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dc.contributor.author | Garcia-Dominguez, X | es_ES |
dc.contributor.author | Diretto, Gianfranco | es_ES |
dc.contributor.author | Frusciante, Sarah | es_ES |
dc.contributor.author | Vicente Antón, José Salvador | es_ES |
dc.contributor.author | Marco-Jiménez, Francisco | es_ES |
dc.date.accessioned | 2021-07-17T03:34:48Z | |
dc.date.available | 2021-07-17T03:34:48Z | |
dc.date.issued | 2020-10 | es_ES |
dc.identifier.uri | http://hdl.handle.net/10251/169423 | |
dc.description.abstract | [EN] Although assisted reproduction technologies (ARTs) are recognised as safe, and most of the offspring seem apparently healthy, there is clear evidence that ARTs are associated with changes in the embryo's developmental trajectory, which incur physiological consequences during the prenatal and postnatal stages of life. The present study aimed to address the influence of early (day-3 embryos) embryo transfer and cryopreservation on embryo survival, size, and metabolome at the preimplantation stage (day-6 embryos). To this end, fresh-transferred (FT) and vitrified-transferred (VT) embryos were compared using naturally-conceived (NC) embryos as a control reference. The results show that as in vitro manipulation was increased (NC < FT < VT), both embryo survival rate (0.91 +/- 0.02, 0.78 +/- 0.05 and 0.63 +/- 0.05, for NC, FT, and VT groups, respectively) and embryo size (3.21 +/- 0.49 mm, 2.15 +/- 0.51 mm, 1.76 +/- 0.46 mm of diameter for NC, FT, and VT groups, respectively) were significantly decreased. Moreover, an unbiased metabolomics analysis showed overall down-accumulation in 40 metabolites among the three experimental groups, with embryo transfer and embryo cryopreservation procedures both exerting a cumulative effect. In this regard, targeted metabolomics findings revealed a significant reduction in some metabolites involved in metabolic pathways, such as the Krebs cycle, amino acids, unsaturated fatty acids, and arachidonic acid metabolisms. Altogether, these findings highlight a synergistic effect between the embryo transfer and vitrification procedures in preimplantation embryos. However, the ex vivo manipulation during embryo transfer seemed to be the major trigger of the embryonic changes, as the deviations added by the vitrification process were relatively smaller. | es_ES |
dc.description.sponsorship | This research was funded by Conselleria d'Educacio, Investigacio, Cultura i Esport, Spain, grant number AICO/2019/272. Ximo Garcia-Dominguez was supported by a research grant from the Ministry of Economy, Industry and Competitiveness of Spain (BES-2015-072429). | es_ES |
dc.language | Inglés | es_ES |
dc.publisher | MDPI AG | es_ES |
dc.relation.ispartof | International Journal of Molecular Sciences | es_ES |
dc.rights | Reconocimiento (by) | es_ES |
dc.subject | Embryo manipulation | es_ES |
dc.subject | Cryopreservation | es_ES |
dc.subject | Stress | es_ES |
dc.subject | Metabolism | es_ES |
dc.subject | Developmental plasticity | es_ES |
dc.subject | Developmental programming | es_ES |
dc.subject.classification | BIOLOGIA ANIMAL | es_ES |
dc.subject.classification | PRODUCCION ANIMAL | es_ES |
dc.title | Metabolomic Analysis Reveals Changes in Preimplantation Embryos Following Fresh or Vitrified Transfer | es_ES |
dc.type | Artículo | es_ES |
dc.identifier.doi | 10.3390/ijms21197116 | es_ES |
dc.relation.projectID | info:eu-repo/grantAgreement/MINECO//BES-2015-072429/ES/BES-2015-072429/ | es_ES |
dc.relation.projectID | info:eu-repo/grantAgreement/GVA//AICO%2F2019%2F272/ | es_ES |
dc.rights.accessRights | Abierto | es_ES |
dc.contributor.affiliation | Universitat Politècnica de València. Departamento de Ciencia Animal - Departament de Ciència Animal | es_ES |
dc.description.bibliographicCitation | Garcia-Dominguez, X.; Diretto, G.; Frusciante, S.; Vicente Antón, JS.; Marco-Jiménez, F. (2020). Metabolomic Analysis Reveals Changes in Preimplantation Embryos Following Fresh or Vitrified Transfer. International Journal of Molecular Sciences. 21(19):1-14. https://doi.org/10.3390/ijms21197116 | es_ES |
dc.description.accrualMethod | S | es_ES |
dc.relation.publisherversion | https://doi.org/10.3390/ijms21197116 | es_ES |
dc.description.upvformatpinicio | 1 | es_ES |
dc.description.upvformatpfin | 14 | es_ES |
dc.type.version | info:eu-repo/semantics/publishedVersion | es_ES |
dc.description.volume | 21 | es_ES |
dc.description.issue | 19 | es_ES |
dc.identifier.eissn | 1422-0067 | es_ES |
dc.identifier.pmid | 32993198 | es_ES |
dc.identifier.pmcid | PMC7582512 | es_ES |
dc.relation.pasarela | S\418833 | es_ES |
dc.contributor.funder | Generalitat Valenciana | es_ES |
dc.contributor.funder | Ministerio de Economía y Competitividad | es_ES |
dc.description.references | Rizos, D., Maillo, V., Sánchez-Calabuig, M.-J., & Lonergan, P. (2017). The Consequences of Maternal-Embryonic Cross Talk During the Periconception Period on Subsequent Embryonic Development. Advances in Experimental Medicine and Biology, 69-86. doi:10.1007/978-3-319-62414-3_4 | es_ES |
dc.description.references | Avilés, M., Gutiérrez-Adán, A., & Coy, P. (2010). Oviductal secretions: will they be key factors for the future ARTs? MHR: Basic science of reproductive medicine, 16(12), 896-906. doi:10.1093/molehr/gaq056 | es_ES |
dc.description.references | Li, S., & Winuthayanon, W. (2017). Oviduct: roles in fertilization and early embryo development. Journal of Endocrinology, 232(1), R1-R26. doi:10.1530/joe-16-0302 | es_ES |
dc.description.references | Wale, P. L., & Gardner, D. K. (2015). The effects of chemical and physical factors on mammalian embryo culture and their importance for the practice of assisted human reproduction. Human Reproduction Update, 22(1), 2-22. doi:10.1093/humupd/dmv034 | es_ES |
dc.description.references | Fleming, T. P., Watkins, A. J., Velazquez, M. A., Mathers, J. C., Prentice, A. M., Stephenson, J., … Godfrey, K. M. (2018). Origins of lifetime health around the time of conception: causes and consequences. The Lancet, 391(10132), 1842-1852. doi:10.1016/s0140-6736(18)30312-x | es_ES |
dc.description.references | Roseboom, T. J. (2018). Developmental plasticity and its relevance to assisted human reproduction. Human Reproduction, 33(4), 546-552. doi:10.1093/humrep/dey034 | es_ES |
dc.description.references | Vrooman, L. A., & Bartolomei, M. S. (2017). Can assisted reproductive technologies cause adult-onset disease? Evidence from human and mouse. Reproductive Toxicology, 68, 72-84. doi:10.1016/j.reprotox.2016.07.015 | es_ES |
dc.description.references | Ng, K. Y. B., Mingels, R., Morgan, H., Macklon, N., & Cheong, Y. (2017). In vivo oxygen, temperature and pH dynamics in the female reproductive tract and their importance in human conception: a systematic review. Human Reproduction Update, 24(1), 15-34. doi:10.1093/humupd/dmx028 | es_ES |
dc.description.references | Zacchini, F., Sampino, S., Stankiewicz, A. M., Haaf, T., & Ptak, G. E. (2019). Assessing the epigenetic risks of assisted reproductive technologies: a way forward. The International Journal of Developmental Biology, 63(3-4-5), 217-222. doi:10.1387/ijdb.180402gp | es_ES |
dc.description.references | Duranthon, V., & Chavatte-Palmer, P. (2018). Long term effects of ART: What do animals tell us? Molecular Reproduction and Development, 85(4), 348-368. doi:10.1002/mrd.22970 | es_ES |
dc.description.references | Ramos‐Ibeas, P., Heras, S., Gómez‐Redondo, I., Planells, B., Fernández‐González, R., Pericuesta, E., … Gutiérrez‐Adán, A. (2019). Embryo responses to stress induced by assisted reproductive technologies. Molecular Reproduction and Development, 86(10), 1292-1306. doi:10.1002/mrd.23119 | es_ES |
dc.description.references | Feuer, S., & Rinaudo, P. (2016). From Embryos to Adults: A DOHaD Perspective on In Vitro Fertilization and Other Assisted Reproductive Technologies. Healthcare, 4(3), 51. doi:10.3390/healthcare4030051 | es_ES |
dc.description.references | Feuer, S. K., & Rinaudo, P. F. (2017). Physiological, metabolic and transcriptional postnatal phenotypes ofin vitrofertilization (IVF) in the mouse. Journal of Developmental Origins of Health and Disease, 8(4), 403-410. doi:10.1017/s204017441700023x | es_ES |
dc.description.references | Romar, R., Funahashi, H., & Coy, P. (2016). In vitro fertilization in pigs: New molecules and protocols to consider in the forthcoming years. Theriogenology, 85(1), 125-134. doi:10.1016/j.theriogenology.2015.07.017 | es_ES |
dc.description.references | Canovas, S., Ivanova, E., Romar, R., García-Martínez, S., Soriano-Úbeda, C., García-Vázquez, F. A., … Coy, P. (2017). DNA methylation and gene expression changes derived from assisted reproductive technologies can be decreased by reproductive fluids. eLife, 6. doi:10.7554/elife.23670 | es_ES |
dc.description.references | Campo, H., García-Domínguez, X., López-Martínez, S., Faus, A., Vicente Antón, J. S., Marco-Jiménez, F., & Cervelló, I. (2019). Tissue-specific decellularized endometrial substratum mimicking different physiological conditions influences in vitro embryo development in a rabbit model. Acta Biomaterialia, 89, 126-138. doi:10.1016/j.actbio.2019.03.004 | es_ES |
dc.description.references | Le Saint, C., Crespo, K., Bourdiec, A., Bissonnette, F., Buzaglo, K., Couturier, B., … Kadoch, I. J. (2019). Autologous endometrial cell co-culture improves human embryo development to high-quality blastocysts: a randomized controlled trial. Reproductive BioMedicine Online, 38(3), 321-329. doi:10.1016/j.rbmo.2018.12.039 | es_ES |
dc.description.references | Sparks, A. (2015). Human Embryo Cryopreservation—Methods, Timing, and other Considerations for Optimizing an Embryo Cryopreservation Program. Seminars in Reproductive Medicine, 33(02), 128-144. doi:10.1055/s-0035-1546826 | es_ES |
dc.description.references | Saenz-de-Juano, M. D., Marco-Jiménez, F., Peñaranda, D. S., Joly, T., & Vicente, J. S. (2012). Effects of Slow Freezing Procedure on Late Blastocyst Gene Expression and Survival Rate in Rabbit1. Biology of Reproduction, 87(4). doi:10.1095/biolreprod.112.100677 | es_ES |
dc.description.references | Saenz-de-Juano, M. D., Vicente, J. S., Hollung, K., & Marco-Jiménez, F. (2015). Effect of Embryo Vitrification on Rabbit Foetal Placenta Proteome during Pregnancy. PLOS ONE, 10(4), e0125157. doi:10.1371/journal.pone.0125157 | es_ES |
dc.description.references | Saenz-de-Juano, M. D., Marco-Jimenez, F., Schmaltz-Panneau, B., Jimenez-Trigos, E., Viudes-de-Castro, M. P., Peñaranda, D. S., … Vicente, J. S. (2014). Vitrification alters rabbit foetal placenta at transcriptomic and proteomic level. REPRODUCTION, 147(6), 789-801. doi:10.1530/rep-14-0019 | es_ES |
dc.description.references | Vicente, J. S., Saenz-de-Juano, M. D., Jiménez-Trigos, E., Viudes-de-Castro, M. P., Peñaranda, D. S., & Marco-Jiménez, F. (2013). Rabbit morula vitrification reduces early foetal growth and increases losses throughout gestation. Cryobiology, 67(3), 321-326. doi:10.1016/j.cryobiol.2013.09.165 | es_ES |
dc.description.references | Marco-Jiménez, F., Lavara, R., Jiménez-Trigos, E., & Vicente, J. S. (2013). In vivo development of vitrified rabbit embryos: Effects of vitrification device, recipient genotype, and asynchrony. Theriogenology, 79(7), 1124-1129. doi:10.1016/j.theriogenology.2013.02.008 | es_ES |
dc.description.references | Lavara, R., Baselga, M., Marco-Jiménez, F., & Vicente, J. S. (2014). Long-term and transgenerational effects of cryopreservation on rabbit embryos. Theriogenology, 81(7), 988-992. doi:10.1016/j.theriogenology.2014.01.030 | es_ES |
dc.description.references | Lavara, R., Baselga, M., Marco-Jiménez, F., & Vicente, J. S. (2015). Embryo vitrification in rabbits: Consequences for progeny growth. Theriogenology, 84(5), 674-680. doi:10.1016/j.theriogenology.2015.04.025 | es_ES |
dc.description.references | Garcia-Dominguez, X., Vicente, J. S., & Marco-Jiménez, F. (2020). Developmental Plasticity in Response to Embryo Cryopreservation: The Importance of the Vitrification Device in Rabbits. Animals, 10(5), 804. doi:10.3390/ani10050804 | es_ES |
dc.description.references | Gupta, A., Singh, J., Dufort, I., Robert, C., Dias, F. C. F., & Anzar, M. (2017). Transcriptomic difference in bovine blastocysts following vitrification and slow freezing at morula stage. PLOS ONE, 12(11), e0187268. doi:10.1371/journal.pone.0187268 | es_ES |
dc.description.references | García-Domínguez, X., Marco-Jiménez, F., Puigcerver-Barber, M., Más-Pellicer, A., & Vicente, J. S. (2020). The harmful effect of removing the extracellular vitrification medium during embryo cryopreservation using a nylon mesh device in rabbit. Cryobiology, 93, 44-48. doi:10.1016/j.cryobiol.2020.02.013 | es_ES |
dc.description.references | Marco-Jiménez, F., Jiménez-Trigos, E., Almela-Miralles, V., & Vicente, J. S. (2016). Development of Cheaper Embryo Vitrification Device Using the Minimum Volume Method. PLOS ONE, 11(2), e0148661. doi:10.1371/journal.pone.0148661 | es_ES |
dc.description.references | Saenz-de-Juano, M. D., Marco-Jiménez, F., & Vicente, J. S. (2016). Embryo transfer manipulation cause gene expression variation in blastocysts that disrupt implantation and offspring rates at birth in rabbit. European Journal of Obstetrics & Gynecology and Reproductive Biology, 207, 50-55. doi:10.1016/j.ejogrb.2016.10.049 | es_ES |
dc.description.references | Montag, M., Koll, B., Holmes, P., & Ven, H. van der. (2000). Significance of the Number of Embryonic Cells and the State of the Zona Pellucida for Hatching of Mouse Blastocysts In Vitro Versus In Vivo. Biology of Reproduction, 62(6), 1738-1744. doi:10.1095/biolreprod62.6.1738 | es_ES |
dc.description.references | Giritharan, G., Talbi, S., Donjacour, A., Di Sebastiano, F., Dobson, A. T., & Rinaudo, P. F. (2007). Effect of in vitro fertilization on gene expression and development of mouse preimplantation embryos. Reproduction, 134(1), 63-72. doi:10.1530/rep-06-0247 | es_ES |
dc.description.references | Van Landuyt, L., Van de Velde, H., De Vos, A., Haentjens, P., Blockeel, C., Tournaye, H., & Verheyen, G. (2013). Influence of cell loss after vitrification or slow-freezing on further in vitro development and implantation of human Day 3 embryos. Human Reproduction, 28(11), 2943-2949. doi:10.1093/humrep/det356 | es_ES |
dc.description.references | Salilew-Wondim, D., Saeed-Zidane, M., Hoelker, M., Gebremedhn, S., Poirier, M., Pandey, H. O., … Tesfaye, D. (2018). Genome-wide DNA methylation patterns of bovine blastocysts derived from in vivo embryos subjected to in vitro culture before, during or after embryonic genome activation. BMC Genomics, 19(1). doi:10.1186/s12864-018-4826-3 | es_ES |
dc.description.references | Heras, S., De Coninck, D. I. M., Van Poucke, M., Goossens, K., Bogado Pascottini, O., Van Nieuwerburgh, F., … Van Soom, A. (2016). Suboptimal culture conditions induce more deviations in gene expression in male than female bovine blastocysts. BMC Genomics, 17(1). doi:10.1186/s12864-016-2393-z | es_ES |
dc.description.references | Driver, A. M., Peñagaricano, F., Huang, W., Ahmad, K. R., Hackbart, K. S., Wiltbank, M. C., & Khatib, H. (2012). RNA-Seq analysis uncovers transcriptomic variations between morphologically similar in vivo- and in vitro-derived bovine blastocysts. BMC Genomics, 13(1). doi:10.1186/1471-2164-13-118 | es_ES |
dc.description.references | Gad, A., Hoelker, M., Besenfelder, U., Havlicek, V., Cinar, U., Rings, F., … Tesfaye, D. (2012). Molecular Mechanisms and Pathways Involved in Bovine Embryonic Genome Activation and Their Regulation by Alternative In Vivo and In Vitro Culture Conditions1. Biology of Reproduction, 87(4). doi:10.1095/biolreprod.112.099697 | es_ES |
dc.description.references | Miles, J. R., Blomberg, L. A., Krisher, R. L., Everts, R. E., Sonstegard, T. S., Van Tassell, C. P., & Zuelke, K. A. (2008). Comparative transcriptome analysis of in vivo- and in vitro-produced porcine blastocysts by small amplified RNA-Serial analysis of gene expression (SAR-SAGE). Molecular Reproduction and Development, 75(6), 976-988. doi:10.1002/mrd.20844 | es_ES |
dc.description.references | Bauer, B. K., Isom, S. C., Spate, L. D., Whitworth, K. M., Spollen, W. G., Blake, S. M., … Prather, R. S. (2010). Transcriptional Profiling by Deep Sequencing Identifies Differences in mRNA Transcript Abundance in In Vivo-Derived Versus In Vitro-Cultured Porcine Blastocyst Stage Embryos1. Biology of Reproduction, 83(5), 791-798. doi:10.1095/biolreprod.110.085936 | es_ES |
dc.description.references | Swain, J., Bormann, C., Clark, S., Walters, E., Wheeler, M., & Krisher, R. (2002). Use of energy substrates by various stage preimplantation pig embryos produced in vivo and in vitro. Reproduction, 253-260. doi:10.1530/rep.0.1230253 | es_ES |
dc.description.references | Lee, Y. S. L., Thouas, G. A., & Gardner, D. K. (2015). Developmental kinetics of cleavage stage mouse embryos are related to their subsequent carbohydrate and amino acid utilization at the blastocyst stage. Human Reproduction, 30(3), 543-552. doi:10.1093/humrep/deu334 | es_ES |
dc.description.references | Krisher, R. L., Heuberger, A. L., Paczkowski, M., Stevens, J., Pospisil, C., Prather, R. S., … Schoolcraft, W. B. (2015). Applying metabolomic analyses to the practice of embryology: physiology, development and assisted reproductive technology. Reproduction, Fertility and Development, 27(4), 602. doi:10.1071/rd14359 | es_ES |
dc.description.references | Perkel, K. J., & Madan, P. (2017). Spent culture medium analysis from individually cultured bovine embryos demonstrates metabolomic differences. Zygote, 25(6), 662-674. doi:10.1017/s0967199417000417 | es_ES |
dc.description.references | McKeegan, P. J., & Sturmey, R. G. (2012). The role of fatty acids in oocyte and early embryo development. Reproduction, Fertility and Development, 24(1), 59. doi:10.1071/rd11907 | es_ES |
dc.description.references | Sayre, B. L., & Lewis, G. S. (1993). Arachidonic acid metabolism during early development of ovine embryos: A possible relationship to shedding of the zona pellucida. Prostaglandins, 45(6), 557-569. doi:10.1016/0090-6980(93)90019-4 | es_ES |
dc.description.references | Feuer, S. K., Liu, X., Donjacour, A., Simbulan, R., Maltepe, E., & Rinaudo, P. (2017). Transcriptional signatures throughout development: the effects of mouse embryo manipulation in vitro. Reproduction, 153(1), 107-122. doi:10.1530/rep-16-0473 | es_ES |
dc.description.references | Feuer, S. K., Donjacour, A., Simbulan, R. K., Lin, W., Liu, X., Maltepe, E., & Rinaudo, P. F. (2014). Sexually Dimorphic Effect of In Vitro Fertilization (IVF) on Adult Mouse Fat and Liver Metabolomes. Endocrinology, 155(11), 4554-4567. doi:10.1210/en.2014-1465 | es_ES |
dc.description.references | Wang, L.-Y., Le, F., Wang, N., Li, L., Liu, X.-Z., Zheng, Y.-M., … Jin, F. (2013). Alteration of fatty acid metabolism in the liver, adipose tissue, and testis of male mice conceived through assisted reproductive technologies: fatty acid metabolism in ART mice. Lipids in Health and Disease, 12(1). doi:10.1186/1476-511x-12-5 | es_ES |
dc.description.references | Leese, H. J., Guerif, F., Allgar, V., Brison, D. R., Lundin, K., & Sturmey, R. G. (2016). Biological optimization, the Goldilocks principle, and how much islagomin the preimplantation embryo. Molecular Reproduction and Development, 83(9), 748-754. doi:10.1002/mrd.22684 | es_ES |
dc.description.references | Gándara, L., & Wappner, P. (2018). Metabo-Devo: A metabolic perspective of development. Mechanisms of Development, 154, 12-23. doi:10.1016/j.mod.2018.02.004 | es_ES |
dc.description.references | Viudes‐de‐Castro, M. P., Marco‐Jiménez, F., Más Pellicer, A., García‐Domínguez, X., Talaván, A. M., & Vicente, J. S. (2019). A single injection of corifollitropin alfa supplemented with human chorionic gonadotropin increases follicular recruitment and transferable embryos in the rabbit. Reproduction in Domestic Animals, 54(4), 696-701. doi:10.1111/rda.13411 | es_ES |
dc.description.references | Vicente, J. S., & García-Ximénez, F. (1994). Osmotic and cryoprotective effects of a mixture of DMSO and ethylene glycol on rabbit morulae. Theriogenology, 42(7), 1205-1215. doi:10.1016/0093-691x(94)90869-9 | es_ES |
dc.description.references | Vicente, J.-S., Viudes-de-Castro, M.-P., & García, M.-L. (1999). In vivo survival rate of rabbit morulae after vitrification in a medium without serum protein. Reproduction Nutrition Development, 39(5-6), 657-662. doi:10.1051/rnd:19990511 | es_ES |
dc.description.references | Garcia-Dominguez, X., Marco-Jimenez, F., Viudes-de-Castro, M. P., & Vicente, J. S. (2019). Minimally Invasive Embryo Transfer and Embryo Vitrification at the Optimal Embryo Stage in Rabbit Model. Journal of Visualized Experiments, (147). doi:10.3791/58055 | es_ES |
dc.description.references | Besenfelder, U., & Brem, G. (1993). Laparoscopic embryo transfer in rabbits. Reproduction, 99(1), 53-56. doi:10.1530/jrf.0.0990053 | es_ES |
dc.description.references | Diretto, G., Rubio-Moraga, A., Argandoña, J., Castillo, P., Gómez-Gómez, L., & Ahrazem, O. (2017). Tissue-Specific Accumulation of Sulfur Compounds and Saponins in Different Parts of Garlic Cloves from Purple and White Ecotypes. Molecules, 22(8), 1359. doi:10.3390/molecules22081359 | es_ES |
dc.description.references | Cappelli, G., Giovannini, D., Basso, A. L., Demurtas, O. C., Diretto, G., Santi, C., … Mariani, F. (2018). A Corylus avellana L. extract enhances human macrophage bactericidal response against Staphylococcus aureus by increasing the expression of anti-inflammatory and iron metabolism genes. Journal of Functional Foods, 45, 499-511. doi:10.1016/j.jff.2018.04.007 | es_ES |
dc.description.references | Di Meo, F., Aversano, R., Diretto, G., Demurtas, O. C., Villano, C., Cozzolino, S., … Crispi, S. (2019). Anti-cancer activity of grape seed semi-polar extracts in human mesothelioma cell lines. Journal of Functional Foods, 61, 103515. doi:10.1016/j.jff.2019.103515 | es_ES |
dc.description.references | Fiore, A., Dall’Osto, L., Cazzaniga, S., Diretto, G., Giuliano, G., & Bassi, R. (2012). A quadruple mutant of Arabidopsis reveals a β-carotene hydroxylation activity for LUT1/CYP97C1 and a regulatory role of xanthophylls on determination of the PSI/PSII ratio. BMC Plant Biology, 12(1). doi:10.1186/1471-2229-12-50 | es_ES |
dc.description.references | Rambla, J. L., Trapero-Mozos, A., Diretto, G., Rubio-Moraga, A., Granell, A., Gómez-Gómez, L., & Ahrazem, O. (2016). Gene-Metabolite Networks of Volatile Metabolism in Airen and Tempranillo Grape Cultivars Revealed a Distinct Mechanism of Aroma Bouquet Production. Frontiers in Plant Science, 7. doi:10.3389/fpls.2016.01619 | es_ES |
dc.description.references | Sulli, M., Mandolino, G., Sturaro, M., Onofri, C., Diretto, G., Parisi, B., & Giuliano, G. (2017). Molecular and biochemical characterization of a potato collection with contrasting tuber carotenoid content. PLOS ONE, 12(9), e0184143. doi:10.1371/journal.pone.0184143 | es_ES |
dc.description.references | Benjamini, Y., & Hochberg, Y. (1995). Controlling the False Discovery Rate: A Practical and Powerful Approach to Multiple Testing. Journal of the Royal Statistical Society: Series B (Methodological), 57(1), 289-300. doi:10.1111/j.2517-6161.1995.tb02031.x | es_ES |
dc.description.references | Garcia-Dominguez, X., Marco-Jiménez, F., Peñaranda, D. S., Diretto, G., García-Carpintero, V., Cañizares, J., & Vicente, J. S. (2020). Long-term and transgenerational phenotypic, transcriptional and metabolic effects in rabbit males born following vitrified embryo transfer. Scientific Reports, 10(1). doi:10.1038/s41598-020-68195-9 | es_ES |