Adetunji CO, Adejumo IO (2019) Potency of agricultural wastes in mushroom (Pleurotus sajorcaju) biotechnology for feeding broiler chicks (Arbor acre). Int J Recycl Org Waste Agricult
8:37–45. https://doi.org/10.1007/s40093-018-0226-6
Adetunji CO, Oloke JK, Prasad G, Akpor OB (2017) Environmental influence of cultural medium
on bioherbicidal activities of Pseudomonas aeruginosa C1501 on mono and dico weeds. Pol J
Nat Sci 32(4):659–670
Adetunji CO, Adejumo IO, Afolabi IS, Adetunji JB, Ajisejiri ES (2018) Prolonging the shelf-life of
‘Agege Sweet’ orange with chitosan-rhamnolipid coating. Hortic Environ Biotechnol 59
(5):687–697. https://doi.org/10.1007/s13580-018-0083-2
Adetunji CO, Oloke JK, Bello OM, Pradeep M, Jolly RS (2019a) Isolation, structural elucidation
and bioherbicidal activity of an eco-friendly bioactive 2-(hydroxymethyl) phenol, from Pseudomonas aeruginosa (C1501) and its ecotoxicological evaluation on soil. Environ Technol
Innov 13(2019):304–317. https://doi.org/10.1016/j.eti.2018.12.006
Adetunji CO, Afolabi IS, Adetunji JB (2019b) Effect of Rhamnolipid-Aloe vera gel edible coating
on post-harvest control of rot and quality parameters of ‘Agege sweet’ Orange. Agric Nat
Resour 53(2019):364–372
Adetunji CO, Oloke JK, Phazang P, Sarin NB (2020) Influence of eco-friendly phytotoxic metabolites from Lasiodiplodia pseudotheobromae C1136 on physiological, biochemical, and ultrastructural changes on tested weeds. Environ Sci Pollut Res 27:9919–9934. https://doi.org/10.
1007/s11356-020-07677-9
Akhtar N, Iqbal J, Iqbal M (2003) Microalgal-luffa sponge immobilized disc: a new efficient
biosorbent for the removal of Ni(II) from aqueous solution. Lett Appl Microbiol 37:149–153.
https://doi.org/10.1046/j.1472-765X.2003.01366.x
Alisi C, Musella R, Tasso F, Ubaldi C, Manzo S, Cremisini C et al (2009) Bioremediation of diesel
oil in a co-contaminated soil by bioaugmentation with a microbial formula tailored with native
strains selected for heavy metals resistance. Sci Total Environ 407:3024–3032. https://doi.org/
10.1016/j.scitotenv.2009.01.011
Angelucci DM, Tomei MC (2016) Ex-situ bioremediation of chlorophenol contaminatedsoil:
comparison of slurry and solid-phase bioreactors with the two-step polymerextraction–
bioregeneration process. J Chem Technol Biotechnol 91:1577–1584. https://doi.org/10.1002/
jctb.4882
Anjali S (2018) Bioaugmentation of chlorinated solvents in groundwater using Dehalococcoides.
Int J Adv Res Ideas Innov Biotechnol 4(1):238
Arunakumara KKIU, Walpola BC, Yoon MH (2015) Bioaugmentation-assisted phytoextraction of
Co, Pb and Zn: an assessment with a phosphate-solubilizing bacterium isolated from metalcontaminated mines of Boryeong area in South Korea. Biotechnol Agron Soc Environ 19
(2):143–152
Baćmaga M, Wyszkowska J, Kucharski J (2017) Bioaugmentation of soil contaminated with
Azoxystrobin. Water Air Soil Pollut 228(1):19. https://doi.org/10.1007/s11270-016-3200-9
Baek KW, Yoon BD, Kim BH, Cho DH, Lee IS, Oh HM, Kim HS (2007) Monitoring of microbial
diversity and activity during bioremediation of crude oil-contaminated soil with different
treatments. J Microbiol Biotechnol 17(1):67–73
Baneshi MM, Kalantary RR, Jafari AJ, Nasseri S, Jaafarzadeh N, Esrafili A (2014) Effect of
bioaugmentation to enhance phytoremediation for removal of phenanthrene and pyrene from
soil with Sorghum and Onobrychissativa. J Environ Health Sci Eng 12:24. https://doi.org/10.
1186/2052-336X-12-24
Bayat Z, Hassanshahian M, Cappello S (2015) Immobilization ofmicrobes for bioremediationof
crude oil polluted environments: a mini review. Open Microbiol J 9:48–54. http://www.ncbi.
nlm.nih.gov/pmc/articles/PMC4676050/pdf/TOMICROJ-9-48.pdf
Belanger M (2010) The Gulf of Mexico oil spill response: a blueprint of disaster for Canadian
wildlife. J Mar Anim Ecol 3:3–4. http://www.oers.ca/journal/Volume3/Invited_Commentary_
Final.pdf
392
C. O. Adetunji and O. A. Anani
Précédent

- 401/407

Suivant