In vitro germination of immature seeds under two lighting spectrums to obtain protocorms in Vanilla planifolia Jacks.

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DOI: 10.1007/s42535-024-01126-5
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Keywords: Light quality, Orchids, Artificial pollination, Immature fruits


Abstract


In the present study, cross pollination and self-pollination schemes were carried out to obtain seeds in Vanilla planifolia Jacks. Differences in average lengths at 45 days after pollination (DAP) were found to be 17.72 ± 0.65 and 16.22 ± 0.44 cm in fruits from cross pollination and self-pollination, respectively, while for average fruit weight was 13.5 ± 1.24 and 11.25 ± 0.62 g in cross pollination and self-pollination, respectively. Seeds were inoculated on Murashige & Skoog (MS) medium at half concentration supplemented with 15 gL− 1 sucrose and 500 mgL− 1 in hydrolyzed casein. The cultures were maintained under two illumination conditions: fluorescent light and red LED. The efficiency of red LED light for germination of V. planifolia seeds in vitro, obtained by self-pollination and cross pollination, and for both sucrose concentrations of 15 gL− 1 and 30 gL− 1 evaluated, was verified. It was found that the most effective treatment was that of 15 gL− 1 in seeds from cross pollination with 90 ± 1.29% in the in vitro germination, which contrasted with the lowest values obtained for in vitro germination obtained in seeds from self-pollination 8.33 ± 2.39% grown with a sucrose concentration of 15 gL− 1.

Light quality, Orchids, Artificial pollination, Immature fruits


References


Arditti J (2008) In: Oxford UK (ed) Micropropagation of orchids, 2 edn. Wiley-Blackwell, p 1560


Barreda-Castillo JM, Menchaca-García RA, Morales-Ruiz V (2023) Presencia De metaxenia en frutos de 40 días pospolinización en Vanilla planifolia Andrews Y V. Pompona Schiede. Revista Mexicana De Ciencias Agrícolas 14(2):289–293


Bello-Bello JJ, Pérez-Sato JA, Cruz-Cruz CA, Martínez-Estrada E (2017) Light-emitting diodes: Progress in Plant Micropropagation. Tech 6(1):93–103. https://doi.org/10.5772/67913


Bernard NL (1909) L’évolution dans la symbiose, les orchidées et leurs champignons commensaux. Ann Sci Nat Bot 9:1–196


Castillo-Martínez R, Engleman EM (1993) Caracterización De Dos Tipos De Vanilla planifolia. Acta Botánica Mexicana 25:49–59


Chugh S, Guha S, Rao I (2009) Micropropagation of orchids: a review on the potential of different explants. Sci Hort 122:507–520


CITES (Convención Sobre el Comercio Internacional de Especies Amenazadas de Fauna y Flora Silvestres) (2019) Lista de especies CITES. Recovered on March 27, 2024 from https://cites.org/esp


Dressler RL (1993) Phylogeny and classification of the orchid family. Cambridge University Press, Cambridge, pp 106–107


Geetha S, Shetty SA (2000) In vitro propagation of Vanilla planifolia, a tropical orchid. Curr Sci 79(6):886–889 Available on:. https://www.cabdirect.org/cabdirect/abstract/20026789003


Hassan MM (2017) In Vitro Conservation of Date Palm Somatic Embryos Using Growth-Retardant Conditions. Human Press, 1638. 61–70. https://doi.org/10.1007/978-1-4939-7159-6_6


Hazubska-Przybyl T, Kalemba EE, Ratajczak E, Bojarczuk K (2016) Effects of abscisic acid and an osmoticum on the maturation, starch accumulation, and germination of Picea spp. somatic embryos. Acta Physiol Plant 38(59). https://doi.org/10.1007/s11738-016-2078-x


Hernández-Hernández J (2011) Paquete tecnológico vainilla (Vanilla planifolia Jackson). Establecimiento y mantenimiento. Programa Estratégico para el desarrollo Rural Sustentable de la Región Sur-Sureste: Trópico Húmedo. INIFAP Tlapacoyan. Available on: https://docplayer.es/173941738-Paquete-tecnologico-vainilla-vanilla-planifolia-jackson-establecimiento-y-mantenimiento-vainilla.html#google_vignette


Hernández-Hernández J, Curti-Díaz SA, Ríos-Utrera Á (2019) Retención De frutos en Vanilla planifolia Jacks ex Andrews con reguladores de crecimiento. Agronomía Mesoamericana 30(3):695–704. https://doi.org/10.15517/am.v30i3.33988


Hernández-Ramírez F, Iracheta-Donjuan L, Asbhy-Damon A, Fernández-Pavia SP, Guillén-Navarro K (2023) Effect of culture media and skotoperiod on the germination of seeds and growth in vitro of Guarianthe Skinneri (Bateman) Dressler & W.E. Higgins (Orchidaceae). Polibotánica 56:151–170. https://doi.org/10.18387/polibotanica.56.8


IUCN (International Union for Conservation of Nature) (2017) Vanilla planifolia. Recovered on March 25, 2024 from: https://www.iucnredlist.org/species/103090930/172970359


Latif SMH, Boonkokaew P, Boonchai D, Wongchaocant S, Thenahom AA (2019) Light quality affects shoot multiplication on Vanilla pompona Schiede. In Micropropagation. Thail J Agricultural Sci 52(3):142–151 Available on. https://li01.tci-thaijo.org/index.php/TJAS/article/view/246034


Lee-Espinosa HE, Murguía-González J, García-Rosas B, Córdova-Contreras AL, Laguna-Cerda A, Mijangos-Cortés JO et al. 2008. In vitro clonal propagation of vanilla (Vanilla planifolia ‘Andrews’). HortScience, 43(2):454–458. https://doi.org/10.21273/HORTSCI.43.2.454


Mahendran G, Narmatha B (2012) Direct somatic embryogenesis and plant regeneration from seed-derived protocorms of Cymbidium Bicolor Lindl. Sci Hort 135:40–44


Meisel L, Urbina D, Pinto M (2011) Fotorreceptores y respuestas de plantas a señales lumínicas. Fisiología vegetal, FA Squeo Cardemil (eds), Ediciones Universidad de La Serena, Chile. Chapter 18. P. 1–10


Menchaca-García RA, Ramos JM, Moreno D, Luna M, Mata M, Vázquez LM, Lozano MA (2011) Germinación in vitro de híbridos de Vanilla planifolia y V. pompona. Revista colombiana de biotecnología, 13(1):80–84. Available on: http://www.scielo.org.co/scielo.php?script=sci_arttext%26pid=S0123-34752011000100011


Perán-Quesada R, Sánchez C, Márquez B, Barceló A, Pliego F (2001) Efecto Del medio de cultivo sobre la maduración y germinación de embriones somáticos de aguacate. Actas De Horticultura 28:111–115


Pierik RLM (1990) Cultivo in vitro de las plantas superiores. Ediciones Mundi-Prensa, Madrid


Real-Carrasco S, Moreno-Martínez D, Menchaca-García RA (2007) Cultivo de protocormos de Mormodes maculata var. unicolor L.O. Williams (Orchidaceae). Foresta Veracruzana, 9(1):55–59. Available on: https://www.redalyc.org/articulo.oa?id=49790109


Saiprasad G, Polisetty R (2003) Propagation of three orchid genera using encapsulated protocorm-like bodies. vitro Cell Dev Biology-Plant 39:42–48


SEMARNAT (Secretaría de Medio Ambiente y Recursos Naturales) (2010) Norma Oficial Mexicana NOM-059-SEMARNAT-2010: Protección ambiental, Especies nativas de México de flora y fauna silvestres-Categorías de riesgo y especificaciones para su inclusión, exclusión o cambio-Lista de especies en riesgo. Secretaría de Medio Ambiente y Recursos Naturales. Diario Oficial de la Federación. México, D.F. https://www.gob.mx/profepa/documentos/norma-oficial-mexicana-nom-059-semarnat-2010


Schneiders D, Pescador R, Booz MR, Suzuki RM (2012) Germinação, crescimento e desenvolvimento in vitro de orquídeas (Cattleya spp., Orchidaceae). Ceres 59(2):185–191


Soto-Arenas MA (1999) Filogeografía y recursos genéticos de las vainillas de México. México, DF. Available on: https://www.snib.mx/iptconabio/resource?r=SNIB-J101


Soto-Arenas MA (2006) La Vainilla: retos y perspectivas de su cultivo. CONABIO Biodiversitas 66:1–9


Soto-Arenas MA, Dressler RL (2009) A revision of the Mexican and central American species of Vanilla Plumier ex Miller with a characterization of their ITS region of the nuclear ribosomal DNA. Lankesteriana 9:285–354


Torres-González MJ, Aguirre-Medina JF, Iracheta-Donjuan L (2018) Germinación se semilla y obtención de plántulas de Vanilla planifolia Andrews en condiciones in vitro. Agro Productividad, 4(2). Recovered from https://revista-agroproductividad.org/index.php/agroproductividad/article/view/574


Yasuda TFY, Yamaguchi T (1985) Embryogenic callus induction from Coffea arabica leaf explants by benzyladenine. Plant Cell Physol 26:595–597

 


Author Information


Instituto de Biotecnología y Ecología Aplicada (INBIOTECA), Universidad Veracruzana, Xalapa, México