Ahemad, M., & Khan, M. S. (2012). Productivity of greengram in tebuconazole-stressed soil, by using a tolerant and plant growth-promoting Bradyrhizobium sp. MRM6 strain. Acta Physiologiae Plantarum, 34(1), 245–254. https://doi.org/10.1007/s11738-011-0823-8
Ahemad, M., & Kibret, M. (2014). Mechanisms and applications of plant growth promoting rhizobacteria: Current perspective. Journal of King Saud University - Science, 26(1), 1–20. https://doi.org/10.1016/j.jksus.2013.05.001
Anand, R., & Chanway, C. (2013). N2-fixation and growth promotion in cedar colonized by an endophytic strain of Paenibacillus polymyxa. Biology and Fertility of Soils, 49(2), 235–239. https://doi.org/10.1007/s00374-012-0735-9
Anand, R., Grayston, S., & Chanway, C. (2013). N2-Fixation and Seedling Growth Promotion of Lodgepole Pine by Endophytic Paenibacillus polymyxa. Microbial Ecology, 66(2), 369–374. https://doi.org/10.1007/s00248-013-0196-1
Atanasković, I., JoviÄić Petrović, J., BioÄanin, M., KarliÄić, V., RaiÄević, V., & Lalević, B. (2015). Hem Ind.
Barriuso, J., Ramos Solano, B., Santamaría, C., Daza, A., & Gutiérrez Mañero, F. J. (2008). Effect of inoculation with putative plant growth-promoting rhizobacteria isolated fromPinusspp. onPinus pineagrowth, mycorrhization and rhizosphere microbial communities. Journal of Applied Microbiology, 105(5), 1298–1309. https://doi.org/10.1111/j.1365-2672.2008.03862.x
Baslam, M., Esteban, R., García-Plazaola, J. I., & Goicoechea, N. (2013). Effectiveness of arbuscular mycorrhizal fungi (AMF) for inducing the accumulation of major carotenoids, chlorophylls and tocopherol in green and red leaf lettuces. Applied Microbiology and Biotechnology, 97(7), 3119–3128. https://doi.org/10.1007/s00253-012-4526-x
Baum, C., Hrynkiewicz, K., Leinweber, P., & Meißner, R. (2006). Heavy‐metal mobilization and uptake by mycorrhizal and nonmycorrhizal willows (Salix × dasyclados). Journal of Plant Nutrition and Soil Science, 169(4), 516–522. https://doi.org/10.1002/jpln.200521925
Caravaca, F., Barea, J. M., Palenzuela, J., Figueroa, D., Alguacil, M. M., & Roldán, A. (2003). Establishment of shrub species in a degraded semiarid site after inoculation with native or allochthonous arbuscular mycorrhizal fungi. Applied Soil Ecology, 22(2), 103–111. https://doi.org/10.1016/S0929-1393(02)00136-1
Castellano, M., & Molina, R. (1989). Mycorrhizae. 101–167.
Chanway, C. P. (1997). Inoculation of Tree Roots with Plant Growth Promoting Soil Bacteria: An Emerging Technology for Reforestation. Forest Science, 43(1), 99–112. https://doi.org/10.1093/forestscience/43.1.99
Chanway, C. P., & Holl, F. B. (1991). Biomass increase and associative nitrogen fixation of mycorrhizal Pinus contorta seedlings inoculated with a plant growth promoting Bacillus strain. Canadian Journal of Botany, 69(3), 507–511. https://doi.org/10.1139/b91-069
Chanway, C. P., Shishido, M., Nairn, J., Jungwirth, S., Markham, J., Xiao, G., & Holl, F. B. (2000). Endophytic colonization and field responses of hybrid spruce seedlings after inoculation with plant growth-promoting rhizobacteria. Forest Ecology and Management, 133(1–2), 81–88. https://doi.org/10.1016/S0378-1127(99)00300-X
Chodak, M., Pietrzykowski, M., & Niklińska, M. (2009). Development of microbial properties in a chronosequence of sandy mine soils. Applied Soil Ecology, 41(3), 259–268. https://doi.org/10.1016/j.apsoil.2008.11.009
COLPAERT, J. V., VAN TICHELEN, K. K., VAN ASSCHE, J. A., & VAN LAERE, A. (1999). Short‐term phosphorus uptake rates in mycorrhizal and non‐mycorrhizal roots of intact Pinus sylvestris seedlings. New Phytologist, 143(3), 589–597. https://doi.org/10.1046/j.1469-8137.1999.00471.x
Danilović, M., Stojnić, D., Vasiljević, V., & GaÄić, D. (2013). Nova Meh Å¡umar, 34, 11–19.
Davis, A. S., & Jacobs, D. F. (2005). Quantifying root system quality of nursery seedlings and relationship to outplanting performance. New Forests, 30(2–3), 295–311. https://doi.org/10.1007/s11056-005-7480-y
Dominguez-Nuñez, J., Delgado-Alvez, D., Berrocal-Lobo, M., Anriquez, A., & Albanesi, A. (n.d.). Controlled-release fertilizers combined with Pseudomonas fluorescens rhizobacteria inoculum improve growth in Pinus halepensis seedlings. IForest - Biogeosciences and Forestry, 8(1), 12–18. https://doi.org/10.3832/ifor1110-007
Dominguez-Nuñez, J., Medina, M., Berrocal-Lobo, M., Anriquez, A., & Albanesi, A. (n.d.). The combined effects of Pseudomonas fluorescens CECT 844 and the black truffle co-inoculation on Pinus nigra seedlings. IForest - Biogeosciences and Forestry, 8(5), 624–630. https://doi.org/10.3832/ifor1334-007
Egamberdiyeva, D. (2007). The effect of plant growth promoting bacteria on growth and nutrient uptake of maize in two different soils. Applied Soil Ecology, 36(2–3), 184–189. https://doi.org/10.1016/j.apsoil.2007.02.005
Fatemeh, A., Masoud, T., Pejman, A., & Aidin, H. (2014). Effect of plant growth promoting rhizobacteria (PGPRs) and stratification on germination traits of Crataegus pseudoheterophylla Pojark. seeds. Scientia Horticulturae, 172, 61–67. https://doi.org/10.1016/j.scienta.2014.03.049
Figueiredo, M. do V. B., Seldin, L., de Araujo, F. F., & Mariano, R. de L. R. (2010). Plant Growth Promoting Rhizobacteria: Fundamentals and Applications. In Microbiology Monographs (pp. 21–43). https://doi.org/10.1007/978-3-642-13612-2_2
Forests in future-sustainable use, risks and challenges. (2012). 461–467.
Frey‐Klett, P., Garbaye, J., & Tarkka, M. (2007). The mycorrhiza helper bacteria revisited. New Phytologist, 176(1), 22–36. https://doi.org/10.1111/j.1469-8137.2007.02191.x
Gamalero, E., Berta, G., Massa, N., Glick, B. R., & Lingua, G. (2010). Interactions between Pseudomonas putida UW4 and Gigaspora rosea BEG9 and their consequences for the growth of cucumber under salt-stress conditions. Journal of Applied Microbiology, 108(1), 236–245. https://doi.org/10.1111/j.1365-2672.2009.04414.x
Golubović Ćurguz, V., RaiÄević, V., Tabaković ToÅ¡ić, M., Veselinović, M., & Jovanović, L. (2010). Same physiological characteristics of the three ectomycorrhizal fungi from Suillus genus. Minerva Biotecnol, 22, 1–7.
Golubović Ćurguz, V., RaiÄević, V., Veselinović, M., Tabakovic-ToÅ¡ić, M., & Vilotić, D. (2012). Pol J Environ Stud, 21, 353–359.
Golubović-Čurguz, V., Tabaković Tošić, M., Veselinović, M., Raičević, V., Dražić, D., Jovanović, L., & Kiković, D. (2010). The influence of heavy metals on the growth of ectomycorrhizal fungi. Minerva Biotechnol, 22, 17–22.
Graf, F., & Frei, M. (2013). Soil aggregate stability related to soil density, root length, and mycorrhiza using site-specific Alnus incana and Melanogaster variegatus s.l. Ecological Engineering, 57, 314–323. https://doi.org/10.1016/j.ecoleng.2013.04.037
Grobelak, A., Napora, A., & Kacprzak, M. (2015). Using plant growth-promoting rhizobacteria (PGPR) to improve plant growth. Ecological Engineering, 84, 22–28. https://doi.org/10.1016/j.ecoleng.2015.07.019
Gujaničić, V., Golubović-Ćurguž, V., Raičević, V., Lalević, B., Spasojević, I., & Kiković, D. (2012). Effects of biofertilization on spruce (Picea abies L.Karst) and pine seedlings (Pinus sylvestris L.) growth in deposol. Rakonjac Lj.
Hajnal-Jafari, T., Jarak, M., Djuric, S., Stamenov, D., & Orlovic, S. (2014). The effect of microbial inocula on the growth of black locust, Siberian elm and silver maple seedlings. Zbornik Matice Srpske Za Prirodne Nauke, 127, 15–22. https://doi.org/10.2298/ZMSPN1427015H
Hao, X., Xie, P., Johnstone, L., Miller, S. J., Rensing, C., & Wei, G. (2012). Genome Sequence and Mutational Analysis of Plant-Growth-Promoting Bacterium Agrobacterium tumefaciens CCNWGS0286 Isolated from a Zinc-Lead Mine Tailing. Applied and Environmental Microbiology, 78(15), 5384–5394. https://doi.org/10.1128/AEM.01200-12
Hayat, R., Ali, S., Amara, U., Khalid, R., & Ahmed, I. (2010). Soil beneficial bacteria and their role in plant growth promotion: a review. Annals of Microbiology, 60(4), 579–598. https://doi.org/10.1007/s13213-010-0117-1
Huang, Y., Chen, Y., & Tao, S. (2000). Effect of rhizospheric environment of VA-mycorrhizal plants on forms of Cu, Zn, Pb and Cd in polluted soil. Ying Yong Sheng Tai Xue Bao, 431–434.
Inglis, G. D., & Kawchuk, L. M. (2002). Comparative degradation of oomycete, ascomycete, and basidiomycete cell walls by mycoparasitic and biocontrol fungi. Canadian Journal of Microbiology, 48(1), 60–70. https://doi.org/10.1139/w01-130
Isajev, V., Ivetić, V., & Vukin, M. (2006). Namenska proizvodnja sadnog materijala za pošumljavanja u zaštitnim šumama kitnjaka, sladuna i cera. Šumarstvo, 3, 141–148.
Izumi, H., Anderson, I. C., Alexander, I. J., Killham, K., & Moore, E. R. B. (2006). Endobacteria in some ectomycorrhiza of Scots pine (Pinus sylvestris). FEMS Microbiology Ecology, 56(1), 34–43. https://doi.org/10.1111/j.1574-6941.2005.00048.x
Jacob, C., Courbot, M., Brun, A., Steinman, H. M., Jacquot, J., Botton, B., & Chalot, M. (2001). Molecular cloning, characterization and regulation by cadmium of a superoxide dismutase from the ectomycorrhizal fungus Paxillus involutus. European Journal of Biochemistry, 268(11), 3223–3232. https://doi.org/10.1046/j.1432-1327.2001.02216.x
Jakovljevic, M., Lilic, N., Kolonja, B., Knezevic, D., Petric, M., Tadic, V., & Nedic, M. (2015). Biomass production as renewable energy resource at reclaimed Serbian lignite open-cast mines. Thermal Science, 19(3), 823–835. https://doi.org/10.2298/TSCI140626014J
Ji, X., Lu, G., Gai, Y., Gao, H., Lu, B., Kong, L., & Mu, Z. (2010). Colonization of Morus alba L. by the plant-growth-promoting and antagonistic bacterium Burkholderia cepacia strain Lu10-1. BMC Microbiology, 10(1), 243. https://doi.org/10.1186/1471-2180-10-243
Jing, Y., He, Z., & Yang, X. (2007). Role of soil rhizobacteria in phytoremediation of heavy metal contaminated soils. Journal of Zhejiang University SCIENCE B, 8(3), 192–207. https://doi.org/10.1631/jzus.2007.B0192
Jovicic-Petrovic, J., Danilovic, G., Curcic, N., Milinkovic, M., Stosic, N., Pankovic, D., & Raicevic, V. (2014). Copper tolerance of Trichoderma species. Archives of Biological Sciences, 66(1), 137–142. https://doi.org/10.2298/ABS1401137J
Karlidag, H., Esitken, A., Turan, M., & Sahin, F. (2007). Effects of root inoculation of plant growth promoting rhizobacteria (PGPR) on yield, growth and nutrient element contents of leaves of apple. Scientia Horticulturae, 114(1), 16–20. https://doi.org/10.1016/j.scienta.2007.04.013
Kavamura, V. N., & Esposito, E. (2010). Biotechnological strategies applied to the decontamination of soils polluted with heavy metals. Biotechnology Advances, 28(1), 61–69. https://doi.org/10.1016/j.biotechadv.2009.09.002
Kieliszewska Rokicka, B., Kurczynska, E., & Leski, T. (2000). Physiological activity of ectomycorrhiyas in a moderately polluted forest (Ratanica catchment, southern Poland). Dendrobiology, 45, 47–59.
Kirk, J. L., Beaudette, L. A., Hart, M., Moutoglis, P., Klironomos, J. N., Lee, H., & Trevors, J. T. (2004). Methods of studying soil microbial diversity. Journal of Microbiological Methods, 58(2), 169–188. https://doi.org/10.1016/j.mimet.2004.04.006
Kurth, F., Zeitler, K., Feldhahn, L., Neu, T. R., Weber, T., Krištůfek, V., Wubet, T., Herrmann, S., Buscot, F., & Tarkka, M. T. (2013). Detection and quantification of a mycorrhization helper bacterium and a mycorrhizal fungus in plant-soil microcosms at different levels of complexity. BMC Microbiology, 13(1), 205. https://doi.org/10.1186/1471-2180-13-205
Lingua, G., Bona, E., Manassero, P., Marsano, F., Todeschini, V., Cantamessa, S., Copetta, A., D’Agostino, G., Gamalero, E., & Berta, G. (n.d.). Arbuscular Mycorrhizal Fungi and Plant Growth-Promoting Pseudomonads Increases Anthocyanin Concentration in Strawberry Fruits (Fragaria x ananassa var. Selva) in Conditions of Reduced Fertilization. International Journal of Molecular Sciences, 14(8), 16207–16225. https://doi.org/10.3390/ijms140816207
Lucy, M., Reed, E., & Glick, B. R. (2004). Applications of free living plant growth-promoting rhizobacteria. Antonie van Leeuwenhoek, 86(1), 1–25. https://doi.org/10.1023/B:ANTO.0000024903.10757.6e
Lugtenberg, B. J. J., & Dekkers, L. C. (1999). What makes Pseudomonas bacteria rhizosphere competent? Environmental Microbiology, 1(1), 9–13. https://doi.org/10.1046/j.1462-2920.1999.00005.x
Lux, H. B., & Cumming, J. R. (2001). Mycorrhizae confer aluminum resistance to tulip-poplar seedlings. Canadian Journal of Forest Research, 31(4), 694–702. https://doi.org/10.1139/x01-004
Mafia, R. G., Alfenas, A. C., Ferreira, E. M., Binoti, D. H. B., Mafia, G. M. V., & Mounteer, A. H. (2009). Root colonization and interaction among growth promoting rhizobacteria isolates and eucalypts species. Revista Árvore, 33(1), 1–9. https://doi.org/10.1590/S0100-67622009000100001
Maiti, S. K. (2007). Bioreclamation of coalmine overburden dumps—with special empasis on micronutrients and heavy metals accumulation in tree species. Environmental Monitoring and Assessment, 125(1–3), 111–122. https://doi.org/10.1007/s10661-006-9244-3
Marx, D. H., Marrs, L. F., & Cordell, C. E. (2002). Dendrobiology, 47, 27–40.
Marx, D. H., Ruehle, J. L., & Cordell, C. E. (1991). 17 Methods for Studying Nursery and Field Response of Trees to Specific Ectomycorrhiza. In Methods in Microbiology (pp. 383–411). https://doi.org/10.1016/S0580-9517(08)70187-9
Mehta, P., Walia, A., Kulshrestha, S., Chauhan, A., & Shirkot, C. K. (2015). Efficiency of plant growth‐promoting P‐solubilizing Bacillus circulans CB7 for enhancement of tomato growth under net house conditions. Journal of Basic Microbiology, 55(1), 33–44. https://doi.org/10.1002/jobm.201300562
Miljković J, & Džunić G. (2013). Land Use in Large Mining Basins in Post-Exploitation Period: The Example of Serbia. 292–299.
Mirić, M., & Popović, Z. (2003). An improved method laboratorial investigation of interaction and or antagonism of fungi at the same nutritive substrate (pp. 181–185). Faculty of Forestry, Sofia.
Münzenberger, B., Golldack, J., Ullrich, A., Schmincke, B., & Hüttl, R. F. (2004). Abundance, diversity, and vitality of mycorrhizae of Scots pine (Pinus sylvestris L.) in lignite recultivation sites. Mycorrhiza, 14(3), 193–202. https://doi.org/10.1007/s00572-003-0257-2
Nadeem, S. M., Ahmad, M., Zahir, Z. A., Javaid, A., & Ashraf, M. (2014). The role of mycorrhizae and plant growth promoting rhizobacteria (PGPR) in improving crop productivity under stressful environments. Biotechnology Advances, 32(2), 429–448. https://doi.org/10.1016/j.biotechadv.2013.12.005
Ortas, I. (2003). Effect of Selected Mycorrhizal Inoculation on Phosphorus Sustainability in Sterile and Non‐sterile Soils in the Harran Plain in South Anatolia. Journal of Plant Nutrition, 26(1), 1–17. https://doi.org/10.1081/PLN-120016494
Parladé, J., Pera, J., & Luque, J. (2004). Evaluation of mycelial inocula of edible Lactarius species for the production of Pinus pinaster and P. sylvestris mycorrhizal seedlings under greenhouse conditions. Mycorrhiza, 14(3), 171–175. https://doi.org/10.1007/s00572-003-0252-7
Pereira, S. I. A., & Castro, P. M. L. (2014). Phosphate-solubilizing rhizobacteria enhance Zea mays growth in agricultural P-deficient soils. Ecological Engineering, 73, 526–535. https://doi.org/10.1016/j.ecoleng.2014.09.060
Perry, D. A., Amaranthus, M. P., Borchers, J. G., Borchers, S. L., & Brainerd, R. E. (1989). Bootstrapping in Ecosystems. BioScience, 39(4), 230–237. https://doi.org/10.2307/1311159
Petricevic, J., Gujanicic, V., Radic, D., Lalevic, B., Bozic, M., Rudic, Z., & Raicevic, V. (2012). The possibility of using macrophytes in lake Palic sediment remediation. Archives of Biological Sciences, 64(4), 1481–1486. https://doi.org/10.2298/ABS1204481P
Plamboeck, A. H., Dawson, T. E., Egerton-Warburton, L. M., North, M., Bruns, T. D., & Querejeta, J. I. (2007). Water transfer via ectomycorrhizal fungal hyphae to conifer seedlings. Mycorrhiza, 17(5), 439–447. https://doi.org/10.1007/s00572-007-0119-4
Probanza, A., Lucas Garcı́a, J. A., Ruiz Palomino, M., Ramos, B., & Gutiérrez Mañero, F. J. (2002). Pinus pinea L. seedling growth and bacterial rhizosphere structure after inoculation with PGPR Bacillus (B. licheniformis CECT 5106 and B. pumilus CECT 5105). Applied Soil Ecology, 20(2), 75–84. https://doi.org/10.1016/S0929-1393(02)00007-0
Probanza, A., Mateos, J. L., Lucas Garcia, J. A., Ramos, B., de Felipe, M. R., & Gutierrez Manero, F. J. (2001). Effects of inoculation with PGPR Bacillus and Pisolithus tinctorius on Pinus pinea L. growth, bacterial rhizosphere colonization, and mycorrhizal infection. Microbial Ecology, 41(2), 140–148. https://doi.org/10.1007/s002480000081
Puhe, J. (2003). Growth and development of the root system of Norway spruce (Picea abies) in forest stands—a review. Forest Ecology and Management, 175(1–3), 253–273. https://doi.org/10.1016/S0378-1127(02)00134-2
Qurashi, A. W., & Sabri, A. N. (n.d.). Bacterial exopolysaccharide and biofilm formation stimulate chickpea growth and soil aggregation under salt stress. Brazilian Journal of Microbiology, 43(3), 1183–1191. https://doi.org/10.1590/S1517-83822012000300046
R, R., SJ, C., & TD, L. (n.d.). Target seedling concept: Vol. RM-200 (pp. 1–8).
Radić, D., GujaniÄić, V., PetriÄević, J., RaiÄević, V., Lalević, B., Rudić, Å., & Božić, M. (2013). Fresenius Environmental Bulletin, 22, 1787–1791.
Raičević, V., Antić Mladenović, S., Lalević, B., Golić, Z., Jovanović, L., & Kiković, D. (2006). Mikrobiološka aktivnost nerekultivisanih površina površinskih kopova Kolubara. Energija, 1–2, 94–96.
Raićević, V., Lalević, B., Kljujev, I., & Petrović, J. (2010). Ekološka mikrobiologija.
Rakić, A., Filipović, V., Rakić, I., Racić, Z., Vasiljević, V., & Obradović, D. (2011). Rekultivacija odlagališta pepela i šljake PD RB Kolubara i TE Veliki Crljeni - Izvođenje radova na terenu.
Rigamonte, T. A., Pylro, V. S., & Duarte, G. F. (n.d.). The role of mycorrhization helper bacteria in the establishment and action of ectomycorrhizae associations. Brazilian Journal of Microbiology, 41(4), 832–840. https://doi.org/10.1590/S1517-83822010000400002
Rincon, A., Valladares, F., Gimeno, T. E., & Pueyo, J. J. (2008). Water stress responses of two Mediterranean tree species influenced by native soil microorganisms and inoculation with a plant growth promoting rhizobacterium. Tree Physiology, 28(11), 1693–1701. https://doi.org/10.1093/treephys/28.11.1693
Rodríguez, H., Fraga, R., Gonzalez, T., & Bashan, Y. (2006). Genetics of phosphate solubilization and its potential applications for improving plant growth-promoting bacteria. Plant and Soil, 287(1–2), 15–21. https://doi.org/10.1007/s11104-006-9056-9
Shilev, S., López, A. F., Prieto, M. S., & Puebla, E. D. S. (2007). INDUCED PROTEIN PROFILE CHANGES IN ARSENATE TOLERANT AND SENSITIVE PSEUDOMONAS FLUORESCENS STRAINS. JOURNAL OF ENVIRONMENTAL ENGINEERING AND LANDSCAPE MANAGEMENT, 15(4), 221–226. https://doi.org/10.3846/16486897.2007.9636934
Smith, S., & Read, D. (2008). Mycorrhizal Symbiosis.
Sousa, N. R., Franco, A. R., Ramos, M. A., Oliveira, R. S., & Castro, P. M. L. (2015). The response of Betula pubescens to inoculation with an ectomycorrhizal fungus and a plant growth promoting bacterium is substrate-dependent. Ecological Engineering, 81, 439–443. https://doi.org/10.1016/j.ecoleng.2015.04.024
Spaepen, S., Vanderleyden, J., & Okon, Y. (2009). Chapter 7 Plant Growth-Promoting Actions of Rhizobacteria. In Advances in Botanical Research (pp. 283–320). https://doi.org/10.1016/S0065-2296(09)51007-5
Tilak, K., Ranganayaki, N., Pal, K., De, R., Saxena, A., Mittal, S., Tripathi, A., & Johri, B. (2005). Diversity of plant growth and soil health supporting bacteria. Curr Sci, 89, 136–150.
Tischew, S., Kirmer, A., & Lorenz, A. (2008). Alternative restoration strategies in former lignite mining areas of eastern Germany. 1–10.
Tótola, M. R., & Borges, A. C. (n.d.). Growth and nutritional status of Brazilian wood species Cedrella fissilis and Anadenanthera peregrina in bauxite spoil in response to arbuscular mycorrhizal inoculation and substrate amendment. Brazilian Journal of Microbiology, 31(4). https://doi.org/10.1590/S1517-83822000000400004
Veselinović, M., & Golubović-ćurguz, V. (2001). Recultivation by afforestation of deposols. ZemljiÅ¡te i Biljka, 50, 201–210.
Vessey, J. K. (2003). Plant growth promoting rhizobacteria as biofertilizers. Plant and Soil, 255(2), 571–586. https://doi.org/10.1023/A:1026037216893
Vieira, F. C. S., & Nahas, E. (2005). Comparison of microbial numbers in soils by using various culture media and temperatures. Microbiological Research, 160(2), 197–202. https://doi.org/10.1016/j.micres.2005.01.004
VrbniÄanin, S., Jovanović, L., Božić, D., RaiÄević, V., & Pavlović, D. (2008). Journal of Plant Deseases and Protection, XXI, 297–302.
Whipps, J. M. (2001). Microbial interactions and biocontrol in the rhizosphere. Journal of Experimental Botany, 52(suppl 1), 487–511. https://doi.org/10.1093/jexbot/52.suppl_1.487
Zuberer, D., & Wollum, A. (n.d.). Introduction and Historical Perspective. 3–25.
(n.d.). Disturbance ecology and symbiosis in mine-reclamation design. 13–25.
(1997). Effects of Air Pollution and Forest Regeneration Methods on the Community Structure of Ectomycorrhizal Fungi.
(1999). Microbial activities in soils under Scots pine, Norway spruce and silver birch.
(2000). Effect of aluminium on Pinus sylvestris seedlings mycorrhizal with aluminium-tolerant and aluminium-sensitive strains of Suillus luteus. Dendrobiology, 45, 89–96.
(2002). Multifunkcionalna valorizacija predela i ekosistema stvorenih rekultivacijom odlagališta površinskih kopova Kolubarskog basena.
(2005). Role of Mycorrhizae in Forestry. 241–270.
(2010b). Planting material production for biological recultivation of deposols.
(2010c). Specific-purpose production and the development of technological process of tree and shrub planting stock production.
(2010d). Am Eurasian J Agric Environ Sci, 8, 124–130.
(2011a). The target plant concept.
(2012). Biodegradation of MTBE by Bacteria Isolated from oil Hydrocarbons-Contaminated Environments. Int J Environ Res, 6, 81–86.
(2014). Development of Ecosystem Structure and Function on Reforested Surface-Mined Lands.
(2015a). Inoculation of Robinia pseudoacacia L. and Pinus sylvestris L. seedlings with plant growth promoting bacteria causes increased growth in coal mine overburden. Ivetić V, Stanković D.