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Biology subjects

Scepanovic, G.

Publications and source records attributed to Scepanovic, G..

2 recordsLinked to original sources

mTOR inhibits autophagy to facilitate cell swelling and rapid wound repair

Embryonic wounds repair rapidly, with no inflammation or scarring. Embryonic wound healing is driven by collective cell movements facilitated by the swelling of the cells adjacent to the wound. The mechanistic target of rapamycin complex 1 (mTORC1) is often associated with cell growth. We found that disrupting mTORC1 signalling prevented cell swelling and slowed down wound repair. Catabolic processes, such as autophagy, can inhibit cell growth. Using five-dimensional time-lapse microscopy, as well as pharmacological and genetic manipulations, we demonstrated that the number of autophagosomes decreased during wound repair, suggesting that autophagy must be tightly regulated for rapid wound healing. Quantitative image analysis showed that mTOR inhibition increased autophagy, and that activating autophagy prevented cell swelling and slowed down embryonic wound closure. Finally, reducing autophagy in embryos in which mTORC1 signalling was disrupted rescued rapid wound repair. Together, our results show that mTORC1 activation upon wounding negatively regulates autophagy, allowing cells to increase their volumes to facilitate rapid wound healing.

cell biology↗

Cortical tension regulates Hippo signaling via Par-1-mediated Kibra degradation

The Hippo pathway is an evolutionarily conserved regulator of tissue growth. Multiple Hippo signaling components are regulated via proteolytic degradation. However, how these degradation mechanisms are themselves modulated remains unexplored. Kibra is a key upstream pathway activator that promotes its own ubiquitin-mediated degradation upon assembling a Hippo signaling complex. Here, we demonstrate that Hippo complex-dependent Kibra degradation is modulated by cortical tension. Using classical genetic, osmotic, and pharmacological manipulations of myosin activity and cortical tension, we show that increasing cortical tension leads to Kibra degradation, whereas decreasing cortical tension increases Kibra abundance. Our study also implicates Par-1 in regulating Kib abundance downstream of cortical tension. We demonstrate that Par-1 promotes ubiquitin-mediated Kib degradation in a Hippo complex-dependent manner and is required for tension-induced Kib degradation. Collectively, our results reveal a previously unknown molecular mechanism by which cortical tension affects Hippo signaling and provide novel insights into the role of mechanical forces in growth control.

cell biology↗