Citation: CHEN Ying, MEI Rong-Chao, WANG Yun-Qing, LIU Wan-Hui, CHEN Ling-Xin. Detection of Single Cell Intracellular Environment by Surface Enhanced Raman Scattering Nanotip[J]. Chinese Journal of Analytical Chemistry, ;2023, 51(3): 356-363. doi: 10.19756/j.issn.0253-3820.221167
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Surface-enhanced Raman scattering (SERS) nanotip is a kind of new technique for single cell analysis, which shows excellent application potential in detection of intracellular environment and study of cell physiological function. Due to the small number of noble metal particles that can be loaded on SERS nanotips, screening and modifying nanoparticles with high SERS enhancement ability is the key to ensure their detection sensitivity. In this study, core-satellite Au nanoparticles were prepared, and the single particle signal was significantly higher than that of traditional Au nanospheres and Au nanostars. The particle was coated on the surface of glass capillary with tip diameter of about 200 nm to form SERS nanotips, which further functionalized and modified with target-sensitive Raman reporter molecules, enabling them to detect pH value and O2 content in micro-area environment. As application performance investigation, SERS nanotips realized pH value and anoxic state monitoring in single HL-7702 cell. This study solved the bottleneck issues such as random aggregation and difficulty in precise localization faced by traditional granular SERS probes for cell analysis, providing a new analytical tool for detection and analysis of single cell environment.
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-
[1]
KELLER L, PANTEL K. Nat. Rev. Cancer, 2019, 19(10):553-567.
-
[2]
ARABI M, OSTOVAN A, ZHANG Z, WANG Y, MEI R, FU L, WANG X, MA J, CHEN L. Biosens. Bioelectron., 2021, 174:112825.
-
[3]
GONG T, CUI Y, GOH D, VOON K K, SHUM P P, HUMBERT G, AUGUSTE J L, DINH X Q, YONG K T, OLIVO M. Biosens. Bioelectron., 2015, 64:227-233.
-
[4]
-
[5]
CUI J, HU K, SUN J J, QU L L, LI D W. Biosens. Bioelectron., 2016, 85:324-330.
-
[6]
MEI R, WANG Y, YU Q, YIN Y, ZHAO R, CHEN L. ACS Appl. Mater. Interfaces, 2020, 12(2):2059-2066.
-
[7]
GUO J, HE J. Biophys. J., 2019, 116(3):146A.
-
[8]
HANIF S, LIU H L, AHMED S A, YANG J M, ZHOU Y, PANG J, JI L N, XIA X H, WANG K. Anal. Chem., 2017, 89(18):9911-9917.
-
[9]
ZHU D, LI A, DI Y, WANG Z, SHI J, NI X, WANG Y. Nanotechnology, 2022, 33(11):115702.
-
[10]
GUO J, RUBFIARO A S, LAI Y H, MOSCOSO J, CHEN F, LIU Y, WANG X W, HE J. Analyst, 2020145(14):4852-4859.
-
[11]
WANG J Q, GENG Y J, SHEN Y T, SHI W, XU W Q, XU S P. Sens. Actuators, B, 2019, 290:527-534.
-
[12]
HANIF S, LIU H, CHEN M, MUHAMMAD P, ZHOU Y, CAO J, AHMED S A, XU J, XIA X, CHEN H, WANG K. Anal. Chem., 2017, 89(4):2522-2530.
-
[13]
CHEN J, WANG J, GENG Y, YUE J, SHI W, LIANG C, XU W, XU S. ACS Sens., 2021, 6(4):1663-1670.
-
[14]
LUSSIER F, BRULÉ T, VISHWAKARMA M, DAS T, SPATZ J P, MASSON J F. Nano Lett., 2016, 16(6):3866-3871.
-
[15]
ZHAO X, CAMPBELL S, EL-KHOURY P Z, JIA Y, WALLACE G Q, CLAING A, BAZUIN C G, MASSON J F. ACS Sens., 2021, 6(4):1649-1662.
-
[16]
LIU J, HE H, XIE D, WEN Y, LIU Z. Nat. Protoc., 2021, 16(7):3522-3546.
-
[17]
ZHAO X, CAMPBELL S, WALLACE G Q, CLAING A, BAZUIN C G, MASSON J F. ACS Sens., 2020, 5(7):2155-2167.
-
[18]
ZHENG Y, ZHONG X, LI Z, XIA Y. Part. Part. Syst. Charact., 2014, 31(2):266-273.
-
[19]
MEI R, WANG Y, LIU W, CHEN L. ACS Appl. Mater. Interfaces, 2018, 10(28):23605-23616.
-
[20]
SANCHIS-GUAL R, TORRES-CAVANILLAS R, CORONADO-PUCHAU M, GIMÉNEZ-MARQUÉS M, CORONADO E. J. Mater. Chem. C, 2021, 9(33):10811-10818.
-
[21]
VITOL E A, ORYNBAYEVA Z, BOUCHARD M J, AZIZKHAN-CLIFFORD J, FRIEDMAN G, GOGOTSI Y. ACS Nano, 2009, 3(11):3529-3536.
-
[22]
NGUYEN T D, SONG M S, LY N H, LEE S Y, JOO S W. Angew. Chem. Int. Ed., 2019, 58(9):2710-2714.
-
[23]
ZHU H, MASSON J F, BAZUIN C G. ACS Appl. Nano Mater., 2020, 3(1):516-529.
-
[24]
KOYUNCU I, TEMIZ E, DURGUN M, KOCYIGIT A, YUKSEKDAG O, SUPURAN C T. Int. J. Biol. Macromol., 2022, 201:37-46.
-
[25]
YU S, YOON J, LEE J, MYUNG S, JANG E, KWAK M, CHO E, JANG J, KIM Y, LEE H. Acta Pharmacol. Sin., 2011, 32(7):912-920.
-
[26]
HUANG Y F, ZHU H P, LIU G K, WU D Y, REN B, TIAN Z Q. J. Am. Chem. Soc., 2010, 132(27):9244-9246.
-
[27]
ZHOU J, FANG C, CHANG T, LIU X, SHANGGUAN D. J. Mater. Chem. B, 2013, 1(5):661-667.
-
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