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1 asked by pH sensitive covalently crosslinked polyethylene glycol.
2 adapting methods for isolating viruses using polyethylene glycol.
3 of the protein BSA with fluorescent dye and polyethylene glycol.
4 re-derived HBV inoculated in the presence of polyethylene glycol.
5 porphyrin and monoolein is better fitted as polyethylene glycol.
6 sters) (PBAEs), possessing a dense corona of polyethylene glycol.
7 lutions containing a monoclonal antibody and polyethylene glycol.
8 alkyl benzenesulfonates, alkyl sulfates, and polyethylene glycols.
9 mentation techniques, and D-alpha-tocopheryl polyethylene glycol 1000 succinate (TPGS), Polysorbate 8
12 ere then given a bowel cleaning regimen with Polyethylene glycol 3350, re-evaluated at 2 months and f
14 onic acid)-8-(methane carboxylic acid) and a polyethylene glycol 4 linker, at day 2 after the inducti
15 solution (n = 76) or a fixed combination of polyethylene glycol 400 0.4 % and propylene glycol 0.3 %
16 ), isopropanol (IPA), propylene glycol (PG), polyethylene glycol-400 (PEG-400), Transcutol, butanol-1
17 ulse energies of E(p) = 12, 18 uJ and within polyethylene glycol (600) diacrylate (PEG (600) DA) hydr
19 s for B. subtilis in media supplemented with polyethylene-glycol 6000 or 600 (r(2) = 0.925 and 0.961)
20 ing the albumin-binding group or inserting a polyethylene glycol 8 linker into a common structure.
23 t appear to offer any clinical benefits over polyethylene glycol alone in the management of constipat
25 ethod including mechanochemical treatment of polyethylene glycol and acetates of copper, nickel and c
26 ecture resisted macromolecular crowding with polyethylene glycol and blocked ATP-powered compaction b
27 In this report, we used a density-controlled polyethylene glycol and dextran aqueous two phase system
28 ribozyme as a model to probe the effects of polyethylene glycol and yeast cell extract as crowding a
29 iew of the development of antibodies against polyethylene glycol (and in some cases against phenylala
30 for new greener materials (than for example polyethylene glycol) and methods for consolidation to be
31 e that is further functionalized with twelve polyethylene glycol arms to prepare SMNPs (porSMNPs).
33 tions within 30 min of application utilizing polyethylene glycol as delivery vector for ionic gold.
34 on initiate radical polymerization between a polyethylene glycol based chain transfer agent (PEG-CTA)
35 their signal-to-noise ratio, self-assembled polyethylene glycol based nanolenses are rapidly formed
36 f p(HEMA)-based sensor with a regularly used polyethylene glycol-based architecture relying on mixed
37 n vivo biodistribution and clearance rate of polyethylene glycol-based bottlebrush polymers, as well
40 affinity-generating lipophilic appendage, a polyethylene glycol-based linker and the NTS1R agonist N
41 l was synthesized from diacrylate-containing polyethylene glycol-based scaffolds and a cysteine-termi
42 rikingly, a novel potentially SMYD2-specific polyethylene glycol binding site is identified in the CT
43 assembly (ROPI-CDSA) of poly-L-lactide-block-polyethylene glycol block copolymers into 1D, 2D and 3D
44 and poly(D,L-lactic-co-glycolic acid)-block-polyethylene glycol)-block-poly(D,L-lactic-co-glycolic a
45 e that a noncationic, biocompatible polymer, polyethylene glycol, can be used as a transfection vecto
46 sent the structure of the beta2AR bound to a polyethylene glycol-carboxylic acid derivative (Cmpd-15P
47 rterioles from subjects without CAD, whereas polyethylene glycol-catalase (PEG-catalase; hydrogen per
48 the cytochrome c protein to a complementary polyethylene glycol chain in a site-directed fashion.
50 rning of ethylene diamine and terminal amine polyethylene glycol chain to prevent non-specific intera
51 ng of IL-2 conjugated to multiple releasable polyethylene glycol chains resulting in sustained signal
55 posed of poly(lactic-co-glycolic acid), with polyethylene glycol coatings to resist bioadhesion, were
56 thesized a new family of nickel phenoxyimine-polyethylene glycol complexes (NiL0, NiL2-NiL4) that for
57 ped a model of intranasal supplementation of polyethylene glycol-conjugated catalase (PG-CAT) for RSV
61 ing" nanoparticles (BPN) coated with a dense polyethylene glycol corona that prevents adhesion to ECM
63 n this series' low water solubility, various polyethylene glycol derivatives of the distally binding
64 t EV isolation method was developed by using polyethylene glycol/dextran aqueous two phase system (AT
65 ydrolase, Steps 9 and 10), were studied in a polyethylene glycol/dextran aqueous two-phase system.
66 surface was encapsulated within a permeable polyethylene glycol diacrylate (PEGDA) hydrogel at high
67 adhesion and proliferation than traditional polyethylene glycol diacrylate (PEGDA), and had no stati
71 d-ethoxylated polyols that are combined with polyethylene glycol diacrylates to form a biodegradable
72 ic breast cancer cells by using non-adhesive polyethylene glycol dimethacrylate hydrogel microwells o
74 en outline methods for the synthesis of both polyethylene glycol-DNA (PEG-DNA) and polyacrylamide-DNA
76 objects using self-assembled vapor-condensed polyethylene glycol droplets, which act as micro-reflect
78 ems were prepared by incorporating different polyethylene glycol fatty acid esters such as Labrasol,
79 l utility of the addition of electrolytes to polyethylene glycol for the management of constipation i
80 arboxyl and epoxy groups and stabilized with polyethylene glycol fragments, were characterized in ord
83 y synthesized polystyrene-g-polyoleic acid-g-polyethylene glycol graft copolymer (PoleS-PEG) was used
84 n, pectinase was covalently immobilized onto polyethylene glycol grafted magnetic nanoparticles via t
86 ecursors were combined on chemically defined polyethylene glycol hydrogels and cultured in serum-free
87 pramlintide with cucurbit[7]uril-conjugated polyethylene glycol improves the pharmacokinetics of the
90 dy solution can be readily determined by the polyethylene glycol-induced liquid-liquid phase separati
92 s upon acute, nonchronic exposure; and (iii) polyethylene glycol is not as benign a surface chemistry
93 wrapped by encapsulation agent (phospholipid-polyethylene glycol), is demonstrated using standard cyt
97 , BODIPY, thiazole orange, and Cy7 through a polyethylene glycol linker attached to the exocyclic ami
99 on a 3' ssDNA extension and was blocked by a polyethylene glycol linker, indicating that DHX36 loads
100 yed to generate heterobivalent ligands using polyethylene glycol linkers spanning 40-120 angstrom.
102 cles tethered to the tumour cell surface via polyethylene glycol linkers, increase the apoptotic effe
103 Therefore, here, we describe the use of polyethylene glycol microbeads for the coincident delive
104 en demonstrated that coating of the ITs with polyethylene glycol minimized the immunogenicity, as has
106 ze omega-3 esters from chia oil catalysed by polyethylene glycol-modified lipases using a biocatalyst
107 between cysteine-containing peptides and the polyethylene glycol moieties, a third fraction of peptid
109 chitosan, polyacrylic acid (PAA), or methoxy polyethylene glycol (mPEG) exhibited a distinct spectral
110 peutic agents to polymeric carriers, such as polyethylene glycol, offers several advantages, includin
111 al Day 2, polyethylenimine-(5) myristic acid/polyethylene glycol-oleic acid/cholesterol nanoparticles
112 impact of crowding by high-molecular-weight polyethylene glycol on the RNA folding thermodynamics is
113 ith linear 20-kDa N-hydroxysuccinimide ester polyethylene glycol (OT-58)] on clinical end points rele
114 y, we explored the utility of 6kDa and 20kDa polyethylene glycol-paclitaxel (PEG-PTX) conjugates to r
117 ylate adhesives (CA), 2 fibrin glues (FG), 3 polyethylene glycol (PEG) adhesives, and 3 albumin-based
119 ic hybrids, composed of a linear hydrophilic polyethylene glycol (PEG) and an esterase-responsive hyd
121 (BPN) that possess dense surface coatings of polyethylene glycol (PEG) and are loaded with cisplatin
122 widely used water-soluble polymers, namely, polyethylene glycol (PEG) and poly(N-isopropylacrylamide
125 pment of a microarray platform with carboxyl-polyethylene glycol (PEG) as a functional layer and amin
127 ore diameter 12 nm) stabilized by citrate or polyethylene glycol (PEG) at different ionic strengths w
128 helical strand exchange, stereoregular PMMA/polyethylene glycol (PEG) block copolymers capable of un
131 e, covalent functionalization of SWCNTs with polyethylene glycol (PEG) chains mitigated the inhibitio
132 tumor targeting and tissue penetration; ii) polyethylene glycol (PEG) chains to prolong blood circul
133 rescent squaraine dye that is flanked by two polyethylene glycol (PEG) chains with nanomolar dissocia
135 diameters (~50 nm) and non-adhesive surface polyethylene glycol (PEG) coatings efficiently penetrate
137 of TASC for detecting the metastable form of polyethylene glycol (PEG) compared to conventional diffe
138 of temperatures and ion (K(+) , Na(+) ) and polyethylene glycol (PEG) concentrations and demonstrate
141 usly discovered that a dense layer of low MW polyethylene glycol (PEG) conferred a sufficiently hydro
142 ehaving scaffold types based on (i) flexible polyethylene glycol (PEG) conjugates and (ii) rigid self
143 gen method-based exosomal preparation showed polyethylene glycol (PEG) contamination in mass spectrom
144 ollowed by lyophilization and removal of the polyethylene glycol (PEG) continuous phase (using an org
145 atrix between cells and that possess a dense polyethylene glycol (PEG) corona that prevents them from
146 oteins, one amino acid, two cofactors, three polyethylene glycol (PEG) derivatives, and sulfate stand
149 e, we show that analogues with an N-terminal polyethylene glycol (PEG) extension as well as peptide b
150 sy carbon electrode with highly cross-linked polyethylene glycol (PEG) film containing amine groups,
151 cetone, (2) trichloroethylene (TCE), and (3) polyethylene glycol (PEG) for the ultraviolet light and
152 er assembly of mercaptopropionic acid (MPA), polyethylene glycol (PEG) functionalized gold nanopartic
153 the workflow to characterize a 40 kDa 8-arm polyethylene glycol (PEG) functionalized with a maleimid
155 ecule substrates, the new SCNP clickase with polyethylene glycol (PEG) groups is only active on small
158 ehavior of negatively charged, non-spherical polyethylene glycol (PEG) hydrogel NPs by endothelial ce
159 conductive hydrogel micropatterns including polyethylene glycol (PEG) hydrogel, silver nanowires (Ag
162 byproducts produced from the degradation of polyethylene glycol (PEG) in the presence of hydrogen pe
165 r-sized particles and planar substrates with polyethylene glycol (PEG) ligands of varying length is a
166 this new group of dyes was conjugated via a polyethylene glycol (PEG) linker to a small peptide (Spy
167 conjugated to dendrimer nanoparticles via a polyethylene glycol (PEG) linker to generate high-order
169 action initiate the polymerization between a polyethylene glycol (PEG) macroreversible addition-fragm
170 rsed in ethanol, and magnetically aligned in polyethylene glycol (PEG) matrix, yielding a PEG-SmCo(5)
171 tive MIP for cocaine (COC) on the surface of polyethylene glycol (PEG) modified Mn-doped ZnS quantum
172 ster) (PBAE), with PBAE conjugated with 5kDa polyethylene glycol (PEG) molecules (PBAE-PEG) rapidly p
173 re co-immobilized on the sensor surface with polyethylene glycol (PEG) molecules of different molecul
174 inant human deoxyribonuclease I (rhDNase) to polyethylene glycol (PEG) of 20 to 40 kDa was previously
175 Several selenide analogues were attached to polyethylene glycol (PEG) oligomers, as PEG substituents
177 body that binds both cell-surface ICAM-1 and polyethylene glycol (PEG) on the surface of nanoparticle
178 elease of intact therapeutic molecules, (ii) polyethylene glycol (PEG) outer shell to prolong blood c
180 two lipoic acid (LA) anchors, a hydrophilic polyethylene glycol (PEG) segment and a terminal reactiv
185 ght into contact using low concentrations of polyethylene glycol (PEG) to investigate the influence o
188 tic phenyl groups at a fixed distance of six polyethylene glycol (PEG) units from the TAT-PTD-cargo s
189 ting copper-free "click chemistry" moieties, polyethylene glycol (PEG) units, redox-sensitive cross-l
190 cancer, neurotensin peptide (NT)-conjugated polyethylene glycol (PEG) was chemically crosslinked to
192 ing heteromultivalent liposomes covered with polyethylene glycol (PEG) were synthesized using the PR_
193 photosensitizer protoporphyrin IX (PpIX) and polyethylene glycol (PEG) with glycol chitosan (GC).
194 d lithium borates fusion in combination with polyethylene glycol (PEG)) gives comparable activity con
195 equire additives such as precipitants (e.g., polyethylene glycol (PEG)), we also carried out ITC demi
197 tudy, we showed that the molecular weight of polyethylene glycol (PEG), 20kDa or 40kDa, had a moderat
198 ating antibodies (Ab) that specifically bind polyethylene glycol (PEG), a biocompatible polymer routi
199 mer containing three segments: a hydrophilic polyethylene glycol (PEG), a bortezomib-conjugating inte
201 -ppTAT-DOX) was developed, which contained a polyethylene glycol (PEG), a matrix metalloproteinase 2
202 d by femtosecond laser ablation, capped with polyethylene glycol (PEG), and administered to 13 New Ze
204 modified with the most widely used polymer, polyethylene glycol (PEG), induce an IgM response result
205 Through coformulation of PBAEs with lipid-polyethylene glycol (PEG), mRNA formulations were develo
206 lymer-drug conjugates based, for example, on polyethylene glycol (PEG), N-(2-hydroxypropyl)methacryla
208 eparing the colon for colonoscopy, including polyethylene glycol (PEG), sodium phosphate, picosulfate
209 rcome by treatment with the chemical fusogen polyethylene glycol (PEG), strongly arguing that gH/gL/g
210 sitive polymer masking reagents derived from polyethylene glycol (PEG), which inhibit membrane intera
211 e (PVP)- and citrate-coated NPs, 40 nm sized polyethylene glycol (PEG)- and citrate-coated NPs, and 6
212 ent-dependent, being most pronounced in long polyethylene glycol (PEG)-based detergents such as C10E5
213 ed primary human hepatocytes into engineered polyethylene glycol (PEG)-based nanoporous human ectopic
216 he tumor uptake of doxorubicin (Dox)-loaded, polyethylene glycol (PEG)-coated hollow gold nanospheres
217 Dextran hydrolysis-mediated conversion of polyethylene glycol (PEG)-dextran (DEX) aqueous two-phas
218 ncentration-dependent measurements made with polyethylene glycol (PEG)-modified graphene devices exhi
219 agen type I crosslinked via multi-functional polyethylene glycol (PEG)-N-hydroxysuccinimide (NHS) and
221 ueous droplets are dispersed in a continuous polyethylene glycol (PEG)-rich aqueous phase, with coale
229 We used two ATPS including polymer/polymer (polyethylene glycol (PEG)/dextran (DEX)) and polymer/sal
230 V and T(g) = 8 +/- 1 degrees C) are based on polyethylene glycol (PEG)/methyl cellulose (MC) core wit
232 onic gold nanoparticles (10(-8)-10(-6) M) or polyethylene glycol (PEG, molecular weight approximately
233 ld nanoparticles ( approximately 10 nm), and polyethylene glycol (PEG, molecular weight approximately
236 and polyethylene glycol-polybutylene adipate-polyethylene glycol (PEG-PBA-PEG) (1.0-4.0 mg) polyester
237 the nanoparticles in solutions of thiolated polyethylene glycol (PEG-SH) with or without PEG disulfi
238 thylene blue-tagged peptides combined with a polyethylene-glycol (PEG) based spacer were shown to be
239 queous two-phase system (ATPS) consisting of polyethylene-glycol (PEG) with sodium citrate was develo
240 , compstatin Cp40, and its long-acting form (polyethylene glycol [PEG]-Cp40) on hemolysis and opsoniz
241 gic alternative to chemical conjugation with polyethylene glycol, PEG-offer a promising tracer format
242 linking trastuzumab Fab fragments through a polyethylene glycol (PEG24) spacer to epidermal growth f
243 hod utilizing competitive adsorption between polyethylene glycols (PEGs) and labeled protein to nanop
244 onvolatile organic compounds identified were polyethylene glycols (PEGs), polypropylene glycols (PPG)
245 stabilized by thiol functionalized methoxyl polyethylene glycol (PEGSH) of 6 nm (Ag(NP_)6), 9 nm (Ag
247 t formulating AZD2811-loaded polylactic acid-polyethylene glycol (PLA-PEG) nanoparticles with adjusta
248 oly(lactic-co-glycolic acid) (PLGA) and PLGA-polyethylene glycol (PLGA-PEG) polymers to generate sub-
249 serving as the main delivery platform, (ii) polyethylene glycol-PLGA conjugate (PEG-PLGA, p) to help
250 of FDA-approved poly lactic-co-glycolic acid-polyethylene glycol (PLGA_PEG) polymer microspheres.
252 lymer wall, using polycaprolactone (PCL) and polyethylene glycol-polybutylene adipate-polyethylene gl
253 gated miR-146a and miR-181b were packaged in polyethylene glycol-polyethyleneimine (PEG/PEI) nanopart
254 were conjugated to branched polyethylenimine-polyethylene glycol polymer to generate polyplexes carry
255 (HA) forms dynamic cross-links with branched polyethylene glycol polymers end-functionalized with bor
256 EV recovery, differential centrifugation and polyethylene glycol precipitation followed by lectin aff
257 AAVs from HEK293T cell lysates and medium by polyethylene glycol precipitation with subsequent aqueou
259 DI score, TBUT and Schirmer test compared to polyethylene glycol/propylene glycol in the treatment of
260 site-specific shielding of Ad5 vectors with polyethylene glycol rendered vectors FX-independent and
263 show that modification of nanoparticles with polyethylene-glycol results in decreased clearance by al
264 nd low fouling biosensor based on functional polyethylene glycols selective for breast cancer suscept
265 biocompatible poly(methyl methacrylate)-core/polyethylene glycol-shell amphiphilic comblike nanoparti
266 biocompatible poly(methyl methacrylate)-core/polyethylene glycol-shell amphiphilic comblike nanoparti
270 lating agents in the mixed surfactant media, Polyethylene glycol sorbitan monolaurate (Tween 20) and
271 riments with DNA containing abasic sites and polyethylene glycol spacers show that the ssDNA base als
272 blocker alpha-conotoxin ImI (alpha-ImI) with polyethylene glycol spacers were designed and synthesize
273 e-functionalized lactide-chain-extended star polyethylene glycol (SPELA) hydrogel and microchannel pa
277 roteins are derivatized with thiol-activated polyethylene glycol (TAPEG) before protein cleavage.
279 was generated from an in vitro extract using polyethylene glycol tert-octylphenyl ether (Triton X-114
280 ationic dye in presence of tartaric acid and polyethylene glycol tert-octylphenyl ether (Triton X-114
282 e individuals develop antibodies against the polyethylene glycol that is commonly used in therapeutic
283 eved by treatment with Staramine-monomethoxy polyethylene glycol that was formulated with Raptor-smal
286 th self-assembled monolayers of biotinylated polyethylene glycol thiols, neutravidin and biotinylated
289 vidence that our peptide, when conjugated to polyethylene glycol to gain stability in vivo, efficient
290 SPE patterns were not altered in response to polyethylene glycol treatment, only 17% of the remaining
293 illing process was substantially slower when polyethylene glycol was added to the H2O source, thereby
294 t differentiated HepaRG cells independent of polyethylene glycol, which represents a more physiologic
295 ong-term exposure to abscisic acid (ABA) and polyethylene glycol, while treatments with NaCl resulted
296 was to assess the relative effectiveness of polyethylene glycol with (PEG + E) or without electrolyt
299 ata were collected for RNA duplexes in a 20% polyethylene glycol (with an average molecular weight of