Cellulose-metallothionein matrix for metal binding
[Display omitted] •First report on covalent conjugation of protein with cellulose based on epoxy amine chemistry.•Epoxidation of bacterial cellulose and attachment of 50% mass by mass of metallothionein at ambient room temperature.•Metallothionein conjugation alters the hydration property, morpholog...
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Published in | Carbohydrate polymers Vol. 192; pp. 126 - 134 |
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Main Authors | , , , , |
Format | Journal Article |
Language | English |
Published |
England
Elsevier Ltd
15.07.2018
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Abstract | [Display omitted]
•First report on covalent conjugation of protein with cellulose based on epoxy amine chemistry.•Epoxidation of bacterial cellulose and attachment of 50% mass by mass of metallothionein at ambient room temperature.•Metallothionein conjugation alters the hydration property, morphological features and thermal properties of bacterial cellulose.•5 fold higher metal binding capacity of conjugate material with no toxicity.
In this report, we have modified bacterial cellulose to a metal binding matrix by covalently conjugating physiological metal chelators known as metallothioneins. The hydroxyl groups of the native bacterial cellulose from Gluconobacter xylinus are epoxidized, followed by the covalent conjugation with the amine groups of the proteins. For the first time, a covalent conjugation of protein with bacterial cellulose is achieved using the epoxy-amine conjugation chemistry. Using this protocol, 50% mass by mass of the metallothionein could be attached to bacterial cellulose. The morphological features and porosity of the modified cellulose are different compared to pristine bacterial cellulose. Also, the conjugated material has better thermal stability. A five-fold enhancement in the metal binding capacity of the metallothionein conjugated bacterial cellulose is achieved as compared to pristine bacterial cellulose. Cellular metabolic assay and membrane integrity assay on MCF and HeLa cell lines showed no significant toxicity of the conjugate material. This bacterial cellulose-metallothionein conjugate can be explored for health care applications where management of metal toxicity is crucial. Further, the epoxy-amine chemistry for covalent conjugation of protein can be applied for several other types of proteins to develop specific functional biocompatible and biodegradable cellulose matrices. |
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AbstractList | [Display omitted]
•First report on covalent conjugation of protein with cellulose based on epoxy amine chemistry.•Epoxidation of bacterial cellulose and attachment of 50% mass by mass of metallothionein at ambient room temperature.•Metallothionein conjugation alters the hydration property, morphological features and thermal properties of bacterial cellulose.•5 fold higher metal binding capacity of conjugate material with no toxicity.
In this report, we have modified bacterial cellulose to a metal binding matrix by covalently conjugating physiological metal chelators known as metallothioneins. The hydroxyl groups of the native bacterial cellulose from Gluconobacter xylinus are epoxidized, followed by the covalent conjugation with the amine groups of the proteins. For the first time, a covalent conjugation of protein with bacterial cellulose is achieved using the epoxy-amine conjugation chemistry. Using this protocol, 50% mass by mass of the metallothionein could be attached to bacterial cellulose. The morphological features and porosity of the modified cellulose are different compared to pristine bacterial cellulose. Also, the conjugated material has better thermal stability. A five-fold enhancement in the metal binding capacity of the metallothionein conjugated bacterial cellulose is achieved as compared to pristine bacterial cellulose. Cellular metabolic assay and membrane integrity assay on MCF and HeLa cell lines showed no significant toxicity of the conjugate material. This bacterial cellulose-metallothionein conjugate can be explored for health care applications where management of metal toxicity is crucial. Further, the epoxy-amine chemistry for covalent conjugation of protein can be applied for several other types of proteins to develop specific functional biocompatible and biodegradable cellulose matrices. In this report, we have modified bacterial cellulose to a metal binding matrix by covalently conjugating physiological metal chelators known as metallothioneins. The hydroxyl groups of the native bacterial cellulose from Gluconobacter xylinus are epoxidized, followed by the covalent conjugation with the amine groups of the proteins. For the first time, a covalent conjugation of protein with bacterial cellulose is achieved using the epoxy-amine conjugation chemistry. Using this protocol, 50% mass by mass of the metallothionein could be attached to bacterial cellulose. The morphological features and porosity of the modified cellulose are different compared to pristine bacterial cellulose. Also, the conjugated material has better thermal stability. A five-fold enhancement in the metal binding capacity of the metallothionein conjugated bacterial cellulose is achieved as compared to pristine bacterial cellulose. Cellular metabolic assay and membrane integrity assay on MCF and HeLa cell lines showed no significant toxicity of the conjugate material. This bacterial cellulose-metallothionein conjugate can be explored for health care applications where management of metal toxicity is crucial. Further, the epoxy-amine chemistry for covalent conjugation of protein can be applied for several other types of proteins to develop specific functional biocompatible and biodegradable cellulose matrices. |
Author | Barua, Shaswat Bari, Naimat K. Sannigrahi, Malay K. Sinha, Sharmistha Garg, Ankush |
Author_xml | – sequence: 1 givenname: Naimat K. surname: Bari fullname: Bari, Naimat K. organization: Institute of Nano Science and Technology, Phase - 10, Sector - 64, Mohali, Punjab, India – sequence: 2 givenname: Shaswat surname: Barua fullname: Barua, Shaswat organization: Institute of Nano Science and Technology, Phase - 10, Sector - 64, Mohali, Punjab, India – sequence: 3 givenname: Ankush surname: Garg fullname: Garg, Ankush organization: Institute of Nano Science and Technology, Phase - 10, Sector - 64, Mohali, Punjab, India – sequence: 4 givenname: Malay K. surname: Sannigrahi fullname: Sannigrahi, Malay K. organization: Indian Institute of Science Education and Research, Knowledge city, Sector 81, Mohali, Punjab, India – sequence: 5 givenname: Sharmistha orcidid: 0000-0003-2459-650X surname: Sinha fullname: Sinha, Sharmistha email: sinhas@inst.ac.in organization: Institute of Nano Science and Technology, Phase - 10, Sector - 64, Mohali, Punjab, India |
BackLink | https://www.ncbi.nlm.nih.gov/pubmed/29691004$$D View this record in MEDLINE/PubMed |
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Keywords | BC MT eBC Epoxidation Bacterial cellulose Covalent conjugation Metal binding MBP Metallothionein TGA |
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•First report on covalent conjugation of protein with cellulose based on epoxy amine chemistry.•Epoxidation of bacterial cellulose and... In this report, we have modified bacterial cellulose to a metal binding matrix by covalently conjugating physiological metal chelators known as... |
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SubjectTerms | Bacterial cellulose Covalent conjugation Epoxidation Metal binding Metallothionein |
Title | Cellulose-metallothionein matrix for metal binding |
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