Advances in biomaterial production from animal derived waste
Animal derived waste, if not disposed properly, could pose a threat to the environment and its inhabitants. Recent advancements in biotechnological and biomedical interventions have enabled us to bioengineer these valuable waste substrates into biomaterials with diversified applications. Rearing and...
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Taylor & Francis Group
2021
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oai:doaj.org-article:292be183f7d1437784b366c465ee3a5f2021-11-26T11:19:49ZAdvances in biomaterial production from animal derived waste2165-59792165-598710.1080/21655979.2021.1982321https://doaj.org/article/292be183f7d1437784b366c465ee3a5f2021-01-01T00:00:00Zhttp://dx.doi.org/10.1080/21655979.2021.1982321https://doaj.org/toc/2165-5979https://doaj.org/toc/2165-5987Animal derived waste, if not disposed properly, could pose a threat to the environment and its inhabitants. Recent advancements in biotechnological and biomedical interventions have enabled us to bioengineer these valuable waste substrates into biomaterials with diversified applications. Rearing and processing of poultry, cattle, sheep, goat, pig, and slaughterhouse waste can aid in effective waste valorization for the fabrication of biopolymers, composites, heart valves, collagen, scaffolds, pigments and lipids, among other industrially important biomaterials. Feathers and eggshell waste from the poultry industry can be used for producing keratinous proteins and biocomposites, respectively. Cattle dung, hoofs and cattle hide can be used for producing hydroxyapatite for developing scaffolds and drug delivery systems. Porcine derived collagen can be used for developing skin grafts, while porcine urinary bladder has antiangiogenic, neurotrophic, tumor-suppressive and wound healing properties. Sheep teeth can be used for the production of low-cost hydroxyapatite while goat tissue is still underutilized and requires more in-depth investigation. However, hydrolyzed tannery fleshings show promising potential for antioxidant rich animal feed production. In this review, the recent developments in the production and application of biomaterials from animal waste have been critically analyzed. Standardized protocols for biomaterial synthesis on a pilot scale, and government policy framework for establishing an animal waste supply chain for end users seem to be lacking and require urgent attention. Moreover, circular bioeconomy concepts for animal derived biomaterial production need to be developed for creating a sustainable system.Ayon TarafdarVivek Kumar GaurNeha RawatPratik Ramesh WankhadeGyanendra Kumar GaurMukesh Kumar AwasthiNarashans Alok SagarRanjna SirohiTaylor & Francis Grouparticlecattle wastegoat wastepig wastepoultrysheepslaughter house wasteBiotechnologyTP248.13-248.65ENBioengineered, Vol 12, Iss 1, Pp 8247-8258 (2021) |
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cattle waste goat waste pig waste poultry sheep slaughter house waste Biotechnology TP248.13-248.65 |
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cattle waste goat waste pig waste poultry sheep slaughter house waste Biotechnology TP248.13-248.65 Ayon Tarafdar Vivek Kumar Gaur Neha Rawat Pratik Ramesh Wankhade Gyanendra Kumar Gaur Mukesh Kumar Awasthi Narashans Alok Sagar Ranjna Sirohi Advances in biomaterial production from animal derived waste |
description |
Animal derived waste, if not disposed properly, could pose a threat to the environment and its inhabitants. Recent advancements in biotechnological and biomedical interventions have enabled us to bioengineer these valuable waste substrates into biomaterials with diversified applications. Rearing and processing of poultry, cattle, sheep, goat, pig, and slaughterhouse waste can aid in effective waste valorization for the fabrication of biopolymers, composites, heart valves, collagen, scaffolds, pigments and lipids, among other industrially important biomaterials. Feathers and eggshell waste from the poultry industry can be used for producing keratinous proteins and biocomposites, respectively. Cattle dung, hoofs and cattle hide can be used for producing hydroxyapatite for developing scaffolds and drug delivery systems. Porcine derived collagen can be used for developing skin grafts, while porcine urinary bladder has antiangiogenic, neurotrophic, tumor-suppressive and wound healing properties. Sheep teeth can be used for the production of low-cost hydroxyapatite while goat tissue is still underutilized and requires more in-depth investigation. However, hydrolyzed tannery fleshings show promising potential for antioxidant rich animal feed production. In this review, the recent developments in the production and application of biomaterials from animal waste have been critically analyzed. Standardized protocols for biomaterial synthesis on a pilot scale, and government policy framework for establishing an animal waste supply chain for end users seem to be lacking and require urgent attention. Moreover, circular bioeconomy concepts for animal derived biomaterial production need to be developed for creating a sustainable system. |
format |
article |
author |
Ayon Tarafdar Vivek Kumar Gaur Neha Rawat Pratik Ramesh Wankhade Gyanendra Kumar Gaur Mukesh Kumar Awasthi Narashans Alok Sagar Ranjna Sirohi |
author_facet |
Ayon Tarafdar Vivek Kumar Gaur Neha Rawat Pratik Ramesh Wankhade Gyanendra Kumar Gaur Mukesh Kumar Awasthi Narashans Alok Sagar Ranjna Sirohi |
author_sort |
Ayon Tarafdar |
title |
Advances in biomaterial production from animal derived waste |
title_short |
Advances in biomaterial production from animal derived waste |
title_full |
Advances in biomaterial production from animal derived waste |
title_fullStr |
Advances in biomaterial production from animal derived waste |
title_full_unstemmed |
Advances in biomaterial production from animal derived waste |
title_sort |
advances in biomaterial production from animal derived waste |
publisher |
Taylor & Francis Group |
publishDate |
2021 |
url |
https://doaj.org/article/292be183f7d1437784b366c465ee3a5f |
work_keys_str_mv |
AT ayontarafdar advancesinbiomaterialproductionfromanimalderivedwaste AT vivekkumargaur advancesinbiomaterialproductionfromanimalderivedwaste AT neharawat advancesinbiomaterialproductionfromanimalderivedwaste AT pratikrameshwankhade advancesinbiomaterialproductionfromanimalderivedwaste AT gyanendrakumargaur advancesinbiomaterialproductionfromanimalderivedwaste AT mukeshkumarawasthi advancesinbiomaterialproductionfromanimalderivedwaste AT narashansaloksagar advancesinbiomaterialproductionfromanimalderivedwaste AT ranjnasirohi advancesinbiomaterialproductionfromanimalderivedwaste |
_version_ |
1718409456737320960 |