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通过合成酵母平台从棕色大型海藻糖高效生产乙醇。

Efficient ethanol production from brown macroalgae sugars by a synthetic yeast platform.

机构信息

1] Bio Architecture Lab Inc., 604 Bancroft Way, Suite A, Berkeley, California 94710, USA [2].

1] Bio Architecture Lab Inc., 604 Bancroft Way, Suite A, Berkeley, California 94710, USA [2] Manus Biosynthesis Inc., 790 Memorial Drive, Suite 102, Cambridge, Massachusetts 02139 (C.N.S.S.); Calysta Energy, 1140 O'Brien Drive, Menlo Park, California 94025 (D.D.R.); Sutro Biopharma lnc., 310 Utah Avenue, Suite 150, South San Francisco, California 94080, USA (A.G.); Total New Energies USA, 5858 Horton Street, Emeryville, California 94560 (S.A.T.; V.R.).

出版信息

Nature. 2014 Jan 9;505(7482):239-43. doi: 10.1038/nature12771. Epub 2013 Dec 1.

Abstract

The increasing demands placed on natural resources for fuel and food production require that we explore the use of efficient, sustainable feedstocks such as brown macroalgae. The full potential of brown macroalgae as feedstocks for commercial-scale fuel ethanol production, however, requires extensive re-engineering of the alginate and mannitol catabolic pathways in the standard industrial microbe Saccharomyces cerevisiae. Here we present the discovery of an alginate monomer (4-deoxy-L-erythro-5-hexoseulose uronate, or DEHU) transporter from the alginolytic eukaryote Asteromyces cruciatus. The genomic integration and overexpression of the gene encoding this transporter, together with the necessary bacterial alginate and deregulated native mannitol catabolism genes, conferred the ability of an S. cerevisiae strain to efficiently metabolize DEHU and mannitol. When this platform was further adapted to grow on mannitol and DEHU under anaerobic conditions, it was capable of ethanol fermentation from mannitol and DEHU, achieving titres of 4.6% (v/v) (36.2 g l(-1)) and yields up to 83% of the maximum theoretical yield from consumed sugars. These results show that all major sugars in brown macroalgae can be used as feedstocks for biofuels and value-added renewable chemicals in a manner that is comparable to traditional arable-land-based feedstocks.

摘要

对燃料和粮食生产用自然资源的需求不断增加,这要求我们探索利用高效、可持续的原料,例如褐藻。然而,要充分发挥褐藻作为商业规模燃料乙醇生产原料的潜力,就需要对标准工业微生物酿酒酵母中的褐藻酸盐和甘露醇代谢途径进行广泛的重新设计。在这里,我们发现了一种来自解聚褐藻酸真核生物 Asteromyces cruciatus 的褐藻酸盐单体(4-脱氧-L-赤式-5-己酮糖醛酸,或 DEHU)转运蛋白。该转运蛋白基因的基因组整合和过表达,以及必需的细菌褐藻酸盐和去调控的天然甘露醇代谢基因的过表达,赋予了酿酒酵母菌株有效代谢 DEHU 和甘露醇的能力。当这个平台进一步适应在厌氧条件下利用甘露醇和 DEHU 生长时,它能够从甘露醇和 DEHU 中进行乙醇发酵,达到 4.6%(v/v)(36.2 g/L)的浓度和高达消耗糖的 83%的最大理论产率。这些结果表明,褐藻中的所有主要糖都可以作为生物燃料和高附加值可再生化学品的原料,其方式与传统基于耕地的原料相当。

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