Phosphoproteomic strategies in cancer research: a minireview.
暂无分享,去创建一个
Mustafa Gani Sürmen | Saime Sürmen | Arslan Ali | Syed Ghulam Musharraf | Nesrin Emekli | S. Musharraf | N. Emekli | Arslan Ali | M. Sürmen | Saime Sürmen
[1] C. Jørgensen,et al. Phosphoproteomic analysis of interacting tumor and endothelial cells identifies regulatory mechanisms of transendothelial migration , 2016, Science Signaling.
[2] Howard Colman,et al. Quantitative phosphoproteomic analysis of the STAT3/IL-6/HIF1alpha signaling network: an initial study in GSC11 glioblastoma stem cells. , 2010, Journal of proteome research.
[3] S. Ryu,et al. Sequential Fe3O4/TiO2 enrichment for phosphopeptide analysis by liquid chromatography/tandem mass spectrometry. , 2010, Rapid communications in mass spectrometry : RCM.
[4] M. Molloy,et al. Phosphoproteomic Analysis of Cell-Based Resistance to BRAF Inhibitor Therapy in Melanoma , 2015, Front. Oncol..
[5] Naveid A Ali,et al. Quantitative phosphoproteomics of transforming growth factor‐β signaling in colon cancer cells , 2011, Proteomics.
[6] Mu Wang,et al. Pyruvate dehydrogenase alpha 1 as a target of omega‐3 polyunsaturated fatty acids in human prostate cancer through a global phosphoproteomic analysis , 2016, Proteomics.
[7] M. Goshe,et al. Development and application of a phosphoproteomic method using electrostatic repulsion-hydrophilic interaction chromatography (ERLIC), IMAC, and LC-MS/MS analysis to study Marek's Disease Virus infection. , 2011, Journal of proteome research.
[8] T. Graeber,et al. Phosphopeptide Enrichment Coupled with Label-free Quantitative Mass Spectrometry to Investigate the Phosphoproteome in Prostate Cancer , 2018, Journal of visualized experiments : JoVE.
[9] Xinning Jiang,et al. Large‐scale phosphoproteome analysis of human liver tissue by enrichment and fractionation of phosphopeptides with strong anion exchange chromatography , 2008, Proteomics.
[10] Amy-Joan L Ham,et al. Sample preparation and digestion for proteomic analyses using spin filters , 2005, Proteomics.
[11] Kristen M. Naegle,et al. Phosphoproteomics of collagen receptor networks reveals SHP-2 phosphorylation downstream of wild-type DDR2 and its lung cancer mutants , 2013, The Biochemical journal.
[12] J. Dubé,et al. Amicon-adapted enhanced FASP: an in-solution digestion-based alternative sample preparation method to FASP , 2015 .
[13] M. Oellerich,et al. Phosphoproteome profiling of substantia nigra and cortex regions of Alzheimer’s disease patients , 2012, Journal of neurochemistry.
[14] Qing‐Yu He,et al. Global phosphoproteomic effects of natural tyrosine kinase inhibitor, genistein, on signaling pathways , 2010, Proteomics.
[15] F. Gnad,et al. Role of the E3 ubiquitin ligase RNF157 as a novel downstream effector linking PI3K and MAPK signaling pathways to the cell cycle , 2017, The Journal of Biological Chemistry.
[16] Y. Ishihama,et al. Feasibility of label-free phosphoproteomics and application to base-line signaling of colorectal cancer cell lines. , 2015, Journal of proteomics.
[17] Nandini A. Sahasrabuddhe,et al. Quantitative phosphoproteomic analysis reveals reciprocal activation of receptor tyrosine kinases between cancer epithelial cells and stromal fibroblasts , 2018, Clinical Proteomics.
[18] E. Zandi,et al. Multidimensional Separation Using HILIC and SCX Pre-fractionation for RP LC-MS/MS Platform with Automated Exclusion List-based MS Data Acquisition with Increased Protein Quantification , 2015, Journal of Proteomics & Bioinformatics.
[19] B. Vanhaesebroeck,et al. Phosphoproteomic Analysis of Leukemia Cells under Basal and Drug-treated Conditions Identifies Markers of Kinase Pathway Activation and Mechanisms of Resistance* , 2012, Molecular & Cellular Proteomics.
[20] L. Reubsaet,et al. Why less is more when generating tryptic peptides in bottom‐up proteomics , 2014, Proteomics.
[21] Lina Zhang,et al. Magnetic cellulose-TiO2 nanocomposite microspheres for highly selective enrichment of phosphopeptides. , 2015, Chemical communications.
[22] C. Denny,et al. Phosphoproteomic Profiling Reveals IL6-Mediated Paracrine Signaling within the Ewing Sarcoma Family of Tumors , 2014, Molecular Cancer Research.
[23] K. Salimi,et al. Ti(IV) carrying polydopamine-coated, monodisperse-porous SiO2 microspheres with stable magnetic properties for highly selective enrichment of phosphopeptides. , 2017, Colloids and surfaces. B, Biointerfaces.
[24] R. Cole,et al. Global Effects of DDX3 Inhibition on Cell Cycle Regulation Identified by a Combined Phosphoproteomics and Single Cell Tracking Approach , 2018, Translational oncology.
[25] M. Mann,et al. More than 100,000 detectable peptide species elute in single shotgun proteomics runs but the majority is inaccessible to data-dependent LC-MS/MS. , 2011, Journal of proteome research.
[26] Akhilesh Pandey,et al. Phosphoproteomics in cancer , 2010, Molecular oncology.
[27] H. Ditzel,et al. Elucidation of Altered Pathways in Tumor‐Initiating Cells of Triple‐Negative Breast Cancer: A Useful Cell Model System for Drug Screening , 2017, Stem cells.
[28] A. Heck,et al. Selective isolation at the femtomole level of phosphopeptides from proteolytic digests using 2D-NanoLC-ESI-MS/MS and titanium oxide precolumns. , 2004, Analytical chemistry.
[29] Hongzhi Wang,et al. Three-dimensional ordered titanium dioxide-zirconium dioxide film-based microfluidic device for efficient on-chip phosphopeptide enrichment. , 2016, Journal of colloid and interface science.
[30] W. Tao,et al. Global Phosphoproteomics of Activated B Cells Using Complementary Metal Ion Functionalized Soluble Nanopolymers , 2014, Analytical chemistry.
[31] Q. Jia,et al. Highly selective enrichment of phosphopeptides by on‐chip indium oxide functionalized magnetic nanoparticles coupled with MALDI‐TOF MS , 2017, Proteomics.
[32] Anna Devor,et al. Deep 2-photon imaging and artifact-free optogenetics through transparent graphene microelectrode arrays , 2018, Nature Communications.
[33] K. Shokat,et al. Drugging the catalytically inactive state of RET kinase in RET-rearranged tumors , 2017, Science Translational Medicine.
[34] Heiner Koch,et al. Phosphoproteome Profiling Reveals Molecular Mechanisms of Growth-Factor-Mediated Kinase Inhibitor Resistance in EGFR-Overexpressing Cancer Cells. , 2016, Journal of proteome research.
[35] R. Bernards,et al. A System-wide Approach to Monitor Responses to Synergistic BRAF and EGFR Inhibition in Colorectal Cancer Cells* , 2017, Molecular & Cellular Proteomics.
[36] Y. Ishihama,et al. Improved Proteome and Phosphoproteome Analysis on a Cation Exchanger by a Combined Acid and Salt Gradient. , 2016, Analytical chemistry.
[37] M. Molloy,et al. Polyphenol extracts from dried sugarcane inhibit inflammatory mediators in an in vitro colon cancer model. , 2018, Journal of proteomics.
[38] Hailong Liu,et al. Highly selective enrichment of phosphopeptides using Zr4+-immobilized Titania nanoparticles. , 2017, Talanta.
[39] M. Larsen,et al. Simultaneous Enrichment of Cysteine-containing Peptides and Phosphopeptides Using a Cysteine-specific Phosphonate Adaptable Tag (CysPAT) in Combination with titanium dioxide (TiO2) Chromatography* , 2016, Molecular & Cellular Proteomics.
[40] Michael P. Cusack,et al. Phosphoprotein Secretome of Tumor Cells as a Source of Candidates for Breast Cancer Biomarkers in Plasma , 2014, Molecular & Cellular Proteomics.
[41] G. Mills,et al. Phosphoproteomic mass spectrometry profiling links Src family kinases to escape from HER2 tyrosine kinase inhibition , 2011, Oncogene.
[42] B. Halmos,et al. Sunitinib activates Axl signaling in renal cell cancer , 2016, International journal of cancer.
[43] Jayoung Kim,et al. Integrated proteomic and phosphoproteomic analyses of cisplatin-sensitive and resistant bladder cancer cells reveal CDK2 network as a key therapeutic target. , 2018, Cancer letters.
[44] H. Zou,et al. Integration of cell lysis, protein extraction, and digestion into one step for ultrafast sample preparation for phosphoproteome analysis. , 2014, Analytical chemistry.
[45] A. Alayev,et al. Phosphoproteomics Reveals Resveratrol-Dependent Inhibition of Akt/mTORC1/S6K1 Signaling , 2014, Journal of proteome research.
[46] E. Morselli,et al. Phosphoproteomic analysis of cells treated with longevity-related autophagy inducers , 2012, Cell cycle.
[47] Qianhao Min,et al. Weaving a two-dimensional fishing net from titanoniobate nanosheets embedded with Fe₃O₄ nanocrystals for highly efficient capture and isotope labeling of phosphopeptides. , 2015, Nanoscale.
[48] Emmanuel Barillot,et al. Aberrant ERBB4-SRC Signaling as a Hallmark of Group 4 Medulloblastoma Revealed by Integrative Phosphoproteomic Profiling. , 2018, Cancer cell.
[49] C. Klein,et al. A comparative global phosphoproteomics analysis of obinutuzumab (GA101) versus rituximab (RTX) against RTX sensitive and resistant Burkitt lymphoma (BL) demonstrates differential phosphorylation of signaling pathway proteins after treatment , 2017, Oncotarget.
[50] An immobilized titanium (IV) ion affinity chromatography adsorbent for solid phase extraction of phosphopeptides for phosphoproteome analysis. , 2017, Journal of chromatography. A.
[51] David E James,et al. High-throughput and high-sensitivity phosphoproteomics with the EasyPhos platform , 2018, Nature Protocols.
[52] Alexander Leitner,et al. Enrichment Strategies in Phosphoproteomics. , 2016, Methods in molecular biology.
[53] R. Doms,et al. Quantitative Phosphoproteomics of CXCL12 (SDF-1) Signaling , 2011, PloS one.
[54] Weibing Zhang,et al. Facile preparation of molybdenum (VI) oxide - Modified graphene oxide nanocomposite for specific enrichment of phosphopeptides. , 2017, Journal of chromatography. A.
[55] I. Jeremias,et al. Combined inhibition of receptor tyrosine and p21-activated kinases as a therapeutic strategy in childhood ALL. , 2018, Blood advances.
[56] C. Leroy,et al. YES oncogenic activity is specified by its SH4 domain and regulates RAS/MAPK signaling in colon carcinoma cells. , 2015, American journal of cancer research.
[57] F. Foret,et al. Phosphopeptide enrichment with inorganic nanofibers prepared by forcespinning technology. , 2016, Journal of chromatography. A.
[58] Srikanth S. Manda,et al. Phosphoproteomic Analysis Identifies Focal Adhesion Kinase 2 (FAK2) as a Potential Therapeutic Target for Tamoxifen Resistance in Breast Cancer* , 2015, Molecular & Cellular Proteomics.
[59] A. Dopazo,et al. In vivo phosphoproteomics reveals kinase activity profiles that predict treatment outcome in triple-negative breast cancer , 2018, Nature Communications.
[60] Sam A. Johnson,et al. Kinomics: methods for deciphering the kinome , 2004, Nature Methods.
[61] J. Minna,et al. IGFBP2/FAK Pathway Is Causally Associated with Dasatinib Resistance in Non–Small Cell Lung Cancer Cells , 2013, Molecular Cancer Therapeutics.
[62] V. Sondak,et al. Ligand-independent EPHA2 signaling drives the adoption of a targeted therapy-mediated metastatic melanoma phenotype. , 2015, Cancer discovery.
[63] Xiao-Na Wei,et al. Facile fabrication of hydrophilic PAA-Ti/TiO2 nanocomposite for selective enrichment and detection of phosphopeptides from complex biological samples. , 2017, Analytica chimica acta.
[64] A. Hummon,et al. Phosphoproteomics of colon cancer metastasis: comparative mass spectrometric analysis of the isogenic primary and metastatic cell lines SW480 and SW620 , 2017, Analytical and Bioanalytical Chemistry.
[65] J. Debus,et al. Deciphering the Acute Cellular Phosphoproteome Response to Irradiation with X-rays, Protons and Carbon Ions* , 2017, Molecular & Cellular Proteomics.
[66] Ayse Nur Polat,et al. Towards single-cell LC-MS phosphoproteomics. , 2014, The Analyst.
[67] A. Walsh,et al. Corrigendum: The dynamics of methylammonium ions in hybrid organic–inorganic perovskite solar cells , 2015, Nature Communications.
[68] Yuan-ming Luo,et al. Nucleic Acids in Protein Samples Interfere with Phosphopeptide Identification by Immobilized-Metal-Ion Affinity Chromatography and Mass Spectrometry , 2009, Molecular biotechnology.
[69] Han-zhou Mou,et al. Modified filter-aided sample preparation (FASP) method increases peptide and protein identifications for shotgun proteomics. , 2017, Rapid communications in mass spectrometry : RCM.
[70] M. Ye,et al. Dendritic Mesoporous Silica Nanoparticles with Abundant Ti4+ for Phosphopeptide Enrichment from Cancer Cells with 96% Specificity. , 2018, Analytical chemistry.
[71] Laura E. Herring,et al. Development of a tandem affinity phosphoproteomic method with motif selectivity and its application in analysis of signal transduction networks. , 2015, Journal of chromatography. B, Analytical technologies in the biomedical and life sciences.
[72] Steve Goodison,et al. A comparative phosphoproteomic analysis of a human tumor metastasis model using a label‐free quantitative approach , 2010, Electrophoresis.
[73] Hongli Zhao,et al. Yolk-shell magnetic mesoporous TiO2 microspheres with flowerlike NiO nanosheets for highly selective enrichment of phosphopeptides. , 2017, Nanoscale.
[74] K. Salimi,et al. Highly selective enrichment of phosphopeptides by titanium (IV) attached monodisperse-porous poly(vinylphosphonic acid-co-ethylene dimethacrylate) microspheres. , 2017, Journal of chromatography. A.
[75] A. Dehghani,et al. Tip-Based Fractionation of Batch-Enriched Phosphopeptides Facilitates Easy and Robust Phosphoproteome Analysis. , 2018, Journal of proteome research.
[76] B. Chait,et al. Improved beta-elimination-based affinity purification strategy for enrichment of phosphopeptides. , 2003, Analytical chemistry.
[77] F. Iorio,et al. Phosphoproteomics data classify hematological cancer cell lines according to tumor type and sensitivity to kinase inhibitors , 2013, Genome Biology.
[78] Jennifer A. Siepen,et al. Prediction of missed cleavage sites in tryptic peptides aids protein identification in proteomics. , 2007, Journal of proteome research.
[79] A. Capriotti,et al. New Ti-IMAC magnetic polymeric nanoparticles for phosphopeptide enrichment from complex real samples. , 2018, Talanta.
[80] H. Verheul,et al. Phosphotyrosine-based-phosphoproteomics scaled-down to biopsy level for analysis of individual tumor biology and treatment selection. , 2017, Journal of proteomics.
[81] Adam C. Searleman,et al. Tissue phosphoproteomics with PolyMAC identifies potential therapeutic targets in a transgenic mouse model of HER2 positive breast cancer , 2014, Electrophoresis.
[82] Hui-Fen Wu,et al. CoFe2 O4 -ZnO nanoparticles for rapid microwave-assisted tryptic digestion of phosphoprotein and phosphopeptide analysis by matrix-assisted laser desorption/ionization mass spectrometry. , 2016, Rapid communications in mass spectrometry : RCM.
[83] Integrative proteomic and phosphoproteomic profiling of prostate cell lines , 2019, PloS one.
[84] D. Musiani,et al. PIM2 kinase is induced by cisplatin in ovarian cancer cells and limits drug efficacy. , 2014, Journal of proteome research.
[85] J. Olsen,et al. In vivo quantitative phosphoproteomic profiling identifies novel regulators of castration-resistant prostate cancer growth , 2014, Oncogene.
[86] J. Olsen,et al. Off-line high-pH reversed-phase fractionation for in-depth phosphoproteomics. , 2014, Journal of proteome research.
[87] A. Capriotti,et al. Development of an enrichment method for endogenous phosphopeptide characterization in human serum , 2018, Analytical and Bioanalytical Chemistry.
[88] W. Lehmann,et al. Iodoacetamide-alkylated methionine can mimic neutral loss of phosphoric acid from phosphopeptides as exemplified by nano-electrospray ionization quadrupole time-of-flight parent ion scanning. , 2005, Rapid communications in mass spectrometry : RCM.
[89] H. Urlaub,et al. Phosphoproteomic Analysis of Signaling Pathways in Lymphomas. , 2019, Methods in molecular biology.
[90] Ruedi Aebersold,et al. Mass-spectrometric exploration of proteome structure and function , 2016, Nature.
[91] A. Doucette,et al. A two-stage spin cartridge for integrated protein precipitation, digestion and SDS removal in a comparative bottom-up proteomics workflow. , 2015, Journal of proteomics.
[92] Quanze He,et al. Sodium Laurate, a Novel Protease- and Mass Spectrometry-Compatible Detergent for Mass Spectrometry-Based Membrane Proteomics , 2013, PloS one.
[93] M. Oyama,et al. Integrative Network Analysis Combined with Quantitative Phosphoproteomics Reveals Transforming Growth Factor-beta Receptor type-2 (TGFBR2) as a Novel Regulator of Glioblastoma Stem Cell Properties* , 2015, Molecular & Cellular Proteomics.
[94] Matthias Mann,et al. Consecutive proteolytic digestion in an enzyme reactor increases depth of proteomic and phosphoproteomic analysis. , 2012, Analytical chemistry.
[95] Rong Zeng,et al. Complementary workflow for global phosphoproteome analysis , 2012, Electrophoresis.
[96] Hongzhi Wang,et al. Continuous high-throughput phosphopeptide enrichment using microfluidic channels modified with aligned ZnO/TiO2 nanorod arrays , 2011, Biomedical microdevices.
[97] E. Petricoin,et al. A Portrait of Tissue Phosphoprotein Stability in the Clinical Tissue Procurement Process* , 2008, Molecular & Cellular Proteomics.
[98] W. Tao,et al. Sequential phosphoproteomics and N-glycoproteomics of plasma-derived extracellular vesicles , 2019, Nature Protocols.
[99] John R Yates,et al. Combined integrin phosphoproteomic analyses and small interfering RNA--based functional screening identify key regulators for cancer cell adhesion and migration. , 2009, Cancer research.
[100] J. Shabanowitz,et al. Phosphoproteome analysis by mass spectrometry and its application to Saccharomyces cerevisiae , 2002, Nature Biotechnology.
[101] J. Olsen,et al. Global Phosphoproteome Profiling Reveals Unanticipated Networks Responsive to Cisplatin Treatment of Embryonic Stem Cells , 2011, Molecular and Cellular Biology.
[102] Andrew Emili,et al. Single-platform 'multi-omic' profiling: unified mass spectrometry and computational workflows for integrative proteomics-metabolomics analysis. , 2018, Molecular omics.
[103] Comparison of different fractionation strategies for in-depth phosphoproteomics by liquid chromatography tandem mass spectrometry , 2019, Analytical and Bioanalytical Chemistry.
[104] B. Blagoev,et al. Quantitative phosphoproteomics to characterize signaling networks. , 2012, Seminars in cell & developmental biology.
[105] James T. Webber,et al. Online Nanoflow Multidimensional Fractionation for High Efficiency Phosphopeptide Analysis* , 2011, Molecular & Cellular Proteomics.
[106] B. Blagoev,et al. Nuclear Phosphoproteomic Screen Uncovers ACLY as Mediator of IL-2-induced Proliferation of CD4+ T lymphocytes* , 2016, Molecular & Cellular Proteomics.
[107] Gordon B Mills,et al. Bioinformatics and systems biology , 2012, Molecular oncology.
[108] Jianmin Wu,et al. Phosphoproteomic Profiling Identifies Focal Adhesion Kinase as a Mediator of Docetaxel Resistance in Castrate-Resistant Prostate Cancer , 2013, Molecular Cancer Therapeutics.
[109] Yu‐Ju Chen,et al. Complementary Fe(3+)- and Ti(4+)-immobilized metal ion affinity chromatography for purification of acidic and basic phosphopeptides. , 2012, Rapid communications in mass spectrometry : RCM.
[110] Jie Zhou. Phosphopeptide enrichment with cross-linked Os(II)(dmebpy)2 Cl-derivatized acrylamide and vinylimidazole copolymer. , 2018, Rapid communications in mass spectrometry : RCM.
[111] G. Pazour,et al. Ror2 signaling regulates Golgi structure and transport through IFT20 for tumor invasiveness , 2017, Scientific Reports.
[112] Jason M. Gilmore,et al. Increasing phosphoproteomic coverage through sequential digestion by complementary proteases , 2011, Analytical and Bioanalytical Chemistry.
[113] S. Sze,et al. Investigation of POPX2 phosphatase functions by comparative phosphoproteomic analysis , 2011, Proteomics.
[114] Ying Jiang,et al. In Vivo Phosphoproteome Analysis Reveals Kinome Reprogramming in Hepatocellular Carcinoma* , 2018, Molecular & Cellular Proteomics.
[115] Qianhao Min,et al. Magnetite/Ceria-Codecorated Titanoniobate Nanosheet: A 2D Catalytic Nanoprobe for Efficient Enrichment and Programmed Dephosphorylation of Phosphopeptides. , 2015, ACS applied materials & interfaces.
[116] Steven P Gygi,et al. Global Analysis of Protein Expression and Phosphorylation Levels in Nicotine-Treated Pancreatic Stellate Cells. , 2015, Journal of proteome research.
[117] M. Larsen,et al. SIMAC (Sequential Elution from IMAC), a Phosphoproteomics Strategy for the Rapid Separation of Monophosphorylated from Multiply Phosphorylated Peptides*S , 2008, Molecular & Cellular Proteomics.
[118] A. Nesvizhskii,et al. Global phosphoproteomic profiling reveals distinct signatures in B-cell non-Hodgkin lymphomas. , 2014, The American journal of pathology.
[119] Jong‐In Hong,et al. Zinc Ion-immobilized Magnetic Microspheres for Enrichment and Identification of Multi-phosphorylated Peptides by Mass Spectrometry , 2017, Analytical Sciences.
[120] Xin Ma,et al. Identification of Missing Proteins in the Phosphoproteome of Kidney Cancer. , 2017, Journal of proteome research.
[121] H. Zou,et al. Preparation of Polypropylene Spin Tips Filled with Immobilized Titanium(IV) Ion Monolithic Adsorbent for Robust Phosphoproteome Analysis. , 2016, Analytical chemistry.
[122] E. Kinoshita,et al. Novel immobilized zinc(II) affinity chromatography for phosphopeptides and phosphorylated proteins. , 2005, Journal of separation science.
[123] Nandini A. Sahasrabuddhe,et al. Chronic exposure to cigarette smoke leads to activation of p21 (RAC1)-activated kinase 6 (PAK6) in non-small cell lung cancer cells , 2016, Oncotarget.
[124] D. Hwang,et al. Integrated analysis of global proteome, phosphoproteome, and glycoproteome enables complementary interpretation of disease-related protein networks , 2015, Scientific Reports.
[125] Elizabeth C. Randall,et al. Integrated mapping of pharmacokinetics and pharmacodynamics in a patient-derived xenograft model of glioblastoma , 2018, Nature Communications.
[126] M. Mann,et al. Global and site-specific quantitative phosphoproteomics: principles and applications. , 2009, Annual review of pharmacology and toxicology.
[127] P. Wright,et al. Phosphopeptide enrichment for phosphoproteomic analysis - A tutorial and review of novel materials. , 2020, Analytica chimica acta.
[128] H. Zou,et al. Improve the coverage for the analysis of phosphoproteome of HeLa cells by a tandem digestion approach. , 2012, Journal of proteome research.
[129] M. Mann,et al. Universal sample preparation method for proteome analysis , 2009, Nature Methods.
[130] L. Staudt,et al. HSP90 promotes Burkitt lymphoma cell survival by maintaining tonic B-cell receptor signaling. , 2017, Blood.
[131] R. Branca,et al. Isoelectric point-based fractionation by HiRIEF coupled to LC-MS allows for in-depth quantitative analysis of the phosphoproteome , 2017, Scientific Reports.
[132] M. Najam-ul-Haq,et al. Development of diamond-lanthanide metal oxide affinity composites for the selective capture of endogenous serum phosphopeptides , 2016, Analytical and Bioanalytical Chemistry.
[133] H. Verheul,et al. Evaluation of different phospho-tyrosine antibodies for label-free phosphoproteomics. , 2015, Journal of proteomics.
[134] P. Dorrestein,et al. Phosphoproteomic analysis of chemokine signaling networks. , 2009, Methods in enzymology.
[135] Y. Ling,et al. A novel graphene-based label-free fluorescence 'turn-on' nanosensor for selective and sensitive detection of phosphorylated species in biological samples and living cells. , 2016, Nanoscale.
[136] Michael L. Gatza,et al. Proteogenomics connects somatic mutations to signaling in breast cancer , 2016, Nature.
[137] Laura E. Herring,et al. BIRC6 mediates imatinib resistance independently of Mcl-1 , 2017, PloS one.
[138] F. White,et al. Quantitative Analysis of Signaling Networks across Differentially Embedded Tumors Highlights Interpatient Heterogeneity in Human Glioblastoma , 2014, Journal of proteome research.
[139] K. Park,et al. Phosphoproteomic analysis reveals PAK2 as a therapeutic target for lapatinib resistance in HER2-positive breast cancer cells. , 2018, Biochemical and biophysical research communications.
[140] F. Pociot,et al. TiSH--a robust and sensitive global phosphoproteomics strategy employing a combination of TiO2, SIMAC, and HILIC. , 2012, Journal of proteomics.
[141] Daria A. Gaykalova,et al. Targeting focal adhesion kinase overcomes erlotinib resistance in smoke induced lung cancer by altering phosphorylation of epidermal growth factor receptor , 2018, Oncoscience.
[142] H. Hirano,et al. A Phos‐tag‐based micropipette‐tip method for rapid and selective enrichment of phosphopeptides , 2017, Electrophoresis.
[143] Thomas L. Fillmore,et al. Residual tissue repositories as a resource for population-based cancer proteomic studies , 2018, Clinical Proteomics.
[144] P. Roepstorff,et al. Highly Selective Enrichment of Phosphorylated Peptides from Peptide Mixtures Using Titanium Dioxide Microcolumns* , 2005, Molecular & Cellular Proteomics.
[145] Pengyuan Yang,et al. 3D-SISPROT: A simple and integrated spintip-based protein digestion and three-dimensional peptide fractionation technology for deep proteome profiling. , 2017, Journal of chromatography. A.
[146] C. Gretzmeier,et al. Comparison of ERLIC-TiO2, HILIC-TiO2, and SCX-TiO2 for global phosphoproteomics approaches. , 2011, Journal of proteome research.
[147] G. Mills,et al. Which path to follow? Utilizing proteomics to improve therapy choices for breast cancer patients , 2020, Expert review of proteomics.
[148] C. Nilsson,et al. Discovery of a novel B-Raf fusion protein related to c-Met drug resistance. , 2011, Journal of proteome research.
[149] F. Regnier,et al. Reduction of non-specific binding in Ga(III) immobilized metal affinity chromatography for phosphopeptides by using endoproteinase glu-C as the digestive enzyme. , 2005, Journal of chromatography. B, Analytical technologies in the biomedical and life sciences.
[150] G. Sathe,et al. Quantitative phosphoproteomic analysis reveals system‐wide signaling pathways regulated by site‐specific phosphorylation of Keratin‐8 in skin squamous cell carcinoma derived cell line , 2017, Proteomics.
[151] M. Mann,et al. In vivo SILAC-based proteomics reveals phosphoproteome changes during mouse skin carcinogenesis. , 2013, Cell reports.
[152] Darryl B. Hardie,et al. A quantitative study of the effects of chaotropic agents, surfactants, and solvents on the digestion efficiency of human plasma proteins by trypsin. , 2010, Journal of proteome research.
[153] M. Molloy,et al. Phosphoproteomics of MAPK Inhibition in BRAF-Mutated Cells and a Role for the Lethal Synergism of Dual BRAF and CK2 Inhibition , 2014, Molecular Cancer Therapeutics.
[154] P. Haynes,et al. Comparison of protein and peptide fractionation approaches in protein identification and quantification from Saccharomyces cerevisiae , 2020, bioRxiv.
[155] Guangshun Wang,et al. A fast sample processing strategy for large-scale profiling of human urine phosphoproteome by mass spectrometry. , 2018, Talanta.
[156] Ruijun Tian,et al. An integrated strategy for highly sensitive phosphoproteome analysis from low micrograms of protein samples. , 2018, The Analyst.
[157] B. Orsetti,et al. Analysis of SRC Oncogenic Signaling in Colorectal Cancer by Stable Isotope Labeling with Heavy Amino Acids in Mouse Xenografts* , 2012, Molecular & Cellular Proteomics.
[158] X. Qian,et al. Titanium (IV) ion-modified covalent organic frameworks for specific enrichment of phosphopeptides. , 2017, Talanta.
[159] A. Capriotti,et al. Phosphopeptide enrichment: Development of magnetic solid phase extraction method based on polydopamine coating and Ti(4+)-IMAC. , 2016, Analytica chimica acta.
[160] Subash Adhikari,et al. Simple and Integrated Spintip-Based Technology Applied for Deep Proteome Profiling. , 2016, Analytical chemistry.
[161] K. Nelson,et al. Urine Sample Preparation in 96-Well Filter Plates for Quantitative Clinical Proteomics , 2014, Analytical chemistry.
[162] J. Thiery,et al. Phosphoproteomic Profiling Identifies Aberrant Activation of Integrin Signaling in Aggressive Non-Type Bladder Carcinoma , 2019, Journal of clinical medicine.
[163] P. Zhou,et al. Preparation of quaternized cellulose/chitosan microspheres for selective enrichment of phosphopeptides , 2017, Analytical and Bioanalytical Chemistry.
[164] I. Shih,et al. Spleen tyrosine kinase activity regulates epidermal growth factor receptor signaling pathway in ovarian cancer , 2019, EBioMedicine.
[165] Amanda B Hummon,et al. Quantitative Proteomic and Phosphoproteomic Comparison of 2D and 3D Colon Cancer Cell Culture Models. , 2016, Journal of proteome research.
[166] M. Kwiatkowski,et al. Quantitative proteomics unveiled: Regulation of DNA double strand break repair by EGFR involves PARP1. , 2015, Radiotherapy and oncology : journal of the European Society for Therapeutic Radiology and Oncology.
[167] Ying Jiang,et al. TiO2 with Tandem Fractionation (TAFT): An Approach for Rapid, Deep, Reproducible, and High-Throughput Phosphoproteome Analysis. , 2018, Journal of proteome research.
[168] Ivo Fabrik,et al. Radiosensitization of Human Leukemic HL-60 Cells by ATR Kinase Inhibitor (VE-821): Phosphoproteomic Analysis , 2014, International journal of molecular sciences.
[169] A. Paul,et al. Quantitative phosphoproteomic analysis of acquired cancer drug resistance to pazopanib and dasatinib , 2018, Journal of proteomics.
[170] Martijn Pinkse,et al. A high‐throughput sample preparation method for cellular proteomics using 96‐well filter plates , 2013, Proteomics.
[171] D. Goodlett,et al. Hyper-phosphorylation of Sequestosome-1 Distinguishes Resistance to Cisplatin in Patient Derived High Grade Serous Ovarian Cancer Cells* , 2017, Molecular & Cellular Proteomics.
[172] Akhilesh Pandey,et al. Identifying novel targets of oncogenic EGF receptor signaling in lung cancer through global phosphoproteomics , 2015, Proteomics.
[173] R. Branca,et al. Tartrate-resistant acid phosphatase (TRAP/ACP5) promotes metastasis-related properties via TGFβ2/TβR and CD44 in MDA-MB-231 breast cancer cells , 2017, BMC Cancer.
[174] Y. Coffinier,et al. Comparison of Ti-Based Coatings on Silicon Nanowires for Phosphopeptide Enrichment and Their Laser Assisted Desorption/Ionization Mass Spectrometry Detection , 2017, Nanomaterials.
[175] Noah Dephoure,et al. Deep Coverage of Global Protein Expression and Phosphorylation in Breast Tumor Cell Lines Using TMT 10-plex Isobaric Labeling. , 2017, Journal of proteome research.
[176] M. Mann,et al. Ultradeep human phosphoproteome reveals a distinct regulatory nature of Tyr and Ser/Thr-based signaling. , 2014, Cell reports.
[177] Nandini A. Sahasrabuddhe,et al. Chronic Cigarette Smoke Mediated Global Changes in Lung Mucoepidermoid Cells: A Phosphoproteomic Analysis. , 2017, Omics : a journal of integrative biology.
[178] M. Kamiński,et al. Phosphosignature Predicts Dasatinib Response in Non-small Cell Lung Cancer* , 2012, Molecular & Cellular Proteomics.
[179] A. Hummon,et al. Combination of multistep IMAC enrichment with high-pH reverse phase separation for in-depth phosphoproteomic profiling. , 2013, Journal of proteome research.
[180] Kristie L. Rose,et al. Activation of EGFR and ERBB2 by Helicobacter pylori results in survival of gastric epithelial cells with DNA damage. , 2014, Gastroenterology.
[181] H. Dehghani,et al. Broadband (550–1350 nm) diffuse optical characterization of thyroid chromophores , 2018, Scientific Reports.
[182] S. Gerber,et al. Offline pentafluorophenyl (PFP)-RP prefractionation as an alternative to high-pH RP for comprehensive LC-MS/MS proteomics and phosphoproteomics , 2017, Analytical and Bioanalytical Chemistry.
[183] G. Mitulović,et al. Titanium dioxide nanoparticle coating of polymethacrylate-based chromatographic monoliths for phosphopetides enrichment. , 2016, Analytica chimica acta.
[184] J. Mulvenna,et al. A modified FASP protocol for high-throughput preparation of protein samples for mass spectrometry , 2016, bioRxiv.
[185] M. Ayati,et al. Phosphoproteomics Profiling of Nonsmall Cell Lung Cancer Cells Treated with a Novel Phosphatase Activator , 2017, Proteomics.
[186] M. El-Sayed,et al. Gold Nanorod Photothermal Therapy Alters Cell Junctions and Actin Network in Inhibiting Cancer Cell Collective Migration. , 2018, ACS nano.
[187] P. Guest,et al. Clinical use of phosphorylated proteins in blood serum analysed by immobilised metal ion affinity chromatography and mass spectrometry. , 2012, Journal of proteomics.
[188] Tieliu Shi,et al. Phosphoproteome of crab-eating macaque cerebral cortex characterized through multidimensional reversed-phase liquid chromatography/mass spectrometry with tandem anion/cation exchange columns. , 2017, Journal of chromatography. A.
[189] C. Deng,et al. Development of immobilized Sn4+ affinity chromatography material for highly selective enrichment of phosphopeptides , 2016, Proteomics.
[190] I. Guerrera,et al. Sensitivity of mass spectrometry analysis depends on the shape of the filtration unit used for filter aided sample preparation (FASP) , 2016, Proteomics.
[191] A. Califano,et al. Quantitative Tyrosine Phosphoproteomics of Epidermal Growth Factor Receptor (EGFR) Tyrosine Kinase Inhibitor-treated Lung Adenocarcinoma Cells Reveals Potential Novel Biomarkers of Therapeutic Response* , 2017, Molecular & Cellular Proteomics.
[192] Richard D. Smith,et al. The current state of the art of quantitative phosphoproteomics and its applications to diabetes research , 2016, Expert review of proteomics.
[193] A. Heck,et al. An Integrated Global Analysis of Compartmentalized HRAS Signaling. , 2019, Cell reports.
[194] Qixing Huang,et al. Use of RNAi technology to develop a PRSV-resistant transgenic papaya , 2017, Scientific Reports.
[195] M. Larsen,et al. Analytical strategies for phosphoproteomics , 2009, Expert review of neurotherapeutics.
[196] Bin Fang,et al. Phosphoproteomics Reveals MAPK Inhibitors Enhance MET- and EGFR-Driven AKT Signaling in KRAS-Mutant Lung Cancer , 2016, Molecular Cancer Research.
[197] E. Kinoshita,et al. Enrichment of phosphorylated proteins from cell lysate using a novel phosphate‐affinity chromatography at physiological pH , 2006, Proteomics.
[198] E. Espinosa,et al. Protein phosphorylation analysis in archival clinical cancer samples by shotgun and targeted proteomics approaches. , 2011, Molecular bioSystems.
[199] Yu Bai,et al. Magnetization of 3-dimentional homochiral metal-organic frameworks for efficient and highly selective capture of phosphopeptides. , 2016, Journal of chromatography. A.
[200] Dongpo Xu,et al. Highly selective SiO2–NH2@TiO2 hollow microspheres for simultaneous enrichment of phosphopeptides and glycopeptides , 2017, Analytical and Bioanalytical Chemistry.
[201] Jia-yuan Li,et al. A combination strategy using two novel cerium-based nanocomposite affinity probes for the selective enrichment of mono- and multi-phosphopeptides in mass spectrometric analysis. , 2017, Chemical communications.
[202] Bin Di,et al. Design and synthesis of an immobilized metal affinity chromatography and metal oxide affinity chromatography hybrid material for improved phosphopeptide enrichment. , 2017, Journal of chromatography. A.
[203] Xi Chen,et al. Synthesis of Polyethylenimine Functionalized Mesoporous Silica for In-Pipet-Tip Phosphopeptide Enrichment. , 2016, ACS applied materials & interfaces.
[204] J. Bonfield,et al. Finishing the euchromatic sequence of the human genome , 2004, Nature.
[205] Joseph A. Loo,et al. Enhanced FASP (eFASP) to Increase Proteome Coverage and Sample Recovery for Quantitative Proteomic Experiments , 2014, Journal of proteome research.
[206] X. Qian,et al. Metal ion-immobilized magnetic nanoparticles for global enrichment and identification of phosphopeptides by mass spectrometry , 2016 .
[207] A. Marshall,et al. Differential phosphopeptide expression in a benign breast tissue, and triple-negative primary and metastatic breast cancer tissues from the same African-American woman by LC-LTQ/FT-ICR mass spectrometry. , 2011, Biochemical and biophysical research communications.
[208] Akhilesh Pandey,et al. Global phosphotyrosine survey in triple-negative breast cancer reveals activation of multiple tyrosine kinase signaling pathways , 2015, Oncotarget.
[209] J. Dengjel,et al. Fast and easy phosphopeptide fractionation by combinatorial ERLIC-SCX solid-phase extraction for in-depth phosphoproteome analysis , 2015, Nature Protocols.
[210] Wei Guo,et al. BMPR2 promotes invasion and metastasis via the RhoA-ROCK-LIMK2 pathway in human osteosarcoma cells , 2017, Oncotarget.
[211] F. Švec,et al. Preparation of Highly Porous Coordination Polymer Coatings on Macroporous Polymer Monoliths for Enhanced Enrichment of Phosphopeptides. , 2015, Journal of visualized experiments : JoVE.
[212] Pedro R. Cutillas,et al. Environmental Stress Affects the Activity of Metabolic and Growth Factor Signaling Networks and Induces Autophagy Markers in MCF7 Breast Cancer Cells* , 2014, Molecular & Cellular Proteomics.
[213] J. Olsen,et al. Offline High pH Reversed-Phase Peptide Fractionation for Deep Phosphoproteome Coverage. , 2016, Methods in molecular biology.
[214] Li Peng,et al. Facile Preparation of Core-Shell Magnetic Metal-Organic Framework Nanoparticles for the Selective Capture of Phosphopeptides. , 2015, ACS applied materials & interfaces.
[215] Nan Wang,et al. A Phosphoproteomic Comparison of B-RAFV600E and MKK1/2 Inhibitors in Melanoma Cells* , 2015, Molecular & Cellular Proteomics.
[216] C. Gretzmeier,et al. Rapid combinatorial ERLIC-SCX solid-phase extraction for in-depth phosphoproteome analysis. , 2013, Journal of proteome research.
[217] Ting-Yi Sung,et al. Sequential phosphoproteomic enrichment through complementary metal-directed immobilized metal ion affinity chromatography. , 2014, Analytical chemistry.
[218] Hongbo Gu,et al. Quantitative Profiling of Post-translational Modifications by Immunoaffinity Enrichment and LC-MS/MS in Cancer Serum without Immunodepletion , 2015, Molecular & Cellular Proteomics.
[219] C. Gretzmeier,et al. Combinatorial use of electrostatic repulsion-hydrophilic interaction chromatography (ERLIC) and strong cation exchange (SCX) chromatography for in-depth phosphoproteome analysis. , 2012, Journal of proteome research.
[220] B. Vanhaesebroeck,et al. Phosphoproteomic comparison of Pik3ca and Pten signalling identifies the nucleotidase NT5C as a novel AKT substrate , 2017, Scientific Reports.
[221] M. Huddleston,et al. An optimized platform for hydrophilic interaction chromatography-immobilized metal affinity chromatography enables deep coverage of the rat liver phosphoproteome. , 2015, Journal of proteome research.
[222] G. Superti-Furga,et al. Identification of Kinase Inhibitor Targets in the Lung Cancer Microenvironment by Chemical and Phosphoproteomics , 2014, Molecular Cancer Therapeutics.
[223] Bifeng Yuan,et al. Recent advances in phosphopeptide enrichment: Strategies and techniques , 2016 .
[224] Hongli Zhao,et al. Highly efficient enrichment of phosphopeptides from HeLa cells using hollow magnetic macro/mesoporous TiO2 nanoparticles. , 2018, Talanta.
[225] Romuald Houdré,et al. Correction: Corrigendum: All-optical polariton transistor , 2014, Nature Communications.
[226] Yuqi Feng,et al. Pyridoxal 5'-phosphate mediated preparation of immobilized metal affinity material for highly selective and sensitive enrichment of phosphopeptides. , 2017, Journal of chromatography. A.
[227] S. Brunak,et al. Phosphoproteomics of Primary Cells Reveals Druggable Kinase Signatures in Ovarian Cancer , 2017, Cell reports.
[228] R. Rostomily,et al. Kinome and phosphoproteome of high-grade meningiomas reveal AKAP12 as a central regulator of aggressiveness and its possible role in progression , 2018, Scientific Reports.
[229] Yu‐Ju Chen,et al. Immobilized metal affinity chromatography revisited: pH/acid control toward high selectivity in phosphoproteomics. , 2008, Journal of proteome research.
[230] R. Zahedi,et al. Variable Digestion Strategies for Phosphoproteomics Analysis. , 2016, Methods in molecular biology.
[231] Kristie L. Rose,et al. Critical role of SIK3 in mediating high salt and IL-17 synergy leading to breast cancer cell proliferation , 2017, PloS one.
[232] Ying Ge,et al. New mass-spectrometry-compatible degradable surfactant for tissue proteomics. , 2015, Journal of proteome research.
[233] M. Mann,et al. Quantitative Proteomics Reveals That Hsp90 Inhibition Preferentially Targets Kinases and the DNA Damage Response* , 2011, Molecular & Cellular Proteomics.
[234] M. Loh,et al. Differential Expression of Novel Tyrosine Kinase Substrates during Breast Cancer Development *S , 2007, Molecular & Cellular Proteomics.
[235] S. Beausoleil,et al. Identification of anaplastic lymphoma kinase as a potential therapeutic target in ovarian cancer. , 2012, Cancer research.
[236] W. Tao,et al. In-Depth Analyses of B Cell Signaling Through Tandem Mass Spectrometry of Phosphopeptides Enriched by PolyMAC. , 2015, International journal of mass spectrometry.
[237] Quanze He,et al. Electrophoretically driven SDS removal and protein fractionation in the shotgun analysis of membrane proteomes , 2012, Electrophoresis.
[238] C. Deng,et al. Development of Hf(4+)-immobilized polydopamine-coated magnetic graphene for highly selective enrichment of phosphopeptides. , 2016, Talanta.
[239] Martin R Larsen,et al. Evaluation of the impact of some experimental procedures on different phosphopeptide enrichment techniques. , 2007, Rapid communications in mass spectrometry : RCM.
[240] Matthew D. Dun,et al. Mutant JAK3 phosphoproteomic profiling predicts synergism between JAK3 inhibitors and MEK/BCL2 inhibitors for the treatment of T-cell acute lymphoblastic leukemia , 2017, Leukemia.
[241] Martin Gilar,et al. Enzyme-friendly, mass spectrometry-compatible surfactant for in-solution enzymatic digestion of proteins. , 2003, Analytical chemistry.
[242] Devin K. Schweppe,et al. Quantitative phosphoproteomic profiling of human non-small cell lung cancer tumors. , 2013, Journal of proteomics.
[243] R. Zeng,et al. Protein phosphorylation and expression profiling by Yin-yang multidimensional liquid chromatography (Yin-yang MDLC) mass spectrometry. , 2007, Journal of proteome research.
[244] Yu Xue,et al. Phosphoproteomic Analysis of the Highly-Metastatic Hepatocellular Carcinoma Cell Line, MHCC97-H , 2015, International journal of molecular sciences.
[245] C. Deng,et al. Preparation of Ti(4+)-immobilized modified silica capillary trapping column for on-line selective enrichment of phosphopeptides. , 2016, Talanta.
[246] P. Cutillas,et al. Global profiling of protein kinase activities in cancer cells by mass spectrometry. , 2012, Journal of proteomics.
[247] I. Lazar,et al. Proteolytic Digestion and TiO2 Phosphopeptide Enrichment Microreactor for Fast MS Identification of Proteins , 2016, Journal of The American Society for Mass Spectrometry.
[248] N. Nagahara,et al. Identification of nuclear phosphoproteins as novel tobacco markers in mouse lung tissue following short-term exposure to tobacco smoke , 2014, FEBS open bio.
[249] V. Spicer,et al. Capillary Zone Electrophoresis-Tandem Mass Spectrometry for Large-Scale Phosphoproteomics with the Production of over 11,000 Phosphopeptides from the Colon Carcinoma HCT116 Cell Line. , 2019, Analytical chemistry.
[250] Weidong Zhou,et al. An initial characterization of the serum phosphoproteome. , 2009, Journal of proteome research.
[251] R. Zahedi,et al. Impact of digestion conditions on phosphoproteomics. , 2014, Journal of proteome research.
[252] C. Deng,et al. Highly efficient enrichment of phosphopeptides by a magnetic lanthanide metal-organic framework. , 2016, Talanta.
[253] P. Cohen. The role of protein phosphorylation in human health and disease. The Sir Hans Krebs Medal Lecture. , 2001, European journal of biochemistry.
[254] W. Tao,et al. In-depth Analyses of Kinase-dependent Tyrosine Phosphoproteomes Based on Metal Ion-functionalized Soluble Nanopolymers* , 2010, Molecular & Cellular Proteomics.
[255] A. Burlingame,et al. Phosphoproteomic Analyses of NRAS(G12) and NRAS(Q61) Mutant Melanocytes Reveal Increased CK2α Kinase Levels in NRAS(Q61) Mutant Cells. , 2016, The Journal of investigative dermatology.
[256] Hailong Liu,et al. Amine-functionalized TiO₂ nanoparticles for highly selective enrichment of phosphopeptides. , 2015, Talanta.