Electromagnetic Radiation System for Cellular Phenotype Control

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Solution Overview

Problem

Current methods for inducing transformative or morphological changes in cellular structures using electromagnetic and sonic waves lack precision and efficiency in achieving desired phenotypic outcomes, particularly in altering the functionality of in vivo or in vitro target tissues.

Innovation Solution

A system and method employing waveform energy radiation, tuned to the natural frequency of target tissues, to epigenetically influence cellular structures, utilizing a combination of components for generating, directing, and monitoring the radiation, with a computer-controlled protocol to achieve specific phenotypic changes.

Engineering Contradictions & Design Principles

VSEngineering Contradiction Analysis

1Manufacturing precision

If electromagnetic radiation is used to induce transformative changes in cellular structures, then phenotypic outcomes can be achieved, but precision and efficiency in achieving desired phenotypic outcomes are insufficient

Engineering Contradiction:
Improveprecision in achieving desired phenotypic outcomesVSAvoidefficiency in achieving desired phenotypic outcomes
Core Design Contradiction:
Manufacturing precisionVSProductivity

Solution Approach 1:

The patent applies mechanical vibration through resonance by tuning electromagnetic radiation frequency to match the natural frequency of target cellular structures. This resonant vibration enables precise and efficient phenotypic transformation by amplifying the interaction between radiation and cellular structures, thereby resolving the contradiction between precision and efficiency in achieving desired outcomes.

Inventive Principle:
Principle #18Mechanical vibration

Solution Approach 2:

The patent employs parameter changes by systematically adjusting electromagnetic radiation frequency to match natural frequencies of different cellular structures. This frequency tuning parameter change enables selective and precise phenotypic outcomes while maintaining high efficiency, directly addressing the technical contradiction stated.

Inventive Principle:
Principle #35Parameter changes

2Reliability

If electromagnetic radiation frequency is tuned to natural frequency of target tissue, then resonance condition is established for sustained vibrational response, but system complexity increases

Engineering Contradiction:
Improvesustained vibrational responseVSAvoidsystem complexity for frequency tuning
Core Design Contradiction:
ReliabilityVSDevice complexity

Solution Approach 1:

The patent applies self-service by enabling the system to automatically identify and tune to the natural frequency of target cellular structures without requiring complex manual calibration. The system autonomously establishes the resonance condition, thereby maintaining reliable sustained vibrational response while minimizing the operational complexity for the user.

Inventive Principle:
Principle #25Self-service

3Manufacturing precision

If waveform energy radiation is applied to epigenetically influence tissue cells, then desired phenotypic transformation is achieved, but the method may not be commercially viable or easy to use

Engineering Contradiction:
Improvephenotypic transformation accuracyVSAvoidease of use
Core Design Contradiction:
Manufacturing precisionVSEase of operation

Solution Approach 1:

The patent applies feedback by incorporating monitoring components that detect the phenotypic state of target tissue in real-time and provide information back to the control system. This feedback mechanism enables automatic adjustment of radiation parameters to maintain precise phenotypic transformation while simplifying operation, as the system self-regulates based on detected outcomes rather than requiring manual intervention.

Inventive Principle:
Principle #23Feedback

Applied Scientific Principles

This section explains which scientific principles are used to turn an abstract innovation direction into a practical engineering solution.

Function Achieved in This Case

The system effectively alters cellular structures by resonating with their natural frequencies, allowing for precise transformation or morphological changes in target tissues, including the creation of desired phenotypes such as stem cells or termination of cancer cells, while being commercially viable and easy to use.

Implementation Method 1

the radiation frequency is equal to or near a responsive frequency of the cellular structure being radiated... when the vibratory frequency is at or near the natural frequency of the cellular structure. Instead, in this case, a resonance condition is established wherein the vibratory nature of the cellular structure's response is sustained, and possibly even amplified.

Methodology Applied
Scientific EffectResonance: Resonance

Implementation Method 2

the pressure of a sound wave is the result of the fluctuation (i.e. vibrational) component of the wave in its transmission medium... sound (acoustic) pressure acts to exert a force against tissue (mechanical system).

Methodology Applied
Scientific EffectAcoustic radiation pressure: Acoustic Radiation Pressure

Data Source

PatentUS11118172B2System and method for using electromagnetic radiation to influence cellular structures
Publication Date: 2021.09.14 STRATHSPEY CROWN HOLDINGS LLC
  • US11118172B2 patent drawing
  • US11118172B2 patent drawing
  • US11118172B2 patent drawing

AI summary

A system and method for the present invention requires use of a generator, in combination with a radiation unit, to radiate electromagnetic waveform energy onto a target tissue (i.e. a cellular structure). During radiation of the target tissue in accordance with a predetermined titration-like protocol, the influence of the waveform energy on the cellular structure is periodically monitored. The protocol is stopped when the cellular structure has been transformed or morphed into a desired phenotype.