Repository Universitas Pakuan

Detail Karya Ilmiah Dosen

L Agustini, RSB Irianto, H Indrayadi, RD Tanna, Fahrizawati, SA Faulina, A Hidayat, B Thahjono, D Priatna, M Turjaman

Judul : The effects of arbuscular mycorrhizal inoculation to growth and survivability of micropropagated Eucalyptus pellita and Acacia crassicarpa in nursery
Abstrak :

Inoculation of arbuscular mycorrhizal (AM) fungi into micropropagated Eucalyptus pellita and Acacia crassicarpa, that may have poor root structures, was conducted. The study aimed to investigate the effects of Acaulospora sp., Acaulospora tuberculataEntrophospora sp., Gigaspora sp., and two different isolates of Glomus maculosum inoculations on the growth parameters of 21-days old plantlets of Eucalyptus pellita and Acacia crassicarpa. After 120 days of acclimatization in the nursery, E. pellita seems to be more responsive to mycorrhizal inoculation than A. crassicarpa. The survival rate of E. pellita was almost three times of the control. Although there was no significant difference between treatments, inoculation of Glomus maculosum RD.1.5.1 and Acaulospora sp. GB.10.A2 showed the highest impact on plant height (54-56 cm), stem diameter (4.3-4.4 mm), and root dry-weight (2.03-2.05 gr) of E. pellita; and Entrophospora sp. RB.10.3.1 on plant height, stem diameter, and root dry-weight of A. crassicarpa (41.46 cm, 2.96 mm, and 1.34 gr, respectively). This study also revealed that the benefits of AM fungi association were not always related to the level of root colonization.

Tahun : 2020 Media Publikasi : Prosiding
Kategori : Prosiding No/Vol/Tahun : 012028 / 533 / 2020
ISSN/ISBN : 17551315
PTN/S : Universitas Pakuan Program Studi : PENDIDIKAN KEPENDUDUKAN DAN LINGKUNGAN HIDUP
Bibliography :

  • Yasodha R, Sumathi R and Gurumurthi K 2004 Micropropagation for quality propagule production in plantation forestry Indian J. Biotechnol. 3 159-170

    Google Scholar

  • [2]Chandra S, Bandopadhyay R, Kumar V and Chandra R 2010 Acclimatization of tissue cultured plantlets: from laboratory to land Biotechnol. Lett. 32 1199-1205

    CrossrefGoogle Scholar

  • [3]Hazarika B N 2003 Acclimatization of tissue-cultured plants Curr. Sci. 85 1704-1712

    Google Scholar

  • [4]Pinto G, Silva S, Loureiro J, Costa A, Dias M C, Araújo C, Neves L and Santos C 2011 Acclimatization of secondary somatic embryos derived plants of Eucalyptus globulus Labill.: An ultrastructural approach Trees-Struc. Funct. 25 383-392

    CrossrefGoogle Scholar

  • [5]Aggarwal D, Kumar A, Sharma J and Reddy M S 2012 Factors affecting micropropagation and acclimatization of an elite clone of Eucalyptus tereticornis Sm. In Vitro Cell. Dev. Biol. -Plant 48 521-529

    CrossrefGoogle Scholar

  • [6]Sulichantini E D, Sutisna M, Sukartiningsih S and Rusdiansyah R 2014 Clonal propagation of two clones Eucalyptus pellita F. Muell by mini-cutting International Journal of Science and Engineering (IJSE) 6 117-121

    Google Scholar

  • [7]Smith S E and Read D J 2008 Mycorrhizal symbiosis 3 (San Diego: Academic Press)

    Google Scholar

  • [8]Corkidi L, Allen E B, Merhaut D, Allen M F, Downer J, Bohn J and Evans M 2004 Assessing the infectivity of commercial mycorrhizal inoculants in plant nursery conditions J. Environ. Hort 22 149

    Google Scholar

  • [9]Syafruddin S, Syakur S and Arabia T 2016 Propagation techniques of mycorrhizal bio-fertilizer with different types of mycorrhiza inoculant and host plant in Entisol Aceh Int. J. Agric. Res. 11 69-76

    CrossrefGoogle Scholar

  • [10]Pozo M J, López-Ráez J A, Azcón-Aguilar C and García-Garrido J M 2015 Phytohormones as integrators of environmental signals in the regulation of mycorrhizal symbioses New Phytol. 205 1431-1436

    CrossrefGoogle Scholar

  • [11]Fusconi A 2014 Regulation of root morphogenesis in arbuscular mycorrhizae: What role do fungal exudates, phosphate, sugars and hormones play in lateral root formation? Ann. Bot. 113 19-33

    CrossrefGoogle Scholar

  • [12]Ruiz-Lozano J M, Porcel R, Azcon C and Aroca R 2012 Regulation by arbuscular mycorrhizae of the integrated physiological response to salinity in plants: new challenges in physiological and molecular studies J. Exp. Bot. 63 4033-4044

    CrossrefGoogle Scholar

  • [13]M'barki N, Chehab H, Aissaoui F, Dabbaghi O, Attia F, Mahjoub Z, Laamari S, Chihaoui B, del Giudice T, Jemai A, Boujnah D and Mechri B 2018 Effects of mycorrhizal fungi inoculation and soil amendment with hydrogel on leaf anatomy, growth and physiology performance of olive plantlets under two contrasting water regimes Acta Physiol. Plant. 40 1-10

    CrossrefGoogle Scholar

  • [14]Yadav K, Singh N and Aggarwal A 2012 Arbuscular mycorrhizal technology for the growth enhancement of micropropagated Spilanthes acmella Murr Plant Protect. Sci. 48 6

    CrossrefGoogle Scholar

  • [15]Vidal M T, Azcón-Aguilar C, Barea J M and Pliego-Alfaro F 1992 Mycorrhizal inoculation enhances growth and development of micropropagated plants of avocado Hort. Sci. 27 785-787

    CrossrefGoogle Scholar

  • [16]Singh N V, Singh S K, Singh A K, Meshram D T, Suroshe S S and Mishra D C 2012 Arbuscular mycorrhizal fungi (AMF) induced hardening of micropropagated pomegranate (Punica granatum L.) plantlets Sci. Hortic. 1 122-127

    CrossrefGoogle Scholar

  • [17]Monticelli S, Puppi G and Damiano C 2000 Effects of in vivo mycorrhization on micropropagated fruit tree rootstocks Appl. Soil Ecol. 15 105-111

    CrossrefGoogle Scholar

  • [18]Turjaman M, Herdyantara B, Faulina S A, Agustini L, Irianto R S B, Hidayat A, Wahno I, Tjahyono B and Indrayadi H 2019 Mycorrhizal colonization of indigenous tropical tree species grown in peat swamp forests of Sumatera, Indonesia IOP Conference Series: Earth and Environmental Science 308 012049

    Google Scholar

  • [19]Pacioni G 1992 Wet-sieving and decanting techniques for the extraction of spores of vesicular-arbuscular fungi Methods in Microbiology 24 317-322

    CrossrefGoogle Scholar

  • [20]Brundrett M C, Bougher N, Dell B, Grove T and Malajczuk N 1994 Working with mycorrhizas in forestry and agriculture (Canberra: ACIAR, 1994)

    Google Scholar

  • [21]Giovanneti M and Mosse B 1980 An evaluation of techniques for measuring vesicular-arbuscular mycorrhizal infection in roots New Phytol. 84 489-500

    CrossrefGoogle Scholar

  • [22]de Araujo Pereira A P, Santana M C, Bonfim J A, de Lourdes Mescolotti D and Cardoso E J B N 2018 Digging deeper to study the distribution of mycorrhizal arbuscular fungi along the soil profile in pure and mixed Eucalyptus grandis and Acacia mangium plantations Appl. Soil Ecol. 128 1-11

    CrossrefGoogle Scholar

  • [23]Zhang Q, Sun Q, Koide R T, Peng Z, Zhou J, Gu X, Gao W and Yu M 2014 Arbuscular mycorrhizal fungal mediation of plant-plant interactions in a Marshland Plant Community The Scientific World Journal 2014 Article 923610

    Google Scholar

  • [24]Karti P D M H, Prihantoro I and Setiana M A 2018 Evaluation of arbuscular mycorrhizal fungi inoculum on production and nutrient content of Pennisetum purpureum Trop. Anim. Sci. J. 41 114-120

    CrossrefGoogle Scholar

  • [25]Wang H, Parent S, Gosselin A and Desjardins Y 2019 Vesicular-arbuscular mycorrhizal peat-based substrates enhance symbiosis establishment and growth of three micropropagated species J. Am. Soc. Hortic. Sci. 118 896-901

    CrossrefGoogle Scholar

  • [26]Lira M A (Jr.), Nascimento L R S and Fracetto G G M 2015 Legume-rhizobia signal exchange : promiscuity and environmental effects Front. Microbiol. 6 Article 945

    Google Scholar

  • [27]Lesueur D and Duponnois R 2005 Relations between rhizobial nodulation and root colonization of Acacia crassicarpa provenances by an arbusculat mycorrhizal fungus Glomus intraradices Schenk & Smith or an ectomycorrhizal fungus, Pisolithus tinctorius Coker & Couch Ann. For. Sci. 62 467-474

    CrossrefGoogle Scholar

  • [28]Barrett L G, Bever J D, Bissett A and Thrall P H 2015 Partner diversity and identity impacts on plant productivity in Acacia – rhizobial interactions J. Ecol. 103 130-142

    CrossrefGoogle Scholar

  • [29]Dakora F D 2003 Defining new roles for plant and rhizobial molecules in sole and mixed plant cultures involving symbiotic legumes New Phytol. 158 39-49

    CrossrefGoogle Scholar

  • [30]Dakora F D and Phillips D A 2002 Root exudates as mediator of mineral acquisition in low-nutrient environments Plant Soil 245 35-47

    CrossrefGoogle Scholar

  • [31]Xie Z P, Staehelin C, Vierheilig H, Wiemken A, Jabboun S, Broughton W J, Vogeli-Lange R and Boller T 1995 Rhizobial nodulation factors stimulate mycorrhizal colonization of nodulating and non-nodulating soybeans Plant Physiol. 108 1519-1525

    CrossrefGoogle Scholar

  • [32]Cheng Y, Ishimoto K, Kuriyama Y, Osaki M and Ezawa T 2013 Ninety-year-, but not single, application of phosphorus fertilizer has a major impact on arbuscular mycorrhizal fungal communities Plant Soil 365 397-407

    CrossrefGoogle Scholar

  • [33]Verbruggen E, van der Heijden M A, Rillig M C and Kiers E T 2013 Mycorrhizal fungal establishment in agricultural soils: Factors determining inoculation success New Phytol. 197 1104-1109

    CrossrefGoogle Scholar

  • [34]Clapp J P, Young J P W, Merryweather J W and Fitter A H 1995 Diversity of fungal symbionts in arbuscular mycorrhizas from a natural community New Phytol. 130 259-265

    CrossrefGoogle Scholar

  • [35]Hempel S, Renker C and Buscot F 2007 Differences in the species composition of arbuscular mycorrhizal fungi in spore, root and soil communities in a grassland ecosystem Environ. Microbiol. 9 1930-1938

    CrossrefGoogle Scholar

  • [36]Graham L L B, Turjaman M and Page S E 2013 Shorea balangeran and Dyera polyphylla (syn.Dyera lowii) as tropical peat swamp forest restoration transplant species: Effect of mycorrhizae and level of disturbance Wetl. Ecol. Manag. 21 307-321

    CrossrefGoogle Scholar

  • [37]Weremijewicz J, Lobo S, Sternberg O R and Janos D P 2016 Common mycorrhizal networks amplify competition by preferential mineral nutrient allocation to large host plants New Phytol. 212 461-471

    CrossrefGoogle Scholar

  • [38]Smith S E and Smith F A 2012 Fresh perspectives on the roles of arbuscular mycorrhizal fungi in plant nutrition and growth Mycologia 104 1-13

    CrossrefGoogle Scholar

  • [39]Smith S E and Smith F A 2011 Roles of arbuscular mycorrhizas in plant nutrition and growth: New paradigms from cellular to ecosystem scales Annu. Rev. Plant Biol. 62 227-250

    CrossrefGoogle Scholar

  • [40]Smith F A, Grace E J and Smith S E 2009 More than a carbon economy: Nutrient trade and ecological sustainability in facultative arbuscular mycorrhizal symbioses New Phytol. 182 347-358

    CrossrefGoogle Scholar

URL : https://iopscience.iop.org/article/10.1088/1755-1315/533/1/012028

 

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