Parthenocarpy-Related Genes Induced by Naphthalene Acetic Acid in Oil Palm Interspecific O×G [Elaeis oleifera (Kunth) Cortés × Elaeis guineensis
| dc.creator | Montoya, Carmenza | |
| dc.creator | Mejía Alvarado, Fernán Santiago | |
| dc.creator | Botero Rozo, David | |
| dc.creator | Ayala-Díaz, Iván Mauricio | |
| dc.creator | Romero, Hernán Mauricio | |
| dc.date | 2026-04-20 | |
| dc.date.accessioned | 2026-06-05T16:59:54Z | |
| dc.description | Parthenocarpy is the development without fertilization of seedless fruits. In the oil palm industry, the development of parthenocarpic fruits is considered an attractive option to increase palm oil production. Previous studies have shown the application of synthetic auxins in Elaeis guineensis, and interspecific O×G hybrids (Elaeis oleifera (Kunth) Cortés × E. guineensis Jacq.) induces parthenocarpy. The aim of this study was to identify the molecular mechanism through transcriptomics and biology system approach to responding to how the application of NAA induces parthenocarpic fruits in oil palm O×G hybrids. The transcriptome changes were studied in three phenological stages (PS) of the inflorescences: i) PS 603, pre-anthesis III, ii) PS 607, anthesis, and iii) PS 700, fertilized female flower. Each PS was treated with NAA, Pollen, and control (any application). The expression profile was studied at three separate times: five minutes (T0), 24 hours (T1), and 48 h post-treatment (T2). The RNA sequencing (RNA seq) approach was used with 27 oil palm O×G hybrids for a total of 81 raw samples. RNA-Seq showed around 445,920 genes. Numerous differentially expressed genes (DEGs) were involved in pollination, flowering, seed development, hormone biosynthesis, and signal transduction. The expression of the most relevant transcription factors (TF) families was variable and dependent on the stage and time post-treatment. In general, NAA treatment expressed differentially more genes than Pollen. Indeed, the gene co-expression network of Pollen was built with fewer nodes than the NAA treatment. | en-US |
| dc.description | La partenocarpia es el desarrollo de frutos sin semillas en ausencia de fertilización. En la industria de la palma de aceite, el desarrollo de frutos partenocárpicos se considera una alternativa atractiva para aumentar la producción de aceite de palma. Estudios previos han demostrado que la aplicación de auxinas sintéticas en Elaeis guineensis e híbridos interespecíficos O×G (Elaeis oleifera (Kunth) Cortés×Elaeis guineensis Jacq.) induce la partenocarpia. El objetivo de este estudio fue identificar el mecanismo molecular,mediante un enfoque transcriptómico y de biología de sistemas, para explicar cómo la aplicación de ácido naftalenacético (ANA) induce la formación de frutos partenocárpicos en híbridos O×G de palma de aceite. Se estudiaron los cambios en el transcriptoma en tres estadios fenológicos (EF) de las inflorescencias: 1) EF 603,preantesis III,2) EF 607,antesis, y 3) EF 700,flor femenina fertilizada. Cada EF fue tratado con ANA, polen y un control (sin aplicación). El perfil de expresión se analizó en tres momentos distintos: cinco minutos (T0),24 horas (T1) y 48 horas después del tratamiento (T2). Se utilizó el método de secuenciación de ARN con 27 híbridos O×G de palma de aceite,lo que supuso un total de 81 muestras para procesar. La secuenciación de ARN identificó alrededor de 445.920 genes. Numerosos genes expresados diferencialmente (GED) estuvieron involucrados en la polinización, la floración, el desarrollo de las semillas,la biosíntesis de hormonas y la transducción de señales. La expresión de las familias de factores de transcripción (FT) más relevantes fue variable y dependió del estadio fenológico y el tiempo posterior al tratamiento. | es-ES |
| dc.format | application/pdf | |
| dc.format | text/xml | |
| dc.identifier | 10.56866/01212923.14506 | |
| dc.identifier.uri | https://repositorio.fedepalma.org/handle/123456789/158326 | |
| dc.identifier.url | https://publicaciones.fedepalma.org/index.php/palmas/article/view/14506 | |
| dc.language | spa | |
| dc.publisher | Cenipalma | es-ES |
| dc.relation | https://publicaciones.fedepalma.org/index.php/palmas/article/view/14506/14435 | |
| dc.relation | https://publicaciones.fedepalma.org/index.php/palmas/article/view/14506/14464 | |
| dc.relation | /*ref*/Alkio, M., Jonas, U., Declercq, M., Van Nocker, S. y Knoche, M. (2014). Transcriptional dynamics of the developing sweet cherry (Prunus avium L.) fruit: sequencing, annotation and expression profiling of exocarp-associated genes. Hortic. Res. 11, 11. doi:10.1038/hortres.2014.11 | |
| dc.relation | /*ref*/An, J., Almasaud, R. A., Bouzayen, M., Zouine, M. y Chervin, C. (2020). Auxin and ethylene regulation of fruit set. Plant Sci. 292, 110381. doi:10.1016/j.plantsci.2019.110381 | |
| dc.relation | /*ref*/Andrews, S. (2010). FastQC: A quality control tool for high throughput sequence data. http://www.bioinformatics.babraham.ac.uk/projects/fastqc/ | |
| dc.relation | /*ref*/Ávila-Diazgranados, R. A., Daza, E. S., Navia, E. y Romero, H. M. (2016). Response of various oil palm materials (Elaeis guineensis and Elaeis oleifera × Elaeis guineensis interspecific hybrids) to bud rot disease in the southwestern oil palm-growing area of Colombia. Agron. Colomb. 34 (1), 74-81. doi:10.15446/agron.colomb.v34n1.53760 | |
| dc.relation | /*ref*/Awazuhara, M., Takahashi, H., Watanabe-Takahashi, A., Hayashi, H., Fujiwara, T. y Saito, K. (2001). Function of the sulfate transporter Sultr2;1 in seeds of Arabidopsis thaliana, en Nutrición vegetal. Avances en las ciencias vegetales y del suelo (Dordrecht: Springer). | |
| dc.relation | /*ref*/Azzeme, A. M., Abdullah, S. N. A., Aziz, M. A. y Wahab, P. E. M. (2017). Oil palm drought inducible DREB1 induced expression of DRE/CRT- and non-DRE/CRT-containing genes in lowland transgenic tomato under cold and PEG treatments. Plant Physiology Biochem. 112, 129-151. doi:10.1016/j.plaphy.2016.12.025 | |
| dc.relation | /*ref*/Blondel, V. D., Guillaume, J.-L., Lambiotte, R. y Lefebvre, E. (2008). Fast unfolding of communities in large networks. J. Stat. Mech. theory Exp. 2008 (10), P10008. doi:10.1088/1742-5468/2008/10/p10008 | |
| dc.relation | /*ref*/Bolger, A. M., Lohse, M. y Usadel, B. (2014). Trimmomatic: a flexible trimmer for Illumina sequence data. Bioinformatics 30 (15), 2114-2120. doi:10.1093/bioinformatics/btu170 | |
| dc.relation | /*ref*/Brandes, U., Borgatti, S. P. y Freeman, L. C. (2016). Maintaining the duality of closeness and betweenness centrality. Soc. Netw. 44, 153-159. doi:10.1016/j.socnet.2015.08.003 | |
| dc.relation | /*ref*/Bray, N. L., Pimentel, H., Melsted, P. y Pachter, L. (2016). Near-optimal probabilistic RNA-seq quantification. Nat. Biotechnol. 34 (5), 525-527. doi:10.1038/nbt.3519 | |
| dc.relation | /*ref*/Camarero, M. C., Briegas, B., Corbacho, J., Labrador, J., Gallardo, M. y Gómez-Jiménez, M. C. (2023). Characterization of transcriptome dynamics during early fruit development in olive (olea europaea L.). Int. J. Mol. Sci. 24 (2), 961. doi:10.3390/ijms24020961 | |
| dc.relation | /*ref*/Chai, P., Dong, S., Chai, L., Chen, S., Flaishman, M. y Ma, H. (2019). Cytokinin- induced parthenocarpy of san Pedro type fig (Ficus carica L.) main crop: Explained by phytohormone assay and transcriptomic network comparison. Plant Mol. Biol. 99 (4), 329-346. doi:10.1007/s11103-019-00820-2 | |
| dc.relation | /*ref*/Chen, X., Zhang, M., Tan, J., Huang, S., Wang, C., Zhang, H., et al. (2017). Comparative transcriptome analysis provides insights into molecular mechanisms for parthenocarpic fruit development in eggplant (Solanum melongena L.). PLoS ONE 12 (6), 1-17. doi:10.1371/journal.pone.0179491 | |
| dc.relation | /*ref*/Chen, X., Zhang, Z., Liu, D., Zhang, K., Li, A. y Mao, L. (2010). SQUAMOSA promoter-binding protein-like transcription factors: Star players for plant growth and development. J. Integr. Plant Biol. 52, 946-951. doi:10.1111/j.1744-7909.2010.00987.x | |
| dc.relation | /*ref*/Consortium, T. U. (2020). UniProt: The universal protein knowledgebase in 2021. Nucleic Acids Res. 49 (D1), D480-D489. doi:10.1093/nar/gkaa1100 | |
| dc.relation | /*ref*/Dao, T. T. H., Linthorst, H. J. M. y Verpoorte, R. (2011). Chalcone synthase and its functions in plant resistance. Phytochem. Rev. 10 (3), 397-412. doi:10.1007/s11101-011-9211-7 | |
| dc.relation | /*ref*/Daza, E., Ayala-Diaz, I., Ruiz-Romero, R. y Romero, H. M. (2020). Effect of the application of plant hormones on the formation of parthenocarpic fruits and oil production in oil palm interspecific hybrids (Elaeis oleifera Cortés × Elaeis guineensis Jacq.). Plant Prod. Sci. 24, 354-362. doi:10.1080/1343943X.2020.1862681 | |
| dc.relation | /*ref*/De Jong, M., Wolters-Arts, M., García-Martínez, J. L., Mariani, C. y Vriezen, W. H. (2011). The Solanum lycopersicum AUXIN RESPONSE FACTOR 7 (SlARF7) mediates cross-talk between auxin and gibberellin signalling during tomato fruit set and development. J. Exp. Bot. 62 (2), 617-626. doi:10.1093/ jxb/erq293 | |
| dc.relation | /*ref*/Dhatt, A. S., y Kaur, G. (2016). Parthenocarpy: A potential trait to exploit in vegetable crops: A review. Agric. Rev. 37 (4), 300-308. doi:10.18805/ag.v37i4.6460 | |
| dc.relation | /*ref*/Drews, G. N., y Yadegari, R. (2002). Development and function of the angiosperm female gametophyte. Annu. Rev. Genet. 36, 99-124. doi:10.1146/annurev.genet.36.040102.131941 | |
| dc.relation | /*ref*/Du, L., Bao, C., Hu, T., Zhu, Q., Hu, H., He, Q., et al. (2016). SmARF8, a transcription factor involved in parthenocarpy in eggplant. Mol. Genet. genomics 291 (1), 93–105. doi:10.1007/s00438-015-1088-5 Eddy, S. R. (2010). “HMMER user ’s guide”. Versión 3.0rc1. Edición de febrero, pp. 0- 77. | |
| dc.relation | /*ref*/Ehlting, J., Büttner, D., Wang, Q., Douglas, C. J., Somssich, I. E. y Kombrink, E. (1999). Three 4-coumarate: coenzyme A ligases in Arabidopsis thaliana represent two evolutionarily divergent classes in angiosperms. Plant J. 19 (1), 9-20. doi:10.1046/j.1365-313x.1999.00491.x | |
| dc.relation | /*ref*/Ewels, P., Magnusson, M., Lundin, S. y Käller, M. (2016). MultiQC: Summarize analysis results for multiple tools and samples in a single report. Bioinformatics 32 (19), 3047-3048. doi:10.1093/bioinformatics/btw354 | |
| dc.relation | /*ref*/Figueiredo, A., Monteiro, F. y Sebastiana, M. (2014). Subtilisin-like proteases in plant–pathogen recognition and immune priming: A perspective. Front. Plant Sci. 5, 1-4. doi:10.3389/fpls.2014.00739 | |
| dc.relation | /*ref*/Footitt, S., Dietrich, D., Fait, A., Fernie, A. R., Holdsworth, M. J., Baker, A., et al. (2007). The COMATOSE ATP-binding cassette transporter is required for full fertility in Arabidopsis. Plant Physiol. 144 (3), 1467-1480. doi:10.1104/pp.107.099903 | |
| dc.relation | /*ref*/Galimba, K. D., Bullock, D. G., Dardick, C., Liu, Z. y Callahan, A. M. (2019). Gibberellic acid induced parthenocarpic ‘Honeycrisp’apples (Malus domestica) exhibit reduced ovary width and lower acidity. Hortic. Res. 6, 41. doi:10.1038/s41438-019-0124-8 | |
| dc.relation | /*ref*/Grabherr, M. G., Haas, B. J., Yassour, M., Levin, J. Z., Thompson, D., Amit, I., et al. (2011). Fulllength transcriptome assembly from RNA-Seq data without a reference genome. Nat. Biotechnol. 29, 644-652. doi:10.1038/nbt.1883 | |
| dc.relation | /*ref*/Haas, B. J., Papanicolaou, A., Yassour, M., Grabherr, M., Blood, P. D., Bowden, J., et al. (2013). De novo transcript sequence reconstruction from RNA-seq: Reference generation and analysis with trinity. Nat. Protoc. 8 (8), 1494–1512. doi:10.1038/NPROT.2013.084 | |
| dc.relation | /*ref*/Heberle, H., Meirelles, G. V., da Silva, F. R., Telles, G. P. y Minghim, R. (2015). InteractiVenn: A web-based tool for the analysis of sets through Venn diagrams. BMC Bioinforma. 16 (1), 169-177. doi:10.1186/ s12859-015-0611-3 | |
| dc.relation | /*ref*/Hormaza, P., Mesa Fuquen, E. y Romero, H. M. (2012). Phenology of the oil palm interspecific hybrid Elaeis oleifera × Elaeis guineensis. Sci. Agric. 69 (4), 275-280. doi:10.1590/S0103-90162012000400007 | |
| dc.relation | /*ref*/Htwe, Y. M., Shi, P., Zhang, D., Li, Z., Xiao, Y., Yang, Y., et al. (2022). Programmed cell death may be involved in the seedless phenotype formation of oil palm. Front. Plant Sci. 13, 832017. 1–17. doi:10.3389/ fpls.2022.832017 | |
| dc.relation | /*ref*/Jasinski, S., Fabrissin, I., Masson, A., Marmagne, A., Lécureuil, A., Bill, L., et al. (2021). ACCELERATED CELL DEATH 6 acts on natural leaf senescence and nitrogen fluxes in Arabidopsis. Front. Plant Sci. 11 (611170), 1–15. doi:10.3389/fpls.2020.611170 | |
| dc.relation | /*ref*/Jin, Y., Zhang, C., Liu, W., Tang, Y., Qi, H., Chen, H., et al. (2016). The alcohol dehydrogenase gene family in melon (Cucumis melo L.): Bioinformatic analysis and expression patterns. Front. Plant Sci. 7, 670. doi:10.3389/fpls.2016.00670 | |
| dc.relation | /*ref*/Kleinberg, J. M. (1999). Hubs, authorities, and communities. ACM Comput. Surv. (CSUR) 31, 5–es. doi:10.1145/345966.345982 | |
| dc.relation | /*ref*/Le Hir, R., y Bellini, C. (2013). The plant-specific Dof transcription factors family: New players involved in vascular system development and functioning in Arabidopsis. Front. Plant Sci. 4, 164. doi:10.3389/ fpls.2013.00164 | |
| dc.relation | /*ref*/Li, H., y Durbin, R. (2009). Fast and accurate short read alignment with Burrows–Wheeler transform. Bioinformatics 25 (14), 1754-1760. doi:10.1093/bioinformatics/btp324 | |
| dc.relation | /*ref*/Li, J., Xu, J., Guo, Q. W., Wu, Z., Zhang, T., Zhang, K. J., et al. (2017). Proteomic insight into fruit set of cucumber (Cucumis sativus L.) suggests the cues of hormone-independent parthenocarpy. BMC Genomics 18, 896. 1-18. doi:10.1186/s12864-017-4290-5 | |
| dc.relation | /*ref*/Love, M. I., Huber, W. y Anders, S. (2014). Moderated estimation of fold change and dispersion for RNAseq data with DESeq2. Genome Biol. 15 (12), 550-621. doi:10.1186/s13059-014-0550-8 | |
| dc.relation | /*ref*/Luo, J., Zhou, J.-J. y Zhang, J.-Z. (2018). Aux/IAA gene family in plants: Molecular structure, regulation, and function. Int. J. Mol. Sci. 19 (1), 259. doi:10.3390/ijms19010259 | |
| dc.relation | /*ref*/Ma, L. y Li, G. (2018). FAR1-RELATED SEQUENCE (FRS) and FRS-RELATED FACTOR (FRF) family proteins in Arabidopsis growth and development. Front. Plant Sci. 9, 692. doi:10.3389/ fpls.2018.00692 | |
| dc.relation | /*ref*/Mishra, P., y Panigrahi, K. C. (2015). Gigantea - an emerging story. Front. Plant Sci. 6, 8-15. doi:10.3389/ fpls.2015.00008 | |
| dc.relation | /*ref*/Molesini, B., Dusi, V., Pennisi, F. y Pandolfini, T. (2020). How hormones and mads-box transcription factors are involved in controlling fruit set and parthenocarpy in tomato. Genes 11 (12), 1441. doi:10.3390/genes11121441 | |
| dc.relation | /*ref*/Nagpal, P., Ellis, C. M., Weber, H., Ploense, S. E., Barkawi, L. S., Guilfoyle, T. J., et al. (2005). Auxin response factors ARF6 and ARF8 promote jasmonic acid production and flower maturation. Development 132 (18), 4107-4118. doi:10.1242/dev.01955 | |
| dc.relation | /*ref*/Navia, E. A., Restrepo, E. F. y Romero, H. M. (2014). Response of six sources of oil palm planting materials from Malaysia planted in the eastern plains of Colombia to bud rot. J. Oil Palm Res. 26 (1), 73-83. | |
| dc.relation | /*ref*/Ohmori, S., Kimizu, M., Sugita, M., Miyao, A., Hirochika, H., Uchida, E., et al. (2009). MOSAIC FLORAL ORGANS1, an AGL6-like MADS box gene, regulates floral organ identity and meristem fate in rice. Plant Cell 21 (10), 3008-3025. doi:10.1105/tpc.109.068742 | |
| dc.relation | /*ref*/Okabe, Y., Yamaoka, T., Ariizumi, T., Ushijima, K., Kojima, M., Takebayashi, Y., et al. (2019). Aberrant stamen development is associated with parthenocarpic fruit set through up-regulation of gibberellin biosynthesis in tomato. Plant Cell Physiology 60 (1), 38-51. doi:10.1093/pcp/pcy184 | |
| dc.relation | /*ref*/Pandolfini, T., Molesini, B. y Spena, A. (2009). Parthenocarpy in crop plants. Annu. Plant Rev. 38, 326-345. | |
| dc.relation | /*ref*/Pomares-Viciana, T., Río-Celestino, D., Román, B., Die, J., Pico, B. y Gómez, P. (2019). First RNA-seq approach to study fruit set and parthenocarpy in zucchini (Cucurbita pepo L.). BMC plant Biol. 19 (1), 61-20. doi:10.1186/s12870-019-1632-2 | |
| dc.relation | /*ref*/Portereiko, M. F., Sandaklie-Nikolova, L., Lloyd, A., Dever, C. A., Otsuga, D. y Drews, G. N. (2006). NUCLEAR FUSION DEFECTIVE1 encodes the Arabidopsis RPL21M protein and is required for karyogamy during female gametophyte development and fertilization. Plant physiol. 141 (3), 957–965. doi:10.1104/pp.106.079319 | |
| dc.relation | /*ref*/Punta, M., Coggill, P. C., Eberhardt, R. Y., Mistry, J., Tate, J., Boursnell, C., et al. (2012). The Pfam protein families database. Nucleic Acids Res. 40, D290–D301. doi:10.1093/nar/gkr1065 | |
| dc.relation | /*ref*/Reyes, J. C., Muro-Pastor, M. I., y Florencio, F. J. (2004). The GATA family of transcription factors in Arabidopsis and rice. Plant Physiol. 134 (4), 1718–1732. doi:10.1104/pp.103.037788 | |
| dc.relation | /*ref*/Rincón, S. M., Hormaza, P. A., Moreno, L. P., Prada, F., Portillo, D. J., García, J. A., et al. (2013). Use of phenological stages of the fruits and physicochemical characteristics of the oil to determine the optimal harvest time of oil palm interspecific O×G hybrid fruits. Industrial Crops Prod. 49, 204-210. doi:10.1016/j.indcrop.2013.04.035 | |
| dc.relation | /*ref*/Romero, H. M., Daza, E., Ayala-Díaz, I. y Ruiz-Romero, R. (2021). High-Oleic Palm Oil (HOPO) production from parthenocarpic fruits in oil palm interspecific hybrids using naphthalene acetic acid. Agronomy 11 (2), 290. doi:10.3390/agronomy11020290 | |
| dc.relation | /*ref*/Romero, H. M., Guataquira, S. y Forero, D. C. (2022). Light interception, photosynthetic performance, and yield of oil palm interspecific O×G hybrid (Elaeis oleifera (Kunth) Cortés × Elaeis guineensis Jacq.) en tres densidades de plantación. Plants 11 (9), 1166. doi:10.3390/plants11091166 | |
| dc.relation | /*ref*/Schmidlin, L., Poutaraud, A., Claudel, P., Mestre, P., Prado, E., Santos-Rosa, M., et al. (2008). A stress-inducible resveratrol O-methyltransferase involved in the biosynthesis of pterostilbene in grapevine. Plant Physiol. 148, 1630-1639. doi:10.1104/pp.108.126003 | |
| dc.relation | /*ref*/Serrani, J. C., Fos, M., Atarés, A. y García-Martínez, J. L. (2007). Effect of gibberellin and auxin on parthenocarpic fruit growth induction in the cv Micro-Tom of tomato. J. Plant Growth Regul. 26 (3), 211-221. doi:10.1007/s00344-007-9014-7 | |
| dc.relation | /*ref*/Sharif, R., Su, L., Chen, X. y Qi, X. (2022). Hormonal interactions underlying parthenocarpic fruit formation in horticultural crops. Hortic. Res. 9, uhab024. Investigación hortícola. doi:10.1093/hr/uhab024 | |
| dc.relation | /*ref*/Siegfried, K. R., Eshed, Y., Baum, S. F., Otsuga, D., Drews, G. N. y Bowman, J. L. (1999). Members of the YABBY gene family specify abaxial cell fate in Arabidopsis. Development 126 (18), 4117-4128. doi:10.1242/dev.126.18.4117 | |
| dc.relation | /*ref*/Singh, N. K., Kumar, K. R. R., Kumar, D., Shukla, P. y Kirti, P. B. (2013). Characterization of a pathogen induced thaumatin-like protein gene AdTLP from Arachis diogoi, a wild peanut. PLoS ONE 8 (12), 1-18. doi:10.1371/journal.pone.0083963 | |
| dc.relation | /*ref*/Somyong, S., Walayaporn, K., Jomchai, N., Naktang, C., Yodyingyong, T., Phumichai, C., et al. (2018). Transcriptome analysis of oil palm inflorescences revealed candidate genes for an auxin signaling pathway involved in parthenocarpy. PeerJ 6 (e5975), 1-22. doi:10.7717/peerj.5975 | |
| dc.relation | /*ref*/Stortenbeker, N., y Bemer, M. (2019). The SAUR gene family: The plant’s toolbox for adaptation of growth and development. J. Exp. Bot. 70 (1), 17-27. doi:10.1093/jxb/ery332 | |
| dc.relation | /*ref*/Sundram, S., e Intan-Nur, A. M. A. (2017). South American bud rot: A biosecurity threat to south east asian oil palm. Crop Prot. 101, 58-67. doi:10.1016/j.cropro.2017.07.010 | |
| dc.relation | /*ref*/Supek, F., Bošnjak, M., Škunca, N., y Šmuc, T. (2011). REVIGO summarizes and visualizes long lists of gene ontology terms. PloS one 6, e21800. doi:10.1371/journal.pone.0021800 | |
| dc.relation | /*ref*/ul Haq, S., Khan, A., Ali, M., Khattak, A. M., Gai, W. X., Zhang, H. X., et al. (2019). Heat shock proteins: Dynamic biomolecules to counter plant biotic and abiotic stresses. Int. J. Mol. Sci. 20, 1-31. doi:10.3390/ijms20215321 | |
| dc.relation | /*ref*/van Mourik, H., van Dijk, A. D. J., Stortenbeker, N., Angenent, G. C. y Bemer, M. (2017). Divergent regulation of Arabidopsis SAUR genes: A focus on the SAUR10-clade. BMC Plant Biol. 17 (245), 1-14. doi:10.1186/s12870-017-1210-4 | |
| dc.relation | /*ref*/Wasserman, S. y Faust, K. (1994). Social network analysis: Methods and applications (structural analysis in the social sciences). Cambridge: Cambridge University Press. | |
| dc.relation | /*ref*/West, D. B. (2001). Introduction to graph theory. Londres: Pearson Education, Inc. | |
| dc.relation | /*ref*/Wysocka-Diller, J. W., Helariutta, Y., Fukaki, H., Malamy, J. E., y Benfey, P. N. (2000). Molecular analysis of SCARECROW function reveals a radial patterning mechanism common to root and shoot. Development 127 (3), 595-603. doi:10.1242/dev.127.3.595 | |
| dc.relation | /*ref*/Young, M. D., Wakefield, M. J., Smyth, G. K. y Oshlack, A. (2010). Gene ontology analysis for RNA-seq: accounting for selection bias. Genome Biol. 11 (R14), 1-12. doi:10.1186/gb-2010-11-2-r14 | |
| dc.relation | /*ref*/Yu, S., Ligang, C., Liping, Z. y Diqiu, Y. (2010). Overexpression of OsWRKY72 gene interferes in the abscisic acid signal and auxin transport pathway of Arabidopsis. J. Biosci. 35 (3), 459-471. doi:10.1007/s12038-010-0051-1 | |
| dc.relation | /*ref*/Zhang, S., Gu, X., Shao, J., Hu, Z., Yang, W., Wang, L., et al. (2021). Auxin metabolism is involved in fruit set and early fruit development in the parthenocarpic tomato “R35- P”. Front. Plant Sci. 12, 671713. doi:10.3389/fpls.2021.671713 | |
| dc.relation | /*ref*/Zhang, S., Shi, Q., Albrecht, U., Shatters, R. G., Stange, R., McCollum, G., et al. (2017). Comparative transcriptome analysis during early fruit development between three seedy citrus genotypes and their seedless mutants. Hortic. Res. 4 (17041), 1-12. doi:10.1038/hortres.2017.41 | |
| dc.rights | Derechos de autor 2026 Palmas | es-ES |
| dc.rights | https://creativecommons.org/licenses/by-nc-nd/4.0 | es-ES |
| dc.source | Palmas; Vol. 46 Núm. 4 (2025): Palmas; 44-65 | es-ES |
| dc.source | 2744-8266 | |
| dc.subject | ANA | es-ES |
| dc.subject | auxinas | es-ES |
| dc.subject | híbridos interespecíficos O×G | es-ES |
| dc.subject | palma de aceite | es-ES |
| dc.subject | partenocarpia | es-ES |
| dc.subject | redes de coexpresión génica | es-ES |
| dc.subject | transcriptoma | es-ES |
| dc.subject | ANA | en-US |
| dc.subject | auxins | en-US |
| dc.subject | gene coexpression networks | en-US |
| dc.subject | interspecific O×G hybrids | en-US |
| dc.subject | oil palm | en-US |
| dc.subject | parthenocarpy | en-US |
| dc.subject | transcriptome | en-US |
| dc.title | Parthenocarpy-Related Genes Induced by Naphthalene Acetic Acid in Oil Palm Interspecific O×G [Elaeis oleifera (Kunth) Cortés × Elaeis guineensis | en-US |
| dc.title | Genes relacionados con la partenocarpia inducidos por el ácido naftalenacético en híbridos interespecíficos O×G [Elaeis oleifera (Kunth) Cortés × Elaeis guineensis Jacq.] de palma de aceite | es-ES |
| dc.type | info:eu-repo/semantics/article | |
| dc.type | info:eu-repo/semantics/publishedVersion |