Metallothiol transferase FosB
From Proteopedia
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==INTRODUCTION== | ==INTRODUCTION== | ||
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This effect is underscored by a study which measured levels of DeltaFosB following a period of increased sexual activity <ref>Pitchers, K. K., Vialou, V., Nestler, E. J., Laviolette, S. R., Lehman, M. N., & Coolen, L. M. (2013). Natural and drug rewards act on common neural plasticity mechanisms with ΔFosB as a key mediator. The Journal of Neuroscience,33(8), 3434-3442.x</ref>. After a period of abstinence of 1, 7, or 28 days, levels of DeltaFosB in the Nucleus Accumbens were measured. As found in drug studies, DeltaFosB persisted in the NAc neurons of sexually active rats for at least 28 days after abstaining from the reward behavior. It can be concluded that there are similarities in the effects of both natural and drug rewards on the mesolimbic system. | This effect is underscored by a study which measured levels of DeltaFosB following a period of increased sexual activity <ref>Pitchers, K. K., Vialou, V., Nestler, E. J., Laviolette, S. R., Lehman, M. N., & Coolen, L. M. (2013). Natural and drug rewards act on common neural plasticity mechanisms with ΔFosB as a key mediator. The Journal of Neuroscience,33(8), 3434-3442.x</ref>. After a period of abstinence of 1, 7, or 28 days, levels of DeltaFosB in the Nucleus Accumbens were measured. As found in drug studies, DeltaFosB persisted in the NAc neurons of sexually active rats for at least 28 days after abstaining from the reward behavior. It can be concluded that there are similarities in the effects of both natural and drug rewards on the mesolimbic system. | ||
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==3D structure of FosB== | ==3D structure of FosB== | ||
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[[4jh7]], [[4jh8]], [[4jh9]] – BcFosB + fosfomycin derivative<br /> | [[4jh7]], [[4jh8]], [[4jh9]] – BcFosB + fosfomycin derivative<br /> | ||
[[4nb0]], [[4nb1]] – SaFosB + cysteine<br /> | [[4nb0]], [[4nb1]] – SaFosB + cysteine<br /> | ||
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==References== | ==References== | ||
<references/> | <references/> |
Revision as of 15:17, 20 July 2017
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3D structure of FosB
Updated on 20-July-2017
4ir0, 4jd1, 5f6q – FosB2 – Bacillus anthracis
4nay, 4naz, 4nb2 – SaFosB – Staphylococcus aureus
4jh1, 4jh2 – BcFosB – Bacillus cereus
4jh3, 4jh4, 4jh5, 4jh6 – BcFosB + fosfomycin
4jh7, 4jh8, 4jh9 – BcFosB + fosfomycin derivative
4nb0, 4nb1 – SaFosB + cysteine
References
- ↑ 1.0 1.1 Ruffle JK. Molecular neurobiology of addiction: what's all the (Delta)FosB about? Am J Drug Alcohol Abuse. 2014 Nov;40(6):428-37. doi:, 10.3109/00952990.2014.933840. Epub 2014 Aug 1. PMID:25083822 doi:http://dx.doi.org/10.3109/00952990.2014.933840
- ↑ Carle, T. L., Ohnishi, Y. N., Ohnishi, Y. H., Alibhai, I. N., Wilkinson, M. B., Kumar, A. and Nestler, E. J. (2007) Proteasome-dependent and -independent mechanisms for FosB destabilization: identification of FosB degron domains and implications for ΔFosB stability. European Journal of Neuroscience, 25, 3009–3019. doi: 10.1111/j.1460-9568.2007.05575.x
- ↑ Jorissen, H. J., Ulery, P. G., Henry, L., Gourneni, S., Nestler, E. J., & Rudenko, G. (2007) Dimerization and DNA-binding properties of the transcription factor ΔFosB. Biochemistry, 46(28), 8360-8372.x
- ↑ Nestler, E. J. (2008). Transcriptional mechanisms of addiction: role of ΔFosB.Philosophical Transactions of the Royal Society of London B: Biological Sciences, 363(1507), 3245-3255.x
- ↑ Kelz, M. B., Chen, J., Carlezon, W. A., Whisler, K., Gilden, L., Beckmann, A. M., ... & Nestler, E. J. (1999). Expression of the transcription factor ΔFosB in the brain controls sensitivity to cocaine. Nature, 401(6750), 272-276.x
- ↑ Pitchers, K. K., Vialou, V., Nestler, E. J., Laviolette, S. R., Lehman, M. N., & Coolen, L. M. (2013). Natural and drug rewards act on common neural plasticity mechanisms with ΔFosB as a key mediator. The Journal of Neuroscience,33(8), 3434-3442.x
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