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da Silva JPaulo, Ferreira LFVieira, Machado IFerreira, Da Silva AM. Photolysis of 4-chloroanisole in the presence of oxygen. Journal of Photochemistry and Photobiology A: Chemistry. 2006;182(1):88 - 92. doi:10.1016/j.jphotochem.2006.01.019
Martins RST, Gomez A, Zanuy S, Carrillo M, Canario AVM. Photoperiodic Modulation of Circadian Clock and Reproductive Axis Gene Expression in the Pre-Pubertal European Sea Bass Brain. PLoS One. 2015;10(12):e0144158. doi:10.1371/journal.pone.0144158
da Silva JPaulo, Da Silva AM, Khmelinskii IV, Martinho JMG, Ferreira LFVieira. Photophysics and photochemistry of azole fungicides: triadimefon and triadimenol. Journal of Photochemistry and Photobiology A: Chemistry. 2001;142(1):31 - 37. doi:10.1016/S1010-6030(01)00489-0
Kamatham N, Mendes DC, da Silva JPaulo, Givens RS, Ramamurthy V. Photorelease of Incarcerated Caged Acids from Hydrophobic Coumaryl Esters into Aqueous Solution. Organic Letters. 2016;18(21):5480 - 5483. doi:10.1021/acs.orglett.6b02655
Jagadesan P, da Silva JPaulo, Givens RS, Ramamurthy V. Photorelease of Incarcerated Guests in Aqueous Solution with Phenacyl Esters as the Trigger. Organic Letters. 2015;17(5):1276 - 1279. doi:10.1021/acs.orglett.5b00252
Olivé I, Vergara JJ, Pérez-Lloréns JL. Photosynthetic and morphological photoacclimation of the seagrass Cymodocea nodosa to season, depth and leaf position. Marine Biology. 2013;160(2):285 - 297. doi:10.1007/s00227-012-2087-2
Runcie JW, Paulo D, Santos R, Sharon Y, Beer S, Silva J. Photosynthetic responses of Halophila stipulacea to a light gradient. I. In situ energy partitioning of non-photochemical quenching. Aquatic Biology. 2009;7:143 - 152. doi:10.3354/ab00164
Sharon Y, Silva J, Santos R, Runcie JW, Chernihovsky M, Beer S. Photosynthetic responses of Halophila stipulacea to a light gradient. II. Acclimations following transplantation. Aquatic Biology. 2009;7:153 - 157. doi:10.3354/ab00148
Smitka J, Lemos A, Porel M, et al. Phototransformation of benzimidazole and thiabendazole inside cucurbit[8]uril. Photochem. Photobiol. Sci. 2014;13(2):310 - 315. doi:10.1039/C3PP50336D
Elworthy S, Pinto JP, Pettifer A, M. Cancela L, Kelsh RN. Phox2b function in the enteric nervous system is conserved in zebrafish and is sox10-dependent. Mech Dev. 2005;122(5):659-69. doi:10.1016/j.mod.2004.12.008
Varela-Álvarez E, P T, F G, R FG, D S. Phycobiliproteins, nitrogenous compounds and fatty acid contents in field-collected and cultured gametophytes of Porphyra dioica, a red sea vegetable. Journal of Applied Phycology. 2019. doi:https://doi.org/10.1007/s10811-019-01841-6
Pinter I, Bakker F, Cox C, et al. Phylogenetic and biosystematic relationships in four highly disjunct polyploid complexes in the subgenera and in (Aspleniaceae). Organisms Diversity & Evolution. 2002;2(4):299 - 311. doi:10.1078/1439-6092-00050
Shaw AJ, Cox CJ, Goffinet B, Buck WR, Boles SB. PHYLOGENETIC EVIDENCE OF A RAPID RADIATION OF PLEUROCARPOUS MOSSES (BRYOPHYTA). Evolution. 2003;57(10):2226 - 2241. doi:10.1111/evo.2003.57.issue-1010.1111/j.0014-3820.2003.tb00235.x
Goffinet B, Shaw AJ, Cox CJ. Phylogenetic inferences in the dung-moss family Splachnaceae from analyses of cpDNA sequence data and implications for the evolution of entomophily. American Journal of Botany. 2004;91(5):748 - 759. doi:10.3732/ajb.91.5.748
Goffinet B, Cox CJ. Phylogenetic Relationships Among Basal-most Arthrodontous Mosses with Special Emphasis on the Evolutionary Significance of the Funariineae. The Bryologist. 2000;103(2):212 - 223. doi:10.1639/0007-2745(2000)103[0212:PRABMA]2.0.CO;2
Shaw J, Cox CJ, Boles SB. Phylogenetic Relationships Among Sphagnum Sections: Hemitheca, Isocladus, and Subsecunda. The Bryologist. 2004;107(2):189 - 196. doi:10.1639/0007-2745(2004)107[0189:PRASSH]2.0.CO;2
Cox CJ, Goffinet B, Newton AE, A. Shaw J, Hedderson TAJ. Phylogenetic Relationships Among the Diplolepideous-alternate Mosses (Bryidae) Inferred from Nuclear and Chloroplast DNA Sequences. The Bryologist. 2000;103(2):224 - 241. doi:10.1639/0007-2745(2000)103[0224:PRATDA]2.0.CO;2
Cox CJ, Goffinet B, A. Shaw J, Boles SB. Phylogenetic Relationships among the Mosses Based on Heterogeneous Bayesian Analysis of Multiple Genes from Multiple Genomic Compartments. Systematic Botany. 2004;29(2):234 - 250. doi:10.1600/036364404774195458
Abalde S, TENORIO MANUELJ, Afonso CML, Uribe JE, Echeverry AM, Zardoya R. Phylogenetic relationships of cone snails endemic to Cabo Verde based on mitochondrial genomes. BMC Evolutionary Biology. 2017;17(1). doi:10.1186/s12862-017-1069-x
Hedderson TA, Murray DJ, Cox CJ, Nowell TL. Phylogenetic Relationships of Haplolepideous Mosses (Dicranidae) Inferred from rps4 Gene Sequences. Systematic Botany. 2004;29(1):29 - 41. doi:10.1600/036364404772973960
Hedderson TA, Cox CJ, J. Gibbings G. Phylogenetic Relationships of the Wardiaceae (Musci); Evidence from 18s rRNA and rps4 Gene Sequences. The Bryologist. 1999;102(1):26. doi:10.2307/3244455
Cox CJ, Hedderson TAJ. Phylogenetic relationships within the moss family Bryaceae based on chloroplast DNA evidence. Journal of Bryology. 2003;25(1):31 - 40. doi:10.1179/037366803125002635
Hardoim CCP, Esteves AIS, Pires FR, et al. Phylogenetically and spatially close marine sponges harbour divergent bacterial communities. PLoS One. 2012;7(12):e53029. doi:10.1371/journal.pone.0053029
Williams TA, Cox CJ, Foster PG, Szöllősi GJ, T. Embley M. Phylogenomics provides robust support for a two-domains tree of life. Nature Ecology & Evolution. 2019. doi:10.1038/s41559-019-1040-x
Decker C, Olu K, Cunha RL, Arnaud-Haond S. Phylogeny and diversification patterns among vesicomyid bivalves. PLoS One. 2012;7(4):e33359. doi:10.1371/journal.pone.0033359