Genotype-phenotype mapping with polyominos made from DNA origami tiles

The correlation between genetic information and characteristics of a living cell - its genotype and its phenotype - constitutes the basis of genetics. Here, we experimentally realize a primitive form of genotype-phenotype mapping with DNA origami. The DNA origami can polymerize into two-dimensional...

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Main Authors: Dreher, Yannik (Author) , Fichtler, Julius (Author) , Karfusehr, Christoph (Author) , Jahnke, Kevin (Author) , Xin, Yang (Author) , Keller, Adrian (Author) , Göpfrich, Kerstin (Author)
Format: Article (Journal)
Language:English
Published: 20 December 2022
In: Biophysical journal
Year: 2022, Volume: 121, Issue: 24, Pages: 4840-4848
ISSN:1542-0086
DOI:10.1016/j.bpj.2022.09.006
Online Access:Verlag, lizenzpflichtig, Volltext: https://doi.org/10.1016/j.bpj.2022.09.006
Verlag, lizenzpflichtig, Volltext: https://linkinghub.elsevier.com/retrieve/pii/S0006349522007342
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Author Notes:Yannik Dreher, Julius Fichtler, Christoph Karfusehr, Kevin Jahnke, Yang Xin, Adrian Keller and Kerstin Göpfrich
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Summary:The correlation between genetic information and characteristics of a living cell - its genotype and its phenotype - constitutes the basis of genetics. Here, we experimentally realize a primitive form of genotype-phenotype mapping with DNA origami. The DNA origami can polymerize into two-dimensional lattices (phenotype) via blunt-end stacking facilitated by edge staples at the seam of the planar DNA origami. There are 80 binding positions for edge staples, which allow us to translate an 80-bit long binary code (genotype) onto the DNA origami. The presence of an edge staple thus corresponds to a ‘‘1’’ and its absence to a ‘‘0.’’ The interactions of our DNA-based system can be reproduced by a polyomino model. Polyomino growth simulations qualitatively reproduce our experimental results. We show that not only the absolute number of base stacks but also their sequence position determine the cluster size and correlation length of the orientation of single DNA origami within the cluster. Importantly, the mutation of a few bits can result in major morphology changes of the DNA origami cluster, while more often, major sequence changes have no impact. Our experimental realization of a correlation between binary information (‘‘genotype’’) and cluster morphology (‘‘phenotype’’) thus reproduces key properties of genotype-phenotype maps known from living systems.
Item Description:Online veröffentlicht: 10. September 2022, Artikelversion: 20. Dezember 2022
Gesehen am 20.02.2023
Physical Description:Online Resource
ISSN:1542-0086
DOI:10.1016/j.bpj.2022.09.006