Literature DB >> 19251670

Site-directed nanoparticle labeling of cytochrome c.

Marie-Eve Aubin-Tam1, Wonmuk Hwang, Kimberly Hamad-Schifferli.   

Abstract

Although nanoparticle-protein conjugates have been synthesized for numerous applications, bioconjugation remains a challenge, often resulting in denaturation or loss of protein function. This is partly because the protein-nanoparticle interface is poorly understood, which impedes the use of nanoparticles in nanomedicine. Although the effects of nanoparticle ligand and material on protein structure have been explored, the choice of the labeling site on the protein has not yet been systematically studied. To address this issue, we label cytochrome c site-specifically with a negatively charged Au nanoparticle via a covalent thiol-Au bond. The attachment site is controlled by cysteine mutations of surface residues. The effect of labeling on protein structure is probed by circular dichroism. Protein unfolding is the most severe when the nanoparticle is attached to the N- and C-terminal foldon, the core motif of cytochrome c. Also, when the nanoparticle is attached in the vicinity of charged residues, the amount of structural damage is greater because of salt-dependent electrostatic interactions with charged ligand bis(p-sulfonatophenyl) phenylphosphine on the nanoparticle. Molecular dynamics simulations also elucidate local to global structural perturbation depending on labeling site. These results suggest that the labeling site must be considered as one of the main design criteria for nanoparticle-protein conjugates.

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Year:  2009        PMID: 19251670      PMCID: PMC2657428          DOI: 10.1073/pnas.0807299106

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  39 in total

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3.  Gold nanoparticle-cytochrome C complexes: the effect of nanoparticle ligand charge on protein structure.

Authors:  Marie-Eve Aubin-Tam; Kimberly Hamad-Schifferli
Journal:  Langmuir       Date:  2005-12-20       Impact factor: 3.882

4.  Snapshots of cytochrome c folding.

Authors:  Ekaterina V Pletneva; Harry B Gray; Jay R Winkler
Journal:  Proc Natl Acad Sci U S A       Date:  2005-12-12       Impact factor: 11.205

5.  Protein folding and protein evolution: common folding nucleus in different subfamilies of c-type cytochromes?

Authors:  O B Ptitsyn
Journal:  J Mol Biol       Date:  1998-05-08       Impact factor: 5.469

6.  Amino acid replacements in yeast iso-1-cytochrome c. Comparison with the phylogenetic series and the tertiary structure of related cytochromes c.

Authors:  D M Hampsey; G Das; F Sherman
Journal:  J Biol Chem       Date:  1986-03-05       Impact factor: 5.157

7.  Proton NMR comparison of the Saccharomyces cerevisiae ferricytochrome c isozyme-1 monomer and covalent disulfide dimer.

Authors:  S J Moench; J D Satterlee
Journal:  J Biol Chem       Date:  1989-06-15       Impact factor: 5.157

8.  How cytochrome c folds, and why: submolecular foldon units and their stepwise sequential stabilization.

Authors:  Haripada Maity; Mita Maity; S Walter Englander
Journal:  J Mol Biol       Date:  2004-10-08       Impact factor: 5.469

9.  Generalized born model with a simple smoothing function.

Authors:  Wonpil Im; Michael S Lee; Charles L Brooks
Journal:  J Comput Chem       Date:  2003-11-15       Impact factor: 3.376

10.  Applications of nanoparticles in biology and medicine.

Authors:  OV Salata
Journal:  J Nanobiotechnology       Date:  2004-04-30       Impact factor: 10.435

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  16 in total

Review 1.  Nanomaterials in biological environment: a review of computer modelling studies.

Authors:  A J Makarucha; N Todorova; I Yarovsky
Journal:  Eur Biophys J       Date:  2010-12-14       Impact factor: 1.733

Review 2.  Engineering the nanoparticle-protein interface: applications and possibilities.

Authors:  Subinoy Rana; Yi-Cheun Yeh; Vincent M Rotello
Journal:  Curr Opin Chem Biol       Date:  2010-10-27       Impact factor: 8.822

3.  Recording and Analyzing Nucleic Acid Distance Distributions with X-Ray Scattering Interferometry (XSI).

Authors:  Thomas Zettl; Rhiju Das; Pehr A B Harbury; Daniel Herschlag; Jan Lipfert; Rebecca S Mathew; Xuesong Shi
Journal:  Curr Protoc Nucleic Acid Chem       Date:  2018-06-07

Review 4.  Nanoscale interfaces to biology.

Authors:  Sunho Park; Kimberly Hamad-Schifferli
Journal:  Curr Opin Chem Biol       Date:  2010-07-30       Impact factor: 8.822

5.  Enhancement of in vitro translation by gold nanoparticle--DNA conjugates.

Authors:  Sunho Park; Kimberly Hamad-Schifferli
Journal:  ACS Nano       Date:  2010-05-25       Impact factor: 15.881

6.  Control of protein orientation on gold nanoparticles.

Authors:  Wayne Lin; Thomas Insley; Marcus D Tuttle; Lingyang Zhu; Deborah A Berthold; Petr Král; Chad M Rienstra; Catherine J Murphy
Journal:  J Phys Chem C Nanomater Interfaces       Date:  2015-08-18       Impact factor: 4.126

Review 7.  Monolayer coated gold nanoparticles for delivery applications.

Authors:  Subinoy Rana; Avinash Bajaj; Rubul Mout; Vincent M Rotello
Journal:  Adv Drug Deliv Rev       Date:  2011-09-06       Impact factor: 15.470

Review 8.  Protein delivery into cells using inorganic nanoparticle-protein supramolecular assemblies.

Authors:  Federica Scaletti; Joseph Hardie; Yi-Wei Lee; David C Luther; Moumita Ray; Vincent M Rotello
Journal:  Chem Soc Rev       Date:  2018-05-21       Impact factor: 54.564

9.  Determination of Rigidity of Protein Bound Au(144) Clusters by Electron Cryomicroscopy.

Authors:  Jonathan Z Sexton; Christopher J Ackerson
Journal:  J Phys Chem C Nanomater Interfaces       Date:  2010-09-30       Impact factor: 4.126

10.  Synthesis and bioconjugation of 2 and 3 nm-diameter gold nanoparticles.

Authors:  Christopher J Ackerson; Pablo D Jadzinsky; Jonathan Z Sexton; David A Bushnell; Roger D Kornberg
Journal:  Bioconjug Chem       Date:  2010-02-17       Impact factor: 4.774

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