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  Nanolithographic Fabrication Technologies for Network-Based Biocomputation Devices.

Meinecke, C. R., Heldt, G., Blaudeck, T., Lindberg, F. W., Delft, F. C. M. J. M. v., Rahman, M. A., Salhotra, A., Månsson, A., Linke, H., Korten, T., Diez, S., Reuter, D., & Schulz, S. E. (2023). Nanolithographic Fabrication Technologies for Network-Based Biocomputation Devices. Materials (Basel, Switzerland), 16(3):. doi:10.3390/ma16031046.

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アイテムのパーマリンク: https://hdl.handle.net/21.11116/0000-000E-AB26-7 版のパーマリンク: https://hdl.handle.net/21.11116/0000-000E-AB27-6
資料種別: 学術論文

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 作成者:
Meinecke, Christoph Robert1, 著者           
Heldt, Georg, 著者
Blaudeck, Thomas, 著者
Lindberg, Frida W, 著者
Delft, Falco C M J M van, 著者
Rahman, Mohammad A, 著者
Salhotra, Aseem, 著者
Månsson, Alf, 著者
Linke, Heiner, 著者
Korten, Till1, 著者           
Diez, Stefan1, 著者           
Reuter, Danny1, 著者           
Schulz, Stefan E, 著者
所属:
1Max Planck Institute for Molecular Cell Biology and Genetics, Max Planck Society, ou_2340692              

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 要旨: Network-based biocomputation (NBC) relies on accurate guiding of biological agents through nanofabricated channels produced by lithographic patterning techniques. Here, we report on the large-scale, wafer-level fabrication of optimized microfluidic channel networks (NBC networks) using electron-beam lithography as the central method. To confirm the functionality of these NBC networks, we solve an instance of a classical non-deterministic-polynomial-time complete ("NP-complete") problem, the subset-sum problem. The propagation of cytoskeletal filaments, e.g., molecular motor-propelled microtubules or actin filaments, relies on a combination of physical and chemical guiding along the channels of an NBC network. Therefore, the nanofabricated channels have to fulfill specific requirements with respect to the biochemical treatment as well as the geometrical confienement, with walls surrounding the floors where functional molecular motors attach. We show how the material stack used for the NBC network can be optimized so that the motor-proteins attach themselves in functional form only to the floor of the channels. Further optimizations in the nanolithographic fabrication processes greatly improve the smoothness of the channel walls and floors, while optimizations in motor-protein expression and purification improve the activity of the motor proteins, and therefore, the motility of the filaments. Together, these optimizations provide us with the opportunity to increase the reliability of our NBC devices. In the future, we expect that these nanolithographic fabrication technologies will enable production of large-scale NBC networks intended to solve substantially larger combinatorial problems that are currently outside the capabilities of conventional software-based solvers.

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 日付: 2023-01-24
 出版の状態: 出版
 ページ: -
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 識別子(DOI, ISBNなど): DOI: 10.3390/ma16031046
その他: cbg-8531
PMID: 36770052
 学位: -

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出版物 1

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出版物名: Materials (Basel, Switzerland)
  その他 : Materials (Basel)
種別: 学術雑誌
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出版社, 出版地: -
ページ: - 巻号: 16 (3) 通巻号: 1046 開始・終了ページ: - 識別子(ISBN, ISSN, DOIなど): -