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Heestand, B.

Publications and source records attributed to Heestand, B..

4 recordsLinked to original sources

DAF-16/Foxo suppresses the transgenerational sterility of prg-1 piRNA mutants via a systemic small RNA pathway

Mutation of the daf-2 insulin/IGF-1 receptor activates the DAF-16/Foxo transcription factor to suppress the transgenerational sterility phenotype of prg-1/piRNA mutants that are deficient for piRNA-mediated genome silencing. As with PRG-1/piRNAs, mutations in the nuclear RNA interference gene nrde-1 compromised germ cell immortality, but deficiency for daf-2 did not suppress the transgenerational sterility of nrde-1 or nrde-4 single mutants or of prg-1; nrde-4 or prg-1; hrde-1 double mutants. NRDE-1 and NRDE-4 promote transcriptional silencing in somatic cells via the nuclear Argonaute protein NRDE-3, which was dispensable for germ cell immortality. However, daf-2 deficiency failed to promote germ cell immortality in prg-1; nrde-3 mutants. Consistently, we found that DAF-16 activity in somatic cells suppressed the transgenerational sterility of prg-1 mutants via the SID-1 dsRNA transmembrane channel that promotes systemic RNAi as well as Dicer, the dsRNA binding protein RDE-4 and the RDRP RRF-3. We conclude that DAF-16 activates a cell-non-autonomous systemic RNAi pathway that promotes small RNA-mediated genome silencing in germ cells to suppress loss of the genomic immune surveillance factor Piwi/PRG-1. Author SummarySmall RNAs can promote genome silencing. The Argonaute protein Piwi interacts with thousands of small RNAs termed piRNAs in germ cells to suppress expression of transposons and foreign genetic elements. However, the Piwi silencing system may be commonly targeted by viral or transposon genomic parasites that seek to suppress the endogenous defences against their expression and replication. Activation of the DAF-16 stress response pathway promotes adult longevity and can also abolish the transgenerational sterility of C. elegans Piwi mutants. We found that DAF-16 accomplishes this by activating a somatic small RNA pathway where small RNAs are initially produced in the soma and are then transported into the germline to suppress expression of a toxic genetic locus in Piwi mutants. Thus, the DAF-16 stress response pathway activates a systemic small RNA cascade to suppress defects in the Piwi/piRNA genome silencing system.

genetics

Deficiency for Piwi results in transmission of a heritable stress that promotes longevity via DAF-16/Foxo

The C. elegans Argonaute protein PRG-1/Piwi and associated piRNAs protect metazoan genomes by silencing transposons and other types of foreign DNA. As prg-1 mutants are propagated, their fertility deteriorates prior to the onset of a reproductive arrest phenotype that resembles a starvation-induced stress response. We found that late-generation prg-1 mutants with substantially reduced fertility were long-lived, whereas early- or mid-generation prg-1 mutants had normal lifespans. Loss of the stress response transcription factor DAF-16 caused mid- or late-generation prg-1 mutants to live very short lives, whereas overexpression of DAF-16 enabled both mid- and late-generation prg-1 mutants to live long. Cytoplasmic P-bodies that respond to stress increased in long-lived late-generation prg-1 mutants and were transmitted to F1 but not F2 cross-progeny. Moreover, moderate levels of heritable stress shorten late-generation prg-1 mutant longevity when DAF-16 or P bodies are deficient. Together, these results suggest that the longevity of late-generation prg-1 mutants is a hormetic stress response. However, dauer larvae that occur in response to stress were not observed in late-generation prg-1 mutants. Small germ cell nucleoli that depended on germline DAF-16 were present in late-generation prg-1 mutants but were not necessary for their longevity. We propose that prg-1 mutant germ cells transmit a form of heritable stress, high levels of which promote longevity and strongly reduce fertility. The heritable stress transmitted by PRG-1/Piwi mutant germ cells may be generally relevant to epigenetic inheritance of longevity. Core message of paperprg-1/Piwi mutants with strongly reduced fertility live long and longevity is transmitted for one generation to F1 cross progeny. Stress granules are increased and germ cell nucleoli are small for long-lived Piwi mutants and their F1 progeny. Loss of daf-16 stress response transcription factor or dcap-1 P body protein causes very short life for worms when prg-1 mutant fertility is moderately reduced, whereas moderate fertility is sufficient to extend lifespan when somatic DAF-16 is overexpressed. We propose that prg-1 mutant germ cells transmit a heritable epigenetic factor that is stressful and elicits two hormetic stress responses: reproductive arrest and longevity.

genetics

Transgenerational sterility of small RNA genome silencing mutants in response to germ granule dysfunction

In several species, Piwi/piRNA genome silencing defects lead to immediate sterility accompanied by heterochromatin dysfunction and transposon-induced genomic instability, which may cause Piwi mutant sterility. In C. elegans, Piwi pathway mutants transmit a heritable stress through germ cells that induces sterility after growth for several generations. We found that sterile Piwi pathway mutant germ cells displayed inconsistent increases in DNA damage but consistently altered perinuclear germ granules that are known to promote fertility. Germ granule dysfunction did not elicit transposon expression but was sufficient to induce multiple phenotypes found in sterile Piwi silencing mutants, including germline atrophy and regrowth. Furthermore, loss of the germ granule component PGL-1 accelerated sterility in response to deficiency for prg-1/Piwi. Restoration of germ granule function to sterile pgl-1 mutants restored their fertility. Together, our results suggest that germ granule defects may promote an adult reproductive arrest phenotype that is responsible for Piwi/piRNA mutant sterility.

developmental biology

The conserved phosphatase GSP-2/PP1 promotes germline immortality via small RNA-mediated genome silencing during meiosis

Genomic silencing can promote germ cell immortality, or transgenerational maintenance of the germ line, via mechanisms that may occur during mitosis or meiosis. Here we report that the gsp-2 PP1/Glc7 phosphatase promotes germ cell immortality. We identified a separation-of-function allele of C. elegans GSP-2 that caused a meiosis-specific chromosome segregation defect and defects in transgenerational small RNA-induced genome silencing. GSP-2 is recruited to meiotic chromosomes by LAB-1, which also promoted germ cell immortality. Sterile gsp-2 and lab-1 mutant adults displayed germline degeneration, univalents and histone phosphorylation defects in oocytes, similar to small RNA genome silencing mutants. Epistasis and RNA analysis suggested that GSP-2 functions downstream of small RNAs. We conclude that a meiosis-specific function of GSP-2/LAB-1 ties small RNA-mediated silencing of the epigenome to germ cell immortality. Given that hemizygous genetic elements can drive transgenerational epigenomic silencing, and given that LAB-1 promotes pairing of homologous chromosomes and localizes to the interface between homologous chromosomes during pachytene, we suggest that discontinuities at this interface could promote nuclear silencing in a manner that depends on GSP-2.\n\nAuthor SummaryThe germ line of an organism is considered immortal in its capacity to give rise to an unlimited number of future generations. To protect the integrity of the germ line, mechanisms act to suppress the accumulation of transgenerational damage to the genome or epigenome. Loss of germ cell immortality can result from mutations that disrupt the small RNA-mediated silencing pathway that helps to protect the integrity of the epigenome. Here we report for the first time that the C. elegans protein phosphatase GSP-2 that promotes core chromosome biology functions during meiosis is also required for germ cell immortality. Specifically, we identified a partial loss of function allele of gsp-2 that exhibits defects in meiotic chromosome segregation and is also dysfunctional for transgenerational small RNA-mediated genome silencing. Our results are consistent with a known role of Drosophila Protein Phosphatase 1 in heterochromatin silencing, and point to a meiotic phosphatase function that is relevant to germ cell immortality, conceivably related to its roles in chromosome pairing or sister chromatid cohesion.

genetics