Search bioRxiv⌕ Search

bioRxiv · 10.1101/2024.12.01.625591

C. elegans huntingtin, htt-1, promotes robust autophagy induction and survival under stress conditions

Abstract

Huntingtin (HTT) is the gene responsible for Huntingtons disease (HD), a neurodegenerative disorder caused by a CAG trinucleotide repeat expansion mutation. While HD pathogenesis has traditionally been attributed to the toxic gain-of-function effects of mutant huntingtin (mHTT), increasing evidence underscores the critical role of wild-type HTT loss-of-function. Understanding the physiological roles of HTT is essential for elucidating HD mechanisms and developing effective therapeutic strategies. The C. elegans htt-1 gene, an ortholog of human HTT, remains largely uncharacterized. Here, we demonstrate that htt-1 promotes survival under stress conditions that requires autophagy as a defense mechanism. Specifically, we identify intestinal htt-1 as a key regulator of C. elegans survival during Pseudomonas aeruginosa PA14 infection. Our findings reveal that htt-1 functions downstream of the MPK-1/ERK pathway to induce systemic autophagy and enhance host defense during immune challenges. Moreover, expression of wild-type human HTT in htt-1 mutant worms rescues the survival defect during PA14 infection. Expression of mutant human HTT, on the other hand, exacerbates survival deficits, underscoring the conserved function of HTT across species. Additionally, we found that htt-1 affects survival and autophagy under heat shock stress conditions. These results establish htt-1 as a critical regulator of survival and autophagy in response to both pathogenic bacterial infection and thermal stress. Author summaryHuntingtin plays essential roles in selective autophagy across various organisms, including Drosophila, mice, and humans. Notably, the C. elegans huntingtin ortholog, htt-1, remains largely uncharacterized. Here, we describe a novel pro-survival role htt-1 in stress resistance. We show that htt-1 mutants exhibit significantly reduced survival during Pseudomonas aeruginosa infection. Expression of wild-type human HTT rescues the reduced survival of htt-1 mutants, whereas mutant HTT further exacerbates the phenotype. These findings establish C. elegans htt-1 as a valuable model for studying huntingtin biology and its roles in stress resistance. Downregulation of ERK in htt-1 mutants had no additional effect on survival, suggesting that htt-1 functions downstream of ERK. Interestingly, htt-1 mutants display reduced autophagy, indicating that htt-1 functions in the ERK-autophagy signaling cascade during infection. Mechanistically, we propose that htt-1 regulates autophagy at the protein level. HTT-1 remains cytoplasmic, and autophagy-related gene transcripts remain stable, without downregulation, in htt-1 mutants following infection. Additionally, htt-1 mutants exhibit reduced survival and impaired autophagy under heat stress. These results suggest that htt-1 may have a broader role in stress resilience extending beyond immune defense.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Chung, C. H., Lee, H., Park, K., Park, Y. S., Seong, I., Lee, J.. 2024-12-02. C. elegans huntingtin, htt-1, promotes robust autophagy induction and survival under stress conditions. https://doi.org/10.1101/2024.12.01.625591

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related preprints

Nucleosome Core Allostery Governs Chromatin Recognition and Cell Fate

Nucleosomes regulate chromatin folding, accessibility, and factor recruitment. Current models primarily attribute these functions to histone tail modifications, while the core is largely viewed as a structural scaffold. Yet subtle changes within the nucleosome core can produce profound functional consequences, and the mechanisms underlying these effects remain unclear. Here, we describe nucleosome core allostery as a fundamental principle of chromatin regulation that amplifies the impact of minimal nucleosome variations. Leveraging natural differences between H2A.Z variants, we show that the nucleosome core encodes distinct conformational dynamics that propagate allosterically, thereby controlling nucleosome accessibility and recognition by chromatin factors. As a result, a single buried amino acid substitution alone is sufficient to reprogram nucleosome dynamics and bias cell identity. Our findings establish the nucleosome core as an allosteric regulatory module and provide a generalizable framework for how subtle variation within nucleosomes is amplified into diverse biological outcomes in development and disease.

cell biology↗

SOX4 Reprograms Adipose Stromal Cells into a Cancer-Associated Fibroblast-like State to Drive Metabolic Disease

Pathogenic adipose tissue remodeling promotes metabolic disease in obesity, but the mechanisms that establish this unhealthy tissue state remain poorly understood. Here, we show that obesity drives SOX4-dependent reprogramming of mesenchymal stromal cells (MSCs) into cancer-associated fibroblast-like (CAF-like) cells that promote adipose tissue dysfunction. TGF{beta} signaling is elevated in obesity and activates SOX4 in mouse and human MSCs, inducing their conversion to a CAF-like state. In mice, MSC-specific SOX4 activation induces the CAF-like program and exacerbates adipose tissue inflammation and glucose intolerance, whereas Sox4 deletion attenuates inflammation and improves glucose homeostasis during obesity. We further identify the growth factor Midkine (MDK) as a SOX4-regulated paracrine effector produced by CAF-like cells. MDK inhibition in obese mice reduces adipose tissue inflammation and improves metabolic function. Together, these findings define a TGF{beta}-SOX4-MDK stromal signaling axis that drives pathological adipose tissue remodeling in obesity and highlight this pathway as a potential therapeutic target for improving metabolic health.

cell biology↗

PDLIM5 Modulates YAP1 Localisation and Fibrogenic Gene Expression in Hepatic Stellate Cells

Hepatic stellate cells (HSCs) are the key cellular drivers of liver fibrosis. During liver injury and chronic inflammation HSCs adopt an activated phenotype and secrete fibrotic extracellular matrix (ECM) components such as collagen 1. Mechanical cues derived from the fibrotic ECM drive and support the activation of HSCs, via mechanisms that involve integrins and the mechano-sensitive transcriptional regulator YAP1. It is not yet well understood how external mechanical cues are translated into a molecular response that alters YAP1 nuclear shuttling. There is evidence that suggests the PDZ and LIM domain protein (PDLIM) 5 can regulate YAP1 shuttling in human epithelial cells. We therefore investigated whether PDLIM5 is expressed in HSCs and contributes to YAP1 associated HSC mechano-activation. PDLIM5 protein was detected in HSCs in fibrotic human and mouse liver. PDLIM5 transcript and protein were expressed by primary human and mouse HSCs and by the immortalised HSC LX-2 cell line. PDLIM5 localised with actin stress fibres suggesting a role in HSC adhesion. Co-immunoprecipitation and proximity ligation in LX-2 cells support an association between PDLIM5 and YAP1. We used pharmacological (paclitaxel) and genetic (siRNA and CRISPRi) approaches to inhibit PDLIM5 in HSCs. Inhibiting PDLIM5 reduced YAP1 nuclear localisation and fibrotic gene (COL1A1, ACTA2) expression in LX-2 cells. Overall, these data support a role for PDLIM5 in regulating YAP1 localisation and fibrogenic gene expression in HSCs.

cell biology↗