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细胞内和细胞外的铁掺入均提高了柳枝稷(Panicum virgatum L.)生物质的产量和糖化率。

Iron incorporation both intra- and extra-cellularly improves the yield and saccharification of switchgrass (Panicum virgatum L.) biomass.

作者信息

Lin Chien-Yuan, Donohoe Bryon S, Bomble Yannick J, Yang Haibing, Yunes Manal, Sarai Nicholas S, Shollenberger Todd, Decker Stephen R, Chen Xiaowen, McCann Maureen C, Tucker Melvin P, Wei Hui, Himmel Michael E

机构信息

Biosciences Center, National Renewable Energy Laboratory, Golden, CO, 80401, USA.

Joint BioEnergy Institute, Lawrence Berkeley National Laboratory, Emeryville, CA, 94608, USA.

出版信息

Biotechnol Biofuels. 2021 Mar 4;14(1):55. doi: 10.1186/s13068-021-01891-4.

Abstract

BACKGROUND

Pretreatments are commonly used to facilitate the deconstruction of lignocellulosic biomass to its component sugars and aromatics. Previously, we showed that iron ions can be used as co-catalysts to reduce the severity of dilute acid pretreatment of biomass. Transgenic iron-accumulating Arabidopsis and rice plants exhibited higher iron content in grains, increased biomass yield, and importantly, enhanced sugar release from the biomass.

RESULTS

In this study, we used intracellular ferritin (FerIN) alone and in combination with an improved version of cell wall-bound carbohydrate-binding module fused iron-binding peptide (IBPex) specifically targeting switchgrass, a bioenergy crop species. The FerIN switchgrass improved by 15% in height and 65% in yield, whereas the FerIN/IBPex transgenics showed enhancement up to 30% in height and 115% in yield. The FerIN and FerIN/IBPex switchgrass had 27% and 51% higher in planta iron accumulation than the empty vector (EV) control, respectively, under normal growth conditions. Improved pretreatability was observed in FerIN switchgrass (~ 14% more glucose release than the EV), and the FerIN/IBPex plants showed further enhancement in glucose release up to 24%.

CONCLUSIONS

We conclude that this iron-accumulating strategy can be transferred from model plants and applied to bioenergy crops, such as switchgrass. The intra- and extra-cellular iron incorporation approach improves biomass pretreatability and digestibility, providing upgraded feedstocks for the production of biofuels and bioproducts.

摘要

背景

预处理通常用于促进木质纤维素生物质分解为其组成糖和芳烃。此前,我们表明铁离子可用作共催化剂以降低生物质稀酸预处理的强度。转基因铁积累拟南芥和水稻植株的籽粒中铁含量更高,生物量产量增加,重要的是,生物质的糖释放增强。

结果

在本研究中,我们单独使用细胞内铁蛋白(FerIN),并将其与一种改进版的细胞壁结合碳水化合物结合模块融合铁结合肽(IBPex)组合使用,该肽专门靶向生物能源作物柳枝稷。FerIN柳枝稷的高度提高了15%,产量提高了65%,而FerIN/IBPex转基因植株的高度提高了30%,产量提高了115%。在正常生长条件下,FerIN和FerIN/IBPex柳枝稷的植物体内铁积累分别比空载体(EV)对照高27%和51%。观察到FerIN柳枝稷的预处理性能得到改善(葡萄糖释放比EV多约14%),而FerIN/IBPex植株的葡萄糖释放进一步提高,最高可达24%。

结论

我们得出结论,这种铁积累策略可以从模式植物转移并应用于生物能源作物,如柳枝稷。细胞内和细胞外铁掺入方法改善了生物质的预处理性能和消化率,为生物燃料和生物产品的生产提供了升级原料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6c5c/7931346/1a42b16b1a1c/13068_2021_1891_Fig1_HTML.jpg

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