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Supplementary actual for this commodity is accessible at http://advances.sciencemag.org/cgi/content/full/5/1/eaav0655/DC1



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Supplementary Materials and Methods

Fig. S1. Ambition geometry blueprint application piecewise connected lines.



Fig. S2. Schematic illustrating key accomplish in the architecture algorithm PERDIX for a 2D bowl composed of a triangular mesh.

Fig. S3. Arch and basic crossovers.



Fig. S4. Detached against connected bend lengths for agee and aberrant shapes.

Fig. S5. Spanning the gap with absolute lengths of dsDNA at an diff vertex.

Fig. S6. AFM imaging of the DNA division amphitheater wireframe filigree (Type I: detached edges).

Fig. S7. AFM imaging of the DNA division amphitheater wireframe filigree (Type II: connected edges with no unpaired scaffold).

Fig. S8. AFM imaging of the DNA division amphitheater wireframe filigree (Type III: connected edges with unpaired arch nucleotides as needed).

Fig. S9. Nine ambition geometries acclimated as ascribe to the algorithm.

Fig. S10. Base brace models with the arch and basic bifold crossovers for nine assorted 2D wireframe filigree structures.

Fig. S11. Spanning copse of the bifold graphs of the loop-crossover structures generated by the algorithm.

Fig. S12. Arch acquisition aisle of nine assorted 2D wireframe filigree structures generated by the algorithm.

Fig. S13. Basic architecture aisle of nine assorted 2D wireframe filigree structures generated by the algorithm.

Fig. S14. Cylindrical representations of nine assorted 2D wireframe filigree structures.

Fig. S15. Diminutive models of nine assorted 2D wireframe filigree structures generated by the algorithm.

Fig. S16. Three altered diminutive representations of scaffolded DNA origami 2D wireframe structures with capricious acme degree.

Fig. S17. Three altered diminutive representations of scaffolded DNA origami 2D filigree structures of altered scales.

Fig. S18. Three altered diminutive representations of scaffolded DNA origami 2D filigree structures advised with altered cobweb patterns.

Fig. S19. Exported scalable agent cartoon (SVG) schematic of the DNA four-sided polygon.

Fig. S20. Exported SVG schematic of the DNA five-sided polygon.

Fig. S21. Exported SVG schematic of the DNA six-sided polygon.

Fig. S22. Exported SVG schematic of the 42-bp edge-length DNA L-shape wireframe lattice.

Fig. S23. Exported SVG schematic of the 63-bp edge-length DNA L-shape wireframe lattice.

Fig. S24. Exported SVG schematic of the 84-bp edge-length DNA L-shape wireframe lattice.

Fig. S25. Exported SVG schematic of the DNA curved-arm wireframe filigree (quadrilateral meshes).

Fig. S26. Exported SVG schematic of the DNA curved-arm wireframe filigree (triangular meshes).

Fig. S27. Exported SVG schematic of the DNA curved-arm wireframe filigree (mixed meshes).

Fig. S28. AFM imaging of the DNA four-sided polygon wireframe lattice.

Fig. S29. AFM imaging of the DNA five-sided polygon wireframe lattice.

Fig. S30. AFM imaging of the DNA six-sided polygon wireframe lattice.

Fig. S31. AFM imaging of the DNA 42-bp edge-length L-shape DNA wireframe lattice.

Fig. S32. AFM imaging of the DNA 63-bp edge-length L-shape wireframe lattice.

Fig. S33. AFM imaging of the DNA 84-bp edge-length L-shape DNA wireframe lattice.

Fig. S34. AFM imaging of the DNA curved-arm wireframe filigree (quadrilateral meshes).

Fig. S35. AFM imaging of the DNA curved-arm wireframe filigree (triangular meshes).

Fig. S36. AFM imaging of the DNA curved-arm wireframe filigree (mixed meshes).

Fig. S37. Truss-like bound aspect simulation.

Fig. S38. Fifteen ambition geometries acclimated as ascribe to the algorithm.

Fig. S39. Base brace models with the arch and basic bifold crossovers for 15 assorted 2D wireframe filigree structures.

Fig. S40. Fifteen spanning copse of the bifold blueprint of the loop-crossover structures generated by the algorithm.

Fig. S41. Scaffold-routing aisle of 15 assorted 2D wireframe filigree structures generated by the algorithm.

Fig. S42. Basic architecture aisle of 15 assorted 2D wireframe filigree structures generated by the algorithm.

Fig. S43. Cylindrical representations of 15 assorted 2D wireframe filigree structures.

Fig. S44. Diminutive models of 15 assorted 2D wireframe filigree structures generated by the algorithm.

Fig. S45. Three altered diminutive representations of scaffolded DNA origami 2D wireframe structures with triangular meshes.

Fig. S46. Three altered diminutive representations of scaffolded DNA origami 2D wireframe structures with quadrilateral meshes.

Fig. S47. Three altered diminutive representations of scaffolded DNA origami 2D wireframe structures with N-polygonal meshes.

Fig. S48. Exported SVG schematic of the aboveboard wireframe lattice.

Fig. S49. Exported SVG schematic of the bore wireframe lattice.

Fig. S50. Exported SVG schematic of the DNA rhombic tiling lattice.

Fig. S51. Exported SVG schematic of the DNA division amphitheater wireframe lattice.

Fig. S52. Exported SVG schematic of the DNA Cairo pentagonal tiling.

Fig. S53. Exported SVG schematic of the DNA lotus wireframe lattice.

Fig. S54. AFM imaging of the DNA aboveboard wireframe lattice.

Fig. S55. AFM imaging of the DNA bore wireframe lattice.

Fig. S56. AFM imaging of the DNA rhombic tiling wireframe lattice.

Fig. S57. AFM imaging of the DNA Cairo pentagonal tiling wireframe lattice.

Fig. S58. AFM imaging of the DNA lotus wireframe lattice.

Table S1. Required arch lengths for 24 rendered DNA filigree structures.

Table S2. Output from of the automated arrangement architecture for DNA origami 2D wireframe structures.

Table S3. Folding yields bent by counting well-folded particles from AFM imaging.

Table S4. Basic arrangement for 84-bp edge-length DNA four-sided polygon origami folding.

Table S5. Basic arrangement for 84-bp edge-length DNA five-sided polygon origami folding.

Table S6. Basic arrangement for 84-bp edge-length DNA six-sided polygon origami folding.

Table S7. Basic arrangement for 42-bp edge-length DNA L-shape origami folding.

Table S8. Basic arrangement for 63-bp edge-length DNA L-shape origami folding.

Table S9. Basic arrangement for 84-bp edge-length DNA L-shape origami folding.

Table S10. Basic arrangement for DNA curved-beam origami folding (quadrilateral cobweb pattern).

Table S11. Basic arrangement for DNA curved-beam origami folding (triangular cobweb pattern).

Table S12. Basic arrangement for DNA curved-beam origami folding (mixed cobweb pattern).

Table S13. Basic arrangement for 42-bp edge-length DNA bowl origami folding.

Table S14. Basic arrangement for 42-bp edge-length DNA bore origami folding.

Table S15. Basic arrangement for 84-bp edge-length DNA rhombic tiling origami folding.

Table S16. Basic arrangement for DNA division amphitheater origami folding.

Table S17. Basic arrangement for DNA Cairo pentagonal tiling origami folding.

Table S18. Basic arrangement for DNA lotus origami folding.

Table S19. Sequences for the 7249-nt (#1), 5386-nt (#2), and 2267-nt (#3) breadth scaffolds used.

Movie S1. PERDIX run.

Movie S2. PERDIX abuttals design.

Movie S3. PERDIX abuttals and centralized design.

Movie S4. Diminutive models: Altered meshes.

Movie S5. Diminutive models: N-arm.

Movie S6. Diminutive models: L-shape.

Movie S7. Diminutive models: Curved arm.

Data book S1. PERDIX software package

Data book S2. PERDIX software documentation

References (40–46)

Order Form Wireframe Why Is Everyone Talking About Order Form Wireframe? – order form wireframe
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