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用于生物乙醇生产的海洋酶和微生物。

Marine Enzymes and Microorganisms for Bioethanol Production.

作者信息

Swain M R, Natarajan V, Krishnan C

机构信息

Indian Institute of Technology Madras, Chennai, India.

Indian Institute of Technology Madras, Chennai, India.

出版信息

Adv Food Nutr Res. 2017;80:181-197. doi: 10.1016/bs.afnr.2016.12.003. Epub 2017 Jan 6.

Abstract

Bioethanol is a potential alternative fuel to fossil fuels. Bioethanol as a fuel has several economic and environmental benefits. Though bioethanol is produced using starch and sugarcane juice, these materials are in conflict with food availability. To avoid food-fuel conflict, the second-generation bioethanol production by utilizing nonfood lignocellulosic materials has been extensively investigated. However, due to the complexity of lignocellulose architecture, the process is complicated and not economically competitive. The cultivation of lignocellulosic energy crops indirectly affects the food supplies by extensive land use. Marine algae have attracted attention to replace the lignocellulosic feedstock for bioethanol production, since the algae grow fast, do not use land, avoid food-fuel conflict and have several varieties to suit the cultivation environment. The composition of algae is not as complex as lignocellulose due to the absence of lignin, which renders easy hydrolysis of polysaccharides to fermentable sugars. Marine organisms also produce cold-active enzymes for hydrolysis of starch, cellulose, and algal polysaccharides, which can be employed in bioethanol process. Marine microoorganisms are also capable of fermenting sugars under high salt environment. Therefore, marine biocatalysts are promising for development of efficient processes for bioethanol production.

摘要

生物乙醇是化石燃料的一种潜在替代燃料。作为燃料,生物乙醇具有若干经济和环境效益。尽管生物乙醇是利用淀粉和甘蔗汁生产的,但这些原料与粮食供应存在冲突。为避免粮食与燃料的冲突,利用非粮食木质纤维素材料生产第二代生物乙醇已得到广泛研究。然而,由于木质纤维素结构的复杂性,该过程复杂且缺乏经济竞争力。木质纤维素能源作物的种植通过大量使用土地间接影响粮食供应。海藻已引起人们的关注,有望取代木质纤维素原料用于生物乙醇生产,因为海藻生长迅速,不占用土地,避免了粮食与燃料的冲突,并且有多个品种适合不同的养殖环境。由于海藻不含木质素,其成分不像木质纤维素那样复杂,这使得多糖易于水解为可发酵糖。海洋生物还产生用于水解淀粉、纤维素和海藻多糖的冷活性酶,这些酶可用于生物乙醇生产过程。海洋微生物也能够在高盐环境下发酵糖类。因此,海洋生物催化剂在开发高效生物乙醇生产工艺方面具有广阔前景。

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