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内容由Fifty Years, Ayush Noori, Ashton Trotman-Grant, Michael Chavez, and Seth Bannon提供。所有播客内容(包括剧集、图形和播客描述)均由 Fifty Years, Ayush Noori, Ashton Trotman-Grant, Michael Chavez, and Seth Bannon 或其播客平台合作伙伴直接上传和提供。如果您认为有人在未经您许可的情况下使用您的受版权保护的作品,您可以按照此处概述的流程进行操作https://zh.player.fm/legal
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DNA Origami with Anastasia Ershova

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Manage episode 346035393 series 2802303
内容由Fifty Years, Ayush Noori, Ashton Trotman-Grant, Michael Chavez, and Seth Bannon提供。所有播客内容(包括剧集、图形和播客描述)均由 Fifty Years, Ayush Noori, Ashton Trotman-Grant, Michael Chavez, and Seth Bannon 或其播客平台合作伙伴直接上传和提供。如果您认为有人在未经您许可的情况下使用您的受版权保护的作品,您可以按照此处概述的流程进行操作https://zh.player.fm/legal

Episode Summary:

DNA is an ideal molecule for storing information in our genomes because it’s stable, programmable, and well understood. The same qualities make DNA a great building block or construction material for nanoscale biomolecular structures that have nothing to do with our genome, like molecular scaffolds created by folding DNA into 2D and 3D shapes. This technology is known as DNA origami.

However, the practical applications of DNA origami are limited by spontaneous growth and poor reaction yields. Anastasia developed a method that uses crisscross DNA polymerization of single-stranded DNA slats or DNA origami tiles to assemble DNA structures in a seed-dependent manner. This work may be useful to produce ultrasensitive, next-generation diagnostics or in programmable biofabrication at the multi-micron scale.

Search Keywords: fifty years, bio, translation, ayush noori, ashton trotman grant, dna origami, dna, monomers, anastasia ershova, structures, diagnostics, proteins, micron scale, nucleation, biology, nanoscale

Episode Notes:

About the Guest

  • Anastasia is a PhD candidate at Harvard University, currently working on DNA nanotechnology in William Shih's lab at the Wyss Institute and Dana-Farber Cancer Institute.
  • She received her bachelor’s degree in Natural Sciences from Cambridge University.
  • During her PhD at Harvard, she co-founded the Molecular Programming Interest Group, an international community of students in the molecular programming, DNA computing and related fields.

Impact

  • DNA Origami will provide us with a plethora of new information on biology and physics.
  • By manipulating that data on the nanoscale, we can get answers to a lot of questions in the future.
  • Quick diagnostics can enable people all over the world to quickly get diagnosis-related answers and seek targeted treatment.

Papers

  continue reading

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Manage episode 346035393 series 2802303
内容由Fifty Years, Ayush Noori, Ashton Trotman-Grant, Michael Chavez, and Seth Bannon提供。所有播客内容(包括剧集、图形和播客描述)均由 Fifty Years, Ayush Noori, Ashton Trotman-Grant, Michael Chavez, and Seth Bannon 或其播客平台合作伙伴直接上传和提供。如果您认为有人在未经您许可的情况下使用您的受版权保护的作品,您可以按照此处概述的流程进行操作https://zh.player.fm/legal

Episode Summary:

DNA is an ideal molecule for storing information in our genomes because it’s stable, programmable, and well understood. The same qualities make DNA a great building block or construction material for nanoscale biomolecular structures that have nothing to do with our genome, like molecular scaffolds created by folding DNA into 2D and 3D shapes. This technology is known as DNA origami.

However, the practical applications of DNA origami are limited by spontaneous growth and poor reaction yields. Anastasia developed a method that uses crisscross DNA polymerization of single-stranded DNA slats or DNA origami tiles to assemble DNA structures in a seed-dependent manner. This work may be useful to produce ultrasensitive, next-generation diagnostics or in programmable biofabrication at the multi-micron scale.

Search Keywords: fifty years, bio, translation, ayush noori, ashton trotman grant, dna origami, dna, monomers, anastasia ershova, structures, diagnostics, proteins, micron scale, nucleation, biology, nanoscale

Episode Notes:

About the Guest

  • Anastasia is a PhD candidate at Harvard University, currently working on DNA nanotechnology in William Shih's lab at the Wyss Institute and Dana-Farber Cancer Institute.
  • She received her bachelor’s degree in Natural Sciences from Cambridge University.
  • During her PhD at Harvard, she co-founded the Molecular Programming Interest Group, an international community of students in the molecular programming, DNA computing and related fields.

Impact

  • DNA Origami will provide us with a plethora of new information on biology and physics.
  • By manipulating that data on the nanoscale, we can get answers to a lot of questions in the future.
  • Quick diagnostics can enable people all over the world to quickly get diagnosis-related answers and seek targeted treatment.

Papers

  continue reading

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