New technology to improve the thermal stability of botulinum toxin type D by biomimetic mineralization

Abstract The advanced biomimetic mineralization technology was applied to protect the Botulinum neurotoxin type D, and the processing of the mineralization granule of botulinum toxin type D was successfully screened. The loss of activity of the toxin protein at different temperatures and the destruc...

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Main Authors: Shengqing Li, Xiyun Zhang, Guoyuan Hu, Shuping Li, Zhining Li, Yuxia Fan, Yanming Zhang
Format: Article
Language:English
Published: Nature Publishing Group 2021-02-01
Series:Scientific Reports
Online Access:https://doi.org/10.1038/s41598-021-83733-9
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spelling doaj-6ae62ac36e24436d9705027751c1dd952021-02-21T12:35:25ZengNature Publishing GroupScientific Reports2045-23222021-02-011111810.1038/s41598-021-83733-9New technology to improve the thermal stability of botulinum toxin type D by biomimetic mineralizationShengqing Li0Xiyun Zhang1Guoyuan Hu2Shuping Li3Zhining Li4Yuxia Fan5Yanming Zhang6Northwest Agriculture and Forest UniversityQinghai Academy of Animal Science and Veterinary Medicine, Qinghai UniversityQinghai Academy of Animal Science and Veterinary Medicine, Qinghai UniversityQinghai Academy of Animal Science and Veterinary Medicine, Qinghai UniversityQinghai Academy of Animal Science and Veterinary Medicine, Qinghai UniversityQinghai Academy of Animal Science and Veterinary Medicine, Qinghai UniversityNorthwest Agriculture and Forest UniversityAbstract The advanced biomimetic mineralization technology was applied to protect the Botulinum neurotoxin type D, and the processing of the mineralization granule of botulinum toxin type D was successfully screened. The loss of activity of the toxin protein at different temperatures and the destructive strength of the gastrointestinal tract against the toxin were determined biologically. The lethal toxicity of the mineralized toxin to wild rodents was determined by median lethal dose. Protective tests at different temperatures showed that the preservation period of botulinum toxin type D mineralized sample 2 was significantly higher than that of the control group at three different temperatures, and its toxicity loss was significantly reduced. The damage intensity of the mineralized toxin to the gastrointestinal contents of plateau zokor and plateau pika was significantly reduced. The minimum lethal doses of the mineralized toxin particles to plateau zokor, plateau pika, and mice were 5200, 8,600,000, and 25,000 MLD/kg. These results showed that biomimetic mineralization could greatly improve the thermal stability of botulinum toxin type D and reduce the damaging effect of the gastrointestinal contents of target animals to botulinum toxin type D. The mineralized toxin could be used to control the population density of urban rodents. This research provides new insights into the protection of toxin protein substances.https://doi.org/10.1038/s41598-021-83733-9
collection DOAJ
language English
format Article
sources DOAJ
author Shengqing Li
Xiyun Zhang
Guoyuan Hu
Shuping Li
Zhining Li
Yuxia Fan
Yanming Zhang
spellingShingle Shengqing Li
Xiyun Zhang
Guoyuan Hu
Shuping Li
Zhining Li
Yuxia Fan
Yanming Zhang
New technology to improve the thermal stability of botulinum toxin type D by biomimetic mineralization
Scientific Reports
author_facet Shengqing Li
Xiyun Zhang
Guoyuan Hu
Shuping Li
Zhining Li
Yuxia Fan
Yanming Zhang
author_sort Shengqing Li
title New technology to improve the thermal stability of botulinum toxin type D by biomimetic mineralization
title_short New technology to improve the thermal stability of botulinum toxin type D by biomimetic mineralization
title_full New technology to improve the thermal stability of botulinum toxin type D by biomimetic mineralization
title_fullStr New technology to improve the thermal stability of botulinum toxin type D by biomimetic mineralization
title_full_unstemmed New technology to improve the thermal stability of botulinum toxin type D by biomimetic mineralization
title_sort new technology to improve the thermal stability of botulinum toxin type d by biomimetic mineralization
publisher Nature Publishing Group
series Scientific Reports
issn 2045-2322
publishDate 2021-02-01
description Abstract The advanced biomimetic mineralization technology was applied to protect the Botulinum neurotoxin type D, and the processing of the mineralization granule of botulinum toxin type D was successfully screened. The loss of activity of the toxin protein at different temperatures and the destructive strength of the gastrointestinal tract against the toxin were determined biologically. The lethal toxicity of the mineralized toxin to wild rodents was determined by median lethal dose. Protective tests at different temperatures showed that the preservation period of botulinum toxin type D mineralized sample 2 was significantly higher than that of the control group at three different temperatures, and its toxicity loss was significantly reduced. The damage intensity of the mineralized toxin to the gastrointestinal contents of plateau zokor and plateau pika was significantly reduced. The minimum lethal doses of the mineralized toxin particles to plateau zokor, plateau pika, and mice were 5200, 8,600,000, and 25,000 MLD/kg. These results showed that biomimetic mineralization could greatly improve the thermal stability of botulinum toxin type D and reduce the damaging effect of the gastrointestinal contents of target animals to botulinum toxin type D. The mineralized toxin could be used to control the population density of urban rodents. This research provides new insights into the protection of toxin protein substances.
url https://doi.org/10.1038/s41598-021-83733-9
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