Murburn posttranslational modifications of proteins: Cellular redox processes and murzyme-mediated

Kelath Murali Manoj1

  • 1Satyamjayatu: The Science & Ethics Foundation, Kulappully, Kerala, India.

Insights

The Murburn concept proposes that diffusible reactive species (DRS) are essential for cellular functions, challenging the view of DRS as solely agents of chaos. This review analyzes murburn posttranslational modifications (PTMs) and their physiological roles.

Area of Science:

  • Biochemistry
  • Cell Biology
  • Physiology

Background:

  • The Murburn concept posits that diffusible reactive species (DRS) are integral to routine metabolic and physiological activities.
  • Murzymes, proteins that generate or utilize DRS, are crucial for cellular existence.
  • Historically, DRS have been misperceived as agents of chaos, leading to misinterpretations of cellular events.

Purpose of the Study:

  • To challenge the traditional view of DRS and oxidative stress.
  • To systematically analyze murburn posttranslational modifications (PTMs) of proteins.
  • To explore the physiological implications of murburn PTMs.

Main Methods:

  • Review and analysis of existing literature on murburn and DRS.
  • Parsing and analysis of murburn modifications of proteins.
  • Identification of telltale signs distinguishing murburn PTMs from classical PTMs.

Main Results:

  • Murburn PTMs are integral to cellular existence, involving the stochastic nature of DRS.
  • Telltale signs of murburn PTMs include locus inaccessibility and mechanistic non-specificities.
  • Murburn PTMs can have harmless, beneficial, or deleterious physiological implications.

Conclusions:

  • Murburn PTMs, involving various modifications like phosphorylation and glycosylation, are significant in (patho)physiology and aging.
  • Further research with balanced exploration and statistical verification is needed for a definitive understanding of murburn PTMs.
  • Understanding murburn PTMs could offer new therapeutic avenues.

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