至今,GenScript的服务及产品已被Cell, Nature, Science, PNAS等1300多家生物医药类杂志引用近万次,处于行业领先水平。NIH、哈佛、耶鲁、斯坦福、普林斯顿、杜克大学等约400家全球著名机构使用GenScript的基因合成、多肽服务、抗体服务和蛋白服务等成功地发表科研成果,再次证明GenScript 有能力帮助业内科学家Make research easy.

Reprogramming yeast metabolism for customized starch-rich micro-grain through low-carbon microbial manufacturing

Nature Communications. 2025-03; 
Zhihui Shi, Zhaoyu Xu, Weihe Rong, Hongbing Sun, Hongyi Zhou, Qianqian Yuan, Aixuan Xiao, Hongfei Ma, Tao Cai, Guokun Wang, Yanhe Ma Chinese Academy of Sciences
Products/Services Used Details Operation
Custom Vector Construction Plasmids (Supplementary Data 4) were constructed using Gibson assembly with GenBuilder™ cloning kit (Genscript). The genes manipulated in this work were obtained via PCR (Supplementary Data 5) with either synthesized gene (Genscript) or W29 genome as the template for heterologous genes (Supplementary Data 6) and native genes (Supplementary Table 3), respectively. Get A Quote

摘要

Starch is a primary food ingredient and industrial feedstock. Low-carbon microbial manufacturing offers a carbon-neutral/negative arable land-independent strategy for starch production. Here, we reconfigure the oleaginous yeast as a starch-rich micro-grain producer by rewiring the starch biosynthesis and gluconeogenesis pathways and regulating cell morphology. With the CO2 electro-synthesized acetate as the substrate, the strain accumulates starch 47.18% of dry cell weight. The optimized system renders spatial-temporal starch productivity (243.7 g/m2/d) approximately 50-fold higher than crop cultivation and volumetric productivity (160.83 mg/L/h) over other microbial systems by an order of magnitude. We demonst... More

关键词