journal article Jan 12, 2021

Long-term In Vivo Monitoring of Chemicals with Fiber Sensors

View at Publisher Save 10.1007/s42765-020-00061-9
Topics

No keywords indexed for this article. Browse by subject →

References
77
[1]
Electrochemical Methods for the Analysis of Clinically Relevant Biomolecules

Mahmoud Labib, Edward H. Sargent, Shana O. Kelley

Chemical Reviews 2016 10.1021/acs.chemrev.6b00220
[2]
Tavakolian-Ardakani Z, Hosu O, Cristea C, Mazloum-Ardakani M, Marrazza G. Latest trends in electrochemical sensors for neurotransmitters: a review. Sensors (Basel). 2019;19:2037. 10.3390/s19092037
[3]
Interstitial ions: A key regulator of state-dependent neural activity?

Rune Rasmussen, John O’Donnell, Fengfei Ding et al.

Progress in Neurobiology 2020 10.1016/j.pneurobio.2020.101802
[4]
Kumar P, Kumar D, Jha SK, Jha NK, Ambasta RK. Ion channels in neurological disorders. Adv Protein Chem Struct Biol. 2016;103:97. 10.1016/bs.apcsb.2015.10.006
[5]
Ngernsutivorakul T, White TS, Kennedy RT. Microfabricated probes for studying brain chemistry: a review. ChemPhysChem. 2018;19:1128. 10.1002/cphc.201701180
[6]
Salatino JW, Ludwig KA, Kozai TDY, Purcell EK. Glial responses to implanted electrodes in the brain. Nat Biomed Eng. 2017;1:862. 10.1038/s41551-017-0154-1
[7]
Novel electrode technologies for neural recordings

Guosong Hong, Charles M. Lieber

Nature Reviews Neuroscience 2019 10.1038/s41583-019-0140-6
[8]
Xu C, Wu F, Yu P, Mao L. In vivo electrochemical sensors for neurochemicals: recent update. ACS Sensors. 2019;4:3102. 10.1021/acssensors.9b01713
[9]
Lacour SP, Courtine G, Guck J. Materials and technologies for soft implantable neuroprostheses. Nat Rev Mater. 2016;1:16063. 10.1038/natrevmats.2016.63
[10]
Wu X, Peng H. Polymer-based flexible bioelectronics. Sci Bull. 2019;64:634. 10.1016/j.scib.2019.04.011
[11]
Tissue–electronics interfaces: from implantable devices to engineered tissues

Ron Feiner, Tal Dvir

Nature Reviews Materials 2017 10.1038/natrevmats.2017.76
[12]
Kozai TD, Jaquins-Gerstl AS, Vazquez AL, Michael AC, Cui XT. Brain tissue responses to neural implants impact signal sensitivity and intervention strategies. ACS Chem Neurosci. 2015;6:48. 10.1021/cn500256e
[13]
Chatard C, Sabac A, Moreno-Velasquez L, Meiller A, Marinesco S. Minimally invasive microelectrode biosensors based on platinized carbon fibers for in vivo brain monitoring. ACS Cent Sci. 2018;4:1751. 10.1021/acscentsci.8b00797
[14]
Vasylieva N, Marinesco S, Barbier D, Sabac A. Silicon/SU8 multi-electrode micro-needle for in vivo neurochemical monitoring. Biosens Bioelectron. 2015;72:148. 10.1016/j.bios.2015.05.004
[15]
Ling W, Yu J, Ma N, Li Y, Wu Z, Liang R, Hao Y, Pan H, Liu W, Fu B, Wang K, Wang H, Li L, Sheng X, Peng H, Ning B, Yang J, Huang X. Flexible electronics and materials for synchronized stimulation and monitoring in multi-encephalic regions. Adv Funct Mater. 2020;30:2002644. 10.1002/adfm.202002644
[16]
Yetisen AK, Jiang N, Fallahi A, Montelongo Y, Ruiz-Esparza GU, Tamayol A, Zhang YS, Mahmood I, Yang SA, Kim KS, Butt H, Khademhosseini A, Yun SH. Glucose-sensitive hydrogel optical fibers functionalized with phenylboronic acid. Adv Mater. 2017;29:1606380. 10.1002/adma.201606380
[17]
Liu Y, Liu J, Chen S, Lei T, Kim Y, Niu S, Wang H, Wang X, Foudeh AM, Tok JB, Bao Z. Soft and elastic hydrogel-based microelectronics for localized low-voltage neuromodulation. Nat Biomed Eng. 2019;3:58. 10.1038/s41551-018-0335-6
[18]
Acaron Ledesma H, Li X, Carvalho-de-Souza JL, Wei W, Bezanilla F, Tian B. An atlas of nano-enabled neural interfaces. Nat Nanotechnol. 2019;14:645. 10.1038/s41565-019-0487-x
[19]
Wang L, Xie S, Wang Z, Liu F, Yang Y, Tang C, Wu X, Liu P, Li Y, Saiyin H, Zheng S, Sun X, Xu F, Yu H, Peng H. Functionalized helical fibre bundles of carbon nanotubes as electrochemical sensors for long-term in vivo monitoring of multiple disease biomarkers. Nat Biomed Eng. 2020;4:159. 10.1038/s41551-019-0462-8
[20]
Clark JJ, Sandberg SG, Wanat MJ, Gan JO, Horne EA, Hart AS, Akers CA, Parker JG, Willuhn I, Martinez V, Evans SB, Stella N, Phillips PE. Chronic microsensors for longitudinal, subsecond dopamine detection in behaving animals. Nat Methods. 2010;7:126. 10.1038/nmeth.1412
[21]
Schwerdt HN, Shimazu H, Amemori K-i, Amemori S, Tierney PL, Gibson DJ, Hong S, Yoshida T, Langer R, Cima MJ, Graybiel AM. Long-term dopamine neurochemical monitoring in primates. Proc Natl Acad Sci. 2017;114:13260. 10.1073/pnas.1713756114
[22]
Wang L, Wang L, Zhang Y, Pan J, Li S, Sun X, Zhang B, Peng H. Weaving sensing fibers into electrochemical fabric for real-time health monitoring. Adv Funct Mater. 2018;28:1804456. 10.1002/adfm.201804456
[23]
Du ZJ, Kolarcik CL, Kozai TDY, Luebben SD, Sapp SA, Zheng XS, Nabity JA, Cui XT. Ultrasoft microwire neural electrodes improve chronic tissue integration. Acta Biomater. 2017;53:46. 10.1016/j.actbio.2017.02.010
[24]
Kozai TDY, Gugel Z, Li X, Gilgunn PJ, Khilwani R, Ozdoganlar OB, Fedder GK, Weber DJ, Cui XT. Chronic tissue response to carboxymethyl cellulose based dissolvable insertion needle for ultra-small neural probes. Biomaterials. 2014;35:9255. 10.1016/j.biomaterials.2014.07.039
[25]
Apollo NV, Jiang J, Cheung W, Baquier S, Lai A, Mirebedini A, Foroughi J, Wallace GG, Shivdasani MN, Prawer S, Chen S, Williams R, Cook MJ, Nayagam DAX, Garrett DJ. Development and characterization of a sucrose microneedle neural electrode delivery system. Adv Biosyst. 2018;2:1700187. 10.1002/adbi.201700187
[26]
Guan S, Wang J, Gu X, Zhao Y, Hou R, Fan H, Zou L, Gao L, Du M, Li C, Fang Y. Elastocapillary self-assembled neurotassels for stable neural activity recordings. Sci Adv. 2019;5:2842. 10.1126/sciadv.aav2842
[27]
Tang C, Xie S, Wang M, Feng J, Han Z, Wu X, Wang L, Chen C, Wang J, Jiang L, Chen P, Sun X, Peng H. A fiber-shaped neural probe with alterable elastic moduli for direct implantation and stable electronic-brain interfaces. J Mater Chem B. 2020;8:4387. 10.1039/d0tb00508h
[28]
Vitale F, Vercosa DG, Rodriguez AV, Pamulapati SS, Seibt F, Lewis E, Yan JS, Badhiwala K, Adnan M, Royer-Carfagni G, Beierlein M, Kemere C, Pasquali M, Robinson JT. Fluidic microactuation of flexible electrodes for neural recording. Nano Lett. 2017;18:326. 10.1021/acs.nanolett.7b04184
[29]
Liu J, Fu T-M, Cheng Z, Hong G, Zhou T, Jin L, Duvvuri M, Jiang Z, Kruskal P, Xie C, Suo Z, Fang Y, Lieber CM. Syringe-injectable electronics. Nat Nanotechnol. 2015;10:629. 10.1038/nnano.2015.115
[30]
Sheng H, Wang X, Kong N, Xi W, Yang H, Wu X, Wu K, Li C, Hu J, Tang J, Zhou J, Duan S, Wang H, Suo Z. Neural interfaces by hydrogels. Extreme Mech Lett. 2019;30:100510. 10.1016/j.eml.2019.100510
[31]
Taylor IM, Patel NA, Freedman NC, Castagnola E, Cui XT. Direct in vivo electrochemical detection of resting dopamine using poly(3,4-ethylenedioxythiophene)/carbon nanotube functionalized microelectrodes. Anal Chem. 2019;91:12917. 10.1021/acs.analchem.9b02904
[32]
Vasylieva N, Maucler C, Meiller A, Viscogliosi H, Lieutaud T, Barbier D, Marinesco S. Immobilization method to preserve enzyme specificity in biosensors: consequences for brain glutamate detection. Anal Chem. 2013;85:2507. 10.1021/ac3035794
[33]
Tracking tonic dopamine levels in vivo using multiple cyclic square wave voltammetry

Yoonbae Oh, Michael L. Heien, Cheonho Park et al.

Biosensors and Bioelectronics 2018 10.1016/j.bios.2018.08.034
[34]
Yu H, Ma Z, Wu Z. Immobilization of Ni-Pd/core-shell nanoparticles through thermal polymerization of acrylamide on glassy carbon electrode for highly stable and sensitive glutamate detection. Anal Chim Acta. 2015;896:137. 10.1016/j.aca.2015.09.005
[35]
Wu X, Feng J, Deng J, Cui Z, Wang L, Xie S, Chen C, Tang C, Han Z, Yu H, Sun X, Peng H. Fiber-shaped organic electrochemical transistors for biochemical detections with high sensitivity and stability. Sci China Chem. 2020;63:1281. 10.1007/s11426-020-9779-1
[36]
Nakatsuka N, Yang KA, Abendroth JM, Cheung KM, Xu X, Yang H, Zhao C, Zhu B, Rim YS, Yang Y, Weiss PS, Stojanovic MN, Andrews AM. Aptamer-field-effect transistors overcome debye length limitations for small-molecule sensing. Science. 2018;362:319. 10.1126/science.aao6750
[37]
Lee JS, Oh J, Kim SG, Jang J. Highly sensitive and selective field-effect-transistor nonenzyme dopamine sensors based on pt/conducting polymer hybrid nanoparticles. Small. 2015;11:2399. 10.1002/smll.201403263
[38]
An Ultrasensitive Nanowire-Transistor Biosensor for Detecting Dopamine Release from Living PC12 Cells under Hypoxic Stimulation

Bor-Ran Li, Ying-Jhu Hsieh, Yan-Xi Chen et al.

Journal of the American Chemical Society 2013 10.1021/ja408485m
[39]
Kergoat L, Piro B, Simon DT, Pham M-C, Noël V, Berggren M. Detection of glutamate and acetylcholine with organic electrochemical transistors based on conducting polymer/platinum nanoparticle composites. Adv Mater. 2014;26:5658. 10.1002/adma.201401608
[40]
Robinson DL, Hermans A, Seipel AT, Wightman RM. Monitoring rapid chemical communication in the brain. Chem Rev. 2008;108:2554. 10.1021/cr068081q
[41]
Chauhan N, Soni S, Agrawal P, Balhara YPS, Jain U. Recent advancement in nanosensors for neurotransmitters detection: present and future perspective. Process Biochem. 2020;91:241. 10.1016/j.procbio.2019.12.016
[42]
Sun H, Chao J, Zuo X, Su S, Liu X, Yuwen L, Fan C, Wang L. Gold nanoparticle-decorated mos2 nanosheets for simultaneous detection of ascorbic acid dopamine and uric acid. RSC Adv. 2014;4:27625. 10.1039/c4ra04046e
[43]
Durairaj V, Wester N, Etula J, Laurila T, Lehtonen J, Rojas OJ, Pahimanolis N, Koskinen J. Multiwalled carbon nanotubes/nanofibrillar cellulose/nafion composite-modified tetrahedral amorphous carbon electrodes for selective dopamine detection. J Phys Chem C. 2019;123:24826. 10.1021/acs.jpcc.9b05537
[44]
Jiang J, Du X. Sensitive electrochemical sensors for simultaneous determination of ascorbic acid, dopamine, and uric acid based on Au@Pd-reduced graphene oxide nanocomposites. Nanoscale. 2014;6:11303. 10.1039/c4nr01774a
[45]
Zhang L, Liu F, Sun X, Wei GF, Tian Y, Liu ZP, Huang R, Yu Y, Peng H. Engineering carbon nanotube fiber for real-time quantification of ascorbic acid levels in a live rat model of alzheimer’s disease. Anal Chem. 2017;89:1831. 10.1021/acs.analchem.6b04168
[46]
Killoran SJ, O’Neill RD. Characterization of Permselective coatings electrosynthesized on Pt–Ir from the three phenylenediamine isomers for biosensor applications. Electrochim Acta. 2008;53:7303. 10.1016/j.electacta.2008.03.076
[47]
Meiller A, Sequeira E, Marinesco S. Electrochemical nitric oxide microsensors based on a fluorinated xerogel screening layer for in vivo brain monitoring. Anal Chem. 2020;92:1804. 10.1021/acs.analchem.9b03621
[48]
Ganesana M, Trikantzopoulos E, Maniar Y, Lee ST, Venton BJ. Development of a novel micro biosensor for in vivo monitoring of glutamate release in the brain. Biosens Bioelectron. 2019;130:103. 10.1016/j.bios.2019.01.049
[49]
Shin JH, Privett BJ, Kita JM, Wightman RM, Schoenfisch MH. Fluorinated xerogel-derived microelectrodes for amperometric nitric oxide sensing. Anal Chem. 2008;80:6850. 10.1021/ac800185x
[50]
Liu L, Zhao F, Liu W, Zhu T, Zhang JZH, Chen C, Dai Z, Peng H, Huang JL, Hu Q, Bu W, Tian Y. An electrochemical biosensor with dual signal outputs: toward simultaneous quantification of pH and O2 in the brain upon ischemia and in a tumor during cancer starvation therapy. Angew Chem Int Ed. 2017;56:10471. 10.1002/anie.201705615

Showing 50 of 77 references

Metrics
55
Citations
77
References
Details
Published
Jan 12, 2021
Vol/Issue
3(1)
Pages
47-58
License
View
Funding
National Natural Science Foundation of China Award: 21634003
Shanghai Municipal Education Commission Award: 2017-01-07-00-07-E00062
Science and Technology Commission of Shanghai Municipality Award: 20JC1414902
Ministry of Science and Technology of the People's Republic of China Award: 2016YFA0203302
Cite This Article
Jiajia Wang, Liyuan Wang, Chengqiang Tang, et al. (2021). Long-term In Vivo Monitoring of Chemicals with Fiber Sensors. Advanced Fiber Materials, 3(1), 47-58. https://doi.org/10.1007/s42765-020-00061-9