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Biology subjects

Teichman, G.

Publications and source records attributed to Teichman, G..

6 recordsLinked to original sources

Dynamic Control of Argonautes by a Rapidly Evolving Immunological Switch

Small RNAs, coupled with Argonuate proteins (AGOs), regulate diverse biological processes, including immunity against nucleic acid parasites. C. elegans possesses an expanded repertoire of at least 19 AGOs functioning in an intricate gene regulatory network. Despite their crucial roles, little is known about the regulation of AGOs, and whether their expression levels, tissue specificity, and functions change in response to genetic perturbations or environmental triggers. Here, we report that PALS-22, a member of an unusually expanded protein family in C. elegans, acts as a negative regulator of antiviral RNAi involving the RIG-I homolog. The loss of pals-22 leads to enhanced silencing of transgenes and endogenous dsRNAs. We found that PALS-22 normally suppresses the expression of two AGOs, VSRA-1 and SAGO-2, which are activated by bZIP transcription factor ZIP-1. When pals-22 is eliminated, vsra-1 and sago-2 are upregulated. These AGOs in turn play key roles in defense against foreign genetic elements and intracellular pathogens, respectively. Surprisingly, while in pals-22 mutants immune genes functioning in the intracellular pathogen response (IPR) are upregulated, removing SAGO-2 or the RNA-dependent RNA polymerase RRF-3 in these mutants leads to the downregulation of these genes. This observation contrasts with the typical gene-silencing role of siRNAs. Finally, by analyzing C. elegans wild isolates and lab reference strains, we demonstrate that PALS-22 regulates the expression of several germline AGOs, affecting germline mortality and transgenerational epigenetic inheritance. In summary, PALS-22 is a key genetic node that balances the trade-off between immunity and germline health by modulating the functions of different AGOs, thereby shaping the outputs of the RNAi machinery and the dynamics of epigenetic inheritance.

genetics↗

Thermosensory neurons control genetic inheritance through regulation of germline transposons

Transposable elements (TEs) can alter genome structure through transposition, and their activity is therefore tightly restricted by small RNA-mediated and chromatin-based silencing mechanisms. In C. elegans, elevated temperature can induce TE expression, raising the question of whether thermosensory neurons influence TE regulation. Here, we investigated the role of the AFD thermosensory neurons in TE regulation using multiple models of AFD dysfunction that altered TE expression; Mirage transposase induction emerged as the most reproducible phenotype across all AFD-dysfunctional strains. In the AFD triple mutant strain (PY9248), we observed strong Tc1 transposase expression, and genome-wide Tc1-enriched de novo insertions over generations. However, CRISPR reconstruction of the genotype in the N2 background did not reproduce the strong Tc1 phenotype, indicating that Tc1 activation and mutagenesis in PY9248 are background-associated rather than solely caused by loss of gcy-8, gcy-18, gcy-23 function. These findings support a model in which AFD neuron dysfunction reproducibly alters TE expression, particularly of Mirage, while heritable Tc1-mediated mutagenesis requires an additional, currently uncharacterized factor present in the AFD triple mutant background.

genetics↗

Perception of Temperature Even in the Absence of Actual Change is Sufficient to Drive Transgenerational Epigenetic Inheritance

Can processes occurring in one individuals nervous system influence the physiology of the descendants? Here, we explored the hypothesis that parents sensation or perception of environmental cues can influence their offspring, extending across many subsequent generations. We show that in Caenorhabditis elegans, temperature perception by the AFD thermosensory neurons initiates a signaling cascade that, directly or indirectly, induces transgenerational changes in RNAi factors, small RNAs, and their target genes. Moreover, we identify secreted factors that enable this neuron-to-germline communication and trace the path of the epigenetic signal. We further model the process mathematically, and the model yields new predictions that we validate experimentally: blocking sensory input dampens RNAi inheritance initiated by exogenous double-stranded RNA (dsRNA). Together, our results demonstrate that sensory perception is sufficient to influence small RNA-mediated heritable gene expression memory.

genetics↗

A Tunable and Druggable Mechanism to Delay Forgetting of Olfactory Memories in C. elegans

The poet W.B Yeats wrote that "All that is personal soon rots, it must be packed in ice or salt". Here we show that in Caenorhabditis elegans nematodes, simple animals with just 302 neurons, memories are preserved on ice and in lithium salt. C. elegans nematodes can form associative memories, which are typically forgotten quickly. We discovered that when placed on ice, worms delay forgetting of specific olfactory memories by at least 8-fold. Delayed forgetting was canceled completely when the worms were gradually adapted to low temperatures, owing to a genetically-encoded program that turns acclimated worms cold-tolerant. RNA-seq, mutant analyses, and pharmacological assays revealed that regulation of membrane properties switches cold-induced delayed forgetting ON and OFF, and, remarkably, that lithium delays forgetting only in cold-sensitive but not cold-tolerant worms. We found that downregulation of the diacylglycerol pathway in the AWC sensory neurons is essential for lithium-mediated delayed forgetting, and using neuronal activity recordings located the memory trace to the downstream AIY interneurons. We suggest that the awesome genetic tractability of C. elegans might be harnessed to study the effects of lithium and cold temperatures on the brain, why it influences psychiatric disorders, and even more fundamentally how memory is stored and lost.

neuroscience↗

RNAlysis: analyze your RNA sequencing data without writing a single line of code

BackgroundAmongst the major challenges in next-generation sequencing experiments are exploratory data analysis, interpreting trends, identifying potential targets/candidates, and visualizing the results clearly and intuitively. These hurdles are further heightened for researchers who are not experienced in writing computer code, since the majority of available analysis tools require programming skills. Even for proficient computational biologists, an efficient and replicable system is warranted to generate standardized results. ResultsWe have developed RNAlysis, a modular Python-based analysis software for RNA sequencing data. RNAlysis allows users to build customized analysis pipelines suiting their specific research questions, going all the way from raw FASTQ files, through exploratory data analysis and data visualization, clustering analysis, and gene-set enrichment analysis. RNAlysis provides a friendly graphical user interface, allowing researchers to analyze data without writing code. We demonstrate the use of RNAlysis by analyzing RNA data from different studies using C. elegans nematodes. We note that the software is equally applicable to data obtained from any organism. ConclusionsRNAlysis is suitable for investigating a variety of biological questions, and allows researchers to more accurately and reproducibly run comprehensive bioinformatic analyses. It functions as a gateway into RNA sequencing analysis for less computer-savvy researchers, but can also help experienced bioinformaticians make their analyses more robust and efficient, as it offers diverse tools, scalability, automation, and standardization between analyses.

bioinformatics↗

Stress Resets Transgenerational Small RNA Inheritance

Transgenerational inheritance of small RNAs is challenging basic concepts of heredity and achieving control over such responses is of great interest. In C. elegans nematodes, small RNAs are transmitted across generations to establish a transgenerational memory trace of ancestral environments and distinguish self from non-self genes. Inheritance of small RNAs is regulated by dedicated machinery and carryover of aberrant heritable small RNA responses was shown to be maladaptive and to induce sterility. Here we show that various types of stress (starvation, high temperatures, and high osmolarity) but not non-stressful changes in cultivation conditions, lead to resetting of small RNA inheritance. We found that stress leads to a genome-wide reduction in heritable small RNA levels and that mutants defective in different stress pathways exhibit irregular RNAi inheritance dynamics. Moreover, we discovered that resetting of heritable RNAi is orchestrated by MAPK pathway factors, the transcription factor SKN-1, and the MET-2 methyltransferase. Termination of small RNA inheritance, and the fact that this process depends on stress, could protect from run-on of environment-irrelevant heritable gene regulation.

genetics↗