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Unlocking Mitochondrial Dysfunction-associated Senescence (MiDAS) with NAD - A Boolean Model of Mitochondrial Dynamics and Cell Cycle Control

Overview
Journal Transl Oncol
Specialty Oncology
Date 2024 Aug 20
PMID 39163758
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Abstract

The steady accumulation of senescent cells with aging creates tissue environments that aid cancer evolution. Aging cell states are highly heterogeneous. 'Deep senescent' cells rely on healthy mitochondria to fuel a strong proinflammatory secretome, including cytokines, growth and transforming signals. Yet, the physiological triggers of senescence such as reactive oxygen species (ROS) can also trigger mitochondrial dysfunction, and sufficient energy deficit to alter their secretome and cause chronic oxidative stress - a state termed Mitochondrial Dysfunction-Associated Senescence (MiDAS). Here, we offer a mechanistic hypothesis for the molecular processes leading to MiDAS, along with testable predictions. To do this we have built a Boolean regulatory network model that qualitatively captures key aspects of mitochondrial dynamics during cell cycle progression (hyper-fusion at the G1/S boundary, fission in mitosis), apoptosis (fission and dysfunction) and glucose starvation (reversible hyper-fusion), as well as MiDAS in response to SIRT3 knockdown or oxidative stress. Our model reaffirms the protective role of NAD and external pyruvate. We offer testable predictions about the growth factor- and glucose-dependence of MiDAS and its reversibility at different stages of reactive oxygen species (ROS)-induced senescence. Our model provides mechanistic insights into the distinct stages of DNA-damage induced senescence, the relationship between senescence and epithelial-to-mesenchymal transition in cancer and offers a foundation for building multiscale models of tissue aging.

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References
1.
Kong X, Wang R, Xue Y, Liu X, Zhang H, Chen Y . Sirtuin 3, a new target of PGC-1alpha, plays an important role in the suppression of ROS and mitochondrial biogenesis. PLoS One. 2010; 5(7):e11707. PMC: 2908542. DOI: 10.1371/journal.pone.0011707. View

2.
Rambold A, Kostelecky B, Elia N, Lippincott-Schwartz J . Tubular network formation protects mitochondria from autophagosomal degradation during nutrient starvation. Proc Natl Acad Sci U S A. 2011; 108(25):10190-5. PMC: 3121813. DOI: 10.1073/pnas.1107402108. View

3.
Karin O, Agrawal A, Porat Z, Krizhanovsky V, Alon U . Senescent cell turnover slows with age providing an explanation for the Gompertz law. Nat Commun. 2019; 10(1):5495. PMC: 6889273. DOI: 10.1038/s41467-019-13192-4. View

4.
Bazil J, Beard D, Vinnakota K . Catalytic Coupling of Oxidative Phosphorylation, ATP Demand, and Reactive Oxygen Species Generation. Biophys J. 2016; 110(4):962-71. PMC: 4776027. DOI: 10.1016/j.bpj.2015.09.036. View

5.
Aghakhani S, E Silva-Saffar S, Soliman S, Niarakis A . Hybrid computational modeling highlights reverse warburg effect in breast cancer-associated fibroblasts. Comput Struct Biotechnol J. 2023; 21:4196-4206. PMC: 10495551. DOI: 10.1016/j.csbj.2023.08.015. View