References
Abu Hamed, T., Flamm, H., & Azraq, M. (2012). Renewable energy in
the palestinian territories: Opportunities and challenges. Renewable
and Sustainable Energy Reviews, 16(1), 1082–1088. https://doi.org/
10.1016/j.rser.2011.10.011.
Adetunji, C.O., Oloke, J.K. (2013). Efficacy of freshly prepared pesta
granular formulations from the multi-combination of wild and
mutant strain of Lasiodiplodia pseudotheobromae and Pseudomonas
aeruginosa. Agricultural University of Tirana, 12, 555–563.
Adetunji, C., Oloke, J., Kumar, A., Swaranjit, S., Akpor, B. (2017a).
Synergetic effect of rhamnolipid from Pseudomonas aeruginosa
C1501 and phytotoxic metabolite from Lasiodiplodia pseudotheobromae C1136 on Amaranthus hybridus L. and Echinochloa
crus-galli weeds. Environmental Science and Pollution Research,
24, 13700–13709. https://doi.org/10.1007/s11356-017-8983-8.
Adetunji, C.O., Oloke, J.K., Prasad, G., Bellom, O.M., Osemwegie, O.
O., Mishra, P., Jolly, R.S. (2017b). Isolation, identification,
characterization and screening of rhizospheric bacteria for herbicidal activity. 8, 195–205.
Adetunji, C.O., Oloke, J.K., Osemwegie, O.O. (2018a). Environmental
fate and effects of granular pesta formulation from strains of
Pseudomonas aeruginosa C1501 and Lasiodiplodia pseudotheobromae C1136 on soil activity and weeds. Chemosphere, 195(2018),
98–107. https://doi.org/10.1016/j.chemosphere.2017.12.056.
Adetunji, C.O., Oloke, J.K., Gandham, P. (2018b). Effect of
Carbon-to-Nitrogen ratio on eco-friendly mycoherbicide activity
from Lasiodiplodia pseudotheobromae C1136 for sustainable weeds
management in organic Agriculture. Environment, Development
and Sustainability. Published by springer. Index in Scopus and
Thomson Reuther’s. 1–14. https://doi.org/10.1007/s10668-0180273-1.
Adetunji, C.O., Adejumo, I.S. (2019). Potency of agricultural wastes in
Pleurotus sajor-caju biotechnology for feeding broiler chicks.
International Journal of Recycling of Organic Waste in Agriculture,
1–9 Published by Springer. Index in Scopus. https://doi.org/10.
1007/s40093-018-0226-6.
Adetunji, C.O., Oloke, J.K., Bello, O.M., Pradeep, M., Jolly, R.S.
(2019). Isolation, structural elucidation and bioherbicidal activity of
an eco-friendly bioactive 2-(hydroxymethyl) phenol, from Pseudomonas aeruginosa (C1501) and its ecotoxicological evaluation on
soil. Environmental Technology & Innovation,13(2019), 304–317.
Published by Elsevier Limited. Index in Scopus. https://doi.org/10.
1016/j.eti.2018.12.006.
Adetunji, C.O., Oloke, J.K., Phazang, P., Sarin, N.B. (2020). Influence
of eco-friendly phytotoxic metabolites from Lasiodiplodia pseudotheobromae C1136 on physiological, biochemical, and ultrastructural changes on tested weeds. Environmental Science and
Pollution Research. https://doi.org/10.1007/s11356-020-07677-9.
Alam, M. S., Khan, M. J., Akber, M. A., & Kamruzzaman, M. (2008).
Broiler litter and layer manure in the diet of growing bull calves.
Bangladesh Vet., 25, 62–67. https://doi.org/10.3329/bvet.v25i2.
4619.
Amon, B., Kryvoruchko, V., Amon, T., & Zechmeister-Boltenstern, S.
(2006). Methane, nitrous oxide and ammonia emissions during
storage and after application of dairy cattle slurry and influence of
slurry treatment. Agriculture, Ecosystems & Environment, 112,
153–162. https://doi.org/10.1016/j.agee.2005.08.030.
AOAC. (2011). Official Methods of Analysis. 18th Edn., Association of
Official Agricultural Chemists, Gaithersburg, MD, USA., ISBN:
978-0935584783.
Arvat, V. R., Lipsey, J., & Vandepopuliere, J. M. (1978). Ensiled cage
layer waste as a feed stuff for ruminants. 70th Ann. Mtg. Michigan
State Uni. East Lansing, July 9–13.
Axtell, R. C. (1999). Poultry integrated pest management: Status and
future. Integrated Pest Management Reviews, 4, 53–73. https://doi.
org/10.1023/A:1009637116897.
Balint, B., Bagi, Z., Toth, A., Rakhely, G., Perei, K., et al. (2005).
Utilization of keratin containing biowaste to produce biohydrogen.
Applied Microbiology and Biotechnology, 69, 404–410.
Barik, S., Forgacs, T., & Isbister, J. (1991). Bioconversion of chicken
wastes to value-added products. Bioresource Technology, 36, 229–
234.
Bernhart, M., & Fasina, O. O. (2009). Moisture effect on the storage,
handling and flow properties of poultry litter. Waste Manage., 29,
1392–1398. PMID: 18990556.
Berry, E. D., & Miller, D. N. (2005). Cattle feedlot soil moisture and
manure content. Journal of Environmental Quality, 34, 656–663.
https://doi.org/10.2134/jeq2005.0656.
Bertsch, A., & Coello, N. (2005). A biotechnological process for
treatment and recycling poultry feathers as a feed ingredient.
Bioresource Technology, 96, 1703–1708.
Bishop, E. J. P., Wilke, P. L., Nash, W. J., Nell, J. A. G., McDonald, D.
A., Compaan, J. P., et al. (1971). Poultry manure as a livestock feed.
Farming in South Africa, 46, 34.
Bohacz, J., & Korniłłowicz-Kowalska, T. (2019). Fungal diversity and
keratinolytic activity of fungi from lignocellulosic composts with
chicken feathers. Process Biochemistry, 80, 119–128. https://doi.
org/10.1016/j.procbio.2019.02.012.
Boothe, D. D., & Arnold, J. W. (2002). Nutrient substrates used by
bacterial isolates from the poultry processing environment. Poultry
Science, 81, 1392–1405.
Brugman, H. H., Dickey, H. C., Plummer, B. E., & Gootan, J. (1967).
Drug residues in lamb carcasses fed poultry litter. Journal of Animal
Science, 26, 915.
Chaturvedi, V., Bhange, K., Bhatt, R., & Verma, P. (2014). Production
of kertinases using chicken feathers as substrate by a novel
multifunctional strain of Pseudomonasstutzeri and its dehairing
application. Biocatalysis and Agricultural Biotechnology, 3, 167–
174. https://doi.org/10.1016/j.bcab.2013.08.005.
Cook, K. L., Rothrock, M. J., Warren, J. G., Sistani, K. R., & Moore,
P. A. (2008). Effect of alum treatment on the concentration of total
and ureolytic microorganisms in poultry litter. Journal of Environmental Quality, 37, 2360–2367.
Cowieson, A. J., Acamovic, T., & Bedford, M. R. (2004). The effects of
phytase and phytic acid on the loss of endogenous amino acids and
minerals from broiler chickens. British Poultry Science, 45, 101–
108. https://doi.org/10.1080/00071660410001668923.
Cutter, C. N. (2002). Microbial control by packaging: A review.
Critical Reviews in Food Science and Nutrition, 42, 151–161.
https://doi.org/10.1080/10408690290825493.
Dikinya, O., & Mufwanzala, N. (2010). Chicken manure-enhanced soil
fertility and productivity: Effects of application rates. Journal of Soil
Science and Environmental Management, 1, 46–54.
Durham, R. M., Thomas, G. W., Albin, R. C., Howe, L. G., Curl, S. E.,
& Box, L. G. (1966). Coprophagy and use of animal waste in
livestock feeds. Proceedings Symptom Management of Farm Anim.
Waste, pp. 112–114.
El-Deek, A. A., Ghonem, K. M., Hamdy, S. M., Aser, M. A., &
Aljassas, F. M. (2009). Producing single cell protein from poultry
manure and evaluation for broiler chickens diets. International
Journal of Poultry Science, 8, 1062–1077.
Elving, J. (2009). Pathogenic inactivation and regrowth in organic
waste during biological treatment. Ph.D. Thesis, Swedish University of Agricultural Sciences,Uppsala, Sweden.
Ertani, A., Nardi, S., & Altissimo, A. (2013). Long-term research
activity on the biostimulant properties of natural origin compounds.
Acta Horticulture, 1009, 181–188.
Bioconversion of Poultry Waste into Added-Value Products
345
Abu Hamed, T., Flamm, H., & Azraq, M. (2012). Renewable energy in
the palestinian territories: Opportunities and challenges. Renewable
and Sustainable Energy Reviews, 16(1), 1082–1088. https://doi.org/
10.1016/j.rser.2011.10.011.
Adetunji, C.O., Oloke, J.K. (2013). Efficacy of freshly prepared pesta
granular formulations from the multi-combination of wild and
mutant strain of Lasiodiplodia pseudotheobromae and Pseudomonas
aeruginosa. Agricultural University of Tirana, 12, 555–563.
Adetunji, C., Oloke, J., Kumar, A., Swaranjit, S., Akpor, B. (2017a).
Synergetic effect of rhamnolipid from Pseudomonas aeruginosa
C1501 and phytotoxic metabolite from Lasiodiplodia pseudotheobromae C1136 on Amaranthus hybridus L. and Echinochloa
crus-galli weeds. Environmental Science and Pollution Research,
24, 13700–13709. https://doi.org/10.1007/s11356-017-8983-8.
Adetunji, C.O., Oloke, J.K., Prasad, G., Bellom, O.M., Osemwegie, O.
O., Mishra, P., Jolly, R.S. (2017b). Isolation, identification,
characterization and screening of rhizospheric bacteria for herbicidal activity. 8, 195–205.
Adetunji, C.O., Oloke, J.K., Osemwegie, O.O. (2018a). Environmental
fate and effects of granular pesta formulation from strains of
Pseudomonas aeruginosa C1501 and Lasiodiplodia pseudotheobromae C1136 on soil activity and weeds. Chemosphere, 195(2018),
98–107. https://doi.org/10.1016/j.chemosphere.2017.12.056.
Adetunji, C.O., Oloke, J.K., Gandham, P. (2018b). Effect of
Carbon-to-Nitrogen ratio on eco-friendly mycoherbicide activity
from Lasiodiplodia pseudotheobromae C1136 for sustainable weeds
management in organic Agriculture. Environment, Development
and Sustainability. Published by springer. Index in Scopus and
Thomson Reuther’s. 1–14. https://doi.org/10.1007/s10668-0180273-1.
Adetunji, C.O., Adejumo, I.S. (2019). Potency of agricultural wastes in
Pleurotus sajor-caju biotechnology for feeding broiler chicks.
International Journal of Recycling of Organic Waste in Agriculture,
1–9 Published by Springer. Index in Scopus. https://doi.org/10.
1007/s40093-018-0226-6.
Adetunji, C.O., Oloke, J.K., Bello, O.M., Pradeep, M., Jolly, R.S.
(2019). Isolation, structural elucidation and bioherbicidal activity of
an eco-friendly bioactive 2-(hydroxymethyl) phenol, from Pseudomonas aeruginosa (C1501) and its ecotoxicological evaluation on
soil. Environmental Technology & Innovation,13(2019), 304–317.
Published by Elsevier Limited. Index in Scopus. https://doi.org/10.
1016/j.eti.2018.12.006.
Adetunji, C.O., Oloke, J.K., Phazang, P., Sarin, N.B. (2020). Influence
of eco-friendly phytotoxic metabolites from Lasiodiplodia pseudotheobromae C1136 on physiological, biochemical, and ultrastructural changes on tested weeds. Environmental Science and
Pollution Research. https://doi.org/10.1007/s11356-020-07677-9.
Alam, M. S., Khan, M. J., Akber, M. A., & Kamruzzaman, M. (2008).
Broiler litter and layer manure in the diet of growing bull calves.
Bangladesh Vet., 25, 62–67. https://doi.org/10.3329/bvet.v25i2.
4619.
Amon, B., Kryvoruchko, V., Amon, T., & Zechmeister-Boltenstern, S.
(2006). Methane, nitrous oxide and ammonia emissions during
storage and after application of dairy cattle slurry and influence of
slurry treatment. Agriculture, Ecosystems & Environment, 112,
153–162. https://doi.org/10.1016/j.agee.2005.08.030.
AOAC. (2011). Official Methods of Analysis. 18th Edn., Association of
Official Agricultural Chemists, Gaithersburg, MD, USA., ISBN:
978-0935584783.
Arvat, V. R., Lipsey, J., & Vandepopuliere, J. M. (1978). Ensiled cage
layer waste as a feed stuff for ruminants. 70th Ann. Mtg. Michigan
State Uni. East Lansing, July 9–13.
Axtell, R. C. (1999). Poultry integrated pest management: Status and
future. Integrated Pest Management Reviews, 4, 53–73. https://doi.
org/10.1023/A:1009637116897.
Balint, B., Bagi, Z., Toth, A., Rakhely, G., Perei, K., et al. (2005).
Utilization of keratin containing biowaste to produce biohydrogen.
Applied Microbiology and Biotechnology, 69, 404–410.
Barik, S., Forgacs, T., & Isbister, J. (1991). Bioconversion of chicken
wastes to value-added products. Bioresource Technology, 36, 229–
234.
Bernhart, M., & Fasina, O. O. (2009). Moisture effect on the storage,
handling and flow properties of poultry litter. Waste Manage., 29,
1392–1398. PMID: 18990556.
Berry, E. D., & Miller, D. N. (2005). Cattle feedlot soil moisture and
manure content. Journal of Environmental Quality, 34, 656–663.
https://doi.org/10.2134/jeq2005.0656.
Bertsch, A., & Coello, N. (2005). A biotechnological process for
treatment and recycling poultry feathers as a feed ingredient.
Bioresource Technology, 96, 1703–1708.
Bishop, E. J. P., Wilke, P. L., Nash, W. J., Nell, J. A. G., McDonald, D.
A., Compaan, J. P., et al. (1971). Poultry manure as a livestock feed.
Farming in South Africa, 46, 34.
Bohacz, J., & Korniłłowicz-Kowalska, T. (2019). Fungal diversity and
keratinolytic activity of fungi from lignocellulosic composts with
chicken feathers. Process Biochemistry, 80, 119–128. https://doi.
org/10.1016/j.procbio.2019.02.012.
Boothe, D. D., & Arnold, J. W. (2002). Nutrient substrates used by
bacterial isolates from the poultry processing environment. Poultry
Science, 81, 1392–1405.
Brugman, H. H., Dickey, H. C., Plummer, B. E., & Gootan, J. (1967).
Drug residues in lamb carcasses fed poultry litter. Journal of Animal
Science, 26, 915.
Chaturvedi, V., Bhange, K., Bhatt, R., & Verma, P. (2014). Production
of kertinases using chicken feathers as substrate by a novel
multifunctional strain of Pseudomonasstutzeri and its dehairing
application. Biocatalysis and Agricultural Biotechnology, 3, 167–
174. https://doi.org/10.1016/j.bcab.2013.08.005.
Cook, K. L., Rothrock, M. J., Warren, J. G., Sistani, K. R., & Moore,
P. A. (2008). Effect of alum treatment on the concentration of total
and ureolytic microorganisms in poultry litter. Journal of Environmental Quality, 37, 2360–2367.
Cowieson, A. J., Acamovic, T., & Bedford, M. R. (2004). The effects of
phytase and phytic acid on the loss of endogenous amino acids and
minerals from broiler chickens. British Poultry Science, 45, 101–
108. https://doi.org/10.1080/00071660410001668923.
Cutter, C. N. (2002). Microbial control by packaging: A review.
Critical Reviews in Food Science and Nutrition, 42, 151–161.
https://doi.org/10.1080/10408690290825493.
Dikinya, O., & Mufwanzala, N. (2010). Chicken manure-enhanced soil
fertility and productivity: Effects of application rates. Journal of Soil
Science and Environmental Management, 1, 46–54.
Durham, R. M., Thomas, G. W., Albin, R. C., Howe, L. G., Curl, S. E.,
& Box, L. G. (1966). Coprophagy and use of animal waste in
livestock feeds. Proceedings Symptom Management of Farm Anim.
Waste, pp. 112–114.
El-Deek, A. A., Ghonem, K. M., Hamdy, S. M., Aser, M. A., &
Aljassas, F. M. (2009). Producing single cell protein from poultry
manure and evaluation for broiler chickens diets. International
Journal of Poultry Science, 8, 1062–1077.
Elving, J. (2009). Pathogenic inactivation and regrowth in organic
waste during biological treatment. Ph.D. Thesis, Swedish University of Agricultural Sciences,Uppsala, Sweden.
Ertani, A., Nardi, S., & Altissimo, A. (2013). Long-term research
activity on the biostimulant properties of natural origin compounds.
Acta Horticulture, 1009, 181–188.
Bioconversion of Poultry Waste into Added-Value Products
345
