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Different culture conditions applied to in vitro shoot multiplication of two Eucalyptus benthamii explant sources

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Abstract

Eucalyptus adult material requires more successive subcultures in the in vitro multiplication phase for increased vigor and cellular activity. This study evaluated the endophytic manifestation and shoot multiplication of one 13-year-old Eucalyptusbenthamii clone under different culture conditions and used canopy branches (CB) and trunk base material as explant sources. The culture media were wood plant medium (WPM), Murashige and Skoog medium (MS) and JADS (Correia and co-authors medium). Based on the results of the initial multiplication experiment, further tests examined sucrose concentrations and pH. Morphophysiology, dry mass production, endophytic manifestation and histochemical were determined. Explant sources responded differently to MS and JADS media, but the WPM medium promoted homogeneous development. The responses were similar for both explant sources when sucrose concentrations varied. Shoots died in the absence of sucrose, showed high oxidation at 60 g L−1 and optimal development at 30 g L−1. Endophytes were more evident for shoots from the CB origin. Explant sources responded distinctively to treatment due to physiological and intrinsic genetic factors. Therefore, explant sources, different culture media, sucrose concentration and pH may determine micropropagation success and influence the presence and/or intensity of endophytic manifestation.

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References

  • Abreu-Tarazi MF, Navarrete AA, Andreote FD, Almeida CV, Tsai SM, Almeida M (2010) Endophytic bacteria in long-term in vitro cultivated ‘‘axenic’’ pineapple microplants revealed by PCR–DGGE. World J Microbiol Biotechnol 26:555–560

    Article  Google Scholar 

  • Almeida CV, Andreote FD, Yara R, Tanaka FAO, Azevedo JL, Almeida M (2009) Bacteriosomes in axenic plants: endophytes as stable endosymbionts. World J Microbiol Biotechnol 25:1757–1764

    Article  Google Scholar 

  • Almeida M, Almeida CV, Graner EM, Brondani GE, Abreu-Tarazi MF (2012) Pre-procambial cells are niches for pluripotent and totipotent stem-like cells for organogenesis and somatic embryogenesis in the peach palm: a histological study. Plant Cell Rep 31:1495–1515

    Article  PubMed  CAS  Google Scholar 

  • Ardanov P, Sessitsch A, Haggman H, Kozyrovska N, Pirttilä AM (2012) Methylobacterium-induced endophyte community changes correspond with protection of plants against pathogen attack. PLoS ONE 7:e46802

    Article  CAS  PubMed  PubMed Central  Google Scholar 

  • Baccarin FJB, Brondani GE, Almeida LV, Vieira IG, Oliveira LS, Almeida M (2015) Vegetative rescue and cloning of Eucalyptus benthamii selected adult trees. New For 46:465–483

    Article  Google Scholar 

  • Bassan JS, Reiniger LRS, Rocha BHG, Severo CRP, Flores AV (2006) Oxidação fenólica, tipo de explante e meios de cultura no estabelecimento in vitro de canafístula (Peltophorum dubium (Spreng.) Taub.). Ciênc Florest 16:381–390

    Article  Google Scholar 

  • Borges SR, Xavier A, Oliveira LD, Lopes AP, Otoni WC (2011) Multiplicação in vitro de clones híbridos de Eucalyptus globulus. Rev Árvore 35:173–182

    Article  Google Scholar 

  • Brondani GE, de Wit Ondas HW, Baccarin FJB, Gonçalves AN, de Almeida M (2012) Micropropagation of Eucalyptus benthamii to form a clonal micro-garden. In vitro Cell Dev Biol Plant 48:478–487

    Article  CAS  Google Scholar 

  • Capellades M, Lemeur R, Debergh P (1991) Effects of sucrose on starch accumulation and rate of photosynthesis in Rosa cultured in vitro. Plant Cell Tissue Organ Cult 25:21–26

    Article  Google Scholar 

  • Cook D, Shi L, Gardner DR, Pfister JA, Grum D, Welch KD, Ralphs MH (2012) Influence of phenological stage on swainsonine and endophyte concentrations in Oxytropis sericea. J Chem Ecol 38:195–203

    Article  CAS  PubMed  Google Scholar 

  • Correia D, Gonçalves NA, Couto HYZ, Ribeiro MC (1995) Efeito do meio de cultura líquido e sólido no crescimento e desenvolvimento de gemas de Eucalyptus grandis × Eucalyptus urophylla na multiplicação in vitro. Sci For 48(49):107–116

    Google Scholar 

  • Dai ZW, Meddar M, Renaud C, Merlin I, Hilbert G, Delrot S, Gomès E (2014) Long-term in vitro culture of grape berries and its application to assess the effects of sugar supply on anthocyanin accumulation. J Exp Bot 489

  • Debergh P, Harbaoui Y, Lemeur R (1981) Masspropagation of globe artichoke (Cynarascolymus): evaluation of different hypotheses to overcome vitrification with special reference to water potential. Physiol Plant 53:181–187

    Article  Google Scholar 

  • Dutra LF, Wendling I, Brondani GE (2009) A micropropagação de eucalipto. Pesqui Florest Bras 58:49–59

    Google Scholar 

  • Elmore S (2007) Apoptosis: a review of programmed cell death. Toxicol Pathol 35:495–516

    Article  CAS  PubMed  PubMed Central  Google Scholar 

  • Esposito-Polesi NP (2011) Microrganismos endofíticos e a cultura de tecidos vegetais: quebrando paradigmas. Rev Bras Biociênc 9:533–541

    Google Scholar 

  • Esposito-Polesi NP, Almeida CV, Almeida M (2013) Avaliação histoquímica de espécies de microplantas hospedeiras de endófitos. Rev Bras Biocienc 19:61–71

    Google Scholar 

  • Esposito-Polesi NP, Andrade PAM, Almeida CV, Andreote FD, Almeida M (2015) Endophytic bacterial communities associated with two explant sources of Eucalyptus benthamii Maiden & Cambage. World J Microbiol Biotechnol 31:1737–1746

    Article  CAS  PubMed  Google Scholar 

  • Floriani MMP, Steffens CA, Chaves DM, Amarante CVT, Pikart TG, Santos MR (2013) Relação entre concentrações foliares de carboidratos solúveis totais e tolerância ao frio em diferentes espécies de Eucalyptus spp. Ciênc Florest 23:165–174

    Article  Google Scholar 

  • Gagne-Bourgue F, Aliferis KA, Seguin P, Rani M, Samson R, Jabaji S (2013) Isolation and characterization of indigenous endophytic bacteria associated with leaves of switchgrass (Panicum virgatum L.) cultivars. J Appl Microbiol 114:836–853

    Article  CAS  PubMed  Google Scholar 

  • George EF, Debergh PC (2008) Micropropagation: uses and methods. In: George EF, Hall AM, de Klerk GJ (eds) Plant propagation by tissue culture: the background, vol 1, 3rd edn. Springer, Dordrecht, pp 29–64

    Google Scholar 

  • Glocke P, Delaporte K, Collins G, Sedgley M (2006) Micropropagation of juvenile tissue of Eucalyptus erythronema × Eucalyptus stricklandii cv. ‘urrbrae gem’. In vitro Cell Dev Biol Plant 42:139–143

    Article  CAS  Google Scholar 

  • Graner EM, Brondani GE, Almeida CV, Batagin-Piotto KD, Almeida M (2015) Study of senescence in old cultures of the Bactris gasipaes Kunth in vitro. Plant Cell Tissue Organ Cult 120:1169–1189

    Article  Google Scholar 

  • Hardoim PR, van Overbeek LS, van Elsas JD (2008) Properties of bacterial endophytes and their proposed role in plant growth. Trends Microbiol 16:463–471

    Article  CAS  PubMed  Google Scholar 

  • Hartmann HT, Kester DE, Davies FT, Geneve RL (2011) Plant propagation: principles and practices, 8th edn. Prentice-Hall, São Paulo

    Google Scholar 

  • Hazarika BN (2006) Morpho-physiological disorders in in vitro culture of plants. Sci Hort 108:105–120

    Article  CAS  Google Scholar 

  • Jo EA, Tewari RK, Hahn EJ, Paek KY (2009) In vitro sucrose concentrationaffects growth and acclimatization of Alocasia amazonica plantlets. Plant Cell Tissue Organ Cult 96:307–315

    Article  CAS  Google Scholar 

  • Karnovsky MJ (1965) A formaldehyde-glutaraldehyde fixative of high osmolality for use in eletron microscopy. J Cell Biol 27:137–138

    Google Scholar 

  • Kubeš M, Drážná N, Konrádová H, Lipavská H (2014) Robust carbohydrate dynamics based on sucrose resynthesis in developing Norway spruce somatic embryos at variable sugar supply. In vitro Cell Dev Biol Plant 50:45–57

    Article  CAS  Google Scholar 

  • Lima MM, Gonçalves NA (1998) Efeito do Thidiazuron na multiplicação in vitro de gemas de um clone de Eucalyptus grandis × Eucalyptus tereticornis. Sci For 53:49–56

    Google Scholar 

  • Lloyd G, McCown B (1980) Commercially-feasible micropropagation of mountain laurel, Kalmia latifolia, by use of shoot-tip culture. Comb Proc Int Plant Propag Soc 30:421–427

    Google Scholar 

  • Moricca S, Ginetti B, Ragazzi A (2012) Species- and organ-specificity in endophytes colonizing healthy and declining Mediterranean oaks. Phytopathol Mediterr 51:587–598

    Google Scholar 

  • Murashige T, Skoog F (1962) A revised medium for rapid growth and bioassays with tobacco tissue cultures. Physiol Plantarum 15:473–497

    Article  CAS  Google Scholar 

  • Palavan-Unsal N, Arisan ED (2011) Evidences for the presence of caspase-like activities in plants. Fen Bilim Derg 23:57–69

    Google Scholar 

  • Parveen S, Shahzad A (2014) Factors affecting in vitro plant regeneration from cotyledonary node explant of Senna sophera (L.) Roxb. A highly medicinal legume. Afr J Biotechnol 13:413–422

    Article  CAS  Google Scholar 

  • Pasqual M, Alves GP, Dutra LF, Finotti DR, Chagas EA (2002) Cultivo in vitro de embriões imaturos de tangerina ‘Poncã’: concentrações do meio MS e da sacarose. Rev Ceres 49:181–189

    CAS  Google Scholar 

  • Radmann EB, Bianchi VJ, Souza TM, Fachinello JC, de Oliveira RP (2009) Influência da composição do meio de cultivo e do tipode explante na micropropagação do porta-enxerto de Prunus sp. ‘GXN-9’. Sci Agrar 10:95–101

    Google Scholar 

  • Rockwood DL, Rudie AW, Ralph SA, Zhu JY, Winandy JE (2008) Energy product options for Eucalyptus species grown as short rotation woody crops. Int J Mol Sci 9:1361–1378

    Article  CAS  PubMed  PubMed Central  Google Scholar 

  • Silva FAS, Azevedo CAV (2009) Principal components analysis in the software assistat-statistical attendance. In: World congress on computers in agriculture, vol 7. American Society of Agricultural and Biological Engineers, Reno-NV-USA

  • Souza FVD, Junghans TG, Souza AS, Santos-Serejo JA, Costa MAPC (2006) Micropropagação. In: Souza AS, Junghans TG (Org.) Introdução à micropropagação de plantas. Cruz das Almas: Embrapa Mandioca e Fruticultura Tropical, pp 38–52

  • Sulichantini ED, Sutisna M, Sukartiningsih S, Rusdiansyah R (2014) Clonal propagation of two clones Eucalyptus Pellita F. Muell by mini-cutting. Int J Sci Eng 6:117–121

    Google Scholar 

  • Thomas P, Kumari S (2010) Inconspicuous endophytic bacteria mimicking latex exudates in shoot-tip cultures of papaya. Sci Hort 124:469–474

    Article  CAS  Google Scholar 

  • Tsay HS, Lee CY, Agrawal DC, Shokkannagounder B (2006) Influence of ventilation closure, gelling agent and explant type on shoot bud proliferation and hyperhydricity in Scrophularia yoshimurae—a medicinal plant. In vitro Cell Dev Biol Plant 42:445–449

    Article  CAS  Google Scholar 

  • Wendling I, Trueman SJ, Xavier A (2014) Maturation and related aspects in clonal forestry—part II: reinvigoration, rejuvenation and juvenility maintenance. New For (Dordr) 45(4):473–486

    Google Scholar 

Download references

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Correspondence to Natalia Pimentel Esposito-Polesi.

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Project funding: The work was supported by the National Council of Technological and Scientific Development (CNPq) Process No. 143253/2011-5 and to Coordination for the Improvement of Higher Education Personnel (CAPES).

The online version is available at http://www.springerlink.com

Corresponding editor: Tao Xu.

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Esposito-Polesi, N.P., de Oliveira, L.S., Baccarin, F.J.B. et al. Different culture conditions applied to in vitro shoot multiplication of two Eucalyptus benthamii explant sources. J. For. Res. 31, 857–869 (2020). https://doi.org/10.1007/s11676-018-0816-1

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