Determining the biodegradation of functionalised cellulose esters.

IF 3.1 3区 化学 Q2 CHEMISTRY, PHYSICAL
Katrina Entwistle, Sandhya Moise, Fatma Guler, Katherine A Smart, Matthew Crow, Christopher J Chuck
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引用次数: 0

Abstract

Recently, there has been an increased interest in developing functionalised carbohydrates, such as cellulose palmitate, as novel replacements for petroplastics. The functionalisation gives the materials excellent water barrier properties, as well as processability and mechanical properties akin to PET, while potentially having superior biodegradability to conventional first-generation biopolymers. However, the true biodegradability of these novel polymers is still unknown with some recent reports suggesting that it is limited. In this study, we investigated the potential of cellulose palmitate to biodegrade under controlled laboratory conditions, comparing the polymer to cellulose acetate. To this end, studies using specific enzymes, targeted whole cell fungal degradation and model edibility experiments were devised to study the biodegradability at end-of-life. On an enzymatic level, a combination of cellulase and lipase enzymes were found to hydrolyse the fatty acid linkages, allowing the cellulases to access the carbohydrate chain and release glucose. Under optimal conditions the biopolymer was completely hydrolysed within 6 hours. A soil fungi was then isolated from a compost heap that had been loaded with the functional material, to establish the most suitable species for whole cell degradation. This common soil fungi, Mucor sp., was then grown successfully under lab conditions on the functional material as a 95% carbon source. Finally, an edibility experiment was designed, using pepsin and pancreatic enzymes at precise pH concentrations found in the gastrointestinal tract to mimic real life conditions of ingestion by birds. While cellulose acetate broke down under just the acidic conditions, with no enzymes, the cellulose palmitate was found to be stable at the acidic conditions, but hydrolyse over 7 days when the enzymes were present. To the best of our knowledge this is the first study to confirm the biodegradability of functionalised cellulose highlighting the large promise of functionalised carbohydrates as a sustainable alternative to petrochemical plastics within the packaging industry.

测定功能化纤维素酯的生物降解。
最近,人们对开发功能化碳水化合物(如棕榈酸纤维素)作为石油塑料的新替代品越来越感兴趣。功能化使材料具有优异的水阻隔性能,以及类似于PET的可加工性和机械性能,同时具有比传统的第一代生物聚合物优越的生物降解性。然而,这些新型聚合物的真正生物降解性仍然未知,最近的一些报道表明它是有限的。在这项研究中,我们研究了棕榈酸纤维素在受控的实验室条件下生物降解的潜力,并将其与醋酸纤维素进行了比较。为此,设计了使用特定酶、靶向全细胞真菌降解和模型可食性实验来研究其生命末期的生物降解性。在酶的水平上,发现纤维素酶和脂肪酶的结合可以水解脂肪酸链,使纤维素酶进入碳水化合物链并释放葡萄糖。在最佳条件下,生物聚合物在6小时内完全水解。然后从装载了功能材料的堆肥堆中分离出一种土壤真菌,以建立最适合整个细胞降解的物种。这种常见的土壤真菌,毛霉,然后在实验室条件下成功地生长在功能材料上,作为95%的碳源。最后,设计了一项可食性实验,使用在胃肠道中发现的胃蛋白酶和胰腺酶,在精确的pH浓度下模拟鸟类的真实摄入条件。当醋酸纤维素在没有酶的酸性条件下分解时,棕榈酸纤维素在酸性条件下是稳定的,但在有酶存在的情况下水解超过7天。据我们所知,这是首次证实功能化纤维素的生物降解性的研究,突出了功能化碳水化合物作为包装行业石化塑料的可持续替代品的巨大前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Faraday Discussions
Faraday Discussions 化学-物理化学
自引率
0.00%
发文量
259
期刊介绍: Discussion summary and research papers from discussion meetings that focus on rapidly developing areas of physical chemistry and its interfaces
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