Role of Potassium Ions Quantum Tunneling in the Pathophysiology of Phantom Limb Pain

1) Background: multiple theories were proposed to explain the phenomenon of phantom limb pain (PLP). Nevertheless, the phenomenon is still shrouded in mystery. The aim of this study is to explore the phenomenon from a new perspective, where quantum tunneling of ions, a promising field in medical pra...

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Main Authors: Mustafa Alrabayah, Abdallah Barjas Qaswal, Aiman Suleiman, Lubna Khreesha
Format: Article
Language:English
Published: MDPI AG 2020-04-01
Series:Brain Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3425/10/4/241
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spelling doaj-9b6bfd1e5d7f4ccbb5d0077ea7588fda2020-11-25T02:37:37ZengMDPI AGBrain Sciences2076-34252020-04-011024124110.3390/brainsci10040241Role of Potassium Ions Quantum Tunneling in the Pathophysiology of Phantom Limb PainMustafa Alrabayah0Abdallah Barjas Qaswal1Aiman Suleiman2Lubna Khreesha3Faculty of Medicine, The University of Jordan, PO Box 13046, Amman 11942, JordanFaculty of Medicine, The University of Jordan, PO Box 13046, Amman 11942, JordanFaculty of Medicine, The University of Jordan, PO Box 13046, Amman 11942, JordanFaculty of Medicine, The University of Jordan, PO Box 13046, Amman 11942, Jordan1) Background: multiple theories were proposed to explain the phenomenon of phantom limb pain (PLP). Nevertheless, the phenomenon is still shrouded in mystery. The aim of this study is to explore the phenomenon from a new perspective, where quantum tunneling of ions, a promising field in medical practice, might play a major role. 2) Methods: investigators designed a quantum mathematical model based on the Schrödinger equation to examine the probability of potassium ions quantum tunneling through closed membrane potassium channels to the inside of phantom axons, leading to the generation of action potential. 3) Results: the model suggests that the probability of action potential induction at a certain region of the membrane of phantom neurons, when a neuron of the stump area is stimulated over 1 mm<sup>2</sup>surface area of the membrane available for tunneling is 1.04 × 10<sup>−2</sup>. Furthermore, upon considering two probabilities of potassium channelopathies, one that decreased the energy of the barrier by 25% and another one by 50%, the tunneling probability became 1.22 × 10<sup>−8</sup> and 3.86 × 10<sup>−4</sup>, respectively. 4) Conclusion: quantum models of potassium ions can provide a reliable theoretical hypothesis to unveil part of the ambiguity behind PLP.https://www.mdpi.com/2076-3425/10/4/241quantum neurosciencequantum signalspain pathophysiologyphantom limb painpain biophysics
collection DOAJ
language English
format Article
sources DOAJ
author Mustafa Alrabayah
Abdallah Barjas Qaswal
Aiman Suleiman
Lubna Khreesha
spellingShingle Mustafa Alrabayah
Abdallah Barjas Qaswal
Aiman Suleiman
Lubna Khreesha
Role of Potassium Ions Quantum Tunneling in the Pathophysiology of Phantom Limb Pain
Brain Sciences
quantum neuroscience
quantum signals
pain pathophysiology
phantom limb pain
pain biophysics
author_facet Mustafa Alrabayah
Abdallah Barjas Qaswal
Aiman Suleiman
Lubna Khreesha
author_sort Mustafa Alrabayah
title Role of Potassium Ions Quantum Tunneling in the Pathophysiology of Phantom Limb Pain
title_short Role of Potassium Ions Quantum Tunneling in the Pathophysiology of Phantom Limb Pain
title_full Role of Potassium Ions Quantum Tunneling in the Pathophysiology of Phantom Limb Pain
title_fullStr Role of Potassium Ions Quantum Tunneling in the Pathophysiology of Phantom Limb Pain
title_full_unstemmed Role of Potassium Ions Quantum Tunneling in the Pathophysiology of Phantom Limb Pain
title_sort role of potassium ions quantum tunneling in the pathophysiology of phantom limb pain
publisher MDPI AG
series Brain Sciences
issn 2076-3425
publishDate 2020-04-01
description 1) Background: multiple theories were proposed to explain the phenomenon of phantom limb pain (PLP). Nevertheless, the phenomenon is still shrouded in mystery. The aim of this study is to explore the phenomenon from a new perspective, where quantum tunneling of ions, a promising field in medical practice, might play a major role. 2) Methods: investigators designed a quantum mathematical model based on the Schrödinger equation to examine the probability of potassium ions quantum tunneling through closed membrane potassium channels to the inside of phantom axons, leading to the generation of action potential. 3) Results: the model suggests that the probability of action potential induction at a certain region of the membrane of phantom neurons, when a neuron of the stump area is stimulated over 1 mm<sup>2</sup>surface area of the membrane available for tunneling is 1.04 × 10<sup>−2</sup>. Furthermore, upon considering two probabilities of potassium channelopathies, one that decreased the energy of the barrier by 25% and another one by 50%, the tunneling probability became 1.22 × 10<sup>−8</sup> and 3.86 × 10<sup>−4</sup>, respectively. 4) Conclusion: quantum models of potassium ions can provide a reliable theoretical hypothesis to unveil part of the ambiguity behind PLP.
topic quantum neuroscience
quantum signals
pain pathophysiology
phantom limb pain
pain biophysics
url https://www.mdpi.com/2076-3425/10/4/241
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