Publication:

Engineering Genetically-Encoded Mineralization and Magnetism via Directed Evolution

Loading...
Thumbnail Image

Open/View Files

Date

2016

Published Version

Journal Title

Journal ISSN

Volume Title

Publisher

Nature Publishing Group
The Harvard community has made this article openly available. Please share how this access benefits you.

Research Projects

Organizational Units

Journal Issue

Citation

Liu, Xueliang, Paola A. Lopez, Tobias W. Giessen, Michael Giles, Jeffrey C. Way, and Pamela A. Silver. 2016. “Engineering Genetically-Encoded Mineralization and Magnetism via Directed Evolution.” Scientific Reports 6 (1): 38019. doi:10.1038/srep38019. http://dx.doi.org/10.1038/srep38019.

Abstract

Genetically encoding the synthesis of functional nanomaterials such as magnetic nanoparticles enables sensitive and non-invasive biological sensing and control. Via directed evolution of the natural iron-sequestering ferritin protein, we discovered key mutations that lead to significantly enhanced cellular magnetism, resulting in increased physical attraction of ferritin-expressing cells to magnets and increased contrast for cellular magnetic resonance imaging (MRI). The magnetic mutants further demonstrate increased iron biomineralization measured by a novel fluorescent genetic sensor for intracellular free iron. In addition, we engineered Escherichia coli cells with multiple genomic knockouts to increase cellular accumulation of various metals. Lastly to explore further protein candidates for biomagnetism, we characterized members of the DUF892 family using the iron sensor and magnetic columns, confirming their intracellular iron sequestration that results in increased cellular magnetization.

Description

Research Data

Keywords

Terms of Use

This article is made available under the terms and conditions applicable to Other Posted Material (LAA), as set forth at Terms of Service

Endorsement

Review

Supplemented By

Related Stories