3 Surface-enhanced Raman Scattering ...
59
153. Kneipp K, haka AS, Kneipp h, Badizadegan K, Yoshizawa N, Boone C, Shafer-Peltier
K, motz Jt, dasari RR, Feld mS (2002) Surface-enhanced Raman spectroscopy in single
living cells using gold nanoparticles. Appl Spectrosc 56:150–154
154. Jarvis Rm, Law N, Shadi Lt, o’Brien P, Lloyd JR, goodacre R (2008) Surface-enhanced Raman scattering from intracellular and extracellular bacterial locations. Anal Chem
80:6741–6746
155. Efrima S, Zeiri L (2009) understanding SERS of bacteria. J Raman Spectrosc 40:277–288
156. gessner R, Winter C, Rosch P, Schmitt m, Petry R, Kiefer W, Lankers m, Popp J (2004)
Identification of Biotic and Abiotic Particles by using a Combination of optical tweezers
and In Situ Raman Spectroscopy. ChemPhysChem 5:1159–1170
157. Scaffidi JP, gregas mK, Seewaldt v, vo-dinh t (2009) SERS-based plasmonic nanobiosensing in single living cells. Anal Bioanal Chem 393:1135–1141
158. Bohme R, Richter m, Cialla d, Rosch P, deckert v, Popp J (2009) towards a specific
characterization of components on a cell surface—combined tERS-investigations of lipids
and human cells. J Raman Spectrosc 40:1452–1457
159. Cialla d, deckert-gaudig t, Budich C, Laue m, moller R, Naumann d, deckert v, Popp
J (2009) Raman to the limit: tip-enhanced Raman spectroscopic investigations of a single
tobacco mosaic virus. J Raman Spectrosc 40:240–243
160. Budich C, Neugebauer u, Popp J, deckert v (2008) Cell Wall investigations utilizing tipenhanced Raman scattering. J microsc 229:533–539
161. Kozitskaya S, deckert v, Schmitt m, Popp J (2007) towards a detailed understanding
of bacterial metabolism—spectroscopic characterization of Staphylococcus Epidermidis.
ChemPhysChem 8:124–137
162. Auchinvole CAR, Richardson P, mcguinnes C, mallikarjun v, donaldson K, mcNab h,
Campbell CJ (2012) monitoring intracellular redox potential changes using SERS nanosensors. ACS Nano 6(1):888–896
163. Kneipp J, Kneipp h, Wittig B, Kneipp K (2007) one- and two-photon excited optical ph
probing for cells using surface-enhanced Raman and hyper-Raman nanosensors. Nano Lett
7:2819–2823
164. talley CE, Jusinski L, hollars CW, Lane Sm, huser t (2004) Intracellular ph sensors
based on surface-enhanced Raman scattering. Anal Chem 76:7064–7068
165. Nowak-Lovato KL, Wilson BS, Rector Kd (2010) SERS nanosensors that report ph of
endocytic compartments during FcεRI transit. Anal Bioanal Chem 398:2019–2029
166. Kneipp J, Kneipp h, Wittig B, Kneipp K (2010) Following the dynamics of ph in endosomes of live cells with SERS nanosensors. J Phys Chem C 114:7421–7426
167. Zong S, Wang Z, Yang J, Cui Y (2011) Intracellular ph sensing using p-aminothiophenol
functionalized gold nanorods with low toxicity. Anal Chem 83:4178–4183
168. Balint S, Rao S, marro m, miskovsky P, Petrov d (2011) monitoring of local ph in photodynamic therapy-treated live cancer cells using surface-enhanced Raman scattering probes.
J Raman Spectrosc 42:1215–1221
169. Bishnoi SW, Rozell CJ, Levin CS, gheith mK, Johnson BR, Johnson dh, halas NJ (2006)
All-optical nanoscale ph meter. Nano Lett 6:1687–1692
170. Ando RA, Pieczonka NPW, Santos PS, Aroca RF (2009) Chromic materials for responsive surface-enhanced resonance Raman scattering systems: a nanometric ph sensor. Phys
Chem Chem Phys 11:7505–7508
171. Qian X, Peng Xh, Ansari do, Yin-goen Q, Chen gZ, Shin dm, Yang L, Young AN, Wang
md, Nie Sm (2008) In vivo tumor targeting and spectroscopic detection with surface-enhanced Raman nanoparticle tags. Nat Biotech 26:83–90
172. Lee S, Kim S, Choo J, Shin SY, Lee Yh, Choi hY, ha S, Kang Kh, oh Ch (2007) Biological imaging of hEK293 cells expressing PLCç1 using surface-enhanced Raman microscopy. Anal Chem 79:916–922
59
153. Kneipp K, haka AS, Kneipp h, Badizadegan K, Yoshizawa N, Boone C, Shafer-Peltier
K, motz Jt, dasari RR, Feld mS (2002) Surface-enhanced Raman spectroscopy in single
living cells using gold nanoparticles. Appl Spectrosc 56:150–154
154. Jarvis Rm, Law N, Shadi Lt, o’Brien P, Lloyd JR, goodacre R (2008) Surface-enhanced Raman scattering from intracellular and extracellular bacterial locations. Anal Chem
80:6741–6746
155. Efrima S, Zeiri L (2009) understanding SERS of bacteria. J Raman Spectrosc 40:277–288
156. gessner R, Winter C, Rosch P, Schmitt m, Petry R, Kiefer W, Lankers m, Popp J (2004)
Identification of Biotic and Abiotic Particles by using a Combination of optical tweezers
and In Situ Raman Spectroscopy. ChemPhysChem 5:1159–1170
157. Scaffidi JP, gregas mK, Seewaldt v, vo-dinh t (2009) SERS-based plasmonic nanobiosensing in single living cells. Anal Bioanal Chem 393:1135–1141
158. Bohme R, Richter m, Cialla d, Rosch P, deckert v, Popp J (2009) towards a specific
characterization of components on a cell surface—combined tERS-investigations of lipids
and human cells. J Raman Spectrosc 40:1452–1457
159. Cialla d, deckert-gaudig t, Budich C, Laue m, moller R, Naumann d, deckert v, Popp
J (2009) Raman to the limit: tip-enhanced Raman spectroscopic investigations of a single
tobacco mosaic virus. J Raman Spectrosc 40:240–243
160. Budich C, Neugebauer u, Popp J, deckert v (2008) Cell Wall investigations utilizing tipenhanced Raman scattering. J microsc 229:533–539
161. Kozitskaya S, deckert v, Schmitt m, Popp J (2007) towards a detailed understanding
of bacterial metabolism—spectroscopic characterization of Staphylococcus Epidermidis.
ChemPhysChem 8:124–137
162. Auchinvole CAR, Richardson P, mcguinnes C, mallikarjun v, donaldson K, mcNab h,
Campbell CJ (2012) monitoring intracellular redox potential changes using SERS nanosensors. ACS Nano 6(1):888–896
163. Kneipp J, Kneipp h, Wittig B, Kneipp K (2007) one- and two-photon excited optical ph
probing for cells using surface-enhanced Raman and hyper-Raman nanosensors. Nano Lett
7:2819–2823
164. talley CE, Jusinski L, hollars CW, Lane Sm, huser t (2004) Intracellular ph sensors
based on surface-enhanced Raman scattering. Anal Chem 76:7064–7068
165. Nowak-Lovato KL, Wilson BS, Rector Kd (2010) SERS nanosensors that report ph of
endocytic compartments during FcεRI transit. Anal Bioanal Chem 398:2019–2029
166. Kneipp J, Kneipp h, Wittig B, Kneipp K (2010) Following the dynamics of ph in endosomes of live cells with SERS nanosensors. J Phys Chem C 114:7421–7426
167. Zong S, Wang Z, Yang J, Cui Y (2011) Intracellular ph sensing using p-aminothiophenol
functionalized gold nanorods with low toxicity. Anal Chem 83:4178–4183
168. Balint S, Rao S, marro m, miskovsky P, Petrov d (2011) monitoring of local ph in photodynamic therapy-treated live cancer cells using surface-enhanced Raman scattering probes.
J Raman Spectrosc 42:1215–1221
169. Bishnoi SW, Rozell CJ, Levin CS, gheith mK, Johnson BR, Johnson dh, halas NJ (2006)
All-optical nanoscale ph meter. Nano Lett 6:1687–1692
170. Ando RA, Pieczonka NPW, Santos PS, Aroca RF (2009) Chromic materials for responsive surface-enhanced resonance Raman scattering systems: a nanometric ph sensor. Phys
Chem Chem Phys 11:7505–7508
171. Qian X, Peng Xh, Ansari do, Yin-goen Q, Chen gZ, Shin dm, Yang L, Young AN, Wang
md, Nie Sm (2008) In vivo tumor targeting and spectroscopic detection with surface-enhanced Raman nanoparticle tags. Nat Biotech 26:83–90
172. Lee S, Kim S, Choo J, Shin SY, Lee Yh, Choi hY, ha S, Kang Kh, oh Ch (2007) Biological imaging of hEK293 cells expressing PLCç1 using surface-enhanced Raman microscopy. Anal Chem 79:916–922
