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Nanostructured silver materials for noninvasive medical diagnostics by surface-enhanced Raman spectroscopy

Alexander Petrovich Semenov 2
Alexander Petrovich Semenov
Elena Anatol'evna Gudilina 3
Elena Anatol'evna Gudilina
Galina Timopheevna Sinyukova 3
Galina Timopheevna Sinyukova
Nadezhda Aleksandrovna Brazhe 4
Nadezhda Aleksandrovna Brazhe
Georgiy Vladimirovich Maksimov 4
Georgiy Vladimirovich Maksimov
Eugene Alekseevich Goodilin
Published 2016-04-28
Focus articleVolume 26, Issue 3, 177-186
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Semenova A. A. et al. Nanostructured silver materials for noninvasive medical diagnostics by surface-enhanced Raman spectroscopy // Mendeleev Communications. 2016. Vol. 26. No. 3. pp. 177-186.
GOST all authors (up to 50) Copy
Semenova A. A., Semenov A. P., Gudilina E. A., Sinyukova G. T., Brazhe N. A., Maksimov G. V., Goodilin E. A. Nanostructured silver materials for noninvasive medical diagnostics by surface-enhanced Raman spectroscopy // Mendeleev Communications. 2016. Vol. 26. No. 3. pp. 177-186.
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TY - JOUR
DO - 10.1016/j.mencom.2016.04.001
UR - https://mendcomm.colab.ws/publications/10.1016/j.mencom.2016.04.001
TI - Nanostructured silver materials for noninvasive medical diagnostics by surface-enhanced Raman spectroscopy
T2 - Mendeleev Communications
AU - Semenova, Anna Alexandrovna
AU - Semenov, Alexander Petrovich
AU - Gudilina, Elena Anatol'evna
AU - Sinyukova, Galina Timopheevna
AU - Brazhe, Nadezhda Aleksandrovna
AU - Maksimov, Georgiy Vladimirovich
AU - Goodilin, Eugene Alekseevich
PY - 2016
DA - 2016/04/28
PB - Mendeleev Communications
SP - 177-186
IS - 3
VL - 26
ER -
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@article{2016_Semenova,
author = {Anna Alexandrovna Semenova and Alexander Petrovich Semenov and Elena Anatol'evna Gudilina and Galina Timopheevna Sinyukova and Nadezhda Aleksandrovna Brazhe and Georgiy Vladimirovich Maksimov and Eugene Alekseevich Goodilin},
title = {Nanostructured silver materials for noninvasive medical diagnostics by surface-enhanced Raman spectroscopy},
journal = {Mendeleev Communications},
year = {2016},
volume = {26},
publisher = {Mendeleev Communications},
month = {Apr},
url = {https://mendcomm.colab.ws/publications/10.1016/j.mencom.2016.04.001},
number = {3},
pages = {177--186},
doi = {10.1016/j.mencom.2016.04.001}
}
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Semenova, Anna Alexandrovna, et al. “Nanostructured silver materials for noninvasive medical diagnostics by surface-enhanced Raman spectroscopy.” Mendeleev Communications, vol. 26, no. 3, Apr. 2016, pp. 177-186. https://mendcomm.colab.ws/publications/10.1016/j.mencom.2016.04.001.
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Abstract

Noninvasive medical diagnostics as a modern research and application trend faces with a key problem of successive development of novel materials. Recently, new powerful approaches based on surface-enhanced Raman spectroscopy have become incredibly popular since they promise a unique analysis of biochemical processes on cell, cell organelle and molecular levels. Silver nanostructures and composites are preferred for such an analysis because of easier and more flexible preparation ways, better affinity to biological species, extraordinary spectral sensitivity and a wide variety of morphological forms of silver nanomaterials.

References

1.
MRI angiography is superior to helical CT for detection of HCC prior to liver transplantation: An explant correlation
Burrel M., Llovet J.M., Ayuso C., Iglesias C., Sala M., Miquel R., Caralt T., Ayuso J.R., Solé M., Sanchez M., Brú C., Bruix J.
Hepatology, 2007
2.
Contrast-Enhanced Ultrasound of Liver Lesions
Cosgrove D.O.
Ultrasound in Medicine and Biology, 2010
3.
Efficacy of Contrast-Enhanced Ultrasonography in Radiofrequency Ablation for Hepatocellular Carcinoma
Dohmen T., Kataoka E., Yamada I., Miura K., Ohshima S., Shibuya T., Segawa D., Sato W., Anezaki Y., Ishii H., Kamada K., Goto T., Ohnishi H.
Internal Medicine, 2012
5.
Intraindividual Comparison of Gadoxetate Disodium–enhanced MR Imaging and 64-Section Multidetector CT in the Detection of Hepatocellular Carcinoma in Patients with Cirrhosis
Di Martino M., Marin D., Guerrisi A., Baski M., Galati F., Rossi M., Brozzetti S., Masciangelo R., Passariello R., Catalano C.
Radiology, 2010
6.
Studying single living cells and chromosomes by confocal Raman microspectroscopy
Puppels G.J., de Mul F.F., Otto C., Greve J., Robert-Nicoud M., Arndt-Jovin D.J., Jovin T.M.
Nature, 1990
7.
Resonance Raman spectroscopy of red blood cells using near-infrared laser excitation
Wood B.R., Caspers P., Puppels G.J., Pandiancherri S., McNaughton D.
Analytical and Bioanalytical Chemistry, 2006
8.
Surface-enhanced spectroscopy
Moskovits M.
Reviews of Modern Physics, 1985
9.
SERS-Based Diagnosis and Biodetection
Alvarez-Puebla R.A., Liz-Marzán L.M.
Small, 2010
10.
The structural basis for giant enhancement enabling single-molecule Raman scattering
Wang Z., Pan S., Krauss T.D., Du H., Rothberg L.J.
Proceedings of the National Academy of Sciences of the United States of America, 2003
11.
New Insight into Erythrocyte through In Vivo Surface-Enhanced Raman Spectroscopy
Brazhe N.A., Abdali S., Brazhe A.R., Luneva O.G., Bryzgalova N.Y., Parshina E.Y., Sosnovtseva O.V., Maksimov G.V.
Biophysical Journal, 2009
13.
A Facile Method to Prepare Quickly Colloidal Silver Nanoparticles
Guangnian X., Xueliang Q., Xiaolin Q., Jianguo C.
Rare Metal Materials and Engineering, 2010
14.
Biosensing with plasmonic nanosensors
Anker J.N., Hall W.P., Lyandres O., Shah N.C., Zhao J., Van Duyne R.P.
Nature Materials, 2008
15.
Gold nanorod-based localized surface plasmon resonance biosensor for sensitive detection of hepatitis B virus in buffer, blood serum and plasma
Wang X., Li Y., Wang H., Fu Q., Peng J., Wang Y., Du J., Zhou Y., Zhan L.
Biosensors and Bioelectronics, 2010
16.
Nanoparticle−Mirror Sandwich Substrates for Surface-Enhanced Raman Scattering
Daniels J.K., Chumanov G.
Journal of Physical Chemistry B, 2005
17.
Detection of thiopurine methyltransferase activity in lysed red blood cells by means of lab-on-a-chip surface enhanced Raman spectroscopy (LOC-SERS)
19.
Characterisation and identification of bacteria using SERS
Jarvis R.M., Goodacre R.
Chemical Society Reviews, 2008
20.
Scanometric DNA Array Detection with Nanoparticle Probes
Taton T.A., Mirkin C.A., Letsinger R.L.
Science, 2000
21.
A Review on Diverse Silver Nanostructures
Meng X.K., Tang S.C., Vongehr S.
Journal of Materials Science and Technology, 2010
23.
Raman and SERS recognition of β-carotene and haemoglobin fingerprints in human whole blood
Casella M., Lucotti A., Tommasini M., Bedoni M., Forvi E., Gramatica F., Zerbi G.
Spectrochimica Acta - Part A: Molecular and Biomolecular Spectroscopy, 2011
24.
Selective Detection of HbA1c Using Surface Enhanced Resonance Raman Spectroscopy
Syamala Kiran M., Itoh T., Yoshida K., Kawashima N., Biju V., Ishikawa M.
Analytical Chemistry, 2010
26.
Study of silver nanoparticle–hemoglobin interaction and composite formation
Mahato M., Pal P., Tah B., Ghosh M., Talapatra G.B.
Colloids and Surfaces B: Biointerfaces, 2011
27.
Versatile Solution Phase Triangular Silver Nanoplates for Highly Sensitive Plasmon Resonance Sensing
Charles D.E., Aherne D., Gara M., Ledwith D.M., Gun’ko Y.K., Kelly J.M., Blau W.J., Brennan-Fournet M.E.
ACS Nano, 2009
30.
Investigations on the Structural Damage in Human Erythrocytes Exposed to Silver, Gold, and Platinum Nanoparticles
Asharani P.V., Sethu S., Vadukumpully S., Zhong S., Lim C.T., Hande M.P., Valiyaveettil S.
Advanced Functional Materials, 2010
31.
Surface-enhanced Raman scattering from silver-coated opals
Mu W., Hwang D., Chang R.P., Sukharev M., Tice D.B., Ketterson J.B.
Journal of Chemical Physics, 2011
32.
Improved SERS Performance from Au Nanopillar Arrays by Abridging the Pillar Tip Spacing by Ag Sputtering
33.
Self-Assembly of Large-Scale and Ultrathin Silver Nanoplate Films with Tunable Plasmon Resonance Properties
34.
Optical sensing of biological, chemical and ionic species through aggregation of plasmonic nanoparticles
Polavarapu L., Pérez-Juste J., Xu Q., Liz-Marzán L.M.
Journal of Materials Chemistry C, 2014
35.
Environmental applications of plasmon assisted Raman scattering
Álvarez-Puebla R.A., Liz-Marzán L.M.
Energy and Environmental Science, 2010
36.
Surface-enhanced Raman spectroscopy (SERS): progress and trends
Cialla D., März A., Böhme R., Theil F., Weber K., Schmitt M., Popp J.
Analytical and Bioanalytical Chemistry, 2011
37.
Toxicity of silver nanoparticles—Nanoparticle or silver ion?
Beer C., Foldbjerg R., Hayashi Y., Sutherland D.S., Autrup H.
Toxicology Letters, 2012
38.
Nanosilver as a new generation of nanoproduct in biomedical applications
Chaloupka K., Malam Y., Seifalian A.M.
Trends in Biotechnology, 2010
40.
Metal Nanocrystals with Highly Branched Morphologies
Lim B., Xia Y.
Angewandte Chemie - International Edition, 2010
41.
Shape-Controlled Synthesis of Metal Nanostructures: The Case of Silver
Wiley B., Sun Y., Mayers B., Xia Y.
Chemistry - A European Journal, 2005
42.
Colloidal Synthesis of Plasmonic Metallic Nanoparticles
Zhang Q., Tan Y.N., Xie J., Lee J.Y.
Plasmonics, 2008
48.
Successive Deposition of Silver on Silver Nanoplates: Lateral versus Vertical Growth
Zeng J., Xia X., Rycenga M., Henneghan P., Li Q., Xia Y.
Angewandte Chemie - International Edition, 2010
50.
Nanostars shine bright for you
Guerrero-Martínez A., Barbosa S., Pastoriza-Santos I., Liz-Marzán L.M.
Current Opinion in Colloid and Interface Science, 2011
53.
Nanospheres of silver nanoparticles: agglomeration, surface morphology control and application as SERS substrates
54.
Controlling the Growth and Assembly of Silver Nanoprisms
Zhang J. ., Liu H. ., Zhan P., Wang Z. ., Ming N. .
Advanced Functional Materials, 2007
57.
Polyol Synthesis of Silver Nanowires: An Extensive Parametric Study
Coskun S., Aksoy B., Unalan H.E.
Crystal Growth and Design, 2011
59.
High-Yield Uniform Synthesis and Microstructure-Determination of Rice-Shaped Silver Nanocrystals
Liang H., Yang H., Wang W., Li J., Xu H.
Journal of the American Chemical Society, 2009
61.
New nanocomposites for SERS studies of living cells and mitochondria
Sarycheva A.S., Brazhe N.A., Baizhumanov A.A., Nikelshparg E.I., Semenova A.A., Garshev A.V., Baranchikov A.E., Ivanov V.K., Maksimov G.V., Sosnovtseva O., Goodilin E.A.
Journal of Materials Chemistry B, 2016
62.
Probing cytochrome c in living mitochondria with surface-enhanced Raman spectroscopy
Brazhe N.A., Evlyukhin A.B., Goodilin E.A., Semenova A.A., Novikov S.M., Bozhevolnyi S.I., Chichkov B.N., Sarycheva A.S., Baizhumanov A.A., Nikelshparg E.I., Deev L.I., Maksimov E.G., Maksimov G.V., Sosnovtseva O.
Scientific Reports, 2015
63.
Microbead silica decorated with polyhedral silver nanoparticles as a versatile component of sacrificial gel films for SERS applications
Sarycheva A.S., Ivanov V.K., Baranchikov A.E., Savilov S.V., Sidorov A.V., Goodilin E.A.
RSC Advances, 2015
64.
Hierarchic nanostructuring by self-reduction of silver (I) oxide complexes
Semenova A.A., Ivanov V.K., Baranchikov A.E., Savilov S.V., Goodilin E.A.
Functional Materials Letters, 2016
65.
Aqueous Diaminsilver Hydroxide as a Precursor of Pure Silver Nanoparticles for SERS Probing of Living Erythrocytes
Semenova A.A., Brazhe N.A., Parshina E.Y., Ivanov V.K., Maksimov G.V., Goodilin E.A.
Plasmonics, 2013
66.
Ultrasonic-silver-rain preparation of SERS substrates
Sarycheva A.S., Semenova A.A., Parshina E.Y., Brazhe N.A., Polyakov A.Y., Kozmenkova A.Y., Grigorieva A.V., Maksimov G.V., Goodilin E.A.
Materials Letters, 2014
67.
Unusual silver nanostructures prepared by aerosol spray pyrolysis
Semenova A.A., Ivanov V.K., Savilov S.V., Goodilin E.A.
CrystEngComm, 2013
68.
Tuning SERS for living erythrocytes: Focus on nanoparticle size and plasmon resonance position
Brazhe N.A., Parshina E.Y., Khabatova V.V., Semenova A.A., Brazhe A.R., Yusipovich A.I., Sarycheva A.S., Churin A.A., Goodilin E.A., Maksimov G.V., Sosnovtseva O.V.
Journal of Raman Spectroscopy, 2013
69.
Planar SERS nanostructures with stochastic silver ring morphology for biosensor chips
Semenova A.A., Goodilin E.A., Brazhe N.A., Ivanov V.K., Baranchikov A.E., Lebedev V.A., Goldt A.E., Sosnovtseva O.V., Savilov S.V., Egorov A.V., Brazhe A.R., Parshina E.Y., Luneva O.G., Maksimov G.V., Tretyakov Y.D., et. al.
Journal of Materials Chemistry A, 2012
70.
Semenova A.A., Goodilin E.A., Tretyakov Y.D.
Mendeleev Communications, 2011
71.
Combined Raman and atomic force microscopy study of hemoglobin distribution inside erythrocytes and nanoparticle localization on the erythrocyte surface
Parshina E.Y., Sarycheva A.S., Yusipovich A.I., Brazhe N.A., Goodilin E.A., Maksimov G.V.
Laser Physics Letters, 2013
72.
Key trends in basic and application-oriented research on nanomaterials
73.
Semenova A.A., Braze N.A., Maksimov G.V., Semenova I.A., Semenov A.P., Goodilin E.A.
Mendeleev Communications, 2016
74.
Twinned Structure and Growth of V-Shaped Silver Nanowires Generated by a Polyol−Thermal Approach
Jiang X.C., Xiong S.X., Tian Z.A., Chen C.Y., Chen W.M., Yu A.B.
Journal of Physical Chemistry C, 2011
75.
The Solutions of Oxygen in Silver
Simons J.H.
The Journal of Physical Chemistry, 1932
77.
Oxygen Permeation through Silver
Beavis L.C.
Review of Scientific Instruments, 1972
78.
Protection and functionalisation of silver as an optical sensing platform for highly sensitive SPR based analysis
Manickam G., Gandhiraman R., Vijayaraghavan R.K., Kerr L., Doyle C., Williams D.E., Daniels S.
The Analyst, 2012
79.
Influence of relative humidity and ozone on atmospheric silver corrosion
Wiesinger R., Martina I., Kleber C., Schreiner M.
Corrosion Science, 2013
80.
The investigation of oxidized silver nanoparticles prepared by thermal evaporation and radio-frequency sputtering of metallic silver under oxygen
Kibis L.S., Stadnichenko A.I., Pajetnov E.M., Koscheev S.V., Zaykovskii V.I., Boronin A.I.
Applied Surface Science, 2010
81.
Chimie douce preparation of reproducible silver coatings for SERS applications
Sidorov A.V., Grigorieva A.V., Goldt A.E., Eremina O.E., Veselova I.A., Savilov S.V., Goodilin E.A.
Functional Materials Letters, 2016
85.
Chemical imaging of live fibroblasts by SERS effective nanofilm
Radziuk D., Schuetz R., Masic A., Moehwald H.
Physical Chemistry Chemical Physics, 2014
87.
Preparation of core–shell nanospheres of silica–silver: SiO2@Ag
Flores J.C., Torres V., Popa M., Crespo D., Calderón-Moreno J.M.
Journal of Non-Crystalline Solids, 2008
89.
Template-Activated Strategy toward One-Step Coating Silica Colloidal Microspheres with Sliver
Wang K., Zhang X., Niu C., Wang Y.
ACS applied materials & interfaces, 2013
90.
An improved seed-mediated growth method to coat complete silver shells onto silica spheres for surface-enhanced Raman scattering
Liu T., Li D., Yang D., Jiang M.
Colloids and Surfaces A: Physicochemical and Engineering Aspects, 2011
91.
Spectroscopy of Single Hemoglobin Molecules by Surface Enhanced Raman Scattering
Xu H., Bjerneld E.J., Käll M., Börjesson L.
Physical Review Letters, 1999
95.
Spectroscopical and mechanical characterization of normal and thalassemic red blood cells by Raman Tweezers
De Luca A.C., Rusciano G., Ciancia R., Martinelli V., Pesce G., Rotoli B., Selvaggi L., Sasso A.
Optics Express, 2008
96.
Raman excitation wavelength investigation of single red blood cellsin vivo
Wood B.R., McNaughton D.
Journal of Raman Spectroscopy, 2002
97.
In situ intracellular spectroscopy with surface enhanced Raman spectroscopy (SERS)-enabled nanopipettes.
Vitol E.A., Orynbayeva Z., Bouchard M.J., Azizkhan-Clifford J., Friedman G., Gogotsi Y.
ACS Nano, 2009
98.
Selective and Sensitive Detection of Intracellular O2•– Using Au NPs/Cytochrome c as SERS Nanosensors
99.
Functionalized arrays of Raman-enhancing nanoparticles for capture and culture-free analysis of bacteria in human blood
Liu T., Tsai K., Wang H., Chen Y., Chen Y., Chao Y., Chang H., Lin C., Wang J., Wang Y.
Nature Communications, 2011
100.
Nanostructured silver–gold bimetallic SERS substrates for selective identification of bacteria in human blood
Sivanesan A., Witkowska E., Adamkiewicz W., Dziewit Ł., Kamińska A., Waluk J.
The Analyst, 2014
101.
Evidence of conformational changes in adsorbed lysozyme molecule on silver colloids.
Chandra G., Ghosh K.S., Dasgupta S., Roy A.
International Journal of Biological Macromolecules, 2010
103.
Signaling pathways in mitochondrial dysfunction and aging
Mammucari C., Rizzuto R.
Mechanisms of Ageing and Development, 2010
104.
Cardiolipin externalization to the outer mitochondrial membrane acts as an elimination signal for mitophagy in neuronal cells
Chu C.T., Ji J., Dagda R.K., Jiang J.F., Tyurina Y.Y., Kapralov A.A., Tyurin V.A., Yanamala N., Shrivastava I.H., Mohammadyani D., Qiang Wang K.Z., Zhu J., Klein-Seetharaman J., Balasubramanian K., Amoscato A.A., et. al.
Nature Cell Biology, 2013
105.
How mitochondria produce reactive oxygen species
106.
Cardioprotection by S-nitrosation of a cysteine switch on mitochondrial complex I
Chouchani E.T., Methner C., Nadtochiy S.M., Logan A., Pell V.R., Ding S., James A.M., Cochemé H.M., Reinhold J., Lilley K.S., Partridge L., Fearnley I.M., Robinson A.J., Hartley R.C., Smith R.A., et. al.
Nature Medicine, 2013
108.
Persistence of cytochrome c binding to membranes at physiological mitochondrial intermembrane space ionic strength
Cortese J.D., Voglino A.L., Hackenbrock C.R.
Biochimica et Biophysica Acta - Bioenergetics, 1995
111.
Mapping of Redox State of Mitochondrial Cytochromes in Live Cardiomyocytes Using Raman Microspectroscopy
Brazhe N.A., Treiman M., Brazhe A.R., Find N.L., Maksimov G.V., Sosnovtseva O.V.
PLoS ONE, 2012
112.
In Situ Raman Study of Redox State Changes of Mitochondrial Cytochromes in a Perfused Rat Heart
Brazhe N.A., Treiman M., Faricelli B., Vestergaard J.H., Sosnovtseva O.
PLoS ONE, 2013
113.
Label-free Raman observation of cytochrome c dynamics during apoptosis
Okada M., Smith N.I., Palonpon A.F., Endo H., Kawata S., Sodeoka M., Fujita K.
Proceedings of the National Academy of Sciences of the United States of America, 2011
114.
Surface-enhanced resonance Raman scattering from cytochrome c and myoglobin adsorbed on a silver electrode
Cotton T.M., Schultz S.G., Van Duyne R.P.
Journal of the American Chemical Society, 1980
115.
Detection of proteins on Silica–Silver Core–Shell substrates by surface-enhanced Raman spectroscopy
Chen L., Han X., Yang J., Zhou J., Song W., Zhao B., Xu W., Ozaki Y.
Journal of Colloid and Interface Science, 2011
116.
10.1016/j.mencom.2016.04.001_bib0580
Karatas¸
2009
117.
Characterizing cytochrome c states – TERS studies of whole mitochondria
Böhme R., Mkandawire M., Krause-Buchholz U., Rösch P., Rödel G., Popp J., Deckert V.
Chemical Communications, 2011
118.
Highly uniform and reproducible surface-enhanced Raman scattering from DNA-tailorable nanoparticles with 1-nm interior gap.
120.
10.1016/j.mencom.2016.04.001_bib0600
Vitol
Spectrosc., 2012
123.
Using Surface Enhanced Raman Scattering to Analyze the Interactions of Protein Receptors with Bacterial Quorum Sensing Modulators
Costas C., López-Puente V., Bodelón G., González-Bello C., Pérez-Juste J., Pastoriza-Santos I., Liz-Marzán L.M.
ACS Nano, 2015
124.
10.1016/j.mencom.2016.04.001_bib0620
Kim
ACS Appl. Mater. Interfaces, 2015
127.
Surface-Enhanced Raman Spectroscopy as a Tool for Detecting Ca2+ Mobilizing Second Messengers in Cell Extracts
Vitol E.A., Brailoiu E., Orynbayeva Z., Dun N.J., Friedman G., Gogotsi Y.
Analytical Chemistry, 2010