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Sukarto, E.

Publications and source records attributed to Sukarto, E..

2 recordsLinked to original sources

Glial-derived mitochondrial signals impact neuronal proteostasis and aging.

The nervous system plays a critical role in maintaining whole-organism homeostasis; neurons experiencing mitochondrial stress can coordinate the induction of protective cellular pathways, such as the mitochondrial unfolded protein response (UPRMT), between tissues. However, these studies largely ignored non-neuronal cells of the nervous system. Here, we found that UPRMT activation in four, astrocyte-like glial cells in the nematode, C. elegans, can promote protein homeostasis by alleviating protein aggregation in neurons. Surprisingly, we find that glial cells utilize small clear vesicles (SCVs) to signal to neurons, which then relay the signal to the periphery using dense-core vesicles (DCVs). This work underlines the importance of glia in establishing and regulating protein homeostasis within the nervous system, which can then impact neuron-mediated effects in organismal homeostasis and longevity. One-Sentence SummaryGlial cells sense mitochondrial stress and signal a beneficial stress signal to promote neuronal health and longevity.

genetics↗

Glia of C. elegans coordinate the heat shock response independent of the neuronal thermosensory circuit and serotonin

As organisms age, they lose the ability to induce appropriate stress responses, becoming vulnerable to protein toxicity and tissue damage. Neurons can signal to peripheral tissues to induce protective organelle-specific stress responses. Recent work has demonstrated a novel and independent role of glia in inducing such responses. Here, we show that overexpression of heat shock factor 1 (hsf-1) in the four astrocyte-like cephalic sheath cells of C. elegans is sufficient to induce a non-cell autonomous cytosolic unfolded protein response (UPR), also known as the heat shock response (HSR), in distal cells. These animals upregulate the HSR in peripheral cells and have increased lifespan and resistance to heat stress. This glial HSR regulation is independent of the canonical neuronal thermosensory circuit and of known neurotransmitters but is dependent on the small clear vesicle release protein UNC-13. Additionally, HSF-1 and the FOXO transcription factor DAF-16 are partially required in peripheral tissues for increase of non-autonomous HSR, lifespan, and thermotolerance. We find that cephalic sheath glial hsf-1 over-expression leads to increased pathogen resistance, which suggests a role for this signaling pathway in immune function.

neuroscience↗