Fractionation of macroalgae carbohydrates using hydrothermal and dilute inorganic salt pretreatments to produce oligosaccharides and furans

IF 2.9 4区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Pedro L. Martins, Cristiana Andrade, Luís C. Duarte, Alberto Reis, Helena Pereira, Florbela Carvalheiro
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Abstract

Furans are among the most important compounds derived from biomass, providing conversion pathways for sustainable alternatives to petroleum-based fuels and materials. Furfural, 5-hydroxymethylfurfural (5-HMF), and 5-methylfurfural (5-MF) are furans that can be obtained by carbohydrate dehydration under acidic conditions at elevated temperature and pressure. One of the mechanisms to produce these compounds from lignocellulosic materials relies on prior fractionation of biomass carbohydrates and further dehydration catalysis. However, this is a costly and technically challenging method and it would be advantageous to develop a one-pot conversion mechanism that facilitates simultaneous biomass fractionation and conversion to furans. Ulva lactuca is an alga that has the advantage of being lignin-free and rich in glucose, rhamnose, and xylose, which are ideal for producing 5-HMF, 5-MF, and furfural, respectively. The high diversity of sugar constituents is also relevant for the production of added-value oligosaccharides. Catalysis with inorganic salts has been reported as a successful tool for biomass upgrading to furans when combined with hydrothermal pretreatments, and could provide a cheap and environmentally friendly one-step methodology for furan production. This study therefore aimed to investigate the effect of hydrothermal and dilute acid pretreatments, as well as treatment with inorganic salt solutions (ferric chloride, ferric nitrate, and aluminium nitrate) on U. lactuca biomass to produce oligosaccharides, monosaccharides, and furans (furfural, 5-HMF, and 5-MF). These methods resulted in a maximum sugar solubilization of 65% in non-salt-assisted hydrothermal pretreatments and 84% in salt-assisted hydrothermal pretreatments, with inorganic salt catalysis also resulting in 100% xylose, 36% glucose, and 46% rhamnose conversion to the respective furans.

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利用水热和稀无机盐预处理分离大型藻类碳水化合物,生产低聚糖和呋喃
呋喃是从生物质中提取的最重要的化合物之一,为石油基燃料和材料的可持续替代品提供了转化途径。糠醛、5-羟甲基糠醛(5-HMF)和5-甲基糠醛(5-MF)是可以在高温高压酸性条件下通过碳水化合物脱水得到的呋喃。从木质纤维素材料中生产这些化合物的机制之一依赖于生物质碳水化合物的预先分馏和进一步的脱水催化。然而,这是一种昂贵且具有技术挑战性的方法,开发一锅转化机制有利于同时进行生物质分馏和转化为呋喃。Ulva lactuca是一种不含木质素且富含葡萄糖、鼠李糖和木糖的藻类,它们分别是生产5-HMF、5-MF和糠醛的理想原料。糖成分的高度多样性也与高附加值低聚糖的生产有关。据报道,无机盐催化与水热预处理相结合,是生物质转化为呋喃的成功工具,可以为呋喃生产提供一种廉价且环保的一步法。因此,本研究旨在探讨水热预处理和稀酸预处理以及无机盐溶液(氯化铁、硝酸铁和硝酸铝)对U. lactuca生物质产生低聚糖、单糖和呋喃(糠醛、5-HMF和5-MF)的影响。这些方法的结果表明,在无盐辅助水热预处理中,糖的最大增溶率为65%,在盐辅助水热预处理中为84%,在无机盐的催化下,木糖、葡萄糖和鼠李糖分别转化为100%、36%和46%的呋喃。
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来源期刊
CiteScore
7.80
自引率
5.10%
发文量
122
审稿时长
4.5 months
期刊介绍: Biofuels, Bioproducts and Biorefining is a vital source of information on sustainable products, fuels and energy. Examining the spectrum of international scientific research and industrial development along the entire supply chain, The journal publishes a balanced mixture of peer-reviewed critical reviews, commentary, business news highlights, policy updates and patent intelligence. Biofuels, Bioproducts and Biorefining is dedicated to fostering growth in the biorenewables sector and serving its growing interdisciplinary community by providing a unique, systems-based insight into technologies in these fields as well as their industrial development.
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