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1 region of horse onto the surface of magnetic microcarriers.
2  cells cultured on porous fibronectin-coated microcarriers.
3 endothelial cells cultured and superfused on microcarriers.
4  allows creating large libraries of nanotags/microcarriers.
5 together, the data suggest that CultiSpher-G microcarriers are a useful in vitro system to examine th
6 hylindocarbocyanine perchlorate (DiI)-coated microcarriers are shot at high speed onto the surfaces o
7 report a multienzyme-functionalized magnetic microcarriers-assisted isothermal strand-displacement po
8 olabeled with 35S-Cys-Met and harvested from microcarrier bead cultures, which significantly improves
9                   In vitro, PAEC cultured on microcarrier beads and incubated with non-anticoagulated
10 ned previously using macrophages attached to microcarrier beads suspended in a stirred vessel.
11  labeling with ectopic implantation of FGF-4 microcarrier beads we have found that FGF-4 acts as a po
12 t bovine aortic endothelial cells (BAECs) on microcarrier beads were incubated in the presence or abs
13                            Cells attached to microcarrier beads were perfused with 26 mm [1,6-(13)C2]
14                  Model 2: PAEC were grown on microcarrier beads, coated with CHC, and incubated with
15 lls, seeded and polarized on collagen-coated microcarrier beads, using a three-dimensional culture sy
16 nce of a Pt-porphyrin complex immobilized on microcarrier beads, which are used as the cell culture s
17  assay system utilizing HUVEC immobilized on microcarrier beads, which eliminates the detection of th
18                        Cells are attached to microcarrier beads, which serve as the disposable and re
19 D aggregates, which remained attached to the microcarrier beads.
20 VEC or to HEK293 cell monolayers anchored to microcarrier beads.
21 ing to HUVEC and HEK293 cells immobilized on microcarrier beads.
22 se Hamster Ovary M1 cells grown on Cytodex-3 microcarrier beads.
23  pilocarpine) delivered to cells attached to microcarrier beads.
24 sks containing HEL299 feeder cells seated on microcarrier beads.
25 vidual cells, cell spheroids and cell-seeded microcarrier beads.
26 rability, and efficacy of transplantation of microcarrier-bound human RPE cells versus a sham surgery
27  investigated the use of macroporous gelatin microcarriers, CultiSpher-G, as a convenient laboratory
28 ot change in parallel cell columns made from microcarriers cultured in 25 mM glucose (0.97+/-0.2 of b
29  were tested by addition of 25 mM glucose to microcarrier cultures.
30 as assayed by presenting matrix deposited on microcarriers directly to migrating pronephric ducts in
31 ed for the efficient production of nano- and microcarriers for various applications.
32 wne replicates in MRC-5 fibroblasts grown on microcarriers, (ii) DB particles recovered from 2-bromo-
33          Transplantation of hepatocytes with microcarriers in the peritoneal cavity efficiently rescu
34 icrocarriers with DNA, (ii) transferring the microcarriers into a cartridge to make a 'bullet', and (
35 with one or more dyes; (ii) transferring the microcarriers into a cartridge to make a bullet; (iii) p
36  cells or intact tissue; and (iv) firing the microcarriers into cells or tissue.
37  a 'bullet', and (iii) firing the DNA-coated microcarriers into cells using a pulse of helium gas.
38  This biosensor involves the use of magnetic microcarriers (MBs) modified with covalently immobilized
39     There are three major steps: (i) coating microcarriers with DNA, (ii) transferring the microcarri
40 There are four major steps: (i) coating gold microcarriers with one or more dyes; (ii) transferring t

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