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Synthesis of Functionalized Magnetic Nanoparticles, Their Conjugation with the Siderophore Feroxamine and its Evaluation for Bacteria Detection
Published on: June 16, 2020
Magnetic properties and structural characterization of iron oxide nanoparticles formed by Streptococcus suis Dpr and
Teemu Haikarainen1, Petriina Paturi, Johan Lindén
1Turku Centre for Biotechnology, University of Turku and Åbo Akademi University, Turku, Finland. tassos.papageorgiou@btk.fi
Abstract:
Streptococcus suis Dpr belongs to the Dps family of bacterial and archaeal proteins that oxidize Fe(2+) to Fe(3+) to protect microorganisms from oxidative damage. The oxidized iron is subsequently deposited as ferrihydrite inside a protein cavity, resulting in the formation of an iron core. The size and the magnetic properties of the iron core have attracted considerable attention for nanotechnological applications in recent years. Here, the magnetic and structural properties of the iron core in wild-type Dpr and four cavity mutants were studied. All samples clearly demonstrated a superparamagnetic behavior in superconducting quantum interference device magnetometry and Mössbauer spectroscopy compatible with that of superparamagnetic ferrihydrite nanoparticles. However, all the mutants exhibited higher magnetic moments than the wild-type protein. Furthermore, measurement of the iron content with inductively coupled plasma mass spectrometry revealed a smaller amount of iron in the iron cores of the mutants, suggesting that the mutations affect nucleation and iron deposition inside the cavity. The X-ray crystal structures of the mutants revealed no changes compared with the wild-type crystal structure; thus, the differences in the magnetic moments could not be attributed to structural changes in the protein. Extended X-ray absorption fine structure measurements showed that the coordination geometry of the iron cores of the mutants was similar to that of the wild-type protein. Taken together, these results suggest that mutation of the residues that surround the iron storage cavity could be exploited to selectively modify the magnetic properties of the iron core without affecting the structure of the protein and the geometry of the iron core.
Insights
Mutations in Streptococcus suis Dpr protein cavities alter iron core magnetic properties. These changes enhance magnetic moments without affecting protein structure, offering potential for nanotechnological applications.
Area of Science:
- Biochemistry
- Biophysics
- Nanotechnology
Background:
- Streptococcus suis Dpr protein, part of the Dps family, protects microbes from oxidative damage by storing iron as ferrihydrite nanoparticles.
- The magnetic and structural properties of these iron cores are of interest for nanotechnological applications.
Purpose of the Study:
- To investigate the magnetic and structural properties of the iron core in wild-type Dpr and four cavity mutants.
- To understand how mutations affect iron deposition and magnetic characteristics.
Main Methods:
- Superconducting quantum interference device (SQUID) magnetometry
- Mössbauer spectroscopy
- Inductively coupled plasma mass spectrometry (ICP-MS)
- X-ray crystallography
- Extended X-ray absorption fine structure (EXAFS)
Main Results:
- All Dpr samples exhibited superparamagnetic behavior consistent with ferrihydrite nanoparticles.
- Mutants showed higher magnetic moments and lower iron content compared to wild-type Dpr.
- Structural analysis (X-ray crystallography, EXAFS) revealed no significant changes in protein structure or iron core geometry due to mutations.
Conclusions:
- Mutating residues around the iron storage cavity can selectively modify the magnetic properties of the iron core.
- These modifications occur without altering the protein's structure or the iron core's geometry.
- This suggests a method for tailoring magnetic properties for nanotechnological uses.
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