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Hepatocytes as Model for Investigating Natural Senotherapeutic Compounds and Their Effects on Cell Cycle Dynamics and
Anastasia Fizikova1, Anna Prokhorova1, Daria Churikova1
1Research Center for Translational Medicine, Sirius University of Science and Technology, Olympic Ave. 1, 354340 Sochi, Russia.
Abstract:
DNA is inherently unstable and is susceptible to damage from both endogenous sources (such as reactive oxygen species) and exogenous factors (including UV, ionizing radiation, and chemicals). The accumulation of DNA damage manifests as genetic mutations, chromosomal instability, and the stalling of DNA replication and transcription processes. Accumulated DNA damage influences apoptosis and cell cycle checkpoints, serving as one of the key triggers for the manifestation of the senescent phenotype. Both aging and cancer are associated with the accumulation of mutations in somatic cells. Disruption of cell cycle control and uncontrolled proliferation are fundamental characteristics of any cancer cell, with the majority of anticancer drugs acting as inhibitors of cyclin-dependent kinases, thereby inducing a transition of cells into a senescent state. Consequently, disturbances in the dynamics and regulation of inflammatory responses, oxidative stress, cell proliferation, DNA damage repair, and epigenetic anomalies, along with the influence of retroviruses and transposons, lead to the accumulation of senescent cells within the human body, characterized by blocked replication and cell cycle, as well as a distinct secretory phenotype. The age-related or disease-associated accumulation of these senescent cells significantly alters the physiology of tissues and the organism as a whole. Many secondary metabolites of higher plants exhibit senolytic and senomorphic activities, although most of them are not fully characterized. In this review, we will explore the principal signaling pathways in mammalian cells that govern the cell cycle and cellular senescence, with a particular emphasis on how their dynamics, expression, and regulation have been modified through the application of senotherapeutic compounds. The second section of the review will identify key target genes for the metabolic engineering, primarily aimed at enhancing the accumulation of plant secondary metabolites with potential therapeutic benefits. Lastly, we will discuss the rationale for utilizing liver cells as a model system to investigate the effects of senolytic compounds on human physiology and health, as well as how senotherapeutic substances can be leveraged to improve gene therapy approaches based on CRISPR/Cas9 and prime-editing technologies.
Insights
DNA damage triggers cellular senescence, impacting aging and cancer. This review explores senotherapeutic compounds, plant metabolites, and liver cell models for potential health and gene therapy applications.
Area of Science:
- Cellular Biology
- Genetics
- Pharmacology
Background:
- DNA instability leads to mutations, chromosomal abnormalities, and stalled replication/transcription.
- Accumulated DNA damage influences apoptosis and cell cycle checkpoints, initiating cellular senescence.
- Cellular senescence, characterized by blocked replication and a distinct secretory phenotype, contributes to aging and disease.
Purpose of the Study:
- To review signaling pathways governing cell cycle and senescence in mammalian cells.
- To explore the impact of senotherapeutic compounds on these pathways.
- To identify plant-derived compounds and metabolic engineering targets for senolytics and senomorphics.
Main Methods:
- Review of signaling pathways regulating cell cycle and senescence.
- Analysis of senotherapeutic compound effects on cellular dynamics.
- Identification of plant secondary metabolites with senolytic/senomorphic potential.
- Discussion of liver cells as a model for senolytic compound investigation.
- Exploration of senotherapeutics in CRISPR/Cas9 and prime-editing gene therapies.
Main Results:
- Disturbances in DNA repair, oxidative stress, and inflammation contribute to senescent cell accumulation.
- Plant secondary metabolites show promise as senolytic and senomorphic agents.
- Senotherapeutic compounds can modify cell cycle and senescence dynamics.
- Liver cells offer a viable model for studying senolytic compound effects.
- Senotherapeutics can potentially enhance gene therapy efficacy.
Conclusions:
- Senescent cell accumulation significantly impacts tissue and organismal physiology.
- Targeting cellular senescence with senotherapeutics, including plant-derived compounds, holds therapeutic potential.
- Further research into senolytic and senomorphic agents, alongside advanced gene editing, is crucial for improving health and treating age-related diseases and cancer.

