External magnetic fields and human health : a link to biological enzyme reaction systems

Human exposure to weak, environmental electromagnetic fields (EMF) is widespread. Furthermore, a statistically significant association exists between residential proximity to high-voltage power lines and an increased risk of childhood Leukaemia. Most possible mechanisms involving such weak EMF are o...

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Main Author: Jones, Alex R.
Other Authors: Woodward, Jonny ; Scrutton, Nigel
Published: University of Leicester 2008
Subjects:
Online Access:http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.490766
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spelling ndltd-bl.uk-oai-ethos.bl.uk-4907662015-03-20T04:00:09ZExternal magnetic fields and human health : a link to biological enzyme reaction systemsJones, Alex R.Woodward, Jonny ; Scrutton, Nigel2008Human exposure to weak, environmental electromagnetic fields (EMF) is widespread. Furthermore, a statistically significant association exists between residential proximity to high-voltage power lines and an increased risk of childhood Leukaemia. Most possible mechanisms involving such weak EMF are overwhelmed by the body’s own thermal ‘noise’. The radical pair mechanism (RPM), however, can circumvent thermodynamic considerations by magnetic field (MF)-induced changes in reaction rate. A ‘magnetic field effect (MFE) stopped-flow spectrophotometer’ has been successfully constructed and tested in-house to enable robust investigations with enzyme reaction systems involving RP intermediates. A commercial instrument was modified by reengineering the assembly that houses the 20 μl reaction cell from non-magnetic materials (Delrin and aluminium). Adjustable MF pulses (≤ 37 mT) are generated for a user-definable period within the cell volume by a bespoke pair of Helmholtz coils and a pulsed power supply. A previously published MFE in a horseradish peroxidase catalyzed reaction was chosen as a biological test system. However, the field-dependence, including the unique low-field feature, was not reproduced. Reanalysis of the original data uncovered a number of problems, the most significant being: 1) the method and analysis were insensitive to the reported changes; 2) the proposed RP are entirely notional. Stopped-flow MFE studies with adenosylcobalamin (AdoCbl)-dependent ethanolamine ammonia lyase (EAL), conducted by the same authors, were also revisited. The original method, used to identify the magnetically-sensitive step as C"Co homolysis, was found instead to be rate-limited by cofactor binding. The protocol was redesigned, but still no MFE observed. However, one was observed in the photolysis rate of both free AdoCbl and holo- EAL in absence of substrate. Together, these results suggest RP stabilization upon substrate binding, which has implications for the enormous catalytic power of AdoCbl-dependent enzymes. Two Human enzymes were also screened for MFEs, with negative outcomes.577.14University of Leicesterhttp://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.490766http://hdl.handle.net/2381/8622Electronic Thesis or Dissertation
collection NDLTD
sources NDLTD
topic 577.14
spellingShingle 577.14
Jones, Alex R.
External magnetic fields and human health : a link to biological enzyme reaction systems
description Human exposure to weak, environmental electromagnetic fields (EMF) is widespread. Furthermore, a statistically significant association exists between residential proximity to high-voltage power lines and an increased risk of childhood Leukaemia. Most possible mechanisms involving such weak EMF are overwhelmed by the body’s own thermal ‘noise’. The radical pair mechanism (RPM), however, can circumvent thermodynamic considerations by magnetic field (MF)-induced changes in reaction rate. A ‘magnetic field effect (MFE) stopped-flow spectrophotometer’ has been successfully constructed and tested in-house to enable robust investigations with enzyme reaction systems involving RP intermediates. A commercial instrument was modified by reengineering the assembly that houses the 20 μl reaction cell from non-magnetic materials (Delrin and aluminium). Adjustable MF pulses (≤ 37 mT) are generated for a user-definable period within the cell volume by a bespoke pair of Helmholtz coils and a pulsed power supply. A previously published MFE in a horseradish peroxidase catalyzed reaction was chosen as a biological test system. However, the field-dependence, including the unique low-field feature, was not reproduced. Reanalysis of the original data uncovered a number of problems, the most significant being: 1) the method and analysis were insensitive to the reported changes; 2) the proposed RP are entirely notional. Stopped-flow MFE studies with adenosylcobalamin (AdoCbl)-dependent ethanolamine ammonia lyase (EAL), conducted by the same authors, were also revisited. The original method, used to identify the magnetically-sensitive step as C"Co homolysis, was found instead to be rate-limited by cofactor binding. The protocol was redesigned, but still no MFE observed. However, one was observed in the photolysis rate of both free AdoCbl and holo- EAL in absence of substrate. Together, these results suggest RP stabilization upon substrate binding, which has implications for the enormous catalytic power of AdoCbl-dependent enzymes. Two Human enzymes were also screened for MFEs, with negative outcomes.
author2 Woodward, Jonny ; Scrutton, Nigel
author_facet Woodward, Jonny ; Scrutton, Nigel
Jones, Alex R.
author Jones, Alex R.
author_sort Jones, Alex R.
title External magnetic fields and human health : a link to biological enzyme reaction systems
title_short External magnetic fields and human health : a link to biological enzyme reaction systems
title_full External magnetic fields and human health : a link to biological enzyme reaction systems
title_fullStr External magnetic fields and human health : a link to biological enzyme reaction systems
title_full_unstemmed External magnetic fields and human health : a link to biological enzyme reaction systems
title_sort external magnetic fields and human health : a link to biological enzyme reaction systems
publisher University of Leicester
publishDate 2008
url http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.490766
work_keys_str_mv AT jonesalexr externalmagneticfieldsandhumanhealthalinktobiologicalenzymereactionsystems
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