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Jadhav, D. B.

Publications and source records attributed to Jadhav, D. B..

3 recordsLinked to original sources

RNA-Binding moonlighting function of metabolic enzymes reveals deep evolutionary roots in Cyanobacteria

RNA-binding proteins (RBPs) have emerged as key regulators of diverse physiological and metabolic processes in cells. Notably, many metabolic enzymes exhibit moonlighting RNA-binding functions, and a substantial fraction localize to chloroplasts, the primary hub of photosynthesis and cellular metabolic homeostasis. Since chloroplasts originated from free-living cyanobacteria, understanding the RBP repertoire in these ancient phototrophs holds particular evolutionary and functional significance. A comprehensive characterization of the cyanobacterial RBPome is still lacking. Here, we employed Synechococcus elongatus PCC 7942, a model cyanobacterium, to define its RBPome using an RNA-interactome capture approach. We identified 136 RBPs, of which nearly 30% are associated with metabolic pathways, a proportion notably higher than that observed in bacteria, algae, plants, flies, worms, or animals. Strikingly, several enzymes from core metabolic pathways, including glycolysis/gluconeogenesis, the TCA cycle, and the pentose phosphate pathway, that are known RNA binders in humans are also conserved as RBPs in cyanobacteria. We identified a wide array of proteins from the photosynthetic apparatus exhibiting RNA-binding activity, many of which are conserved across the green lineage. In silico structural alignments of RNA-binding metabolic enzymes with their NAD(P)-binding pockets, a potential site for RNA-binding, suggests a broad conservation of RNA-binding capacity of core metabolic enzymes across species. Recent discoveries have revealed that RNA-binding can modulate enzymatic activity. In this context, our findings suggest that RNA-mediated control of core cellular metabolic processes may be widespread in cyanobacteria and riboregulation might be an evolutionarily ancient mechanism, potentially tracing its origins back to cyanobacteria.

plant biology↗

Temporal dynamics of RNA metabolic enzyme interactome lay the foundation for riboregulation mediated circadian metabolism

The temporal regulation of the RNA-binding to metabolic enzymes offers a compelling framework to address the open question of whether circadian control of metabolism can be mediated through riboregulation. To advance this understanding, we investigated the time-of-the-day dependent dynamics of RNA-enzymes interactome using a time-resolved RIC approach. 70% of the captured RBPs exhibit differential RNA-binding between subjective day and night, with 27% associated to metabolic pathways, suggesting temporal riboregulation of metabolic enzymes can be widespread. Intriguingly, 63 metabolic enzymes displayed circadian RNA-binding uncoupled from their protein abundance dynamics. This observation suggests that the temporal regulation of their RNA-binding "moonlighting" functions is likely mediated by alternative mechanisms, such as post-translational modifications. Our study presents a catalog of metabolic enzymes localized in mitochondria and chloroplast that exhibit dynamic RNA binding across circadian time, providing a valuable testbed to explore the mechanistic role of riboregulation in driving daily metabolic rhythms across species.

biochemistry↗

Circadian proteomics reveal rampant tuning of post-transcriptional apparatus by Chlamydomonas clock

Timing of biological processes enable organisms to sustain the diurnal fluctuations resulting from earths rotation. Circadian clocks execute this temporal regulation by modulating temporal expression of genes. Clock regulation of mRNAs was envisioned as the primary driver of daily rhythms. However, mRNA oscillations often dont concur with the downstream protein oscillations. To assess the contribution from post-transcriptional processes, we quantitatively probed the Chlamydomonas proteome for two circadian cycles. Our study suggests rampant role of posttranscriptional processes in clock regulation of Chlamydomonas metabolism. We quantified >1000 proteins, half of which demonstrate circadian rhythms. Among these rhythmic proteins, >40% originate from non-rhythmic mRNAs and > 90% peak around midday or midnight. Accumulation rhythms of proteins rather than their encoding mRNAs shows extreme coordination. We uncovered new rhythms and accounted for physiological rhythms whose mechanistic details remained undocumented from earlier transcriptomic studies. We envisage our study will refine and enrich the evaluation of temporal metabolic processes in Chlamydomonas. Owing to Chlamydomonass unique phylogeny this study can lead to new insights into evolution of clock regulation across kingdoms.

physiology↗