Predicting and Quantifying the Biodegradability of biopolymers
预测和量化生物聚合物的生物降解性
基本信息
- 批准号:2596020
- 负责人:
- 金额:--
- 依托单位:
- 依托单位国家:英国
- 项目类别:Studentship
- 财政年份:2021
- 资助国家:英国
- 起止时间:2021 至 无数据
- 项目状态:未结题
- 来源:
- 关键词:
项目摘要
This project aims to develop a new framework for predicting and quantifying the biodegradability of biopolymers with greater accuracy than current testing allows.There is increasing interest in the use of biopolymers such as chitin, cellulose and starch as alternatives to the synthetic polymers derived from fossil fuel as feedstock for global industrial and consumer products. It is envisaged that switching from fossil fuels to natural polymers, which are produced by many living organisms such as plants, can help to negate climate change impacts of chemical production.In recent years, the consumer chemical and products industry has increased its production of synthetic polymers, with at least 140 million tons now being produced every year (Siracusa, 2019). These polymers are used in everything from plastics to cosmetics and pharmaceuticals as well as personal hygiene products (Shah et al., 2008). With the human population still growing and set to reach 9.7 billion by 2100 (UN, 2019), demand for such products is likely to increase over the next few decades. It is becoming increasingly important therefore to assess the impact of these polymers on the natural environment, both during their production and after their disposal. At present most polymers in use are produced through the fractional distillation of crude oil, a process that is associated with the release of greenhouse gases thereby contributing to climate change. Additionally, some of these polymers may have adverse effects on wildlife when they enter the natural marine or terrestrial environments, damaging biodiversity as a result.It is hoped that chemical products produced using these biopolymers will be more biodegradable than the current synthetic ones and so will have little impact on the stability of ecosystems or biodiversity in general. However, little is known about how biodegradable these polymers are, and there remains some uncertainty as how to test their biodegradability. The many regulatory biodegradation tests that exist are more than 30 years old and were designed to assess small, low molecular weight chemicals and their applicability for assessing larger, more complex polymers has not adequately been assessed. In addition, there is a need to develop screening tools that allow for rapid assessment of the likelihood of polymer biodegradation in order to guide upstream innovation.Limitations to existing tests highlight a research gap in our understanding of how to measure biodegradation in polymers. The switch to biopolymers has great potential to ameliorate the twin issues of climate change and biodiversity loss however, it is crucial that their biodegradability can be predicted and quantified before they are disposed at scale into the environment.This will involve using bioinformatics tools to identify enzymatic pathways of interest for biodegrading polymers and the range of enzymes capable of catalysing these pathways. Microbial ecology techniques will then be used to determine the relative abundance of microbes that produce these enzymes in the relevant environments (i.e. where the polymers will end up after disposal). Adaptations will also be made to some existing biodegradation tests so these can be combined to form a cohesive framework that can reliably predict and quantify the biodegradability of polymers.
该项目旨在开发一种新的框架,用于预测和量化生物聚合物的生物降解性,其准确性高于目前的测试允许范围。人们越来越有兴趣将甲壳素、纤维素和淀粉等生物聚合物用作从化石燃料中提取的合成聚合物的替代品,作为全球工业和消费品的原料。预计从化石燃料转向天然聚合物可以帮助抵消化学生产对气候变化的影响。近年来,消费化学品和产品行业增加了合成聚合物的生产,目前每年至少生产1.4亿吨(Siracusa,2019年)。这些聚合物被用于从塑料到化妆品和药品以及个人卫生用品的一切领域(Shah等人,2008年)。由于人口仍在增长,到2100年将达到97亿(联合国,2019年),未来几十年对此类产品的需求可能会增加。因此,评估这些聚合物在生产期间和处置后对自然环境的影响变得越来越重要。目前使用的大多数聚合物都是通过原油的分馏蒸馏生产的,这一过程与温室气体的排放有关,从而导致气候变化。此外,当这些聚合物进入自然海洋或陆地环境时,可能会对野生动物产生不利影响,从而破坏生物多样性。人们希望使用这些生物聚合物生产的化学产品比目前合成的产品更具生物降解性,因此对生态系统或生物多样性的稳定性影响不大。然而,人们对这些聚合物的生物降解性知之甚少,如何测试它们的生物降解性仍然存在一些不确定性。现有的许多调节性生物降解测试已有30多年的历史,旨在评估小分子化学物质,而它们对评估较大、更复杂的聚合物的适用性尚未得到充分评估。此外,有必要开发筛选工具,以便快速评估聚合物生物降解的可能性,以指导上游创新。现有测试的局限性突显了我们在如何衡量聚合物生物降解方面的研究差距。转向生物聚合物有很大的潜力来改善气候变化和生物多样性丧失这两个问题,然而,在大规模处置到环境中之前,预测和量化它们的生物降解性是至关重要的。这将涉及使用生物信息学工具来确定生物降解聚合物感兴趣的酶途径以及能够催化这些途径的酶的范围。然后将使用微生物生态学技术来确定在相关环境中产生这些酶的微生物的相对丰度(即聚合物在处置后将在哪里结束)。还将对一些现有的生物降解测试进行调整,以便将这些测试结合在一起,形成一个能够可靠地预测和量化聚合物的生物降解性的内聚框架。
项目成果
期刊论文数量(0)
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其他文献
吉治仁志 他: "トランスジェニックマウスによるTIMP-1の線維化促進機序"最新医学. 55. 1781-1787 (2000)
Hitoshi Yoshiji 等:“转基因小鼠中 TIMP-1 的促纤维化机制”现代医学 55. 1781-1787 (2000)。
- DOI:
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LiDAR Implementations for Autonomous Vehicle Applications
- DOI:
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2021 - 期刊:
- 影响因子:0
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吉治仁志 他: "イラスト医学&サイエンスシリーズ血管の分子医学"羊土社(渋谷正史編). 125 (2000)
Hitoshi Yoshiji 等人:“血管医学与科学系列分子医学图解”Yodosha(涉谷正志编辑)125(2000)。
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Effect of manidipine hydrochloride,a calcium antagonist,on isoproterenol-induced left ventricular hypertrophy: "Yoshiyama,M.,Takeuchi,K.,Kim,S.,Hanatani,A.,Omura,T.,Toda,I.,Akioka,K.,Teragaki,M.,Iwao,H.and Yoshikawa,J." Jpn Circ J. 62(1). 47-52 (1998)
钙拮抗剂盐酸马尼地平对异丙肾上腺素引起的左心室肥厚的影响:“Yoshiyama,M.,Takeuchi,K.,Kim,S.,Hanatani,A.,Omura,T.,Toda,I.,Akioka,
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