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Calcitox-aging counterbalanced by endogenous farnesol-like sesquiterpenoids: An undervalued evolutionarily ancient
1Functional Genomics and Proteomics Group, Department of Biology, KU Leuven-University of Leuven, Leuven, Belgium.
Abstract:
Cells are powerful miniature electrophoresis chambers, at least during part of their life cycle. They die at the moment the voltage gradient over their plasma membrane, and their ability to drive a self-generated electric current carried by inorganic ions through themselves irreversibly collapses. Senescence is likely due to the progressive, multifactorial damage to the cell's electrical system. This is the essence of the "Fading electricity theory of aging" (De Loof et al., Aging Res. Rev. 2013;12:58-66). "Biologic electric current" is not carried by electrons, but by inorganic ions. The major ones are H+, Na+, K+, Ca2+, Mg2+, Cl- and HCO3-. Ca2+ and H+ in particular are toxic to cells. At rising concentrations, they can alter the 3D-conformation of chromatin and some (e.g. cytoskeletal) proteins: Calcitox and Protontox. This paper only focuses on Calcitox and endogenous sesquiterpenoids. pH-control and Ca2+-homeostasis have been shaped to near perfection during billions of years of evolution. The role of Ca2+ in some aspects of aging, e.g., as causal to neurodegenerative diseases is still debated. The main anti-Calcitox mechanism is to keep free cytoplasmic Ca2+ as low as possible. This can be achieved by restricting the passive influx of Ca2+ through channels in the plasma membrane, and by maximizing the active extrusion of excess Ca2+ e.g., by means of different types of Ca2+-ATPases. Like there are mechanisms that antagonize the toxic effects of Reactive Oxygen Species (ROS), there must also exist endogenous tools to counteract Calcitox. During a re-evaluation of which mechanism(s) exactly initiates the fast aging that accompanies induction of metamorphosis in insects, a causal relationship between absence of an endogenous sesquiterpenoid, namely the farnesol ester named "juvenile hormone," and disturbed Ca2+-homeostasis was suggested. In this paper, this line of thinking is further explored and extended to vertebrate physiology. A novel concept emerges: horseshoe-shaped sesquiterpenoids seem to act as "inbrome" agonists with the function of a "chemical valve" or "spring" in some types of multi-helix transmembrane proteins (intramolecular prenylation), from bacterial rhodopsins to some types of GPCRs and ion pumps, in particular the SERCA-Ca2+-pump. This further underpins the Fading Electricity Theory of Aging.
Insights
Cells function as miniature electrophoresis chambers, with aging linked to the collapse of their electrical system. This study explores how calcium (Ca2+) toxicity and sesquiterpenoids relate to cellular aging and proposes a novel mechanism involving these compounds.
Area of Science:
- Cellular Electrophysiology
- Aging Research
- Molecular Biology
Background:
- Cells maintain electrical gradients essential for function, and their collapse correlates with senescence.
- The "Fading Electricity Theory of Aging" posits that progressive damage to the cell's electrical system drives aging.
- Inorganic ions like calcium (Ca2+) and protons (H+) can become toxic at elevated concentrations, impacting cellular structures (Calcitox and Protontox).
Purpose of the Study:
- To explore the role of calcium (Ca2+) toxicity and endogenous sesquiterpenoids in cellular aging.
- To investigate the link between juvenile hormone, Ca2+-homeostasis, and aging processes.
- To extend the "Fading Electricity Theory of Aging" to vertebrate physiology.
Main Methods:
- Review and re-evaluation of existing literature on aging mechanisms, insect metamorphosis, and calcium homeostasis.
- Conceptual exploration of the function of sesquiterpenoids as "inbrome" agonists in transmembrane proteins.
- Analysis of the proposed "chemical valve" or "spring" mechanism involving sesquiterpenoids and ion pumps.
Main Results:
- A causal relationship between the absence of juvenile hormone and disturbed Ca2+-homeostasis was suggested during insect metamorphosis.
- Sesquiterpenoids, particularly horseshoe-shaped ones, may function as "inbrome" agonists, acting as "chemical valves" or "springs" in transmembrane proteins.
- This mechanism is proposed to be involved in regulating ion pumps, such as the SERCA-Ca2+-pump, further supporting the "Fading Electricity Theory of Aging".
Conclusions:
- Endogenous sesquiterpenoids may play a crucial role in maintaining calcium homeostasis and counteracting "Calcitox" effects.
- The proposed "inbrome" mechanism involving sesquiterpenoids offers a novel perspective on cellular regulation and aging.
- This research extends the "Fading Electricity Theory of Aging" by integrating the roles of ion dynamics and sesquiterpenoid function across species.
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