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Computational Analysis of an Autophagy/Translation Switch Based on Mutual Inhibition of MTORC1 and ULK1

Paulina Szymańska-Rożek, Katie R. Martin, Jeffrey P. MacKeigan, William S. Hlavacek, Tomasz Lipniacki

PLoS ONE · 2015 · ▲ 45 citations

Abstract

We constructed a mechanistic, computational model for regulation of (macro)autophagy(definition) and protein synthesis (at the level of translation). The model was formulated to study the system-level consequences of interactions among the following proteins: two key components of MTOR(definition) complex 1 (MTORC1), namely the protein kinase MTOR (mechanistic target of rapamycin(definition)) and the scaffold protein RPTOR; the autophagy-initiating protein kinase ULK1; and the multimeric energy-sensing AMP-activated protein kinase (AMPK). Inputs of the model include intrinsic AMPK kinase activity, which is taken as an adjustable surrogate parameter for cellular energy level or AMP:ATP ratio, and rapamycin dose, which controls MTORC1 activity. Outputs of the model include the phosphorylation level of the translational repressor EIF4EBP1, a substrate of MTORC1, and the phosphorylation level of AMBRA1 (activating molecule in BECN1-regulated autophagy), a substrate of ULK1 critical for autophagosome formation. The model incorporates reciprocal regulation of mTORC1 and ULK1 by AMPK, mutual inhibition of MTORC1 and ULK1, and ULK1-mediated negative feedback regulation of AMPK. Through analysis of the model, we find that these processes may be responsible, depending on conditions, for graded responses to stress inputs, for bistable switching between autophagy and protein synthesis, or relaxation oscillations, comprising alternating periods of autophagy and protein synthesis. A sensitivity analysis indicates that the prediction of oscillatory behavior is robust to changes of the parameter values of the model. The model provides testable predictions about the behavior of the AMPK-MTORC1-ULK1 network, which plays a central role in maintaining cellular energy and nutrient homeostasis.

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OpenAlex
DOI
10.1371/journal.pone.0116550
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2026-06-18 MST

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APA
Szymańska-Rożek, P., Martin, K.R., MacKeigan, J.P., Hlavacek, W.S., &amp; Lipniacki, T. (2015). Computational Analysis of an Autophagy/Translation Switch Based on Mutual Inhibition of MTORC1 and ULK1. <em>PLoS ONE</em>. https://doi.org/10.1371/journal.pone.0116550
Vancouver
Szymańska-Rożek P, Martin KR, MacKeigan JP, Hlavacek WS, Lipniacki T. Computational Analysis of an Autophagy/Translation Switch Based on Mutual Inhibition of MTORC1 and ULK1. PLoS ONE. 2015. doi:10.1371/journal.pone.0116550.
BibTeX
@article{paulina2015Comput, title = {Computational Analysis of an Autophagy/Translation Switch Based on Mutual Inhibition of MTORC1 and ULK1}, author = {Paulina Szymańska-Rożek and Katie R. Martin and Jeffrey P. MacKeigan and William S. Hlavacek and Tomasz Lipniacki}, journal = {PLoS ONE}, year = {2015}, doi = {10.1371/journal.pone.0116550}, }

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