Journal of comparative physiology. A, Neuroethology, sensory, neural, and behavioral physiology

Radio waves at 75-85 MHz disrupt night-migrating songbirds' magnetic compass, supporting a light-related magnetic sensing mechanism

Updated

Abstract

Broadband 75-85 MHz radiofrequency fields prevent night-migratory songbirds from using their magnetic compass.

  • Weak radiofrequency fields can disrupt the light-dependent magnetic compass sense in migratory songbirds.
  • The findings suggest a quantum mechanical mechanism for involving specific proteins in the birds' retinas.
  • The exact radicals responsible for magnetoreception remain uncertain, but their formation likely requires certain molecular components.
  • The sensitivity of these radicals to radiofrequency fields is influenced by the number of magnetic nuclei present.
  • Calculations indicate that the frequency range of 75-85 MHz may help determine the identity of the radicals involved.
  • At least one component of the in the sensory process of magnetoreception may include strong hyperfine interactions.

Simplified

Key numbers

75.90°
Group Orientation Direction (NMF)
Mean orientation of birds not exposed to RF fields.
304.35°
Group Orientation Direction (CMF)
Mean orientation of birds in rotated magnetic field conditions.
2.53 pT/√Hz
Random Orientation in RF Condition
Intensity of RF fields during exposure to disrupt orientation.

Full Text

What this is

  • This research investigates how broadband radiofrequency (RF) fields in the 75-85 MHz range affect the magnetic compass orientation of night-migratory songbirds.
  • The study focuses on Eurasian blackcaps and tests their orientation under normal and altered magnetic field conditions.
  • Findings indicate that exposure to these RF fields disrupts the birds' ability to use their magnetic compass.

Essence

  • Broadband 75-85 MHz RF fields prevent Eurasian blackcaps from using their magnetic compass for orientation. This disruption supports the theory that a flavin-based mechanism is involved in avian .

Key takeaways

  • Exposure to 75-85 MHz RF fields resulted in random orientation among blackcaps. Birds showed no directional preference in both normal and altered magnetic field conditions after RF exposure.
  • In normal geomagnetic conditions, blackcaps oriented northeast, aligning with expected migratory patterns. This orientation was significantly altered when the magnetic field was rotated 120°.

Caveats

  • The study cannot definitively identify the specific radical pairs responsible for the observed RF effects. Further research is needed to clarify the underlying mechanisms.
  • Results are limited to the specific RF frequency range tested, and further studies may be necessary to explore other frequencies and their effects.

Definitions

  • magnetoreception: The ability to sense magnetic fields for orientation and navigation.
  • radical pair: A pair of molecules or ions that contain unpaired electrons, which can interact in magnetic fields.

Simplified

Funding

Competing interests

The authors declare no conflict of interests.
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