Related Experiment Video
Updated: Jul 19, 2026

Techniques to Induce and Quantify Cellular Senescence
Published on: May 1, 2017
Aging and immortality: quasi-programmed senescence and its pharmacologic inhibition
1blagosklonny@hotmail.com
Abstract:
While ruling out programmed aging, evolutionary theory predicts a quasi-program for aging, a continuation of the developmental program that is not turned off, is constantly on, becoming hyper-functional and damaging, causing diseases of aging. Could it be switched off pharmacologically? This would require identification of a molecular target involved in cell senescence, organism aging and diseases of aging. Notably, cell senescence is associated with activation of the TOR (target of rapamycin) nutrient- and mitogen-sensing pathway, which promotes cell growth, even though cell cycle is blocked. Is TOR involved in organism aging? In fact, in yeast (where the cell is the organism), caloric restriction, rapamycin and mutations that inhibit TOR all slow down aging. In animals from worms to mammals caloric restrictions, life-extending agents, and numerous mutations that increase longevity all converge on the TOR pathway. And, in humans, cell hypertrophy, hyper-function and hyperplasia, typically associated with activation of TOR, contribute to diseases of aging. Theoretical and clinical considerations suggest that rapamycin may be effective against atherosclerosis, hypertension and hyper-coagulation (thus, preventing myocardial infarction and stroke), osteoporosis, cancer, autoimmune diseases and arthritis, obesity, diabetes, macula-degeneration, Alzheimer's and Parkinson's diseases. Finally, I discuss that extended life span will reveal new causes for aging (e.g., ROS, 'wear and tear', Hayflick limit, stem cell exhaustion) that play a limited role now, when quasi-programmed senescence kills us first.
Insights
Evolutionary theory suggests aging is a continuation of development, not programmed. Targeting the TOR pathway, a key factor in cell senescence and aging diseases, may offer pharmacological interventions for age-related conditions.
Area of Science:
- Gerontology
- Molecular Biology
- Evolutionary Biology
Background:
- Evolutionary theory proposes aging as a quasi-program, a continuation of development that leads to senescence and age-related diseases.
- Cellular senescence, a hallmark of aging, is linked to the hyperactive TOR (target of rapamycin) pathway.
Purpose of the Study:
- To explore the role of the TOR pathway in organismal aging and age-related diseases.
- To investigate the potential of pharmacological interventions targeting the TOR pathway for treating diseases of aging.
Main Methods:
- Review of existing literature on aging, TOR pathway, and caloric restriction.
- Analysis of evidence from model organisms (yeast, worms, mammals) and human diseases.
Main Results:
- Inhibition of the TOR pathway via caloric restriction, rapamycin, or genetic mutations consistently slows aging across diverse species.
- Hyperactivation of TOR in humans contributes to cellular hypertrophy, hyperplasia, and diseases of aging.
Conclusions:
- The TOR pathway is a central regulator of aging and a potential therapeutic target for age-related diseases.
- Pharmacological inhibition of TOR may offer preventative or therapeutic benefits for conditions like cardiovascular disease, cancer, neurodegenerative disorders, and metabolic syndrome.
Related Concept Videos
Pharmacodynamics in Geriatric Patients: Effects of Age
Pharmacokinetics in Geriatric Patients: Effect of Age on Drug Metabolism
Replicative Cell Senescence
Replicative Cell Senescence
Pharmacokinetics in Geriatric Patients: Effect of Age on Drug Absorption
Drug Dosing: Geriatric Patients
