable heterogeneity in clinical presentation; some individuals show primarily renal symptoms with minimal neurodevelopmental impact whereas others show neurodevelopmental defect with minimal renal symptoms. However, the molecular and cellular mechanisms underlying this clinical heterogeneity remain unknown. Here we analyze a Lowe syndrome family in whom affected members show clinical heterogeneity with respect to the neurodevelopmental phenotype despite carrying an identical mutation in the OCRL gene. Genome sequencing and variant analysis in this family identified a large number of damaging variants in each patient. Using novel analytical pipelines and segregation analysis we prioritize variants uniquely present in the patient with the severe neurodevelopmental phenotype compared to those with milder clinical features. The identity of genes carrying such variants underscore the role of additional gene products enriched in the brain or highly expressed during brain development that may be determinants of the neurodevelopmental phenotype in Lowe syndrome. We also identify a heterozygous variant in CEP290, previously implicated in ciliopathies that underscores the potential role of OCRL in regulating ciliary function that may impact brain development. More generally, our findings demonstrate analytic approaches to identify high-confidence genetic variants that could underpin the phenotypic heterogeneity observed in monogenic disorders.

genomics

Septin function tunes lipid kinase activity and phosphatidylinositol 4,5 bisphosphate turnover during G-protein coupled PLC signaling in vivo

The hydrolysis of phosphatidylinositol 4,5- bisphosphate [PI(4,5)P2] at the plasma membrane by receptor activated phospholipase C (PLC) activity is a conserved mechanism of signal transduction. Given the low abundance of PI(4,5)P2 at the plasma membrane, its hydrolysis needs to be coupled to lipid resynthesis to ensure continued PLC activity during receptor activation. However, the mechanism by which PI(4,5)P2 depletion during signalling is coupled to its resynthesis remains unknown. PI(4,5)P2 synthesis is catalyzed by lipid kinase activity and the phosphorylation of phosphatidylinositol 4 phosphate (PI4P) by phosphatidylinositol 4 phosphate 5 kinase (PIP5K) is the final step in this process. In Drosophila photoreceptors, sensory transduction of photon absorption is transduced into PLC activity leading to an electrical response to light. During this process, PI(4,5)P2 is resynthesized by a PIP5K activity but the mechanism by which the activity of this enzyme is coupled to PLC signalling is not known. In this study, we identify a unique protein isoform of dPIP5K, dPIP5KL that is both necessary and sufficient to mediate PI(4,5)P2 synthesis during phototransduction. The activity of dPIP5KL in vitro is enhanced by depletion of PNUT, a non-redundant subunit of the septin family of GTP binding proteins and in vivo, depletion of pnut rescues the effect of dPIP5KL depletion on the light response and PI(4,5)P2 resynthesis during PLC signalling. Lastly we find that depletion of Septin Interacting Protein 1 (Sip1), previously shown to bind PNUT, phenocopies the effect of dPIP5KL depletion in vivo. Thus, our work defines a septin 7 and Sip1 mediated mechanism through which PIP5K activity is coupled to ongoing PLC mediated PI(4,5)P2 depletion.

cell biology

An evolutionarily conserved metallophosphodiesterase is a determinant of lifespan in Drosophila

Evolutionarily conserved genes usually have a critical role to play during organismal aging and longevity. Here, we show that a previously uncharacterized Class III metallophosphoesterase in Drosophila, an ortholog of the MPPED1 and MPPED2 proteins in mammals, is necessary for optimal lifespan. dMPPED is the product of the gene CG16717 and hydrolyzed a variety of phosphodiester substrates in a metal-dependent manner. dMPPED was expressed widely during development and in the adult fly. Deletion of the gene in flies dramatically reduced lifespan, without affecting development or fecundity. Longevity was restored on ubiquitous expression of the protein, and neuronal expression of both wild type and the catalytically inactive form of dMPPED was also able to restore normal lifespan. Overexpression of the protein, both ubiquitously and neuronally in wild type flies extended lifespan by ~ 20%. RNA-seq analysis of dMPPEDKO flies revealed mis-regulation of innate immune pathways, a number of transcription factors and genes earlier reported to affect aging and lifespan. Importantly, neuronal expression of mammalian MPPED2 was able to rescue lifespan in dMPPEDKO flies, but not extend lifespan in wild type flies. This reports the first description of the biological role of an evolutionarily conserved metallophosphoesterase that may serve as a scaffolding protein in diverse signaling pathways to modulate longevity in the fly.

developmental biology