Towards the neural basis of magnetoreception: a neuroanatomical approach
Language English Country Germany Media print-electronic
Document type Journal Article, Research Support, Non-U.S. Gov't, Review
- MeSH
- Electromagnetic Fields MeSH
- Genes, fos MeSH
- Magnetics * MeSH
- Nervous System Physiological Phenomena MeSH
- Nervous System anatomy & histology radiation effects MeSH
- Neurons physiology MeSH
- Gene Expression Regulation physiology MeSH
- Animals MeSH
- Check Tag
- Animals MeSH
- Publication type
- Journal Article MeSH
- Research Support, Non-U.S. Gov't MeSH
- Review MeSH
After more than two decades of intensive research, the physiological mechanisms of animal magnetoreception remain enigmatic. The primary magnetoreceptors are still unknown and our knowledge of the neural substrate subserving magnetic orientation is meagre. Here we argue that this dismal outcome can be largely attributed to the fact that the potential of recently available neurobiological techniques has not been utilized, review some of these techniques and propose a step by step scenario for future research, concentrating on the heuristic potential of instrumentalizing inducible transcription factors (ITFs) such as Jun, Fos, Fos-related antigens and Krox. ITFs can be used as markers of neuronal activation in experiments on freely moving animals performing magnetically based orientation tasks, in experiments on anaesthetised or restrained animals stimulated magnetically, and in experiments employing treatments that specifically disrupt magnetoreception. Therefore they can serve as tools for identifying neurons involved in the detection and processing of magnetic information. When used in combination with other neurobiological tools, ITFs can also be useful for a more comprehensive description of the involved neural networks, for the identification of magnetoreceptors and, in the case of the photoreceptor-based mechanism, also for studying the involvement of specific light-sensitive molecules in the primary transduction process of magnetoreception. Limitations and pitfalls of the proposed approach are also discussed.
Naturwissenschaften. 2005 Aug;92(8):399 PubMed
See more in PubMed
Proc Biol Sci. 2003 Oct 22;270(1529):2133-40 PubMed
Mol Vis. 2001 Aug 29;7:210-5 PubMed
Annu Rev Neurosci. 1991;14:421-51 PubMed
Neurosci Res. 2001 Sep;41(1):25-32 PubMed
Curr Biol. 2004 Oct 5;14(19):R847-9 PubMed
J Comp Neurol. 2003 Apr 14;458(4):350-60 PubMed
J Exp Biol. 2004 Mar;207(Pt 7):1193-202 PubMed
Nature. 2004 May 13;429(6988):177-80 PubMed
Science. 1986 Aug 15;233(4765):765-7 PubMed
Proc Natl Acad Sci U S A. 2004 Sep 28;101(39):14294-9 PubMed
J Exp Biol. 2004 Feb;207(Pt 6):1043-9 PubMed
J Exp Biol. 1999 Apr;202 (Pt 8):891-908 PubMed
Nature. 1997 Nov 27;390(6658):371-6 PubMed
Naturwissenschaften. 2004 Dec;91(12):585-8 PubMed
Neurosci Lett. 1985 Nov 20;62(1):119-22 PubMed
Neurobiol Learn Mem. 2000 Nov;74(3):185-216 PubMed
J Exp Biol. 1996;199(Pt 5):1241-4 PubMed
Science. 2001 Oct 12;294(5541):366-8 PubMed
Nat Struct Biol. 2003 Jun;10(6):489-90 PubMed
Nature. 1980 Dec 11;288(5791):607-8 PubMed
J Comp Neurol. 1988 Mar 1;269(1):109-17 PubMed
Brain Res Bull. 1998;45(1):1-8 PubMed
Curr Opin Neurobiol. 2001 Aug;11(4):462-7 PubMed
Naturwissenschaften. 2002 Oct;89(10):445-52 PubMed
Front Neuroendocrinol. 1993 Jul;14(3):173-213 PubMed
Brain Res. 2001 Jan 19;889(1-2):243-6 PubMed
Biometals. 2000 Dec;13(4):325-31 PubMed
Neuroreport. 2002 Dec 3;13(17):2247-51 PubMed
Nature. 2004 Nov 25;432(7016):508-11 PubMed
Nature. 1974 May 10;249(453):178-9 PubMed
J Comp Physiol A. 1986 Nov;159(5):619-25 PubMed
Curr Biol. 2004 Nov 9;14(21):1946-9 PubMed
J Biol Rhythms. 2002 Feb;17(1):14-27 PubMed
Brain Res. 1994 Aug 22;654(2):207-15 PubMed
J Exp Biol. 2003 Jan;206(Pt 2):381-8 PubMed
Biophys J. 2000 Feb;78(2):707-18 PubMed
Annu Rev Biochem. 2000;69:31-67 PubMed
Nature. 1999 Jul 22;400(6742):324-5 PubMed
Trends Neurosci. 2000 Apr;23(4):153-9 PubMed
Proc Natl Acad Sci U S A. 1998 May 26;95(11):6097-102 PubMed
Nature. 2000 Jul 20;406(6793):299-302 PubMed
Brain Res Bull. 1990 Nov;25(5):735-40 PubMed
J Exp Biol. 2002 Oct;205(Pt 19):3031-7 PubMed
Nature. 2002 Oct 3;419(6906):467-70 PubMed
Neurochem Int. 1998 Oct;33(4):287-97 PubMed
Neurosci Lett. 2001 Nov 2;313(1-2):13-6 PubMed
Brain Res. 1996 Jul 22;728(1):72-8 PubMed
J Exp Biol. 1999;202(Pt 21):3029-3036 PubMed
Science. 1999 Apr 30;284(5415):760-5 PubMed
Naturwissenschaften. 2004 Mar;91(3):130-4 PubMed
Brain Res. 2000 Mar 24;859(2):262-72 PubMed
J Exp Biol. 1991 Nov;161:1-24 PubMed
Brain Res. 1995 Mar 27;675(1-2):329-32 PubMed
J Comp Neurol. 1981 Jan 10;195(2):279-88 PubMed
Neurosci Lett. 1987 Sep 23;80(2):229-34 PubMed
Brain Res Brain Res Rev. 1998 Dec;28(3):370-490 PubMed
Neuron. 2002 May 16;34(4):503-6 PubMed
FEBS Lett. 2002 Feb 27;513(2-3):169-74 PubMed
J Hirnforsch. 1990;31(3):331-6 PubMed
Nature. 1979 Feb 22;277(5698):648-9 PubMed