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Rautela, U.

Publications and source records attributed to Rautela, U..

3 recordsLinked to original sources

A non-canonical role of somatic CYCLIN D/CYD-1 in oogenesis and reproductive aging, dependent on the FOXO/DAF-16 activation state

For the optimal survival of a species, an organism coordinates its reproductive decisions with the nutrient availability of its niche. Thus, nutrient-sensing pathways like insulin-IGF-1 signaling (IIS) play an important role in modulating cell division, oogenesis, and reproductive aging. Lowering of the IIS leads to the activation of the downstream FOXO transcription factor (TF) DAF-16 in Caenorhabditis elegans which promotes oocyte quality and delays reproductive aging. However, less is known about how the IIS axis responds to changes in cell cycle proteins, particularly in the somatic tissues. Here, we show a new aspect of the regulation of the germline by this nutrient- sensing axis. First, we show that the canonical G1-S cyclin, cyclin D/cyd-1, regulates reproductive aging from the uterine tissue of wild-type worms. Then, we show that knocking down cyd-1 in the uterine tissue of an IIS receptor mutant arrests oogenesis at the pachytene stage of meiosis-1 in a FOXO/DAF-16-dependent manner. We find that activated FOXO/DAF-16 destroys the somatic gonad tissues like the sheath cells, and transcriptionally prevents the spermatogenesis-to- oogenesis switch to orchestrate this arrest. Deleting FOXO/DAF-16 releases the arrest and restores the somatic gonad but leads to the production of poor-quality oocytes. Together, our study reveals the unrecognized cell non-autonomous interaction of CYD-1 and FOXO/DAF-16 in reproductive aging and the regulation of oogenesis.

developmental biology↗

Human ERG Oncoprotein Represses Chip/LDB1 LIM-Domain Binding Gene in Drosophila

ERG oncoprotein, a master transcription factor, targets diverse arrays of genes in different cancers. Identifying oncogenically relevant ones from these ERG targets, however, is challenging. Here we show that heterologous ERG disrupts a LIM-homeodomain (LIM-HD) complex, Chip-Tailup, in Drosophila. In the posterior thorax (notum) primordium, ERG-induced upregulation of E(z)/EZH2 trimethylates histones in Chip promoter. A consequent loss of the Chip-Tailup complex releases repression of N-Wg signaling in the notum, inducing de novo wings and, alternatively, carcinogenesis of ERG-expressing notal cells displaying loss of Lgl tumor suppressor. ERG-induced developmental or oncogenic fallouts are abrogated upon gain of Chip, N, or E(z) loss, besides Wg ligand sequestration. ERG-positive prostate cancer (PCa) cells, too, display suppression of mammalian homolog of Drosophila Chip, LIM Domain Binding1, LDB1. Deep homology in gene regulatory networks, like that of Chip-Tup complex, thus help prioritize identification of functionally relevant targets of human oncoproteins in Drosophila. HighlightsO_LIHuman ERG suppresses Chip, a LIM-domain binding, LDB gene in Drosophila via E(z) C_LIO_LIERG-mediated Chip loss induces ectopic Wg morphogen signaling in the notum primordium C_LIO_LIChip gain suppresses ERG-induced Wg morphogen and tumor progression in lgl clones C_LIO_LIERG-positive human PCa cell lines show downregulation of a Chip homolog, LDB1 C_LI In briefMammalian ERG oncoprotein displays a diverse and perplexing range of targets in different cancers. By driving ERG in Drosophila developing appendages, Bharti et al. reveal its repression of a LIM-domain coding gene, Chip/LDB1. ERG-positive prostate cancer cells, too, display Chip/LDB1 repression. Deep homology across phylogeny thus helps uncover oncoprotein targets.

developmental biology↗

A cell non-autonomous FOXO/DAF-16-mediated germline quality assurance program that responds to somatic DNA damage

Germline integrity is critical for progeny fitness. Organisms deploy the DNA damage response (DDR) signalling to protect germline from genotoxic stress, facilitating cell-cycle arrest of germ cells and DNA repair or their apoptosis. Cell-autonomous regulation of germline quality is well-studied; however, how quality is enforced cell non-autonomously on sensing somatic DNA damage is less known. Using Caenorhabditis elegans, we show that DDR disruption, only in the uterus, when insulin-IGF-1 signalling (IIS) is low, arrests germline development and induces sterility in a FOXO/DAF-16 transcription factor (TF)-dependent manner. Without FOXO/DAF-16, germ cells of the IIS mutant escape arrest to produce poor quality oocytes, showing that the TF imposes strict quality control during low IIS. In response to low IIS in neurons, FOXO/DAF-16 works cell autonomously as well as non-autonomously to facilitate the arrest. Activated FOXO/DAF-16 promotes transcription of checkpoint and DDR genes, protecting germline integrity. However, on reducing DDR during low IIS, the TF decreases ERK/MPK-1 signaling below a threshold, and transcriptionally downregulates genes involved in spermatogenesis-to-oogenesis switch as well as cdk-1/Cyclin B to promote germline arrest. Altogether, our study reveals how cell non-autonomous function of FOXO/DAF-16 promotes germline quality and progeny fitness in response to somatic DNA damage. Significance StatementReproductive decisions are supervised processes that take into account various inputs like cellular energy availability and status of damage repair in order to ensure healthy progeny. In this study, we show that the absence of optimal DNA damage repair in the somatic uterine tissues prevents oocyte development by the cell-autonomous as well non-autonomous function of activated FOXO transcription factor DAF-16. Thus, this study elucidates a new surveillance role of FOXO/DAF-16 in somatic tissues that ensures progeny fitness.

developmental biology↗