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1.
植物木质素生物合成调控研究已在造纸树种与饲草品质的改良中取得了许多进展。随着对木质纤维原料乙醇发酵研究的兴起,植物木质素合成调控再次成为研究热点。该文总结了目前生物质能源利用的现状,同时针对木质素在木质纤维乙醇发酵中的限制作用,综述了近年来植物木质素合成调控的研究进展,提出了今后的研究方向和内容,并展望了木质素合成调控在木质纤维乙醇发酵中的应用。  相似文献   

2.
利用植物木质纤维资源发酵产乙醇越来越受到人们的重视,但是要达到工业生产仍然存在很多难题。最近在利用植物基因工程技术改善植物自身性状,以利于能源植物的研究方面取得了一定的进展,这些研究包括减少植物自身细胞壁中的木质素含量、细胞中积累表达纤维素酶和木聚耱酶等的方法,使产生的生物质更利于降解利用。  相似文献   

3.
植物肉桂醇脱氢酶及其基因研究进展   总被引:3,自引:0,他引:3  
肉桂醇脱氢酶(cinnamyl alcohol dehydrogenase,CAD)作为植物次生代谢特别是木质素合成的关键酶,与植物生长发育和抵御病原菌入侵关系密切,研究CAD基因表达调控及其与组织木质化的关系具有重要的植物生理学意义.该文综述了植物CAD的蛋白特征、酶学性质、基因分布和分类、基因结构和表达调控以及CAD表达与木质素合成的关系,为研究CAD在植物生长发育和抗病中的作用提供理论指导.  相似文献   

4.
利用植物木质纤维资源发酵生产乙醇越来越受到人们的重视,但是要实现工业化生产仍然存在很多难题。最近,利用植物基因工程技术,改善植物自身性状,包括减少植物自身细胞壁中木质素含量、细胞中积累表达纤维素酶和木聚糖酶等方法,使自生产生的生物质更利于降解利用。目前,对这种新的能源转基因植物的研究取得了一定进展。  相似文献   

5.
植物的木质化是指木质素单体氧化聚合形成的木质素在细胞壁上沉积的过程.由于涉及多步酶促反应,因而它是一个被精细调控的复杂而动态的生物学过程.木质化不仅有利于维持植物正常生命活动,而且能够增强植物适应外界生物和非生物胁迫的能力.更为重要的是,植物细胞壁是地球上最为丰富的可再生能源物质,因此,开展植物细胞壁木质化的研究具有重要的科学意义和应用价值.本文综合国内外的最新研究进展,简要介绍了植物木质化的过程和细胞类型,重点总结了木质化过程中的转录调控、microRNA调控、激素和环境调控,以及木质化发生的最新诱导体系和成像技术.这将有助于人们更全面深入地认识木质化,并为木质素生物工程的开发利用奠定重要的理论基础.  相似文献   

6.
木质素降解产物对微生物产生的抑制作用,是燃料乙醇生物炼制的主要瓶颈之一。本文以树干毕赤酵母为发酵菌株,研究木质素降解产物中3种酚酮类(4-羟基苯乙酮、4-羟基-3-甲氧基苯乙酮、4-羟基-3,5-二甲氧基苯乙酮)对其木糖乙醇发酵及酵母细胞脂肪酸组成的影响。采用高效液相色谱(HPLC)和气相色谱-质谱联用(GC/MS)技术对乙醇发酵性能和酵母细胞脂肪酸组成进行分析。研究结果表明,酚酮类物质对乙醇发酵呈现抑制作用且其分子量越低抑制作用越明显,当4-羟基苯乙酮浓度为1.50 g/L时,发酵24 h的木糖利用率、乙醇得率和乙醇浓度分别下降了42.47%、5.30%和9.76 g/L;培养基中存在酚酮类物质时,酵母细胞中的不饱和脂肪酸的比例上升,添加1.50 g/L的3种酚酮类物质后,树干毕赤酵母细胞不饱和脂肪酸和饱和脂肪酸的比例从原来的2.58分别上升到3.03、3.06和3.61,酵母细胞膜的流动性随之上升,不稳定性提高。因此,酚酮类物质能够降低酵母生长、提高不饱和脂肪酸的比例以及降低乙醇发酵能力,有效降低或去除木质素降解产物含量是提高木质纤维原料生物炼制的关键。  相似文献   

7.
醇脱氢酶属于高等植物中普遍存在的一个锌结合脱氢/还原蛋白超家族,根据作用底物不同,将高等植物中的醇脱氢酶分为3个家族:乙醇脱氢酶(alcohol dehydrogenase,ADH)、肉桂醇脱氢酶(cinnamyl alcohol dehydrogenase,CAD)、甲醛脱氢酶(formaldehyde dehydrogenase,FDH)。3个家族均不同程度地响应植物逆境胁迫,不仅受低氧胁迫等逆境的诱导,也受ABA等激素的调控。CAD催化木质素合成,参与构建植物防御体系。ADH在植物香气物质合成中发挥作用,受乙烯等激素调控,选择性地进行短的直链醇和醛之间的相互转化,催化香气物质前体的合成。本文综述了醇脱氢酶家族在高等植物中对逆境的响应、木质素和香气物质合成方面的研究概况,以期为醇脱氢酶的深入研究提供参考。  相似文献   

8.
木质纤维素是一种广泛存在的可再生生物质资源,主要由纤维素、半纤维素和木质素组成。如何更有效地综合利用木质纤维素是当前面临的世界性难题。本文中,笔者梳理了木质纤维素生物化学法转化生产以燃料乙醇为代表的生物基产品,特别是转化过程中关键技术环节的研究现状及难点,深入探讨了木质素的生物转化利用趋势,并综述了合成生物学在这些领域的研究趋势和最新成果。本文力图描绘出木质纤维素生物炼制研究全景,为后续研究提供潜在思路。  相似文献   

9.
巴西橡胶树HbMYB52基因的克隆及其在拟南芥中的表达   总被引:1,自引:0,他引:1  
为揭示Hb MYB52在巴西橡胶树(Hevea brasiliensis)木材发育过程中的功能,从其转录组中分离克隆到1个MYB转录因子G21亚组成员基因,命名为Hb MYB52,开放阅读框为726 bp,编码242个氨基酸的蛋白,在木质部中高度表达。在拟南芥(Arabidopsis thaliana)中过表达Hb MYB52,虽未改变转基因植株株型,但植株维管束间纤维细胞壁明显增厚,同时抑制了木质纤维、导管次生壁形成。转基因拟南芥株系3和株系6中纤维素和木质素含量减少,相应各组分合成的关键酶基因的表达量也不同程度下降;株系8产生了木质素异位沉积,且木质素合成关键酶基因表达活跃。因此,推测Hb MYB52参与了植物次生壁形成调控,在拟南芥次生壁形成中可能发挥了双重功能:一方面负调控维管束次生壁形成以及各组分的生物合成,另一方面具有促进束间纤维次生壁增厚的作用。  相似文献   

10.
木质纤维生产燃料乙醇工艺的研究进展   总被引:2,自引:0,他引:2  
利用丰富而廉价的木质纤维原料代替粮食生产燃料乙醇,对经济和社会的可持续发展有着重要的意义。以木质纤维为原料发酵生产燃料乙醇可分为4种工艺:分步糖水解化发酵法、同步糖化发酵法、同步糖化共发酵法和直接微生物转化法。介绍了以上4种工艺的研究进展,并对今后进一步研究提出了建议。  相似文献   

11.
Nowadays there is a growing interest on the use of both lignocellulosic and algae biomass to produce biofuels (i.e. biohydrogen, ethanol and methane), as future alternatives to fossil fuels. In this purpose, thermal and thermo-chemical pretreatments have been widely investigated to overcome the natural physico-chemical barriers of such biomass and to enhance biofuel production from lignocellulosic residues and, more recently, marine biomass (i.e. macro and microalgae). However, the pretreatment technologies lead not only to the conversion of carbohydrate polymers (ie cellulose, hemicelluloses, starch, agar) to soluble monomeric sugar (ie glucose, xylose, arabinose, galactose), but also the generation of various by-products (i.e. furfural and 5-HMF). In the case of lignocellulosic residues, part of the lignin can also be degraded in lignin derived by-products, mainly composed of phenolic compounds. Although the negative impact of such by-products on ethanol production has been widely described in literature, studies on their impact on biohydrogen and methane production operated with mixed cultures are still very limited.  相似文献   

12.
Lignocellulosic biomass from agricultural crop residues and forest waste represents an abundant renewable resource for bioenergy and future biofuel. The current bottleneck of lignocellulosic biofuel production is the hydrolysis of biomass to sugar. To understand the enzymatic hydrolysis of complex biomasses, in this report, lignocellulolytic enzymes secretion by Phanerochaete chrysosporium cultivated in different natural lignocellulosic biomass such as corn stover, hay, sawdust, sugarcane baggase, wheat bran and wood chips were quantitatively analyzed with the iTRAQ technique using LC-MS/MS. A diverse groups of enzymes, including cellulases, glycoside hydrolases, hemicellulases, lignin degrading enzymes, peroxidases, esterases, lipases, chitinases, peptidases, protein translocating transporter and hypothetical proteins were quantified, of which several were novel lignocellulosic biomass hydrolyzing enzymes. The quantitative expression and regulation of lignocellulolytic enzymes by P. chrysosporium were dependent on the nature and complexity of lignocellulosic biomass as well as physical size of the biomass. The iTRAQ data revealed oxidative and hydrolytic lignin degrading mechanism of P. chrysosporium. Numerous proteins presumed to be involved in natural lignocellulosic biomass transformation and degradation were expressed and produced in variable quantities in response to different agricultural and forest wastes.  相似文献   

13.
Improvement of biomass through lignin modification   总被引:7,自引:1,他引:6  
Lignin, a major component of the cell wall of vascular plants, has long been recognized for its negative impact on forage quality, paper manufacturing, and, more recently, cellulosic biofuel production. Over the last two decades, genetic and biochemical analyses of brown midrib mutants of maize, sorghum and related grasses have advanced our understanding of the relationship between lignification and forage digestibility. This work has also inspired genetic engineering efforts aimed at generating crops with altered lignin, with the expectation that these strategies would enhance forage digestibility and/or pulping efficiency. The knowledge gained from these bioengineering efforts has greatly improved our understanding of the optimal lignin characteristics required for various applications of lignocellulosic materials while also contributing to our understanding of the lignin biosynthetic pathway. The recent upswing of interest in cellulosic biofuel production has become the new focus of lignin engineering. Populus trichocarpa and Brachypodium distachyon are emerging as model systems for energy crops. Lignin research on these systems, as well as on a variety of proposed energy crop species, is expected to shed new light on lignin biosynthesis and its regulation in energy crops, and lead to rational genetic engineering approaches to modify lignin for improved biofuel production.  相似文献   

14.
Future biorefineries will integrate biomass conversion processes to produce fuels, power, heat and value-added chemicals. Due to its low price and wide distribution, lignocellulosic biomass is expected to play an important role toward this goal. Regarding renewable biofuel production, bioethanol from lignocellulosic feedstocks is considered the most feasible option for fossil fuels replacement since these raw materials do not compete with food or feed crops. In the overall process, lignin, the natural barrier of the lignocellulosic biomass, represents an important limiting factor in biomass digestibility. In order to reduce the recalcitrant structure of lignocellulose, biological pretreatments have been promoted as sustainable and environmentally friendly alternatives to traditional physico-chemical technologies, which are expensive and pollute the environment. These approaches include the use of diverse white-rot fungi and/or ligninolytic enzymes, which disrupt lignin polymers and facilitate the bioconversion of the sugar fraction into ethanol. As there is still no suitable biological pretreatment technology ready to scale up in an industrial context, white-rot fungi and/or ligninolytic enzymes have also been proposed to overcome, in a separated or in situ biodetoxification step, the effect of the inhibitors produced by non-biological pretreatments. The present work reviews the latest studies regarding the application of different microorganisms or enzymes as useful and environmentally friendly delignification and detoxification technologies for lignocellulosic biofuel production. This review also points out the main challenges and possible ways to make these technologies a reality for the bioethanol industry.  相似文献   

15.
As one of the most abundant polymers in biosphere, lignin has attracted extensive attention as a kind of promising feedstock for biofuel and bio-based products. However, the utilization of lignin presents various challenges in that its complex composition and structure and high resistance to degradation. Lignin conversion through biological platform harnesses the catalytic power of microorganisms to decompose complex lignin molecules and obtain value-added products through biosynthesis. Given the heterogeneity of lignin, various microbial metabolic pathways are involved in lignin bioconversion processes, which has been characterized in extensive research work. With different types of lignin substrates (e.g., model compounds, technical lignin, and lignocellulosic biomass), several bacterial and fungal species have been proved to own lignin-degrading abilities and accumulate microbial products (e.g., lipid and polyhydroxyalkanoates), while the lignin conversion efficiencies are still relatively low. Genetic and metabolic strategies have been developed to enhance lignin biodegradation by reprogramming microbial metabolism, and diverse products, such as vanillin and dicarboxylic acids were also produced from lignin. This article aims at presenting a comprehensive review on lignin bioconversion including lignin degradation mechanisms, metabolic pathways, and applications for the production of value-added bioproducts. Advanced techniques on genetic and metabolic engineering are also covered in the recent development of biological platforms for lignin utilization. To conclude this article, the existing challenges for efficient lignin bioprocessing are analyzed and possible directions for future work are proposed.  相似文献   

16.
Ethanol and other biofuels produced from lignocellulosic biomass represent a renewable, more carbon-balanced alternative to both fossil fuels and corn-derived or sugarcane-derived ethanol. Unfortunately, the presence of lignin in plant cell walls impedes the breakdown of cell wall polysaccharides to simple sugars and the subsequent conversion of these sugars to usable fuel. Recent advances in the understanding of lignin composition, polymerization, and regulation have revealed new opportunities for the rational manipulation of lignin in future bioenergy crops, augmenting the previous successful approach of manipulating lignin monomer biosynthesis. Furthermore, recent studies on lignin degradation in nature may provide novel resources for the delignification of dedicated bioenergy crops and other sources of lignocellulosic biomass.  相似文献   

17.
Room temperature ionic liquids (RTILs) are emerging as attractive and green solvents for lignocellulosic biomass pretreatment. The unique solvating properties of RTILs foster the disruption of the 3D network structure of lignin, cellulose, and hemicellulose, which allows high yields of fermentable sugars to be produced in subsequent enzymatic hydrolysis. In the current review, we summarize the physicochemical properties of RTILs that make them effective solvents for lignocellulose pretreatment including mechanisms of interaction between lignocellulosic biomass subcomponents and RTILs. We also highlight several recent strategies that exploit RTILs and generate high yields of fermentable sugars suitable for downstream biofuel production, and address new opportunities for use of lignocellulosic components, including lignin. Finally, we address some of the challenges that remain before large-scale use of RTILs may be achieved.  相似文献   

18.
? The lignin content of feedstock has been proposed as one key agronomic trait impacting biofuel production from lignocellulosic biomass. 4-Coumarate:coenzyme A ligase (4CL) is one of the key enzymes involved in the monolignol biosynthethic pathway. ? Two homologous 4CL genes, Pv4CL1 and Pv4CL2, were identified in switchgrass (Panicum virgatum) through phylogenetic analysis. Gene expression patterns and enzymatic activity assays suggested that Pv4CL1 is involved in monolignol biosynthesis. Stable transgenic plants were obtained with Pv4CL1 down-regulated. ? RNA interference of Pv4CL1 reduced extractable 4CL activity by 80%, leading to a reduction in lignin content with decreased guaiacyl unit composition. Altered lignification patterns in the stems of RNAi transgenic plants were observed with phloroglucinol-HCl staining. The transgenic plants also had uncompromised biomass yields. After dilute acid pretreatment, the low lignin transgenic biomass had significantly increased cellulose hydrolysis (saccharification) efficiency. ? The results demonstrate that Pv4CL1, but not Pv4CL2, is the key 4CL isozyme involved in lignin biosynthesis, and reducing lignin content in switchgrass biomass by silencing Pv4CL1 can remarkably increase the efficiency of fermentable sugar release for biofuel production.  相似文献   

19.
Lignocelluloses from plant cell walls are attractive resources for sustainable biofuel production. However, conversion of lignocellulose to biofuel is more expensive than other current technologies, due to the costs of chemical pretreatment and enzyme hydrolysis for cell wall deconstruction. Recalcitrance of cell walls to deconstruction has been reduced in many plant species by modifying plant cell walls through biotechnology. These results have been achieved by reducing lignin content and altering its composition and structure. Reduction of recalcitrance has also been achieved by manipulating hemicellulose biosynthesis and by overexpression of bacterial enzymes in plants to disrupt linkages in the lignin–carbohydrate complexes. These modified plants often have improved saccharification yield and higher ethanol production. Cell wall‐degrading (CWD) enzymes from bacteria and fungi have been expressed at high levels in plants to increase the efficiency of saccharification compared with exogenous addition of cellulolytic enzymes. In planta expression of heat‐stable CWD enzymes from bacterial thermophiles has made autohydrolysis possible. Transgenic plants can be engineered to reduce recalcitrance without any yield penalty, indicating that successful cell wall modification can be achieved without impacting cell wall integrity or plant development. A more complete understanding of cell wall formation and structure should greatly improve lignocellulosic feedstocks and reduce the cost of biofuel production.  相似文献   

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