4.8 Article

Construction of integrated gene logic-chip

期刊

NATURE NANOTECHNOLOGY
卷 13, 期 10, 页码 933-+

出版社

NATURE PUBLISHING GROUP
DOI: 10.1038/s41565-018-0202-3

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资金

  1. Japan Ministry of Education, Culture, Sports, Science and Technology [15H00798, 24104002, 26113007, 24687018, 16KT0068, 15K14485, 26220602, 16H02349, 15K18668]
  2. Research Fellowships for Young Scientists [15J08491]
  3. Core-to-Core Program, A, Advanced Research Networks (Phototheranostics) from the Japan Society for the Promotion of Science, CREST [JPMJCR1333]
  4. Centre of Innovation (COI) Program from the Japan Science and Technology Agency
  5. Cooperative Research Program of the Institute for Protein Research, Osaka University [CRa-18-01]
  6. Asahi Glass Foundation
  7. Futaba Electronics Memorial Foundation
  8. Hamaguchi Foundation for the Advancement of Biochemistry
  9. Futaba Electronics Memorial Foundation Scholarship

向作者/读者索取更多资源

In synthetic biology, the control of gene expression requires a multistep processing of biological signals. The key steps are sensing the environment, computing information and outputting products(1). To achieve such functions, the laborious, combinational networking of enzymes and substrate-genes is required, and to resolve problems, sophisticated design automation tools have been introduced(2). However, the complexity of genetic circuits remains low because it is difficult to completely avoid crosstalk between the circuits. Here, we have made an orthogonal self-contained device by integrating an actuator and sensors onto a DNA origami-based nanochip that contains an enzyme, T7 RNA polymerase (RNAP) and multiple target-gene substrates. This gene nanochip orthogonally transcribes its own genes, and the nano-layout ability of DNA origami allows us to rationally design gene expression levels by controlling the intermolecular distances between the enzyme and the target genes. We further integrated reprogrammable logic gates so that the nanochip responds to water-in-oil droplets and computes their small RNA (miRNA) profiles, which demonstrates that the nanochip can function as a gene logic-chip. Our approach to component integration on a nanochip may provide a basis for large-scale, integrated genetic circuits.

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