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      Cryptochromes and neuronal-activity markers colocalize in the retina of migratory birds during magnetic orientation

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          Abstract

          Migratory birds can use a magnetic compass for orientation during their migratory journeys covering thousands of kilometers. But how do they sense the reference direction provided by the Earth's magnetic field? Behavioral evidence and theoretical considerations have suggested that radical-pair processes in differently oriented, light-sensitive molecules of the retina could enable migratory birds to perceive the magnetic field as visual patterns. The cryptochromes (CRYs) have been suggested as the most likely candidate class of molecules, but do CRYs exist in the retina of migratory birds? Here, we show that at least one CRY1 and one CRY2 exist in the retina of migratory garden warblers and that garden-warbler CRY1 (gwCRY1) is cytosolic. We also show that gwCRY1 is concentrated in specific cells, particularly in ganglion cells and in large displaced ganglion cells, which also showed high levels of neuronal activity at night, when our garden warblers performed magnetic orientation. In addition, there seem to be striking differences in CRY1 expression between migratory and nonmigratory songbirds at night. The difference in CRY1 expression between migrants and nonmigrants is particularly pronounced in the large displaced ganglion cells known to project exclusively to a brain area where magnetically sensitive neurons have been reported. Consequently, cytosolic gwCRY1 is well placed to possibly be the primary magnetic-sensory molecule required for light-mediated magnetoreception.

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          Most cited references30

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          Magnetic compass of European robins.

          The magnetic compass of European robins does not use the polarity of the magnetic field for detecting the north direction. The birds derive their north direction from interpreting the inclination of the axial direction of the magnetic field lines in space, and they take the direction on the magnetic north-south axis for "north" where field lines and gravity vector form the smaller angle.
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            Magnetic field effects in chemical kinetics and related phenomena

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              The use of c-fos as a metabolic marker in neuronal pathway tracing.

              The use of c-fos protein (Fos) immunocytochemistry as a metabolic marker for tracing neuroanatomical connections, seizure pathways and sites of action of neuroactive drugs is discussed in this report. Fos immunocytochemistry will be very useful for these purposes providing that a number of potential problems are recognized and controlled. These include the observations that Fos exists basally in neurons and can be non-specifically elevated after behavioural stress; neuronal bursting is required to elevate Fos in neurons in anaesthetized animals; drugs such as ketamine can block Fos elevation in neurons; the time-course of Fos induction and decay varies with different inducing stimuli and the brain region sampled; and some brain regions do not express Fos after any treatments tried so far. To overcome these potential problems we list a number of steps that should be followed when using Fos immunocytochemistry as a metabolic marker of brain activity.
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                Author and article information

                Journal
                Proceedings of the National Academy of Sciences
                Proceedings of the National Academy of Sciences
                Proceedings of the National Academy of Sciences
                0027-8424
                1091-6490
                September 28 2004
                September 28 2004
                September 20 2004
                September 28 2004
                : 101
                : 39
                : 14294-14299
                Article
                10.1073/pnas.0405968101
                521149
                15381765
                16c6e367-f08f-4f67-99e1-fc050ef4aff5
                © 2004
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