The recent advances of quantum biology suggest a potential role in biomedical research. Studies related to electromagnetic fields, proton pumping in mitochondrial respiratory chain, quantum theory of T-cell receptor (TCR)-degeneracy, theories on biophotons, pyrophosphates or tubulin as possible carriers for neural information, and quantum properties of ions and protons, might be useful for understanding mechanisms of some serious immune, cardiovascular, and neural pathol-ogies for which classic biomedical research, based on biochemical approach, is struggling to find new therapeutic strategies. A breakthrough in medical knowledge is therefore needed in order to improve the understanding of the complex interactions among various systems and organs typical of such pathologies. In particular, problems related to immune system over-activation, to the role of autonomic nervous system (ANS) dysfunction in the obstructive sleep apnea (OSA) syndrome, to the clinical consequences of ion channels dysfunction and inherited cardiac diseases, could ben-efit from the new perspective provided by quantum biology advancement. Overall, quantum biology might provide a promising biophysical theoretic system, on which to base pathophysiology understanding and hopefully therapeutic strategies. With the present work, authors hope to open a constructive and multidisciplinary debate on this important topic.

Calvillo, L., Redaelli, V., Ludwig, N., Qaswal, A., Ghidoni, A., Faini, A., et al. (2022). Quantum Biology Research Meets Pathophysiology and Therapeutic Mechanisms: A Biomedical Perspective. QUANTUM REPORTS, 4(2), 148-172 [10.3390/quantum4020011].

Quantum Biology Research Meets Pathophysiology and Therapeutic Mechanisms: A Biomedical Perspective

Redaelli V.;Lombardi C.;Pengo M.;Parati G.
2022

Abstract

The recent advances of quantum biology suggest a potential role in biomedical research. Studies related to electromagnetic fields, proton pumping in mitochondrial respiratory chain, quantum theory of T-cell receptor (TCR)-degeneracy, theories on biophotons, pyrophosphates or tubulin as possible carriers for neural information, and quantum properties of ions and protons, might be useful for understanding mechanisms of some serious immune, cardiovascular, and neural pathol-ogies for which classic biomedical research, based on biochemical approach, is struggling to find new therapeutic strategies. A breakthrough in medical knowledge is therefore needed in order to improve the understanding of the complex interactions among various systems and organs typical of such pathologies. In particular, problems related to immune system over-activation, to the role of autonomic nervous system (ANS) dysfunction in the obstructive sleep apnea (OSA) syndrome, to the clinical consequences of ion channels dysfunction and inherited cardiac diseases, could ben-efit from the new perspective provided by quantum biology advancement. Overall, quantum biology might provide a promising biophysical theoretic system, on which to base pathophysiology understanding and hopefully therapeutic strategies. With the present work, authors hope to open a constructive and multidisciplinary debate on this important topic.
Articolo in rivista - Review Essay
cardiovascular dis-ease; DNA point mutations; electromagnetic fields; immune dysfunction; information transmission in neurons; neural dysfunction; obstructive sleep apnea (OSA) syndrome; quantum biology; quantum properties of protons and ions; reactive oxygen species (ROS); stem cells;
English
4-apr-2022
2022
4
2
148
172
open
Calvillo, L., Redaelli, V., Ludwig, N., Qaswal, A., Ghidoni, A., Faini, A., et al. (2022). Quantum Biology Research Meets Pathophysiology and Therapeutic Mechanisms: A Biomedical Perspective. QUANTUM REPORTS, 4(2), 148-172 [10.3390/quantum4020011].
File in questo prodotto:
File Dimensione Formato  
quantumrep-04-00011-v2.pdf

accesso aperto

Tipologia di allegato: Publisher’s Version (Version of Record, VoR)
Licenza: Creative Commons
Dimensione 1.84 MB
Formato Adobe PDF
1.84 MB Adobe PDF Visualizza/Apri

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/10281/553522
Citazioni
  • Scopus 13
  • ???jsp.display-item.citation.isi??? 10
Social impact