An Aptamer-Based Microelectrode with Tunable Linear Range for Monitoring of K+ in the Living Mouse Brain

Yuan-Dong Liu , Jia-Run Li , Li-Min Zhang , Yang Tian

Journal of Electrochemistry ›› 2023, Vol. 29 ›› Issue (6) : 2218004

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Journal of Electrochemistry ›› 2023, Vol. 29 ›› Issue (6) :2218004 DOI: 10.13208/j.electrochem.2218004
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An Aptamer-Based Microelectrode with Tunable Linear Range for Monitoring of K+ in the Living Mouse Brain

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Abstract

Potassium ion (K+) is widely involved in several physiopathological processes, and its abnormal changes are closely related to the occurrence of brain diseases of cerebral ischemia. In vivo acquirement of K+ variation is significant to understand the roles of K+ playing in brain functions. A microelectrode based on single-stranded DNA aptamers was developed for highly selective detection of K+ in brain, in which the aptamer probes were designed to contain an aptamer part for specific recognition of K+, an alkynyl group used for stable confinement of aptamer probe on the gold surface, and an electrochemical redox active ferrocene group to generate current response signal. The response range of the microelectrodes could be rationally tuned by varying the chain length of the aptamer probe. The optimized electrode, LAC, displayed high selectivity for in vivo detection of K+, and suitable linear range from 10 μmol·L-1-10 mmol·L-1, which could fulfill the requirement of K+ detection in brain. Eventually, the microelectrodes were successfully applied for the detection of K+ in the living mouse brains followed by hypoxic.

Keywords

Aptamer / Functional microelectrode / Potassium ion / Brain

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Yuan-Dong Liu, Jia-Run Li, Li-Min Zhang, Yang Tian. An Aptamer-Based Microelectrode with Tunable Linear Range for Monitoring of K+ in the Living Mouse Brain. Journal of Electrochemistry, 2023, 29(6): 2218004 DOI:10.13208/j.electrochem.2218004

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References

[1]

Fahanik-Babaei J, Rezaee B, Nazari M, Torabi N, Saghiri R, Sauve R, Eliassi A. A new brain mitochondrial sodium-sensitive potassium channel: effect of sodium ions on respiratory chain activity[J]. J. Cell Sci., 2020, 133(10): jcs242446.

[2]

Kamel H, Healey J. Cardioembolic stroke[J]. Circ. Res., 2017, 120(3): 514-526.

[3]

Liu, Y D, Liu Z C, Zhao, F, Tian Y. Long-term tracking and dynamically quantifying of reversible changes of extracellular Ca2+ in multiple brain regions of freely moving animals[J]. Angew. Chem. Int. Edit., 2021, 60(26): 14429-14437.

[4]

Weaver C. M. Potassium and health[J]. Adv. Nutr., 2013, 4(3): 368S-77S.

[5]

Qu Z, Steinvall E, Ghorbani R, Schmidt F M. Tunable diode laser atomic absorption spectroscopy for detection of potassium under optically thick conditions[J]. Anal. Chem., 2016, 88(7), 3754-3760.

[6]

Beiraghi A, Shokri M. A novel task specific magnetic polymeric ionic liquid for selective preconcentration of potassium in oil samples using centrifuge-less dispersive liquid-liquid microextraction technique and its determination by flame atomic emission spectroscopy[J]. Talanta, 2018, 178: 616-621.

[7]

Jewell M P, Greer M D. Dailey A L, Cash K J. Triplet-triplet annihilation upconversion based nanosensors for fluorescence detection of potassium[J]. ACS sens., 2020, 5(2): 474-480.

[8]

Liu Y D, Liu Z C, Tian Y. Real-time tracking of electrical signals and an accurate quantification of chemical signals with long-term stability in the live brain[J]. Acc. Chem. Res., 2022, 55(19): 2821-2832.

[9]

Da Y F, Luo S H, Tian Y. Real-time monitoring of neurotransmitters in the brain of living animals[J]. ACS Appl. Mater. Interfaces, 2022, 15(1): 138-157.

[10]

Liu Z C, Tian Y. Recent advances in development of devices and probes for sensing and imaging in the brain[J]. Sci. China-Chem., 2021, 64(6): 915-931.

[11]

Huang S Q, Zhang L M, Dai L Y, Wang Y Y, Tian Y. Nonenzymatic electrochemical sensor with ratiometric signal output for selective determination of superoxide anion in rat brain[J]. Anal. Chem., 2021, 93(13): 5570-5576.

[12]

Qian Y J, Zhang L M, Tian Y. Highly stable electrochemical probe with bidentate thiols for ratiometric monitoring of endogenous polysulfide in living mouse brains[J]. Anal. Chem., 2022, 94(2): 1447-1455.

[13]

Dong H, Zhou Q, Zhang L M, Tian Y. Rational design of specific recognition molecules for simultaneously monitoring of endogenous polysulfide and hydrogen sulfide in the mouse brain[J]. Angew. Chem. Int. Edit., 2019, 58(39): 13948-13953.

[14]

Zhao F, Liu Y D, Dong H, Feng S Q, Shi G Y, Lin L N, Tian Y. An electrochemophysiological microarray for real-time monitoring and quantification of multiple ions in the brain of a freely moving rat[J]. Angew. Chem. Int. Edit., 2020, 59(26): 10426-10430.

[15]

Dunn M R, McCloskey C M, Buckley P, Rhea K, Chaput J C. Generating biologically stable TNA aptamers that function with high affinity and thermal stability[J]. J. Am. Chem. Soc., 2020, 142(17): 7721-7724.

[16]

Stephens M. The emerging potential of Aptamers as therapeutic agents in infection and inflammation[J]. Pharmacol. Ther., 2022, 238: 108173.

[17]

Gong Z W, Liu Z C, Zhang Z H, Mei Y X, Tian Y. A highly stable two-photon ratiometric fluorescence probe for real-time biosensing and imaging of nitric oxide in brain tissues and larval zebrafish[J], CCS Chemistry, 2022, 4: 1-23.

[18]

Liu Z C, Zhu Y, Zhang L M, Jiang W P, Liu Y W, Tang Q W, Cai X Q, Li J, Wang L H, Tao C L, Yin X Z, Li X W, Hou S G, Jiang D W, Liu K, Zhou X, Zhang H J, Liu M L, Fan C H, Tian Y. Structural and functional imaging of brains[J]. Sci China-Chem., 2022, 66(2): 324-366.

[19]

Chen Z B, Guo J X, Zhang S G, Chen L. A one-step electrochemical sensor for rapid detection of potassium ion based on structure-switching aptamer[J]. Sens. Actuator B-Chem., 2013, 188: 1155-1157.

[20]

Zhang L M, Tian Y. Designing recognition molecules and tailoring functional surfaces for in vivo monitoring of small molecules in the brain[J]. Accounts Chem. Res., 2018, 51(3): 688-696.

[21]

Liu W, Dong H, Zhang L M, Tian Y. Development of an efficient biosensor for the in vivo monitoring of Cu+ and pH in the brain: Rational design and synthesis of recognition molecules[J]. Angew. Chem. Int. Edit., 2017, 56(51): 16328-16332.

[22]

Zhang C P, Liu Z C, Zhang L M, Zhu A W, Liao F M, Wan J J, Zhou J, Tian Y. A robust Au-C≡C functionalized surface: Toward real-time mapping and accurate quantification of Fe2+ in the brains of live ad Mouse models[J]. Angew. Chem. Int. Edit., 2020, 59(46): 20499-20507.

[23]

Gao X, Jiang L. Hu B, et al. Au-Se bond based nanoprobe for imaging MMP-2 in Tumor cells under a high-thiol environment[J]. Anal. Chem., 2018, 90(7): 4719-4724.

[24]

Liu H, Radford M N, Yang C T, Chen W, Xian M. Inorganic hydrogen polysulfides: Chemistry, chemical biology, and detection[J]. Br. J. Pharmacol., 2019, 176(4): 616-627.

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