Recent developments and applications of capillary and microchip electrophoresis in proteomics and peptidomics (2015-mid 2018).
暂无分享,去创建一个
[1] Wei-Jun Qian,et al. Advances in microscale separations towards nanoproteomics applications. , 2017, Journal of chromatography. A.
[2] L. Fricker,et al. Peptidomics: identification and quantification of endogenous peptides in neuroendocrine tissues. , 2006, Mass spectrometry reviews.
[3] Andreu Llobera,et al. Recent trends in capillary electrophoresis for complex samples analysis: A review , 2018, Electrophoresis.
[4] Elizabeth H. Peuchen,et al. Evaluation of a commercial electro-kinetically pumped sheath-flow nanospray interface coupled to an automated capillary zone electrophoresis system , 2017, Analytical and Bioanalytical Chemistry.
[5] Serge Rudaz,et al. Microextraction techniques combined with capillary electrophoresis in bioanalysis , 2012, Analytical and Bioanalytical Chemistry.
[6] V. Kašička. Recent developments in capillary and microchip electroseparations of peptides (2013–middle 2015) , 2016, Electrophoresis.
[7] Yannis-Nicolas François,et al. Independent highly sensitive characterization of asparagine deamidation and aspartic acid isomerization by sheathless CZE-ESI-MS/MS. , 2016, Journal of mass spectrometry : JMS.
[8] Elizabeth H. Peuchen,et al. Preparation of linear polyacrylamide coating and strong cationic exchange hybrid monolith in a single capillary, and its application as an automated platform for bottom-up proteomics by capillary electrophoresis-mass spectrometry , 2017, Microchimica Acta.
[9] Q. Fang,et al. A robust and extendable sheath flow interface with minimal dead volume for coupling CE with ESI-MS. , 2018, Talanta.
[10] Adelina Rogowska-Wrzesinska,et al. 2D gels still have a niche in proteomics. , 2013, Journal of proteomics.
[11] René P Zahedi,et al. The next level of complexity: Crosstalk of posttranslational modifications , 2014, Proteomics.
[12] J. Cheng,et al. Nonaqueous capillary electrophoresis mass spectrometry method for determining highly hydrophobic peptides , 2018, Electrophoresis.
[13] Fei Xu,et al. Single Cell Chemical Proteomics with Membrane-Permeable Activity-Based Probe for Identification of Functional Proteins in Lysosome of Tumors. , 2016, Analytical chemistry.
[14] N. Dovichi,et al. Nearly 1000 Protein Identifications from 50 ng of Xenopus laevis Zygote Homogenate Using Online Sample Preparation on a Strong Cation Exchange Monolith Based Microreactor Coupled with Capillary Zone Electrophoresis. , 2016, Analytical chemistry.
[15] M. Westphall,et al. Coupling capillary zone electrophoresis with electron transfer dissociation and activated ion electron transfer dissociation for top-down proteomics. , 2015, Analytical chemistry.
[16] T. Welte,et al. Does urinary peptide content differ between COPD patients with and without inherited alpha-1 antitrypsin deficiency? , 2017, International journal of chronic obstructive pulmonary disease.
[17] P. Bork,et al. Evolution and functional cross‐talk of protein post‐translational modifications , 2013, Molecular systems biology.
[18] S. Camerini,et al. The role of protein and peptide separation before mass spectrometry analysis in clinical proteomics. , 2015, Journal of chromatography. A.
[19] C. Neusüss,et al. CIEF-CZE-MS applying a mechanical valve , 2016, Analytical and Bioanalytical Chemistry.
[20] Liangliang Sun,et al. Native Proteomics in Discovery Mode Using Size-Exclusion Chromatography-Capillary Zone Electrophoresis-Tandem Mass Spectrometry. , 2018, Analytical chemistry.
[21] V. Kašička. Recent developments in capillary and microchip electroseparations of peptides (2015–mid 2017) , 2018, Electrophoresis.
[22] Nickolaj J. Petersen,et al. A simple sheathless CE-MS interface with a sub-micrometer electrical contact fracture for sensitive analysis of peptide and protein samples. , 2016, Analytica chimica acta.
[23] P. Iadarola,et al. Advances in the analysis of “less‐conventional” human body fluids: An overview of the CE‐ and HPLC‐MS applications in the years 2015–2017 , 2018, Electrophoresis.
[24] Václav Kašička,et al. Recent developments and applications of capillary and microchip electrophoresis in proteomic and peptidomic analyses. , 2016, Journal of separation science.
[25] M. Venere,et al. Do the complementarities of electrokinetic and chromatographic procedures represent the “Swiss knife” in proteomic investigation? An overview of the literature in the past decade , 2017, Electrophoresis.
[26] L. Hajba,et al. Recent advances in column coatings for capillary electrophoresis of proteins , 2017 .
[27] H. Lindner,et al. Quantitative Proteomics Using Ultralow Flow Capillary Electrophoresis–Mass Spectrometry , 2015, Analytical chemistry.
[28] J. Coorssen,et al. 2DE: the phoenix of proteomics. , 2014, Journal of proteomics.
[29] Davy Guillarme,et al. Current and future trends in UHPLC , 2014 .
[30] Albert Sickmann,et al. Current strategies and findings in clinically relevant post-translational modification-specific proteomics , 2015, Expert review of proteomics.
[31] A. M. Belov,et al. High Resolution CZE-MS Quantitative Characterization of Intact Biopharmaceutical Proteins: Proteoforms of Interferon-β1. , 2016, Analytical chemistry.
[32] P. Boček,et al. Analytical capillary isotachophoresis after 50 years of development: Recent progress 2014–2016 , 2017, Electrophoresis.
[33] Kevin Jooss,et al. Interference‐free mass spectrometric detection of capillary isoelectric focused proteins, including charge variants of a model monoclonal antibody , 2017, Electrophoresis.
[34] G. D. de Jong,et al. Performance of a sheathless porous tip sprayer for capillary electrophoresis-electrospray ionization-mass spectrometry of intact proteins. , 2010, Journal of chromatography. A.
[35] Joan M Cabot,et al. Recent advances in enhancing the sensitivity of electrophoresis and electrochromatography in capillaries and microchips (2014–2016) , 2017, Electrophoresis.
[36] Peter Nemes,et al. Single‐Cell Mass Spectrometry for Discovery Proteomics: Quantifying Translational Cell Heterogeneity in the 16‐Cell Frog (Xenopus) Embryo , 2016, Angewandte Chemie.
[37] L. S. Torati,et al. Comparative proteome and peptidome analysis of the cephalic fluid secreted by Arapaima gigas (Teleostei: Osteoglossidae) during and outside parental care , 2017, PloS one.
[38] Liangliang Sun,et al. Capillary zone electrophoresis-mass spectrometry with microliter-scale loading capacity, 140 min separation window and high peak capacity for bottom-up proteomics. , 2017, The Analyst.
[39] A. Vlahou,et al. Capillary zone electrophoresis on‐line coupled to mass spectrometry: A perspective application for clinical proteomics , 2015, Proteomics. Clinical applications.
[40] N. Dovichi,et al. Integrated strong cation-exchange hybrid monolith coupled with capillary zone electrophoresis and simultaneous dynamic pH junction for large-volume proteomic analysis by mass spectrometry. , 2015, Talanta.
[41] M. Petri,et al. Urine peptidomic biomarkers for diagnosis of patients with systematic lupus erythematosus , 2018, Lupus.
[42] Liangliang Sun,et al. Systematic Evaluation of Immobilized Trypsin‐Based Fast Protein Digestion for Deep and High‐Throughput Bottom‐Up Proteomics , 2018, Proteomics.
[43] Jianjun Li,et al. Advances in coupling microfluidic chips to mass spectrometry. , 2015, Mass spectrometry reviews.
[44] S. Štěpánová,et al. Recent applications of capillary electromigration methods to separation and analysis of proteins. , 2016, Analytica chimica acta.
[45] N. Dovichi,et al. Simplified capillary isoelectric focusing with chemical mobilization for intact protein analysis. , 2017, Journal of separation science.
[46] S. Rudaz,et al. Evolution in the design of a low sheath‐flow interface for CE‐MS and application to biological samples , 2018, Electrophoresis.
[47] Lingjun Li,et al. A Multifaceted Mass Spectrometric Method to Probe Feeding Related Neuropeptide Changes in Callinectes sapidus and Carcinus maenas , 2018, Journal of The American Society for Mass Spectrometry.
[48] N. Kelleher,et al. Top Down proteomics: facts and perspectives. , 2014, Biochemical and biophysical research communications.
[49] Lingjun Li,et al. Investigation of signaling molecules and metabolites found in crustacean hemolymph via in vivo microdialysis using a multifaceted mass spectrometric platform , 2016, Electrophoresis.
[50] C. Lunte,et al. The Development of a Sheathless Interface for Capillary Electrophoresis Electrospray Ionization Mass Spectrometry Using a Cellulose Acetate Cast Capillary , 2017, Chromatographia.
[51] S. Štěpánová,et al. Capillary electrophoretic methods applied to the investigation of peptide complexes. , 2015, Journal of separation science.
[52] A. Heck,et al. Proteomics beyond trypsin , 2015, The FEBS journal.
[53] Norman J. Dovichi,et al. Surface-Confined Aqueous Reversible Addition-Fragmentation Chain Transfer (SCARAFT) Polymerization Method for Preparation of Coated Capillary Leads to over 10 000 Peptides Identified from 25 ng HeLa Digest by Using Capillary Zone Electrophoresis-Tandem Mass Spectrometry. , 2017, Analytical chemistry.
[54] Maria D. Pasic,et al. Proteomics and peptidomics: moving toward precision medicine in urological malignancies , 2016, Oncotarget.
[55] Govert W Somsen,et al. Capillary HILIC-MS: A New Tool for Sensitive Top-Down Proteomics , 2018, Analytical chemistry.
[56] S. Štěpánová,et al. Analysis of proteins and peptides by electromigration methods in microchips. , 2017, Journal of separation science.
[57] V. Kašička,et al. Comparison of two low flow interfaces for measurement of mobilities and stability constants by affinity capillary electrophoresis-mass spectrometry. , 2018, Journal of chromatography. A.
[58] N. Dovichi,et al. Predicting Electrophoretic Mobility of Tryptic Peptides for High-Throughput CZE-MS Analysis. , 2017, Analytical chemistry.
[59] Peter Nemes,et al. Tapered-Tip Capillary Electrophoresis Nano-Electrospray Ionization Mass Spectrometry for Ultrasensitive Proteomics: the Mouse Cortex , 2017, Journal of The American Society for Mass Spectrometry.
[60] J. Yates,et al. Protein analysis by shotgun/bottom-up proteomics. , 2013, Chemical reviews.
[61] N. Dovichi,et al. Capillary zone electrophoresis as a tool for bottom-up protein analysis. , 2016, Bioanalysis.
[62] Sylvie Garneau-Tsodikova,et al. Protein posttranslational modifications: the chemistry of proteome diversifications. , 2005, Angewandte Chemie.
[63] D. Lian,et al. Progress in stacking techniques based on field amplification of capillary electrophoresis , 2014, Analytical and Bioanalytical Chemistry.
[64] R. Westermeier. Looking at proteins from two dimensions: a review on five decades of 2D electrophoresis , 2014, Archives of physiology and biochemistry.
[65] Laura Sola,et al. Enhancing Proteomic Throughput in Capillary Electrophoresis–Mass Spectrometry by Sequential Sample Injection , 2017, Proteomics.
[66] Melissa R. Pergande,et al. Isoelectric Point Separations of Peptides and Proteins , 2017, Proteomes.
[67] B. Sarg,et al. Identification of Novel Site‐Specific Alterations in the Modification Level of Myelin Basic Protein Isolated from Mouse Brain at Different Ages Using Capillary Electrophoresis–Mass Spectrometry , 2017, Proteomics.
[68] O. Mayboroda,et al. CE-ESI-MS for bottom-up proteomics: Advances in separation, interfacing and applications. , 2016, Mass spectrometry reviews.
[69] A. Hummon,et al. Proteomic Challenges: Sample Preparation Techniques for Microgram-Quantity Protein Analysis from Biological Samples , 2015, International journal of molecular sciences.
[70] G. Mitulović,et al. New HPLC Techniques for Proteomics Analysis: A Short Overview of Latest Developments , 2015 .
[71] P. Boček,et al. Recent progress of sample stacking in capillary electrophoresis (2014–2016) , 2017, Electrophoresis.
[72] B. Sarg,et al. Investigating capillary electrophoresis‐mass spectrometry for the analysis of common post‐translational modifications , 2018, Electrophoresis.
[73] M. Bowser,et al. Capillary Electrophoresis. , 2016, Analytical chemistry.
[74] Liangliang Sun,et al. Third-generation electrokinetically pumped sheath-flow nanospray interface with improved stability and sensitivity for automated capillary zone electrophoresis-mass spectrometry analysis of complex proteome digests. , 2015, Journal of proteome research.
[75] W. Weckwerth,et al. Comparison between Proteome and Transcriptome Response in Potato (Solanum tuberosum L.) Leaves Following Potato Virus Y (PVY) Infection , 2017, Proteomes.
[76] C. Neusüss,et al. Two-dimensional capillary zone electrophoresis–mass spectrometry for the characterization of intact monoclonal antibody charge variants, including deamidation products , 2017, Analytical and Bioanalytical Chemistry.
[77] B. Sarg,et al. Exploiting charge differences for the analysis of challenging post-translational modifications by capillary electrophoresis-mass spectrometry. , 2017, Journal of chromatography. A.
[78] N. Dovichi,et al. Detachable strong cation exchange monolith, integrated with capillary zone electrophoresis and coupled with pH gradient elution, produces improved sensitivity and numbers of peptide identifications during bottom-up analysis of complex proteomes. , 2015, Analytical chemistry.
[79] M. Khurshid,et al. Proteomics: Technologies and Their Applications. , 2017, Journal of chromatographic science.
[80] K. Klepárník,et al. Recent advances in CE‐MS coupling: Instrumentation, methodology, and applications , 2017, Electrophoresis.
[81] Thierry Rabilloud,et al. Two-dimensional gel electrophoresis in proteomics: a tutorial. , 2011, Journal of proteomics.
[82] M. Manns,et al. Urinary Peptide Analysis Differentiates Pancreatic Cancer From Chronic Pancreatitis , 2016, Pancreas.
[83] J. Yates,et al. Improving the comprehensiveness and sensitivity of sheathless capillary electrophoresis-tandem mass spectrometry for proteomic analysis. , 2012, Analytical chemistry.
[84] S. Gusenkov,et al. Top‐down and bottom‐up characterization of nitrated birch pollen allergen Bet v 1a with CZE hyphenated to an Orbitrap mass spectrometer , 2018, Electrophoresis.
[85] J. J. Bao,et al. A method developed to fractionate intact proteins based on capillary electrophoresis. , 2016, The Analyst.
[86] Liangliang Sun,et al. Strong cation exchange-reversed phase liquid chromatography-capillary zone electrophoresis-tandem mass spectrometry platform with high peak capacity for deep bottom-up proteomics. , 2018, Analytica chimica acta.
[87] J. Quirino. Sodium dodecyl sulfate removal during electrospray ionization using cyclodextrins as simple sample solution additive for improved mass spectrometric detection of peptides. , 2018, Analytica chimica acta.
[88] T. Kawai. Recent Studies on Online Sample Preconcentration Methods inCapillary Electrophoresis Coupled with Mass Spectrometry , 2017 .
[89] P. Haddad,et al. Electrokinetic Removal of Dodecyl Sulfate Micelles from Digested Protein Samples Prior to Electrospray-Ionization Mass Spectrometry. , 2017, Analytical chemistry.
[90] Peter Nemes,et al. Enhanced Peptide Detection Toward Single-Neuron Proteomics by Reversed-Phase Fractionation Capillary Electrophoresis Mass Spectrometry , 2018, Journal of The American Society for Mass Spectrometry.
[91] W. Blackstock,et al. Proteomics: quantitative and physical mapping of cellular proteins. , 1999, Trends in biotechnology.
[92] Zhi-wei Zhu,et al. Fabrication of a polystyrene microfluidic chip coupled to electrospray ionization mass spectrometry for protein analysis. , 2015, Journal of chromatography. B, Analytical technologies in the biomedical and life sciences.
[93] A. Lipatnikov,et al. LC/MS at the whole protein level: Studies of biomolecular structure and interactions using native LC/MS and cross-path reactive chromatography (XP-RC) MS. , 2018, Methods.
[94] M. Tomita,et al. Development of a sheathless CE‐ESI‐MS interface , 2018, Electrophoresis.
[95] C. Montealegre,et al. On‐line two‐dimensional capillary electrophoresis with mass spectrometric detection using a fully electric isolated mechanical valve , 2016, Electrophoresis.
[96] Ying Ge,et al. Top-Down Proteomics: Ready for Prime Time? , 2018, Analytical chemistry.
[97] Liangliang Sun,et al. Single-Shot Top-Down Proteomics with Capillary Zone Electrophoresis-Electrospray Ionization-Tandem Mass Spectrometry for Identification of Nearly 600 Escherichia coli Proteoforms. , 2017, Analytical chemistry.
[98] Marshall Bern,et al. Analysis of Proteins, Protein Complexes, and Organellar Proteomes Using Sheathless Capillary Zone Electrophoresis - Native Mass Spectrometry , 2017, Journal of The American Society for Mass Spectrometry.
[99] James P. Grinias,et al. Recent advances in capillary ultrahigh pressure liquid chromatography. , 2017, Journal of chromatography. A.
[100] Y. Urasaki,et al. Capillary Isoelectric Focusing Immunoassay for Fat Cell Differentiation Proteomics , 2015, PloS one.
[101] Anna Bierczynska-Krzysik,et al. Methods for samples preparation in proteomic research. , 2007, Journal of chromatography. B, Analytical technologies in the biomedical and life sciences.
[102] R. Vitorino. Digging Deep into Peptidomics Applied to Body Fluids , 2018, Proteomics.
[103] Govert W Somsen,et al. Capillary Electrophoresis: Trends and Recent Advances , 2018, Analytical chemistry.
[104] I. Dapic,et al. Different Stationary Phase Selectivities and Morphologies for Intact Protein Separations , 2016, Chromatographia.
[105] R. Zadoks,et al. Mastitomics, the integrated omics of bovine milk in an experimental model of Streptococcus uberis mastitis: 1. High abundance proteins, acute phase proteins and peptidomics , 2016, Molecular bioSystems.
[106] A. Vlahou,et al. CE‐MS‐based proteomics in biomarker discovery and clinical application , 2015, Proteomics. Clinical applications.
[107] C. Neusüss,et al. Capillary electrophoresis in two‐dimensional separation systems: Techniques and applications , 2015, Electrophoresis.
[108] Peter Nemes,et al. Label-free Quantification of Proteins in Single Embryonic Cells with Neural Fate in the Cleavage-Stage Frog (Xenopus laevis) Embryo using Capillary Electrophoresis Electrospray Ionization High-Resolution Mass Spectrometry (CE-ESI-HRMS)* , 2016, Molecular & Cellular Proteomics.
[109] Thomas L. Fillmore,et al. Capillary Electrophoresis-Nanoelectrospray Ionization-Selected Reaction Monitoring Mass Spectrometry via a True Sheathless Metal-Coated Emitter Interface for Robust and High-Sensitivity Sample Quantification. , 2016, Analytical chemistry.
[110] N. Dovichi,et al. Thermally-initiated free radical polymerization for reproducible production of stable linear polyacrylamide coated capillaries, and their application to proteomic analysis using capillary zone electrophoresis-mass spectrometry. , 2016, Talanta.
[111] Liangliang Sun,et al. Deep Top-Down Proteomics Using Capillary Zone Electrophoresis-Tandem Mass Spectrometry: Identification of 5700 Proteoforms from the Escherichia coli Proteome. , 2018, Analytical chemistry.
[112] Robert T. Kennedy,et al. Recent advances in protein analysis by capillary and microchip electrophoresis. , 2017, The Analyst.
[113] M. Lämmerhofer,et al. Capillary isoelectric focusing‐mass spectrometry: Coupling strategies and applications , 2015, Electrophoresis.
[114] Pier Giorgio Righetti,et al. Capillary electrophoresis and isoelectric focusing in peptide and protein analysis , 2013, Proteomics.
[115] N. Dovichi,et al. Multisegment injections improve peptide identification rates in capillary zone electrophoresis-based bottom-up proteomics. , 2017, Journal of chromatography. A.
[116] C. Lebrilla,et al. Current peptidomics: Applications, purification, identification, quantification, and functional analysis , 2015, Proteomics.
[117] G. J. Jong,et al. Developments in coupled solid‐phase extraction–capillary electrophoresis 2013–2015 , 2016, Electrophoresis.
[118] H. Mischak,et al. Urinary proteomics using capillary electrophoresis coupled to mass spectrometry for diagnosis and prognosis in kidney diseases , 2016, Current opinion in nephrology and hypertension.
[119] Yannis-Nicolas François,et al. Improvement of Mitochondria Extract from Saccharomyces cerevisiae Characterization in Shotgun Proteomics Using Sheathless Capillary Electrophoresis Coupled to Tandem Mass Spectrometry. , 2016, Journal of chromatographic science.
[120] A. Vlahou,et al. The use of urinary proteomics in the assessment of suitability of mouse models for ageing , 2017, PloS one.
[121] N. Dovichi,et al. Optimization of mass spectrometric parameters improve the identification performance of capillary zone electrophoresis for single-shot bottom-up proteomics analysis. , 2018, Analytica chimica acta.
[122] Yannis-Nicolas François,et al. Top-down and middle-down approach by fraction collection enrichment using off-line capillary electrophoresis - mass spectrometry coupling: Application to monoclonal antibody Fc/2 charge variants. , 2017, Journal of chromatography. A.
[123] Liangliang Sun,et al. Over 4100 protein identifications from a Xenopus laevis fertilized egg digest using reversed‐phase chromatographic prefractionation followed by capillary zone electrophoresis–electrospray ionization–tandem mass spectrometry analysis , 2016, Proteomics.
[124] Liangliang Sun,et al. Coupling Capillary Zone Electrophoresis to a Q Exactive HF Mass Spectrometer for Top-down Proteomics: 580 Proteoform Identifications from Yeast. , 2016, Journal of Proteome Research.
[125] S. Ohla,et al. Sheathless coupling of microchip electrophoresis to ESI-MS utilising an integrated photo polymerised membrane for electric contacting , 2018, Analytical and Bioanalytical Chemistry.
[126] T. Hankemeier,et al. Lab-on-a-Chip hyphenation with mass spectrometry: strategies for bioanalytical applications. , 2015, Current opinion in biotechnology.
[127] J. Ramsey,et al. Coupling Microchip Electrospray Ionization Devices with High Pressure Mass Spectrometry. , 2017, Analytical chemistry.
[128] Alain Beck,et al. Analysis of monoclonal antibody by a novel CE‐UV/MALDI‐MS interface , 2014, Electrophoresis.
[129] A. Vlahou,et al. Urinary CE-MS peptide marker pattern for detection of solid tumors , 2018, Scientific Reports.
[130] Characterization of a Porous Nano-electrospray Capillary Emitter at Ultra-low Flow Rates. , 2017, Journal of chromatographic science.
[131] S. Rudaz,et al. Evaluation of a new low sheath–flow interface for CE‐MS , 2016, Electrophoresis.
[132] P. Iadarola,et al. Recent applications of CE‐ and HPLC‐MS in the analysis of human fluids , 2016, Electrophoresis.
[133] Steven Ray Wilson,et al. Nano-LC in proteomics: recent advances and approaches. , 2015, Bioanalysis.
[134] C. Neusüss,et al. Characterization of a nanoflow sheath liquid interface and comparison to a sheath liquid and a sheathless porous-tip interface for CE-ESI-MS in positive and negative ionization , 2018, Analytical and Bioanalytical Chemistry.
[135] Bogusław Buszewski,et al. Two-dimensional gel electrophoresis in the light of new developments , 2014 .
[136] N. Dovichi,et al. Dynamic pH junction preconcentration in capillary electrophoresis- electrospray ionization-mass spectrometry for proteomics analysis. , 2016, The Analyst.
[137] Liangliang Sun,et al. Microscale Reversed-Phase Liquid Chromatography/Capillary Zone Electrophoresis-Tandem Mass Spectrometry for Deep and Highly Sensitive Bottom-Up Proteomics: Identification of 7500 Proteins with Five Micrograms of an MCF7 Proteome Digest. , 2018, Analytical chemistry.
[138] J. Luksch,et al. Self‐aligning subatmospheric hybrid liquid junction electrospray interface for capillary electrophoresis , 2016, Electrophoresis.
[139] Yannis-Nicolas François,et al. Structural characterization of antibody drug conjugate by a combination of intact, middle-up and bottom-up techniques using sheathless capillary electrophoresis - Tandem mass spectrometry as nanoESI infusion platform and separation method. , 2016, Analytica chimica acta.
[140] N. Dovichi,et al. Capillary zone electrophoresis for bottom‐up analysis of complex proteomes , 2016, Proteomics.