Calcitox-aging counterbalanced by endogenous farnesol-like sesquiterpenoids: An undervalued evolutionarily ancient

Arnold De Loof1

  • 1Functional Genomics and Proteomics Group, Department of Biology, KU Leuven-University of Leuven, Leuven, Belgium.

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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