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Engineering a Genetically Encoded Magnetic Protein Crystal

 
Anon Braveheart
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10/14/2021 07:56 PM
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Engineering a Genetically Encoded Magnetic Protein Crystal
Abstract:

Magnetogenetics is a new field that leverages genetically encoded proteins and protein assemblies that are sensitive to magnetic fields to study and manipulate cell behavior. Theoretical studies show that many proposed magnetogenetic proteins do not contain enough iron to generate substantial magnetic forces. Here, we have engineered a genetically encoded ferritin-containing protein crystal that grows inside mammalian cells. Each of these crystals contains more than 10 million ferritin subunits and is capable of mineralizing substantial amounts of iron. When isolated from cells and loaded with iron in vitro, these crystals generate magnetic forces that are 9 orders of magnitude larger than the forces from the single ferritin cages used in previous studies. These protein crystals are attracted to an applied magnetic field and move toward magnets even when internalized into cells. While additional studies are needed to realize the full potential of magnetogenetics, these results demonstrate the feasibility of engineering protein assemblies for magnetic sensing.

[link to pubmed.ncbi.nlm.nih.gov (secure)]
Anon Braveheart
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10/14/2021 08:03 PM
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Re: Engineering a Genetically Encoded Magnetic Protein Crystal
magnet
Anon Braveheart
Anon Braveheart  (OP)

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10/14/2021 08:03 PM
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Re: Engineering a Genetically Encoded Magnetic Protein Crystal
2012 Dec 31
Genetically programmed superparamagnetic behavior of mammalian cells:

Abstract:

Although magnetic fields and paramagnetic inorganic materials were abundant on planet earth during the entire evolution of living species the interaction of organisms with these physical forces remains a little-understood phenomenon. Interestingly, rather than being genetically encoded, organisms seem to accumulate and take advantage of inorganic nanoparticles to sense or react to magnetic fields. Using a synthetic biology-inspired approach we have genetically programmed mammalian cells to show superparamagnetic behavior. The combination of ectopic production of the human ferritin heavy chain 1 (hFTH1), engineering the cells for expression of an iron importer, the divalent metal ion transferase 1 (DMT1) and the design of an iron-loading culture medium to maximize cellular iron uptake enabled efficient iron mineralization in intracellular ferritin particles and conferred superparamagnetic behavior to the entire cell. When captured by a magnetic field the superparamagnetic cells reached attraction velocities of up to 30 μm/s and could be efficiently separated from complex cell mixtures using standard magnetic cell separation equipment. Technology that enables magnetic separation of genetically programmed superparamagnetic cells in the absence of inorganic particles could foster novel opportunities in diagnostics and cell-based therapies.
Anon Braveheart
Anon Braveheart  (OP)

User ID: 76517917
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10/14/2021 11:42 PM
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Re: Engineering a Genetically Encoded Magnetic Protein Crystal
gmo
Anon Braveheart





GLP