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2 lycoproteins with integrated, sequential C18 reverse phase and porous graphitized carbon-LC-ESI-QTOF-
3 using orthogonal UPLC separation strategies (reversed phase and HILIC) in both positive and negative
4 gradient or a multifactorial combination in reversed phase and ion exchange chromatography (RPLC and
8 th other mononucleosides were separated by a reverse-phase C(18) column and quantified by mass spectr
10 the sample and purification of oxysterols by reversed phase C18-SPE followed by HPLC-MS/MS analysis.
11 were eluted isocratically within 5 min on a reversed-phase C18 column without interference from endo
12 and 3D LC-MS/MS separation protocols (all of reversed-phase C18 functionality) to a tryptic digest of
13 of the samples with solid-phase extractions: reversed-phase (C18) and strong cation-exchange (SCX).
17 per demonstrates for the first time that C18 reversed-phase capillary liquid chromatography (Cap-LC)
19 differences in selectivity across a range of reversed-phase chemistries, achieving the purification o
20 ow changes in sialic acid composition affect reverse phase chromatographic retention times: sialic ac
21 y identified a candidate sharing the precise reverse-phase chromatographic and MS characteristics of
23 The method entails an aqueous extraction and reversed phase chromatographic separation using pentaflu
24 mixture of chemicals in the AF extract with reversed-phase chromatographic fractionation and subsequ
26 iopharmaceutical characterization to enhance reversed-phase chromatographic performance of peptide se
30 sSEC fractions could be further separated by reverse phase chromatography (RPC) coupled online with h
31 C with ion exchange chromatography (IEC) and reverse phase chromatography (RPC) for intact protein se
34 e (SMRT) dataset, an experimentally acquired reverse-phase chromatography retention time dataset cove
35 ize exclusion chromatography (SEC), ion-pair reversed phase chromatography (IPRP), and hydrophilic in
36 es (aqueous extract) combined with HILIC and reversed phase chromatography and time-of-flight mass sp
40 in both identity as well as purity, ion-pair reversed-phase chromatography (IP-RP) at high temperatur
42 graphy seleno-amino acids were determined by reversed-phase chromatography (RPC) coupled to ICP-MS.
43 rial size exclusion chromatography (sSEC) to reversed-phase chromatography (RPC) expanded coverage of
45 esting times were analyzed using ion-pairing reversed-phase chromatography coupled to an ICPMS/MS det
46 philic interaction liquid chromatography and reversed-phase chromatography enables the investigation
49 ass of cationic ion-interaction reagents for reversed-phase chromatography is introduced in the prese
51 hylls and bacteriochlorophylls) was based on reversed-phase chromatography with a methanol-acetone gr
52 oxylic acid cycle (TCA cycle), by mixed-mode reversed-phase chromatography, on a CSH Phenyl-Hexyl col
53 ns, iodate and nitrate, is demonstrated on a reverse phase column by a transient prior injection of h
54 sample to the MS through a UV-flow cell and reverse phase column to separate UV-induced products for
56 ographic separation was achieved using a C18 reversed phase column with gradient elution of basic mob
59 d detection of tryptophan are performed on a reversed-phase column with fluorescence detection within
62 ses strong cation-exchange (SCX) followed by reversed-phase desalting to remove Ficoll, a synthetic p
63 gradient mode were performed both in common reversed-phase eluents and environmental friendly ethano
67 rials and Methods In this prospective study, reverse phase encoding method was implemented with 3.0-T
69 through solid-phase extraction (SPE) with a reversed phase functionalized polymeric sorbent and spik
70 ance liquid chromatography method with a C18 reverse-phase fused-core column has been developed for t
71 e protein array (RPPA), termed polymer-based reverse phase glycoprotein array (polyGPA), to capture a
72 e generation of droplets is also possible in reversed phase gradient elution mode as demonstrated by
74 sed a central composite design to optimise a reverse phase high performance liquid chromatographic me
75 Some phenolic components were analyzed by reverse phase high performance liquid chromatography (RP
77 tate, alpha-tocopherol and gamma-tocopherol, reverse phase high performance liquid chromatography for
78 nt study, a new chromatographic method using reverse-phase high performance liquid chromatography cou
79 rum retinol concentration was measured using reverse-phase high performance liquid chromatography.
80 termined by using analytical method based on reverse-phase high-performance liquid chromatography (RP
81 using the combination of gel filtration and reverse-phase high-performance liquid chromatography (RP
84 rum retinol concentration was measured using reverse-phase high-performance liquid chromatography.
85 embranes, cation exchange chromatography and reversed phase high performance liquid chromatography wa
86 tion with solid phase extraction followed by reversed phase high performance liquid chromatography.
87 gated for their phenolic profile by means of reversed phase high-performance liquid chromatography co
89 cids in sour cassava starch wastewater using reversed-phase high performance liquid chromatography (H
90 ention times of N-glycopeptides separated by reversed-phase high performance liquid chromatography (R
91 ermination of vitamin E, being comparable to reversed-phase high performance liquid chromatography ch
92 pic labeling followed by analysis via online reversed-phase high performance liquid chromatography co
95 These subunits were separated by ion-pair reversed-phase high-performance liquid chromatography (I
96 rapid determination of phenolic compounds by reversed-phase high-performance liquid chromatography (R
97 se peptide chemistry and characterized using reversed-phase high-performance liquid chromatography an
99 Quantitation of protein concentrations by reversed-phase high-performance liquid chromatography pr
102 tions of the Osborne fractions determined by reversed-phase high-performance liquid chromatography, s
103 imple method was developed using ion-pairing reversed-phase high-performance liquid chromatography-el
104 ts of crude Ou-gon extract were separated by reversed-phase high-performance liquid chromatography.
105 mass spectrometry (MS), in combination with reversed-phase high-pressure liquid chromatography (HPLC
107 Species separation was accomplished with reverse phase-high performance liquid chromatography (HP
108 ng a C18 matrix followed by semi-preparative reverse phase-high performance liquid chromatography (SP
110 protein fractions generated were analyzed by reversed phase-high performance liquid chromatography an
111 ex, and its subsequent detection by Ion-Pair-Reversed Phase-High Performance Liquid Chromatography-Di
112 ased on enzymatic extraction with subsequent reversed-phase-high-pressure liquid chromatography (RP-H
113 ts of samples (10 mug), we developed high-pH reverse phase (Hp-RP) combined with stop-and-go extracti
116 ct [Ru(phbpy)(phen)(NCMe)]PF(6), followed by reverse phase HPLC, led to the separation and characteri
118 purified from salivary gland homogenates by reverse-phase HPLC and identified by mass spectrometry a
120 ing of a double filtration step coupled with reverse-phase HPLC fractionation of Chlamydia-infected H
122 and the sterols are identified/quantified by reversed phase HPLC coupled to tandem mass spectrometry
123 AGE modification sites in plasma proteins by reversed phase HPLC mass spectrometry in tryptic plasma
128 ze exclusion chromatography for homogeneity, reversed-phase HPLC for purity (99%), peptide digest LC-
130 ans- and cis-beta-Carotenes were analyzed by reversed-phase HPLC method using a mobile phase containi
131 (BioLCCC) describes polypeptide retention in reversed-phase HPLC using the basic principles of statis
135 oked olives were monitored by HPLC/MS-MS and reversed-phase-HPLC methods along different procedures:
137 onidase (GUS) enzymes cause drug toxicity by reversing Phase II glucuronidation in the gastrointestin
138 We have analyzed GAGs in C. elegans using reversed-phase ion-pairing HPLC, mass spectrometry and i
139 present the development and application of a reversed-phase lauryl methacrylate-based monolith, forme
142 metabolites can be efficiently separated by reversed phase LC and ionized by electrospray ionization
144 luate its performance, we analyzed data from reversed phase LC-MS and hydrophilic interaction chromat
145 0 to 100% MeOH and analyzed with untargeted reversed phase LC-MS showed that the highest number of m
146 by the combination of online two-dimensional reversed-phase LC (2D-LC) operated in high and low pH bu
147 ork, we coupled strong cation exchange (SCX)-reversed-phase LC (RPLC) to CZE-MS/MS for large-scale ph
148 romatographic retention on the commonly used reversed-phase LC columns and the resulting severe ioniz
152 h-resolution accurate mass spectrometry with reverse phase liquid chromatography fractionation and ma
153 used method for peptide mapping is based on reverse phase liquid chromatography with mass spectromet
154 d microbial swab samples were analyzed using reverse phase liquid chromatography with tandem mass spe
156 up, cation exchange chromatography (CEX) and reverse-phase liquid chromatography (RPLC) were used as
157 abeling with amino acids in cell culture and reverse-phase liquid chromatography mass spectrometry, w
158 ent digestion using trypsin were analyzed by reverse-phase liquid chromatography-mass spectrometry.
159 modifiers for the online coupling of high pH reversed phase liquid chromatography (HPH-RPLC) in the f
160 he first dimension ((1)D) followed by low pH reversed phase liquid chromatography (LPH-RPLC) in the s
165 ed batch experiments with size-exclusion and reversed phase liquid chromatography and in situ infrare
167 are compared to those derived by denaturing reversed phase liquid chromatography using an oa-ToF MS
169 up level of analysis, its complementarity to reversed phase liquid chromatography, and its hyphenatio
170 utilizing differential isotope labeling and reversed phase liquid chromatography-tandem mass spectro
171 The following isocratic high-performance reversed-phase liquid chromatographic conditions were so
173 profile is commonly performed by ion-pairing reversed-phase liquid chromatography (IPRP) with a mobil
174 italizes on multidimensional high-resolution reversed-phase liquid chromatography (LC) separation for
175 s indicated that incorporation of m-NBA into reversed-phase liquid chromatography (LC) solvents impro
177 capillary zone electrophoresis (CZE)-MS and reversed-phase liquid chromatography (LC)-MS, and then f
178 ne method combining size-exclusion (SEC) and reversed-phase liquid chromatography (RP-HPLC) using a n
179 ophilic interaction chromatography (HILIC) x reversed-phase liquid chromatography (RP-LC) separation
180 ated the utility of SERS in conjunction with reversed-phase liquid chromatography (RP-LC), for the de
181 erformed using various custom-made prototype reversed-phase liquid chromatography (RPLC) columns rang
182 adequate removal of the stationary phase of reversed-phase liquid chromatography (RPLC) columns.
184 ds mostly rely on gas chromatography (GC) or reversed-phase liquid chromatography (RPLC) coupled with
185 The fractions were separated further by reversed-phase liquid chromatography (RPLC) coupled with
186 ne digestion, followed by a ((2)D) on-column reversed-phase liquid chromatography (RPLC) for reductio
188 Despite recent technological advances in reversed-phase liquid chromatography (RPLC)-mass spectro
189 f ECM proteins, and rapid digestion prior to reversed-phase liquid chromatography (RPLC)-MS analysis.
190 th high confidence and high throughput using reversed-phase liquid chromatography (RPLC)-tandem mass
191 nteraction liquid chromatography (HILIC) and reversed-phase liquid chromatography (RPLC)] together wi
192 pipeline that combines superficially porous reversed-phase liquid chromatography (SPLC), Fourier tra
193 rs Nochowski from 2012 and 2013 season using reversed-phase liquid chromatography combined with negat
195 -cut multidimensional strong-cation-exchange-reversed-phase liquid chromatography proteomics analysis
196 ple cleanup in a 96-well-plate format before reversed-phase liquid chromatography tandem mass spectro
197 lkaline hydrolysis (1 h at 37 degrees C) and reversed-phase liquid chromatography with negative elect
198 ituted in 25muL acetonitrile and analyzed by reversed-phase liquid chromatography with tandem mass sp
200 protein groups were identified in single-run reversed-phase liquid chromatography-electrospray ioniza
202 ILIC-MS/MS) for polar pesticides, and; (iii) reversed-phase liquid chromatography-tandem mass spectro
203 ics and amine metabolomics analyses via nano reversed-phase liquid chromatography-tandem mass spectro
207 separation of longer peptides, combined with reversed phase-liquid chromatography (RP-LC) using colum
210 lid-phase extraction columns consisting of a reversed phase, mixed-mode anion exchange, and mixed-mod
215 -affinity flow configuration hyphenated with reversed phase nanoflow chromatography and coupled with
216 olumn in the first dimension for enrichment, reversed phase nanoLC column in the second dimension for
218 iter scale, by using a single octanol-filled reversed-phase, octadecylsilane-modified (C18-silica) ch
219 these linear tetraphosphates are purified by reverse phase or anion exchange HPLC, yielding triethyla
220 d into their corresponding enantiomers under reversed-phase, polar organic and normal-phase condition
223 for protein expression using immunoblot and reverse phase protein array (RPPA) and then subjected to
225 in expression after radiation, we utilized a reverse phase protein array (RPPA) to identify significa
230 eveal the dynamic regulations by integrating reverse phase protein array data and the stiffness assoc
232 eceptor sequencing, immunohistochemistry and reverse phase protein array profiling (RPPA) on OS speci
233 -TRAP1 transgenic mice by RNA sequencing and reverse phase protein array reveals modulation of oncoge
237 ons and did protein profiling analysis using reverse phase protein array; ii) computationally develop
239 proteomic platforms (planar and bead array, reverse phase protein microarray, phosphoflow, AQUA and
248 one H3 modification, microRNA expression and reverse-phase protein array data for 1,072 cell lines fr
250 ant NRAS melanoma, we used a high-throughput reverse-phase protein array platform to identify signali
252 ti-E2 antibody-mediated viral suppression, a reverse-phase protein array was used to broadly survey c
259 , apoptosis, wound healing assay, as well as reverse-phase protein arrays, western blot and immunoflu
261 Downstream events, measured by time-series reverse-phase protein microarrays, high-content imaging,
262 rotein-level alterations, typically by using reversed-phase protein arrays or mass spectrometry, has
266 ing a simple, automated strategy utilizing a reverse-phase resin tip-based format and "on-tip" digest
267 developed a novel workflow consisting of one Reverse Phase (RP) C18 column linked in tandem with a Co
268 using an orthogonal strategy in which both a reversed phase (RP) C18 column and a zwitterionic hydrop
271 syl labeled metabolites can be captured on a reversed phase (RP) trap column for large volume injecti
273 We combined NMR spectroscopy, preparative reversed-phase (RP) chromatography, atomic force microsc
274 nteraction liquid chromatography (HILIC) and reversed-phase (RP) separation allows a target analysis
275 tide separation modes applied in proteomics: reversed-phase (RP) separations with different pH, hydro
276 ides and components via cation-exchange (CX) reversed-phase (RP) SPE with strategically regulated pH
279 nalytes are preconcentrated onto a dedicated reversed-phase solid-phase extraction (Oasis PRIME-HLB)
280 s, samples (20 mL) were concentrated using a reversed-phase solid-phase extraction (SPE) cartridge, f
281 cross-links as nucleosides, enrichment by a reversed-phase solid-phase extraction column, and nanoLC
283 hanol/water 80:20 (v/v), and cleaned up by a reversed phase/strong cation exchange solid phase extrac
286 eous HCl solution; unlike current processes, reverse phase transfer is achieved simply using water.
287 g power (0.375nm) was further purified using reversed-phase UFLC and subjected to matrix assisted las
289 lyzed applying complementary HILIC and C(18) reversed-phase UHPLC-MS untargeted metabolomic assays.
292 es were measured with the use of untargeted, reverse-phase ultra-performance liquid chromatography-ta
294 of biliverdin were subsequently annotated by reversed-phase ultra-high performance liquid chromatogra
295 ethanesulfonate, (3) sequential ion-exchange/reversed-phase (ultra) high-performance liquid chromatog
297 approach was based on scaling a conventional reversed-phase UPLC-MS method for urinary profiling from
299 trimodal phase incorporating polar embedded reversed phase, weak anion exchange, and strong cation e
300 ell fisheye lens has a point symmetry with a reverse phase, which makes it possible to realize passiv