Synthetic Biology Journal ›› 2022, Vol. 3 ›› Issue (2): 260-278.DOI: 10.12211/2096-8280.2021-035
• Invited Review • Previous Articles Next Articles
Qingqing FENG1, Tianjiao ZHANG1,2, Xiao ZHAO1, Guangjun NIE1
Received:
2021-03-25
Revised:
2021-07-05
Online:
2022-05-11
Published:
2022-04-30
Contact:
Xiao ZHAO, Guangjun NIE
冯晴晴1, 张天鲛1,2, 赵潇1, 聂广军1
通讯作者:
赵潇,聂广军
作者简介:
基金资助:
CLC Number:
Qingqing FENG, Tianjiao ZHANG, Xiao ZHAO, Guangjun NIE. Synthetic nanobiology——fusion of synthetic biology and nanobiology[J]. Synthetic Biology Journal, 2022, 3(2): 260-278.
冯晴晴, 张天鲛, 赵潇, 聂广军. 合成纳米生物学——合成生物学与纳米生物学的交叉前沿[J]. 合成生物学, 2022, 3(2): 260-278.
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URL: https://synbioj.cip.com.cn/EN/10.12211/2096-8280.2021-035
Fig. 2 Design and applications of bacterial robots (Nanomaterials are used to modify bacteria to build bacterial robots with special functions, including magnetic driven bacterial robots, light responsive bacterial robots, and ultrasonic sensing bacterial robots, which can realize in vivo monitoring and real-time control through external physical signals.)
Fig. 3 Multiple strategies for construction of artificial hybrid CAR-T using nanotechnology (Artificial heterozygous T cells were constructed by heterozygous modification and functional enhancement of T cells using different nanotechnologies and materials to achieve local stable expansion of adoptive cell therapy, continuous “autocrine” of cytokines, in vivo monitoring and synergistic therapy.)
Fig. 4 Artificial photosynthetic system; (Acetogenic bacteria were loaded on light-harvesting nanowire arrays, or bacteria were photosensitized with CdS or AuNCs nanomaterials, which enables photosynthesis of carbon products and nitrogen products.)
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