The transition from 2G to 3G-feedstocks enabled efficient production of fuels and chemicals
Artikel i vetenskaplig tidskrift, 2023

For decades micoorganisms have been engineered for the utilization of lignocellulose-based second-generation (2G) feedstocks, but with the concerns of increased levels of atmospheric CO2 causing global warming there is an emergent need to transition from the utilization of 2G feedstocks to third-generation (3G) feedstocks such as CO2 and its derivatives. Here, we established a yeast platform that is capable of simultaneously converting 2G and 3G feedstocks into bulk and value-added chemicals. We demonstrated that by adopting 3G substrates such as CO2 and formate, the conversion of 2G feedstocks could be substantially improved. Specifically, formate could provide reducing power and energy for xylose conversion into valuable chemicals. Simultaneously, it can form a concentrated CO2 pool inside the cell, providing thermodynamically and kinetically favoured amounts of precursors for CO2 fixation pathways, e.g. the Calvin–Benson–Bassham (CBB) cycle. Furthermore, we demonstrated that formate could directly be utilized as a carbon source by yeast to synthesize endogenous amino acids. The engineered strain achieved a one-carbon (C1) assimilation efficiency of 9.2 %, which was the highest efficiency observed in the co-utilization of 2G and 3G feedstocks. We applied this strategy for productions of both bulk and value-added chemicals, including ethanol, free fatty acids (FFAs), and longifolene, resulting in yield enhancements of 18.4 %, 49.0 %, and ∼100 %, respectively. The strategy demonstrated here for co-utilization of 2G and 3G feedstocks sheds lights on both basic and applied research for the up-coming establishment of 3G biorefineries.

Författare

Kai Wang

Beijing University of Chemical Technology

Changsheng Su

Beijing University of Chemical Technology

Haoran Bi

Beijing University of Chemical Technology

Changwei Zhang

Beijing University of Chemical Technology

Di Cai

Beijing University of Chemical Technology

Yanhui Liu

Beijing University of Chemical Technology

Meng Wang

Beijing University of Chemical Technology

Biqiang Chen

Beijing University of Chemical Technology

Jens B Nielsen

Beijing University of Chemical Technology

Chalmers, Life sciences, Systembiologi

Zihe Liu

Beijing University of Chemical Technology

Tianwei Tan

Beijing University of Chemical Technology

Green Energy and Environment

20962797 (ISSN) 24680257 (eISSN)

Vol. In Press

Ämneskategorier

Biokemi och molekylärbiologi

Kemiska processer

Bioprocessteknik

Energisystem

DOI

10.1016/j.gee.2023.11.004

Mer information

Senast uppdaterat

2023-12-15