A Comparison of Physical, Chemical, Biological and Combined Treatments for Detoxification of Free Gossypol in Crushed Whole Cottonseed
Oilseed plants such as cotton ( Gossypium sp.) generate abundant biomass residues which contain significant levels of edible oil, crude proteins and other desirable biomolecules for the animal nutrition industry. The application of cottonseed cake in animal feed, a by-product of the cotton industry,...
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Published in: | Waste and biomass valorization Vol. 12; no. 7; pp. 3965 - 3975 |
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Abstract | Oilseed plants such as cotton (
Gossypium
sp.) generate abundant biomass residues which contain significant levels of edible oil, crude proteins and other desirable biomolecules for the animal nutrition industry. The application of cottonseed cake in animal feed, a by-product of the cotton industry, is limited due to the natural presence of toxic free gossypol (FG), wherein efficient and cost-effective methods for FG detoxification are necessary. Herein, pretreatment methods for reducing FG in crushed whole cottonseed (CWCS) were compared, with residual FG quantified using a sensitive Ultra High-Performance Liquid Chromatography method for detection at trace levels in cottonseed materials. Physical treatment by autoclaving resulted in up to 96% detoxification of FG, without reduction in crude protein (CP) content. Chemical treatment with 1% and 2% Ca(OH)
2
eliminated FG to as low as 0.04%, although a reduction in CP content was observed. Similarly, native fermentation, whilst reducing FG content by 99.66% after 6 days incubation, also reduced CP content. In combined physical and biological solid-state fermentation (SSF), basidiomycete fungi
Ganoderma lucidum
CC351,
Panus lecomtei
CC40,
Pleurotus ostreatus
CC389,
Pleurotus sapidus
CC28 and
Pycnoporus sanguineus
CC400 all degraded FG in autoclaved CWCS to trace levels often lower than obtained by individual treatments. A reduction in total lipids and increase in CP were also observed, improving nutritional quality. The most efficient fungi,
P. ostreatus
CC389 and
P. lecomtei
CC40
,
secreted considerable laccase and manganese peroxidase enzymes during SSF, potentially involved in FG detoxification. Cost effective, non-polluting, value-adding approaches for FG detoxification offer potential in animal feed industries.
Graphic Abstract |
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AbstractList | Oilseed plants such as cotton (Gossypium sp.) generate abundant biomass residues which contain significant levels of edible oil, crude proteins and other desirable biomolecules for the animal nutrition industry. The application of cottonseed cake in animal feed, a by-product of the cotton industry, is limited due to the natural presence of toxic free gossypol (FG), wherein efficient and cost-effective methods for FG detoxification are necessary. Herein, pretreatment methods for reducing FG in crushed whole cottonseed (CWCS) were compared, with residual FG quantified using a sensitive Ultra High-Performance Liquid Chromatography method for detection at trace levels in cottonseed materials. Physical treatment by autoclaving resulted in up to 96% detoxification of FG, without reduction in crude protein (CP) content. Chemical treatment with 1% and 2% Ca(OH)2 eliminated FG to as low as 0.04%, although a reduction in CP content was observed. Similarly, native fermentation, whilst reducing FG content by 99.66% after 6 days incubation, also reduced CP content. In combined physical and biological solid-state fermentation (SSF), basidiomycete fungi Ganoderma lucidum CC351, Panus lecomtei CC40, Pleurotus ostreatus CC389, Pleurotus sapidus CC28 and Pycnoporus sanguineus CC400 all degraded FG in autoclaved CWCS to trace levels often lower than obtained by individual treatments. A reduction in total lipids and increase in CP were also observed, improving nutritional quality. The most efficient fungi, P. ostreatus CC389 and P. lecomtei CC40, secreted considerable laccase and manganese peroxidase enzymes during SSF, potentially involved in FG detoxification. Cost effective, non-polluting, value-adding approaches for FG detoxification offer potential in animal feed industries.Graphic Abstract Oilseed plants such as cotton ( Gossypium sp.) generate abundant biomass residues which contain significant levels of edible oil, crude proteins and other desirable biomolecules for the animal nutrition industry. The application of cottonseed cake in animal feed, a by-product of the cotton industry, is limited due to the natural presence of toxic free gossypol (FG), wherein efficient and cost-effective methods for FG detoxification are necessary. Herein, pretreatment methods for reducing FG in crushed whole cottonseed (CWCS) were compared, with residual FG quantified using a sensitive Ultra High-Performance Liquid Chromatography method for detection at trace levels in cottonseed materials. Physical treatment by autoclaving resulted in up to 96% detoxification of FG, without reduction in crude protein (CP) content. Chemical treatment with 1% and 2% Ca(OH) 2 eliminated FG to as low as 0.04%, although a reduction in CP content was observed. Similarly, native fermentation, whilst reducing FG content by 99.66% after 6 days incubation, also reduced CP content. In combined physical and biological solid-state fermentation (SSF), basidiomycete fungi Ganoderma lucidum CC351, Panus lecomtei CC40, Pleurotus ostreatus CC389, Pleurotus sapidus CC28 and Pycnoporus sanguineus CC400 all degraded FG in autoclaved CWCS to trace levels often lower than obtained by individual treatments. A reduction in total lipids and increase in CP were also observed, improving nutritional quality. The most efficient fungi, P. ostreatus CC389 and P. lecomtei CC40 , secreted considerable laccase and manganese peroxidase enzymes during SSF, potentially involved in FG detoxification. Cost effective, non-polluting, value-adding approaches for FG detoxification offer potential in animal feed industries. Graphic Abstract |
Author | Gomes, Taísa Godoy Barroso, Paulo Augusto Vianna De Siqueira, Felix Gonçalves Mendonça, Simone de Aquino Ribeiro, Jose Antonio Miller, Robert Neil Gerard Conceição, Aparecido Almeida Machado, Antony Enis Virginio Campanha, Raquel Bombarda Soares Neto, Clemente Batista |
Author_xml | – sequence: 1 givenname: Clemente Batista surname: Soares Neto fullname: Soares Neto, Clemente Batista organization: Departamento de Biologia Celular, Instituto de Ciências Biológicas, Universidade de Brasília – sequence: 2 givenname: Aparecido Almeida surname: Conceição fullname: Conceição, Aparecido Almeida organization: Instituto Multidisciplinar em Saúde, Universidade Federal da Bahia, Embrapa Agroenergia – sequence: 3 givenname: Taísa Godoy surname: Gomes fullname: Gomes, Taísa Godoy organization: Departamento de Biologia Celular, Instituto de Ciências Biológicas, Universidade de Brasília – sequence: 4 givenname: Jose Antonio surname: de Aquino Ribeiro fullname: de Aquino Ribeiro, Jose Antonio organization: Embrapa Agroenergia – sequence: 5 givenname: Raquel Bombarda surname: Campanha fullname: Campanha, Raquel Bombarda organization: Embrapa Agroenergia – sequence: 6 givenname: Paulo Augusto Vianna surname: Barroso fullname: Barroso, Paulo Augusto Vianna organization: Embrapa Agroenergia – sequence: 7 givenname: Antony Enis Virginio surname: Machado fullname: Machado, Antony Enis Virginio organization: Universidade Federal de Tocantins – sequence: 8 givenname: Simone surname: Mendonça fullname: Mendonça, Simone organization: Embrapa Agroenergia – sequence: 9 givenname: Felix Gonçalves surname: De Siqueira fullname: De Siqueira, Felix Gonçalves organization: Embrapa Agroenergia – sequence: 10 givenname: Robert Neil Gerard orcidid: 0000-0002-5798-4552 surname: Miller fullname: Miller, Robert Neil Gerard email: robertmiller@unb.br organization: Departamento de Biologia Celular, Instituto de Ciências Biológicas, Universidade de Brasília |
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CitedBy_id | crossref_primary_10_3390_chemosensors11010052 crossref_primary_10_1016_j_molstruc_2021_131155 crossref_primary_10_3390_jof10050321 crossref_primary_10_1016_j_eti_2022_102937 crossref_primary_10_3389_fanim_2024_1343680 crossref_primary_10_3390_app14125066 crossref_primary_10_1007_s13399_022_02637_4 crossref_primary_10_3390_fermentation8080402 crossref_primary_10_3389_fpls_2022_1080407 crossref_primary_10_3390_fermentation9110945 crossref_primary_10_1002_ppp3_10433 crossref_primary_10_3390_microorganisms10081670 crossref_primary_10_1007_s12649_021_01599_4 |
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Keywords | Biodegradation Cottonseed Macro-basidiomycete Biomass Pretreatment Gossypol |
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Snippet | Oilseed plants such as cotton (
Gossypium
sp.) generate abundant biomass residues which contain significant levels of edible oil, crude proteins and other... Oilseed plants such as cotton (Gossypium sp.) generate abundant biomass residues which contain significant levels of edible oil, crude proteins and other... |
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SubjectTerms | Animal feed Animal nutrition Autoclaving Biomolecules Calcium hydroxide Chemical treatment Cotton Crushing Detoxification Edible oils Engineering Environment Environmental Engineering/Biotechnology Feed industry Feeds Fermentation Fungi Gossypol High performance liquid chromatography Industrial Pollution Prevention Laccase Lipids Liquid chromatography Manganese Manganese peroxidase Mushrooms Nutrition Original Paper Peroxidase Proteins Renewable and Green Energy Slaked lime Solid state fermentation Trace levels Waste Management/Waste Technology |
Title | A Comparison of Physical, Chemical, Biological and Combined Treatments for Detoxification of Free Gossypol in Crushed Whole Cottonseed |
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