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Long-term Live-cell Imaging to Assess Cell Fate in Response to Paclitaxel
Published on: May 14, 2018
Live cell imaging reveals paclitaxel-induced lysosome motility and function disruption in DRG neurons
Kathleen Cate Domalogdog1,2, Ishwarya Sankaranarayan1,2, Úrzula Franco-Enzástiga1,2
1Department of Neuroscience, The University of Texas at Dallas, Richardson, TX 75080, USA.
Abstract:
Lysosomal trafficking and homeostasis are biological functions that are pivotal for DRG neurons, given their metabolic demands and extremely long axons. Previous studies indicate that lysosomal signaling is altered in a mouse model of chemotherapy-induced peripheral neuropathy (CIPN) and that blocking mitogen activated protein kinase-associated kinase (MNK1/2) signaling can alleviate pain behaviors in CIPN. Here, we investigated lysosome dynamics and lysosome-associated signaling in a mouse model of CIPN induced by paclitaxel (PTX), a chemotherapeutic agent used for various types of cancer. Using spinning disk super-resolution microscope (SPINSR), we demonstrate that PTX treatment in vivo causes reduced lysosome motility observed in vitro. PTX likewise drives the accumulation of Sequestosome 1 (SQSTM1), also known as P62, in cultured mouse DRG neurons, indicating lysosomal dysfunction in DRG neurons. The transcription factor EB (TFEB), a master regulator of lysosomal biogenesis, was also upregulated in the nucleus of cultured mouse DRG neurons treated with PTX. In line with this, increased lysosomal-associated membrane protein 1 (LAMP1) expression was observed in PTX-treated mice. Given that our previous work demonstrated PTX treatment increases MNK1/2-eIF4E signaling in DRG neurons, we examined whether MNK1/2 inhibition could rescue lysosomal dysfunction. Treatment with Tomivosertib (eFT508), a potent MNK1/2 inhibitor, restored P62 levels in DRG neurons of PTX-treated mice and reduced TFEB in DRG treated in vitro. To establish translation relevance, we further show that PTX elevates phosphorylated eiF4E (p-eIF4E) in human DRG neurons, and concurrent eFT508 administration attenuates this effect. Collectively, these findings indicated that PTX disrupts lysosome trafficking and biogenesis, and that MNK inhibition with eFT508 restores lysosomal signaling and can serve as a neuroprotective strategy for CIPN.
Insights
Paclitaxel (PTX) disrupts lysosome function in neurons, causing chemotherapy-induced peripheral neuropathy (CIPN). MNK1/2 inhibition with Tomivosertib (eFT508) restores lysosomal signaling and may protect against CIPN.
Area of Science:
- Neuroscience
- Cell Biology
- Pharmacology
Background:
- Lysosomal trafficking and homeostasis are crucial for dorsal root ganglion (DRG) neurons.
- Chemotherapy-induced peripheral neuropathy (CIPN) involves altered lysosomal signaling.
- Mitogen activated protein kinase-associated kinase (MNK1/2) signaling is implicated in CIPN pain.
Purpose of the Study:
- To investigate lysosome dynamics and signaling in a paclitaxel (PTX)-induced mouse model of CIPN.
- To determine if MNK1/2 inhibition can rescue PTX-induced lysosomal dysfunction in DRG neurons.
Main Methods:
- Utilized spinning disk super-resolution microscopy (SPINSR) for in vivo and in vitro analysis.
- Assessed lysosome motility, Sequestosome 1 (SQSTM1/P62) accumulation, transcription factor EB (TFEB) nuclear translocation, and lysosomal-associated membrane protein 1 (LAMP1) expression.
- Examined the effect of Tomivosertib (eFT508), an MNK1/2 inhibitor, on PTX-treated mouse and human DRG neurons.
Main Results:
- PTX treatment reduced lysosome motility and increased P62 accumulation in DRG neurons, indicating lysosomal dysfunction.
- PTX upregulated TFEB and LAMP1 expression, suggesting activation of lysosomal biogenesis pathways.
- eFT508 treatment restored P62 levels, reduced TFEB, and attenuated paclitaxel-induced phosphorylated eIF4E (p-eIF4E) in human DRG neurons.
Conclusions:
- Paclitaxel disrupts lysosome trafficking and biogenesis in DRG neurons, contributing to CIPN.
- MNK1/2 inhibition with eFT508 restores lysosomal signaling pathways.
- MNK inhibition represents a potential neuroprotective strategy for managing CIPN.

