Outstanding women scientists who have broadened the knowledge on biological photoreceptors-II

Provencio, I., Rollag, M., & Castrucci, A. M. (2002). Photoreceptive net in the mammalian retina. Nature, 415, 493. https://doi.org/10.1038/415493

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de Assis, L. V. M., Moraes, M. N., Magalhães-Marques, K. K., & Castrucci, A. M. L. (2018). Melanopsin and rhodopsin mediate UVA-induced immediate pigment darkening: Unravelling the photosensitive system of the skin. European Journal of Cell Biology, 97, 150–162. https://doi.org/10.1016/j.ejcb.2018.01.004

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Sua-Cespedes, C., Thalles Lacerda, J., Zanetti, G., Dantas David, D., Moraes, M. N., de Assis, L. V. M., & Castrucci, A. M. L. (2023). Melanopsin (OPN4) is a novel player in skin homeostasis and attenuates UVA-induced effects. J. Photochem. Photobiol. B: Biology, 242, 112702. https://doi.org/10.1016/j.jphotobiol.2023.112702

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Castrucci, A. M. L., Baptista, M. S., & de Assis, L. (2023). Opsins as main regulators of skin biology. Journal of Photochemistry and Photobiology, B: Biology, 15, 100186. https://doi.org/10.1016/j.jpap.2023.100186

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Loros, J. J., Denome, S., & Dunlap, J. C. (1989). Molecular cloning of genes under control of the circadian clock in Neurospora. Science, 243, 385–388. https://doi.org/10.1126/science.2563175

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Bell-Pedersen, D., Dunlap, J. C., & Loros, J. J. (1992). The Neurospora circadian clock-controlled gene, ccg-2, is allelic to eas and encodes a fungal hydrophobin required for formation of the conidial rodlet layer. Genes & Development, 6, 2382–2394. https://doi.org/10.1101/gad.6.12a.2382

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Bell-Pedersen, D., Dunlap, J. C., & Loros, J. J. (1996). Distinct cis-acting elements mediate clock, light, and developmental regulation of the Neurospora crassa eas (ccg-2) gene. Molecular and Cellular Biology, 16, 513–521. https://doi.org/10.1128/mcb.16.2.513

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Lambreghts, R., Shi, M., Belden, W. J., Decaprio, D., Park, D., Henn, M. R., Galagan, J. E., Bastürkmen, M., Birren, B. W., Sachs, M. S., Dunlap, J. C., & Loros, J. J. (2009). A high-density single nucleotide polymorphism map for Neurospora crassa. Genetics, 181, 767–781. https://doi.org/10.1534/genetics.108.089292

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Froehlich, A. C., Liu, Y., Loros, J. J., & Dunlap, J. C. (2002). White Collar-1, a circadian blue light photoreceptor, binding to the frequency promoter. Science, 297, 815–819. https://doi.org/10.1126/science.1073681

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Pregueiro, A. M., Liu, Q., Baker, C., Dunlap, J. C., & Loros, J. J. (2006). Clock gene prd-4 is the Neurospora checkpoint kinase 2: A regulatory link between the circadian and cell cycles. Science, 313, 644–649. https://doi.org/10.1126/science.1121716

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Chen, C. H., Ringelberg, C. S., Gross, R. H., Dunlap, J. C., & Loros, J. J. (2009). Genome-wide analysis of light-inducible responses reveals hierarchical light signaling in Neurospora. EMBO Journal, 8, 1029–1042. https://doi.org/10.1038/emboj.2009.54

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Chen, C. H., DeMay, B. S., Gladfelter, A. S., Dunlap, J. C., & Loros, J. J. (2010). Physical interaction between VIVID and white collar complex regulates photoadaptation in Neurospora. Proceedings of the National Academy of Sciences USA, 107, 16715–16720. https://doi.org/10.1073/pnas.1011190107

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Dasgupta, A., Chen, C. H., Lee, C., Gladfelter, A. S., Dunlap, J. C., & Loros, J. J. (2015). Biological significance of photoreceptor photocycle length: VIVID photocycle governs the dynamic VIVID-white collar complex pool mediating photo-adaptation and response to changes in light intensity. PLoS Genetics, 11(5), e1005215. https://doi.org/10.1371/journal.pgen.1005215

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Fuller, K. K., Cramer, R. A., Zegans, M. E., Dunlap, J. C., & Loros, J. J. (2016). Aspergillus fumigatus photobiology illuminates the marked heterogeneity between isolates. MBio, 7(5), e01517-e1616. https://doi.org/10.1128/mBio.01517-16

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Dunlap, J. C., Loros, J. J., & Decoursey, P. J. (2003). Chronobiology: Biological timekeeping. Sinauer Associates Inc.

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Heberle, J. & Dau, H. https://www.physik.fu-berlin.de/en/fachbereich/nachruf/Nachruf-auf-Ulrike-Alexiev---HD2_eng.pdf. Accessed 4 Mar 2024.

Complete list: https://www.physik.fu-berlin.de/en/einrichtungen/priv_doz/alexiev/publications/index.html. Accessed 4 Mar 2024.

Alexiev, U., & Farrens, D. L. (2014). Fluorescence spectroscopy of rhodopsins: Insights and approaches. Biochimica et Biophysica Acta (BBA) - Bioenergetics, 1837, 694–709. https://doi.org/10.1016/j.bbabio.2013.10.008

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Silapetere, A., Hwang, S., Hontani, Y., Fernandez Lahore, R. G., Balke, J., Escobar, F. V., Tros, M., Konold, P. E., Matis, R., Croce, R., & Walla, P. J. (2022). QuasAr Odyssey: the origin of fluorescence and its voltage sensitivity in microbial rhodopsins. Nature Communications, 13, 5501. https://doi.org/10.1038/s41467-022-33084-4

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Velázquez Escobar, F., Lang, C., Takiden, A., Schneider, C., Balke, J., Hughes, J., Alexiev, U., Hildebrandt, P., & Mroginski, M. A. (2017). Protonation-dependent structural heterogeneity in the chromophore binding site of cyanobacterial phytochrome Cph1. The Journal of Physical Chemistry B, 121, 47–57. https://doi.org/10.1021/acs.jpcb.6b09600

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Nagano, S., Sadeghi, M., Balke, J., Fleck, M., Heckmann, N., Psakis, G., & Alexiev, U. (2022). Improved fluorescent phytochromes for in situ imaging. Scientific Reports, 12, 5587. https://doi.org/10.1038/s41598-022-09169-x

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