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Beilstein J. Org. Chem. 2017, 13, 393–404, doi:10.3762/bjoc.13.42
Graphical Abstract
Figure 1: Adsorption of RNA on natural carbonate mineral samples.
Figure 2: Co-precipitation experiments on carbonate minerals for RNA-binding competition. The precipitated co...
Figure 3: RNA-induced calcium carbonate polymorphism. A: Feigl’s stain of CaCO3 precipitate formed by double ...
Figure 4: RNA adsorbed on aragonite is resistant to thermal degradation in aqueous solution. 18% denaturing P...
Beilstein J. Org. Chem. 2014, 10, 2348–2360, doi:10.3762/bjoc.10.245
Figure 1: Structures explaining why large DNA (L-DNA) constructs cannot easily autonomously self-assemble fro...
Figure 2: Watson–Crick pairing rules follow two rules of complementarity: (a) size complementarity (large pur...
Figure 3: (top) Schematic showing the mix-anneal-extend-ligate-amplify process exploiting AEGIS pairing (to o...
Figure 4: The exact sequences and overlaps of the fragments designed by OligArch to allow the autonomous asse...
Figure 5: Agarose gel (1%, stained with ethidium bromide) showing the products (before PCR) arising from the ...
Figure 6: LB-agar plates spread, at various dilutions, with 25 µL cells transformed by plasmids containing th...
Figure 7: (left) Autonomous assembly of the 32A construct yielded the desired 1,121 base-pair amplicon in a s...
Figure 8: Fragments built only from standard nucleotides, without AEGIS, and designed by OligArch [21] to support...
Beilstein J. Org. Chem. 2014, 10, 1826–1833, doi:10.3762/bjoc.10.192
Figure 1: Some structures showing possible reasons why large DNA (L-DNA) constructs do not self-assemble from...
Figure 3: (top) The conversion of S:B pairs to T:A pairs involves tautomerization of B to give its minor enol...
Figure 4: Representative assembly of oligonucleotides designed by OligArch built from the components of the s...