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A Semi-Quantitative Drug Affinity Responsive Target Stability DARTS assay for studying Rapamycin/mTOR interaction
Published on: August 27, 2019
Rapamycin directly activates lysosomal mucolipin TRP channels independent of mTOR
Xiaoli Zhang1, Wei Chen1, Qiong Gao1
1Department of Molecular, Cellular, and Developmental Biology, University of Michigan, Ann Arbor, Michigan, United States of America.
Abstract:
Rapamycin (Rap) and its derivatives, called rapalogs, are being explored in clinical trials targeting cancer and neurodegeneration. The underlying mechanisms of Rap actions, however, are not well understood. Mechanistic target of rapamycin (mTOR), a lysosome-localized protein kinase that acts as a critical regulator of cellular growth, is believed to mediate most Rap actions. Here, we identified mucolipin 1 (transient receptor potential channel mucolipin 1 [TRPML1], also known as MCOLN1), the principle Ca2+ release channel in the lysosome, as another direct target of Rap. Patch-clamping of isolated lysosomal membranes showed that micromolar concentrations of Rap and some rapalogs activated lysosomal TRPML1 directly and specifically. Pharmacological inhibition or genetic inactivation of mTOR failed to mimic the Rap effect. In vitro binding assays revealed that Rap bound directly to purified TRPML1 proteins with a micromolar affinity. In both healthy and disease human fibroblasts, Rap and rapalogs induced autophagic flux via nuclear translocation of transcription factor EB (TFEB). However, such effects were abolished in TRPML1-deficient cells or by TRPML1 inhibitors. Hence, Rap and rapalogs promote autophagy via a TRPML1-dependent mechanism. Given the demonstrated roles of TRPML1 and TFEB in cellular clearance, we propose that lysosomal TRPML1 may contribute a significant portion to the in vivo neuroprotective and anti-aging effects of Rap via an augmentation of autophagy and lysosomal biogenesis.
Insights
Rapamycin and its analogs directly target the lysosomal TRPML1 channel, promoting autophagy and cellular clearance. This TRPML1-dependent mechanism may explain rapamycin's neuroprotective and anti-aging effects.
Area of Science:
- Cell Biology
- Molecular Pharmacology
- Neuroscience
Background:
- Rapamycin (Rap) and rapalogs are investigated for cancer and neurodegenerative diseases.
- The precise mechanisms of Rap action remain unclear, with mTOR being the primary suspected target.
- Lysosomes play crucial roles in cellular homeostasis and disease pathogenesis.
Purpose of the Study:
- To identify novel direct targets of Rapamycin beyond mTOR.
- To elucidate the role of TRPML1 in mediating Rapamycin's cellular effects.
- To investigate the mechanism by which Rapamycin influences autophagy and lysosomal function.
Main Methods:
- Patch-clamp electrophysiology on isolated lysosomal membranes.
- In vitro binding assays with purified TRPML1.
- Experiments using TRPML1-deficient cells and pharmacological inhibitors.
- Analysis of autophagic flux and TFEB translocation in human fibroblasts.
Main Results:
- Rapamycin and rapalogs directly activated lysosomal TRPML1 channels at micromolar concentrations.
- mTOR inhibition or inactivation did not replicate Rapamycin's effects on TRPML1.
- Rapamycin bound directly to TRPML1, inducing autophagic flux via TFEB nuclear translocation.
- These Rapamycin-induced effects were dependent on functional TRPML1.
Conclusions:
- Rapamycin and rapalogs directly target and activate the lysosomal TRPML1 channel.
- Autophagy promotion by Rapamycin occurs through a TRPML1-dependent pathway involving TFEB.
- Lysosomal TRPML1 activation is a key mechanism underlying Rapamycin's neuroprotective and anti-aging properties.
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