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遗传调控生物合成气凝胶用于超声成像。

Genetic Modulation of Biosynthetic Gas Vesicles for Ultrasound Imaging.

机构信息

CAS Key Laboratory of Quantitative Engineering Biology, Shenzhen Institute of Synthetic Biology, Shenzhen Institutes of Advanced Technology, Chinese Academy of Sciences, Shenzhen, 518055, China.

University of Chinese Academy of Sciences, Beijing, 100049, China.

出版信息

Small. 2024 Aug;20(33):e2310008. doi: 10.1002/smll.202310008. Epub 2024 Mar 27.

Abstract

Gas vesicles (GVs) from microorganisms are genetically air-filled protein nanostructures, and serve as a new class of nanoscale contrast agents for ultrasound imaging. Recently, the genetically encoded GV gene clusters have been heterologously expressed in Escherichia coli, allowing these genetically engineered bacteria to be visualized in vivo in a real-time manner by ultrasound. However, most of the GV genes remained functionally uncharacterized, which makes it difficult to regulate and modify GVs for broad medical applications. Here, the impact of GV proteins on GV formation is systematically investigated. The results first uncovered that the deletions of GvpR or GvpU resulted in the formation of a larger proportion of small, biconical GVs compared to the full-length construct, and the deletion of GvpT resulted in a larger portion of large GVs. Meanwhile, the combination of gene deletions has resulted in several genotypes of ultrasmall GVs that span from 50 to 20 nm. Furthermore, the results showed that E. coli carrying the ΔGvpCRTU mutant can produce strong ultrasound contrast signals in mouse liver. In conclusion, the study provides new insights into the roles of GV proteins in GV formation and produce ultrasmall GVs with a wide range of in vivo research.

摘要

微生物气穴(GVs)是一种遗传上充满空气的蛋白质纳米结构,可用作超声成像的新型纳米级对比剂。最近,通过异源表达在大肠杆菌中表达了遗传编码的 GV 基因簇,从而可以实时通过超声在体内可视化这些基因工程细菌。然而,大多数 GV 基因仍未被充分表征,这使得难以调节和修饰 GV 以实现广泛的医学应用。在这里,系统地研究了 GV 蛋白对 GV 形成的影响。结果首先揭示,与全长构建体相比,缺失 GvpR 或 GvpU 会导致形成更大比例的小双锥形 GV,而缺失 GvpT 会导致形成更大比例的大 GV。同时,基因缺失的组合导致几种基因型的超小 GV,其范围从 50 到 20nm。此外,结果表明,携带 ΔGvpCRTU 突变的大肠杆菌可以在小鼠肝脏中产生强烈的超声对比信号。总之,该研究深入了解了 GV 蛋白在 GV 形成中的作用,并产生了具有广泛体内研究应用的超小 GV。

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