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      <image:caption>Victorov D. and Stewart J.M. (2026) Engineering synthetic RNA-based condensates with tunable chemical properties. RNA Nanomed, 3(1), 60-82.</image:caption>
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      <image:caption>Kadam P.R., Lim J., Dizani M., and Stewart J.M. (2025) Coarse-grained modeling and simulation of multistranded RNA nanostars. ACS Chem &amp; Bio Engineering, 3 (1), 37-48. Selected as supplementary cover art</image:caption>
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      <image:caption>Jeon B., Guareschi M.M., Stewart J.M., Wu E., Gopinath A., Arroyo-Currás N., Dauphin-Ducharme P., Plaxco K.W., Lukeman P.S., and Rothemund P.W.K. (2024) Modular DNA origami-based electrochemical detection of DNA and proteins. Proceedings of the National Academy of Sciences, 122(1), e2311279121.</image:caption>
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      <image:caption>Dizani M., Sorrentino D., Agarwal S., Stewart J.M., and Franco E. (2024) Protein recruitment to dynamic DNA-RNA host condensates. Journal of the American Chemical Society, 146(43), 29344-29354.</image:caption>
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      <image:caption>Stewart J.M., Li S., Tang A., Klocke M.A., Gobry M.V., Fabrini G., Di Michele L., Rothemund P.W.K., and Franco E. (2024) Modular RNA motifs for orthogonal phase separated compartments. Nature Communications 15(1), 6244.</image:caption>
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      <image:caption>Fabrini G., Farag N., Nuccio S.P., Li S., Stewart J.M., Tang A., McCoy R., Owens R.M., Rothemund P.W.K., Franco E., Di Antonio M., and Di Michele L. (2024) Co-transcriptional production of programmable RNA condensates and synthetic organelles, Nature Nanotechnology, 19(11), 1665-1673</image:caption>
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      <image:caption>Stewart, J. M. (2024) RNA nanotechnology on the horizon: Self-assembly, chemical modifications, and functional applications. Current Opinion in Chemical Biology, 81, 102479.</image:caption>
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      <image:title>Publications</image:title>
      <image:caption>Stewart, J. M., Subramanian, H. K., and Franco, E. (2022) Assembly of RNA nanostructures from double-crossover tiles. In Cell-Free Gene Expression (pp. 293-302). Humana, New York, NY.</image:caption>
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      <image:title>Publications</image:title>
      <image:caption>Stewart J.M., Geary C., and Franco E. (2019) Design and characterization of RNA nanotubes. ACS Nano, 13(5), 5214–5221.</image:caption>
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      <image:title>Publications</image:title>
      <image:caption>Rackley L., Stewart J.M., Salotti J., Krokhotin A., Shah A., Viard M., Juneja R., Smollett J., Roark B.K., Vivero-Escoto J., Johnson P.F., Dobrovolskaia M.A., Dokholyan N.V., Franco E., and Afonin K.A. (2018) RNA Fibers as optimized nanoscaffolds for siRNA coordination and reduced immunological recognition. Advanced Functional Materials, 28(48),1805959.</image:caption>
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      <image:title>Publications</image:title>
      <image:caption>Stewart J.M., Subramanian H.K.K., and Franco E. (2017) Self-assembly of multistranded RNA motifs into lattices and tubular structures. Nucleic Acids Research, 45, 1–9.</image:caption>
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    <image:image>
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      <image:title>Publications</image:title>
      <image:caption>Stewart J.M., Viard M., Subramanian H.K.K., Roark B.K., Afonin K.A., and Franco E. (2016) Programmable micron-scale RNA structures for coordinated delivery of siRNAs. Nanoscale, 8(40), 17542–17550.</image:caption>
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      <image:title>Publications</image:title>
      <image:caption>Stewart J.M. and Franco E. (2015) Self-assembly of large RNA structures: learning from DNA nanotechnology. DNA and RNA Nanotechnology, 2(1), 23–35.</image:caption>
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    <lastmod>2026-07-01</lastmod>
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