1. Ghaffar I, Imtiaz A, Hussain A, Javid A, Jabeen F, Akmal M, et al. Microbial production and industrial applications of keratinases: an overview. Int Microbiol. 2018;21(4):163-74. [
View at Publisher] [
DOI] [
PMID] [
Google Scholar]
2. Derhab N, Mabrouk MEM, El-Metwally MM, Mohammed YMM. Thermostable keratinase from Bacillus cereus L10: optimization and some potential biotechnological applications. Biomass Conversion and Biorefinery. 2024;14:29757–73. [
View at Publisher] [
DOI] [
Google Scholar]
3. Chilakamarry CR, Mahmood S, Saffe SNBM, Arifin MAB, Gupta A, Sikkandar MY, et al. Extraction and application of keratin from natural resources: a review. 3 Biotech. 2021;11(5):220. [
View at Publisher] [
DOI] [
PMID] [
Google Scholar]
4. Wang B, Yang W, Mcprimertrick J, Meyers MA. Keratin: Structure, mechanical properties, occurrence in biological organisms, and efforts at bioinspiration. Prog Mater Sci. 2016;76:229-318. [
View at Publisher] [
DOI] [
Google Scholar]
5. Anbesaw MS. Bioconversion of Keratin Wastes Using Keratinolytic Microorganisms to Generate Value-Added Products. Int J Biomater. 2022:2022:2048031. [
View at Publisher] [
DOI] [
PMID] [
Google Scholar]
6. Kan X, Dong Y, Feng L, Zhou M, Hou H, Contamination and health risk assessment of heavy metals in China's lead-zinc mine tailings: a meta-analysis. Chemosphere. 2021;267:128909. [
View at Publisher] [
DOI] [
PMID] [
Google Scholar]
7. Tesfaye T, Sithole B, Ramjugernath D, Chunilall V. Valorisation of chicken feathers: Characterisation of chemical properties. Waste Manage. 2017;68:626-35. [
View at Publisher] [
DOI] [
PMID] [
Google Scholar]
8. Sharma S, Gupta A. Sustainable management of keratin waste biomass: applications and future perspectives. Braz Arch Biol Technol. 2016;59. [
View at Publisher] [
DOI] [
Google Scholar]
9. Salamony D H El, Hassouna, MSE, Zaghloul TI, Abdallah HM. Valorization of chicken feather waste using recombinant Bacillus subtilis cells by solid-state fermentation for soluble proteins and serine alkaline protease production. Bioresource Technology, 2024;393:130110. [
View at Publisher] [
DOI] [
PMID] [
Google Scholar]
10. Tronina P, Bubel F. Production of organic fertilizer from poultry feather wastes excluding the composting process. Polish Journal of Chemical Technology. 2008;10(2):33-6 [
View at Publisher] [
DOI] [
Google Scholar]
11. Daroit DJ, Brandelli A. A current assessment on the production of bacterial keratinases. Crit Rev Biotechnol. 2014; 34:372-84. [
View at Publisher] [
DOI] [
PMID] [
Google Scholar]
12. Boeckle B, Galunsky B, Mueller R. Characterization of a keratinolytic serine proteinase from Streptomyces pactum DSM 40530. Appl Environ Microbiol. 1995;61(10):3705-10. [
View at Publisher] [
DOI] [
PMID] [
Google Scholar]
13. Bohacz J. Biodegradation of feather waste keratin by a keratinolytic soil fungus of the genus Chrysosporium and statistical optimization of feather mass loss. World J Microbiol Biotechnol. 2017;33(1):13. [
View at Publisher] [
DOI] [
PMID] [
Google Scholar]
14. Brandelli A, Sala L, Kalil SJ. Microbial enzymes for bioconversion of poultry waste into added-value products. Food Res Int. 2015;73:3-12. [
View at Publisher] [
DOI] [
Google Scholar]
15. Verna A, Singh H, Anwar S, Chattopadhyay A, Tiwari KK, Kaur S,et al. Microbial keratinases: industrial enzymes with waste management potential. Crit Rev Biotechnol. 2017;37(4):476-91. [
View at Publisher] [
DOI] [
PMID] [
Google Scholar]
16. Noval JJ, Nickerson WJ. Decomposition of native keratin by Streptomyces fradiae. J Bacteriol. 1959;77(3):251-63. [
View at Publisher] [
DOI] [
PMID] [
Google Scholar]
17. Papadopoulos M. The effect of enzymatic treatment on amino acid content and nitrogen characteristics of feather meal Anim. Feed Sci Technol. 1986;16:151-6. [
View at Publisher] [
DOI] [
Google Scholar]
18. Daroit DJ, Correa APF, Brandelli A. Keratinolytic potential of a novel Bacillus sp. P45 isolated from the Amazon basin fish Piaractus mesopotamicus. Int Biodeterior Biodegrad. 2009;63(3):358-63. [
View at Publisher] [
DOI] [
Google Scholar]
19. Bressollier P, Letourneau F, Urdaci M, Verneuil B. Purification and characterization of a keratinolytic serine proteinase from Streptomyces albidoflavus. Appl Environ Microbiol. 1999;65(6):2570-6. [
View at Publisher] [
DOI] [
PMID] [
Google Scholar]
20. Lucas FS, Broennimann O, Febbraro I, Heeb P. High diversity among feather-degrading bacteria from a dry meadow soil. Microb Ecol. 2003;45(3):28290. [
View at Publisher] [
DOI] [
PMID] [
Google Scholar]
21. Paul T, Das A, Mandal A, Jana A, Halder SK, Das Mohapatra PK,et al. Smart cleaning properties of a multi tolerance keratinolytic protease from an extremophilic Bacillus tequilensis hsTKB2: prediction of enzyme modification site. Waste Biomass Valorization. 2014;5:931-45. [
View at Publisher] [
DOI] [
Google Scholar]
22. Yue XY, Zhang B, Jiang DD, Liu YJ, Niu TG. Separation and purification of a keratinase as pesticide against root-knot nematodes.
World J Microbiol Biotechnol. 2011;27(9):2147-53. [
View at Publisher] [
DOI] [
Google Scholar]
23. Forgacs G, Lundin M, Taherzadeh MJ, Horvath IS. Pretreatment of chicken feather waste for improved biogas production. Appl Biochem Biotechnol. 2013;169(7):2016-28. [
View at Publisher] [
DOI] [
PMID] [
Google Scholar]
24. Hansen GH, Sørheim R. Improved method for phenotypical characterization of marine bacteria. J Microbiol Methods. 1991;13(3):231-41. [
View at Publisher] [
DOI] [
Google Scholar]
25. Davis BD, Mingioli ES. Mutants of Escherichia coli requiring methionine or vitamin B12. J Bacteriol. 1950;60(1):17-28. [
View at Publisher] [
DOI] [
PMID] [
Google Scholar]
26. McDevitt S. Methyl Red and Voges-Proskauer Test Protocols. American Society for Microbiology. 2009. [
View at Publisher] [
Google Scholar]
27. Buxton R. Nitrate and nitrite reduction test protocols. Washington, DC: American Society for Microbiology. 2011. [
View at Publisher] [
Google Scholar]
28. Atlas RM. Handbook of microbiological media. 2010. CRC press. [
DOI] [
Google Scholar]
29. Kumar S, Stecher G, Li M, Knyaz C, Tamura K. MEGA X: molecular evolutionary genetics analysis across computing platforms. Mol Biol Evol. 2018;35:1547-9. [
View at Publisher] [
DOI] [
PMID] [
Google Scholar]
30. Tomarelli RM, Charney J, Harding M L. The use of azoalbumin as a substrate in the colorimetric determination of peptic and tryptic activity. J Lab Clin Med. 1949;34(3):428-33. [
View at Publisher] [
PMID] [
Google Scholar]
31. Abdel-Fattah AM, El-Gamal MS, Ismail SA, Emran MA, Hashem AM. Biodegradation of feather waste by keratinase produced from newly isolated Bacillus licheniformis ALW1. J Genet Eng Biotechnol. 2018;16(2):311-8. [
View at Publisher] [
DOI] [
PMID] [
Google Scholar]
32. Bhari R, Kaur M, Singh RS, Pandey A, Larroche C Bioconversion of chicken feathers by Bacillus aerius NSMk2: a potential approach in poultry waste management. Bioresource Technology Reports. 2018; 3:224-230. doi: 10.1016/j.biteb.2018.07.015. [
DOI:10.1016/j.biteb.2018.07.015]
33. Gong J-S et al. Biochemical characterization of an extreme alkaline and surfactant-stable keratinase derived from a newly isolated actinomycete Streptomyces aureofaciens K13 RSC Advances. 2015; 5:24691-24699 doi:10.1039/C4RA16423G. [
DOI:10.1039/C4RA16423G]
34. Kaul S, Sumbali G. Production of extracellular keratinases by keratinophilic fungal species inhabiting feathers of living poultry birds (Gallus domesticus): a comparison. Mycopathologia. 1999; 146:19-24 doi:10.1023/A:1007086720237. [
DOI:10.1023/A:1007086720237]
35. Sahni N, Sahota PP, Phutela UG. Bacterial keratinases and their prospective applications: a review. Int J Curr Microbiol App Sci. 2015;4(6):768-783.
36. Williams CM, Richter CS, MacKenzie JM, Shih JCH. Isolation, Identification, and Characterization of a Feather-Degrading Bacterium. Appl Environ Microbiol. 1990; 56(6):1509-1515. doi: 10.1128/aem.56.6.1509-1515.1990. [
DOI:10.1128/aem.56.6.1509-1515.1990] [
PMID] [
]
37. Macedo AJ, da Silva WOB, Gava R, Driemeier D, Henriques JAP, Termignoni C. Novel keratinase from Bacillus subtilis S14 exhibiting remarkable dehairing capabilities. Appl Environ Microbiol. 2005; 71:594-596. doi:10.1128/AEM.71.1.594-596.2005. [
DOI:10.1128/AEM.71.1.594-596.2005] [
PMID] [
]
38. Kojima M, Kanai M, Tominaga M, Kitazume S, Inoue A, Horikoshi K. Isolation and characterization of a feather-degrading enzyme from Bacillus pseudofirmus FA30-01. Extremophiles. 2006; 10(3):229-235 doi:10.1007/s00792-005-0491-y. [
DOI:10.1007/s00792-005-0491-y] [
PMID]
39. de Oliveira CT, Rieger TJ, Daroit DJ. Catalytic properties and thermal stability of a crude protease from the keratinolytic Bacillus sp. CL33A. Biocatalysis and agricultural biotechnology. 2017; 10: 270-277.doi: 10.1016/j.bcab.2017.04.004. [
DOI:10.1016/j.bcab.2017.04.004]
40. Ire FS, Onyenama AC. Purification and Some Properties of Keratinase from Bacillus licheniformis Strain NBRC 14206. Journal of Applied Life Sciences International. 2017; 11(3),1-9. doi:10.9734/JALSI/2017/33165. [
DOI:10.9734/JALSI/2017/33165]
41. Bhari R, Kaur M, Singh RS, Pandey A, Larroche C Bioconversion of chicken feathers by Bacillus aerius NSMk2: a potential approach in poultry waste management. Bioresource Technology Reports. 2018; 3:224-230. doi: 10.1016/j.biteb.2018.07.015. [
DOI:10.1016/j.biteb.2018.07.015]
42. Abdel-Fattah AM, El-Gamal MS, Ismail SA, Emran MA, Hashem AM. Biodegradation of feather waste by keratinase produced from newly isolated Bacillus licheniformis ALW1. Journal of Genetic Engineering and Biotechnology. 2018; 16:311-318. doi:10.1016/j.jgeb.2018.05.005. [
DOI:10.1016/j.jgeb.2018.05.005] [
PMID] [
]
43. Peng Z, Mao X, Zhang J, Du G, Chen J. Effective biodegradation of chicken feather waste by co-cultivation of keratinase producing strains. Microbial cell factories. 2019; 18:1-11. doi:10.1186/s12934-019-1134-9. [
DOI:10.1186/s12934-019-1134-9] [
PMID] [
]
44. Nnolim NE, Mpaka L, Okoh AI, Nwodo UU. Biochemical and Molecular Characterization of a Thermostable Alkaline Metallo-Keratinase from Bacillus sp. Nnolim-K1 Microorganisms. 2020a; 8:1304. doi:10.3390/microorganisms8091304. [
DOI:10.3390/microorganisms8091304] [
PMID] [
]
45. Moridshahi R, Bahreini M, Sharifmoghaddam M, Asoodeh A. Biochemical characterization of an alkaline surfactant-stable keratinase from a new keratinase producer, Bacillus zhangzhouensis Extremophiles. 2020a; 24:693-704 doi:10.1007/s00792-020-01187-9. [
DOI:10.1007/s00792-020-01187-9] [
PMID]
46. Nnolim NE, Ntozonke N, Okoh AI, Nwodo UU. Exoproduction and characterization of a detergent-stable alkaline keratinase from Arthrobacter sp. KFS-1. Biochimie. 2020b; 177:53-62 doi:10.1016/j.biochi.2020.08.005. [
DOI:10.1016/j.biochi.2020.08.005] [
PMID]
47. Jaouadi NZ et al. The Attractive Proprieties of the Keratinase KERQ7 from Bacillus Tequilensis Strain Q7 with Promising Potential for the Leather Bating Process. In: Euro-Mediterranean Conference for Environmental Integration. 2017;137-139. doi:10.1007/978-3-319-70548-4-46. [
DOI:10.1007/978-3-319-70548-4_46]