Microfluidic device integrating single-cell extraction and electrical lysis for mass spectrometry detection of intracellular compounds

. 2023 Jan ; 44 (1-2) : 313-322. [epub] 20220418

Jazyk angličtina Země Německo Médium print-electronic

Typ dokumentu časopisecké články, práce podpořená grantem

Perzistentní odkaz   https://www.medvik.cz/link/pmid35315940

Analysis of cellular composition and metabolism at a single-cell resolution allows gaining more information about complex relationships of cells within tissues or whole living organisms by resolving the variance stemming from the cellular heterogeneity. Mass spectrometry (MS) is a perfect analytical tool satisfying the demanding requirements of detecting and identifying compounds present in such ultralow-volume samples of high chemical complexity. However, the method of sampling and sample ionization is crucial in obtaining relevant information. In this work, we present a microfluidic sampling platform that integrates single-cell extraction from MS-incompatible media with electrical cell lysis and nanoESI-MS analysis of human erythrocytes. Hemoglobin alpha and beta chains (300 amol/cell) were successfully identified in mass spectra of single-erythrocyte lysates.

Zobrazit více v PubMed

Yin L, Zhang Z, Liu Y, Gao Y, Gu J. Recent advances in single-cell analysis by mass spectrometry. Analyst. 2019;144:824-45.

Comi TJ, Do TD, Rubakhin SS, Sweedler JV. Categorizing cells on the basis of their chemical profiles: progress in single-cell mass spectrometry. J Am Chem Soc. 2017;139:3920-9.

Yang Y, Huang Y, Wu J, Liu N, Deng J, Luan T. Single-cell analysis by ambient mass spectrometry. TrAC Trends Anal Chem. 2017;90:14-26.

Zhang L, Vertes A. Single cell mass spectrometry approaches to explore cellular heterogeneity. Angew Chem Int Ed. 2018;57:4466-77.

Jackson Ah. Recent developments in mass spectrometry in biochemistry and medicine, Volume 2. Biochem Educ. 1980;8:93.

Seydel U, Lindner B, Brandenburg K. Single cell mass analysis. Biophys Struct Mech. 1981;7:319.

Lindner B, Seydel U. Mass spectrometric analysis of drug-induced changes in Na+ and K+ contents of single bacterial cells. Microbiology. 1983;129:51-5.

Karas M, Hillenkamp F. Laser desorption ionization of proteins with molecular masses exceeding 10,000 Daltons. Anal Chem. 1988;60:2299-301.

Yamashita M, Fenn JB. Electrospray ion source. Another variation on the free-jet theme. J Phys Chem. 1984;88:4451-9.

Taylor MJ, Lukowski JK, Anderton CR. Spatially resolved mass spectrometry at the single cell: recent innovations in proteomics and metabolomics. J Am Soc Mass Spectrom. 2021;32:872-94.

Hofstadler SA, Severs JC, Smith RD, Swanek FD, Ewing AG. Analysis of single cells with capillary electrophoresis electrospray ionization Fourier transform ion cyclotron resonance mass spectrometry. Rapid Commun Mass Spectrom. 1996;10:919-22.

Cao P, Moini M. Separation and detection of the α- and β-chains of hemoglobin of a single intact red blood cell using capillary electrophoresis/electrospray ionization time-of-flight mass spectrometry. J Am Soc Mass Spectrom. 1999;10:184-6.

Moini M, Demars SM, Huang H. Analysis of carbonic anhydrase in human red blood cells using capillary electrophoresis/electrospray ionization-mass spectrometry. Anal Chem. 2002;74:3772-6.

Mizuno H, Tsuyama N, Harada T, Masujima T. Live single-cell video-mass spectrometry for cellular and subcellular molecular detection and cell classification. J Mass Spectrom. 2008;43:1692-700.

Masujima T. Live single-cell mass spectrometry. Anal Sci. 2009;25:953-60.

Abouleila Y, Onidani K, Ali A, Shoji H, Kawai T, Lim CT, et al. Live single cell mass spectrometry reveals cancer-specific metabolic profiles of circulating tumor cells. Cancer Sci. 2019;110:697-706.

Sakamoto W, Azegami N, Konuma T, Akashi S. Single-cell native mass spectrometry of human erythrocytes. Anal Chem. 2021;93:6583-8.

Mellors JS, Jorabchi K, Smith LM, Ramsey JM. Integrated microfluidic device for automated single cell analysis using electrophoretic separation and electrospray ionization mass spectrometry. Anal Chem. 2010;82:967-73.

Pan N, Rao W, Kothapalli NR, Liu R, Burgett AWG, Yang Z. The single-probe: a miniaturized multifunctional device for single cell mass spectrometry analysis. Anal Chem. 2014;86:9376-80.

Pan N, Standke SJ, Kothapalli NR, Sun M, Bensen RC, Burgett AWG, et al. Quantification of drug molecules in live single cells using the single-probe mass spectrometry technique. Anal Chem. 2019;91:9018-24.

Standke SJ, Colby DH, Bensen RC, Burgett AWG, Yang Z. Mass spectrometry measurement of single suspended cells using a combined cell manipulation system and a single-probe device. Anal Chem. 2019;91:1738-42.

Tycova A, Prikryl J, Foret F. Reproducible preparation of nanospray tips for capillary electrophoresis coupled to mass spectrometry using 3D printed grinding device. Electrophoresis. 2016;37:924-30.

Winkler R. ESIprot: a universal tool for charge state determination and molecular weight calculation of proteins from electrospray ionization mass spectrometry data. Rapid Commun Mass Spectrom. 2010;24:285-94.

Tsong TY. Electroporation of cell membranes. Biophys J. 1991;60:297-306.

Kinosita K, Tsong TT. Hemolysis of human erythrocytes by transient electric field. Proc Natl Acad Sci USA. 1977;74:1923-7.

Tycova A, Foret F. Capillary electrophoresis in an extended nanospray tip-electrospray as an electrophoretic column. J Chromatogr A. 2015;1388:274-9.

Tycova A, Vido M, Kovarikova P, Foret F. Interface-free capillary electrophoresis-mass spectrometry system with nanospray ionization-Analysis of dexrazoxane in blood plasma. J Chromatogr A. 2016;1466:173-9.

Řemínek R, Foret F, Chung DS. Application of capillary electrophoresis-nano-electrospray ionization-mass spectrometry for the determination of N-nitrosodimethylamine in pharmaceuticals. Electrophoresis. 2021;42:334-41.

Vaclavek T, Prikryl J, Foret F. Resistive pulse sensing as particle counting and sizing method in microfluidic systems: Designs and applications review. J Sep Sci. 2019;42:445-57.

Everaerts FM, Beckers JL, Verheggen TPEM. Isotachophoresis: theory, instrumentation and applications. Amsterdam: Elsevier; 2011.

Kleinert P, Schmid M, Zurbriggen K, Speer O, Schmugge M, Roschitzki B, et al. Mass spectrometry: a tool for enhanced detection of hemoglobin variants. Clin Chem. 2008;54:69-76.

Ho C, Lam C, Chan M, Cheung R, Law L, Lit L, et al. Electrospray ionisation mass spectrometry: principles and clinical applications. Clin Biochem Rev. 2003;24:3-12.

Bryk AH, Wiśniewski JR. Quantitative analysis of human red blood cell proteome. J Proteome Res. 2017;16:2752-61.

Kuprowski MC, Boys BL, Konermann L. Analysis of protein mixtures by electrospray mass spectrometry: effects of conformation and desolvation behavior on the signal intensities of hemoglobin subunits. J Am Soc Mass Spectrom. 2007;18:1279-85.

Staub A, Comte S, Rudaz S, Veuthey J-L, Schappler J. Use of organic solvent to prevent protein adsorption in CE-MS experiments. Electrophoresis. 2010;31:3326-33.

Najít záznam

Citační ukazatele

Nahrávání dat ...

Možnosti archivace

Nahrávání dat ...