TY - JOUR
T1 - Applications of synthetic light-driven microbial consortia for biochemicals production
AU - Gao, Hao
AU - Manishimwe, Clarisse
AU - Yang, Lu
AU - Wang, Hanxiao
AU - Jiang, Yujia
AU - Jiang, Wankui
AU - Zhang, Wenming
AU - Xin, Fengxue
AU - Jiang, Min
N1 - Publisher Copyright:
© 2022 Elsevier Ltd
PY - 2022/5
Y1 - 2022/5
N2 - Synthetic microbial consortia provide a versatile and efficient platform for biochemicals production through the labor division. Especially, microbial communities composed of phototrophs and heterotrophs offer a promising alternative, as they can directly convert carbon dioxide (CO2) into chemicals. Within this system, photoautotrophic microbes can convert CO2 into organic carbon for microbial growth and metabolites synthesis by the heterotrophic partners. In return, heterotrophs can provide additional CO2 to support the growth of photoautotrophic microbes. However, the unmatched growing conditions, low stability and production efficiency of synthetic microbial consortia hinder their further applications. Thus, design and construction of mutualistic and stable synthetic light-driven microbial consortia are urgently needed. In this review, the progress of synthetic light-driven microbial consortia for chemicals production was comprehensively summarized. In addition, space-efficient synthetic light-driven microbial consortia in hydrogel system were reviewed. Perspectives on orderly distribution of light-driven microbial consortia associated with 3D printing technology in biomanufacturing were also addressed.
AB - Synthetic microbial consortia provide a versatile and efficient platform for biochemicals production through the labor division. Especially, microbial communities composed of phototrophs and heterotrophs offer a promising alternative, as they can directly convert carbon dioxide (CO2) into chemicals. Within this system, photoautotrophic microbes can convert CO2 into organic carbon for microbial growth and metabolites synthesis by the heterotrophic partners. In return, heterotrophs can provide additional CO2 to support the growth of photoautotrophic microbes. However, the unmatched growing conditions, low stability and production efficiency of synthetic microbial consortia hinder their further applications. Thus, design and construction of mutualistic and stable synthetic light-driven microbial consortia are urgently needed. In this review, the progress of synthetic light-driven microbial consortia for chemicals production was comprehensively summarized. In addition, space-efficient synthetic light-driven microbial consortia in hydrogel system were reviewed. Perspectives on orderly distribution of light-driven microbial consortia associated with 3D printing technology in biomanufacturing were also addressed.
KW - 3D printing
KW - Consortia
KW - Heterotrophs
KW - Hydrogel
KW - Phototrophs
UR - http://www.scopus.com/inward/record.url?scp=85126601521&partnerID=8YFLogxK
U2 - 10.1016/j.biortech.2022.126954
DO - 10.1016/j.biortech.2022.126954
M3 - 文献综述
C2 - 35288267
AN - SCOPUS:85126601521
SN - 0960-8524
VL - 351
JO - Bioresource Technology
JF - Bioresource Technology
M1 - 126954
ER -