EventsThe 3rd International Electronic Conference on Biomolecules
Published
This submission belongs to the session 1. Biomolecular Structures and Functions of the event The 3rd International Electronic Conference on Biomolecules
Published date
12 Apr, 2024
Academic Editor
author-avatarLuigi Vitagliano
Citation
Alexandre Vetcher, Ivan Savelev, Nelli Zyryanova, Richard A Miller, Max Myakishev-Rempel, Molecular structure considerations for the possibility of sequence-dependent DNA resonances, in Proceedings of The 3rd International Electronic Conference on Biomolecules, 23 April–25 April 2024, MDPI: Basel, Switzerland
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Molecular structure considerations for the possibility of
sequence-dependent DNA resonances

Ivan Savelev 1
image
Nelli Zyryanova 3
Richard A Miller 4
1. DNA Resonance Research Foundation, San Diego, CA, USA,, USA
2. Deputy Director of IBCTNT at RUDN, Russia
3. DNA Resonance Research Foundation, San Diego, CA, USA, USA
4. OAK, Inc., Grants Pass, OR, USA, USA
Abstract

For years, the mechanisms of non-chemical and non-contact communication between cells and organisms have not been studied to the same extent as those associated with the chemical mediators. The novel molecular structure considerations for the possibility of DNA sequence-dependent electromagnetic resonances (DNASDEMRs) are proposed. It is hypothesized that the resonant vibrations naturally occur in the clouds of delocalized electrons and protons in a stack of DNA bases and that some DNA sequence repeats, abundant in the genome, serve as universal resonators, which bidirectionally connect the chromatin structure. The existence of a DNA resonance code is proposed as an algorithm for the transformation of the genomic sequence into the organism’s structure, and an initial model of sequence-specific electromagnetic resonances in DNA was proposed to explain some reported observations. The DNA interaction with a weak electromagnetic field due to DNASDEMR can play a role in non-contact communication between cells as well as in the development of certain non-communicable diseases (NCDs). Our additions to the original concept of DNA resonance give extra reasons to link the organism-level consideration to the molecular consideration through the idea of field coordination and adjustment. This allows us to explain the soft coordination of all molecular events in the body through non-contact communication. Solving this issue will bring medical technologies to a fundamentally new level.

Keywords
DNA resonance
chromatin
genomics
non-communicable diseases
non-contact communication between cells
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