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This Defense Intelligence Reference Document from the Defense Intelligence Agency, dated 10 December 2010, is one of a series of advanced technology reports produced in FY 2010 under the Advanced Aerospace Weapon System Applications (AAWSA) Program. It reviews quantum computing technologies and DNA-based molecular computing for onboard supercomputing on future spacecraft. It forecasts ion-trap quantum computers within 10 years, simple DNA tile computing within 20 years, and self-repairing DNA computers on a 40-year horizon.
“Jacobs”1 page
UNCLASSIFIED//F8R. 8FFHil.t.k Wfili 8HkY (a) (d) Figure 11. Two symmetric DNA nanomotifs and the crystals grown using them. (a) and (d) show a symmetric cross motif and a three-point-star motif, respectively. Images (b) and (e) are atomic force micrographs showing the crystal structure, and (c) and (f) are fluorescence microscopy images of DNA 2D crystals assembled from the DNA motifs (86). 8. Another widely accepted bottom up method to construct DNA nanosystems is through a process known as strand displacement or branched migration. This assembly method displaces one DNA strand and selectively replaces it with a strong complementary strand which usually consists of more Watson Crick base pairs. This method can be utilized to correct sequence errors made during strand synthesis and DNA tile assembly and in complex logic gates, and for controlling DNA motors. In 1996, Winfree devised a theoretical proposal that addressed how crystal morphology and patterning can be programmed by tile design in an inherently asynchronous assembly process, in which it was addressed by the abstract Tile Assembly Model (aTAM). (90) Winfree explored how physical parameters, such as tile concentration and temperature, affect crystal growth and influence error rates, based on reversible tile association and dissociation rates (91). This work was built on previous efforts by Wang's (92)(93) embedding of computation in geometrical tiles showing that two-dimensional (2D) self-assembly of DNA can perform Turing-universal computation. This implies that any algorithm can in principle be embedded in, and guide, a potentially aperiodic crystallization process. In this "algorithmic self- assembly" paradigm, a set of molecular "Wang tiles" is viewed as the program for a particular computation or molecular fabrication task. Later collaboration between Winfree and Seeman resulted in the first successful fabrication of a two-dimensional DNA lattice structure that utilized the mathematical principle of tiling (94). The self named DX (double crossover) molecule has two double helical motifs that are rigidly bound together by several single strands that are organized in a double crossover pattern forming a rigid structure of DNA. These DNA strands are oriented in a parallel direction. This method allows for the production of DNA based lattices by exploiting the use of sticky ends at four ends. These ends can then be further constructed to build up a scaffold of DNA based on 26 UNCLASSIFIED/,'FQII. orr1,;;1•L llili Oalk¥
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Report, from the dia collection. The PDF is mirrored here; the original link is above. 54 pages are in the text index: search them above, or from the library's search.