bioRxiv Science⌕ Search

Biology subjects

Navarro, S. A.

Publications and source records attributed to Navarro, S. A..

2 recordsLinked to original sources

Reverse Engineering DNA Origami Nanostructure Designs from Raw Scaffold and Staple Sequence Lists

Designs for scaffolded DNA origami nanostructures are commonly and minimally published as the list of DNA staple and scaffold sequences required. In nearly all cases, high-level editable design files (e.g. caDNAno) which generated the low-level sequences are not made available. This de facto raw sequence exchange format allows published origami designs to be re-attempted in the laboratory by other groups, but effectively stops designs from being significantly modified or re-purposed for new future applications. To make the raw sequence exchange format more accessible to further design and engineering, in this work we propose the first algorithmic solution to the inverse problem of converting staple/scaffold sequences back to a guide schematic resembling the original origami schematic. The guide schematic can be used to aid the manual re-input of an origami into a CAD tool like caDNAno, hence recovering a high-level editable design file. Creation of a guide schematic can also be used to double check that a list of staple strand sequences does not have errors and indeed does assemble into a desired origami nanostructure prior to costly laboratory experimentation. We tested our reverse algorithm on 36 diverse origami designs from the literature and found that 29 origamis (81%) had a good quality guide schematic recovered from raw sequences. Our software is made available at https://revnano.readthedocs.io.

bioinformatics↗

Light-up split Broccoli aptamer as a versatile tool for RNA assembly monitoring in cell-free TX-TL system, hybrid RNA/DNA origami tagging and DNA biosensing

Binary light-up aptamers are intriguing and emerging tools with potential in different fields. Herein, we demonstrate the versatility of a split Broccoli aptamer system able to turn on the fluorescence signal only in the presence of a complementary sequence. First, an RNA three-way junction harbouring the split system was assembled in an E. coli based cell-free TX-TL system where the folding of the functional aptamer is demonstrated. Then, the same strategy is introduced into a bio-orthogonal hybrid RNA/DNA rectangle origami characterized by atomic force microscopy: the activation of the split system through the origami self-assembly is demonstrated. Finally, our system is successfully used to detect femtomoles of a Campylobacter spp. DNA target sequence. Potential applications of our system include real-time monitoring of the self-assembly of nucleic acid-based devices in vivo and of intracellular delivery of therapeutic nanostructures, as well as in vitro and in vivo detection of different DNA/RNA target.

synthetic biology↗