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1 dal stability in media with different pH and ionic composition.
2 d mode, on pipette potential, and on pipette ionic composition.
3 resuspended in solutions of unphysiological ionic composition.
4 ne and the water layer with its uncontrolled ionic composition.
5 for brines with a wide range of salinity and ionic composition.
6 tion at the interface that changes the local ionic composition.
9 t function of glia is the maintenance of the ionic composition and pH of the synaptic microenvironmen
13 s represent the first direct measurements of ionic composition and viscosity in uncontaminated human
14 uorescence method was applied to measure the ionic composition and viscosity of freshly secreted flui
17 be sensitive to resting membrane potential, ionic composition, and degree of channel inactivation, a
18 ease should not be directed at modulation of ionic composition, but rather at restoring volume (salt
19 As deviations between the molecular and the ionic composition can appear due to chemical influences
20 Geochemical reconstruction shows that the ionic composition conducive to the origin of cells could
21 However, in aqueous media, changes to pH and ionic composition do not alter the electrokinetic profil
22 tion to an environment with a very different ionic composition from that of its extracellular habitat
25 ed roles of natural organic matter (NOM) and ionic composition in the removal of Hg(II) by biochar re
26 r has fluid-filled compartments of different ionic compositions, including the endolymphatic and peri
27 when it approaches an active site, where the ionic composition is different to that in bulk solution,
38 ociation rate constant was influenced by the ionic composition of the extracellular solution whereas
40 code membrane transporters that regulate the ionic composition of the fluid bathing the inner ear.
41 n-restrictive barrier to maintain the proper ionic composition of the fluid surrounding the basolater
42 tinal pigment epithelium (RPE) regulates the ionic composition of the fluid surrounding the photorece
45 transport reversal, relies primarily on the ionic composition of the intra- and extracellular milieu
47 sponse to changes in the light intensity and ionic composition of the medium and depended on an eleva
53 essure due to light-dependent changes in the ionic composition of the subretinal space and because RP
55 operties of the concentric membranes and the ionic composition of the volumes between the membranes.
56 also sensitive to changes in the particular ionic composition of their surroundings after wounding,
57 at the comparable structure, dimensions, and ionic composition of these species should render them in
58 cells and the subsequent modification of the ionic composition of this fluid by the ducts are unclear
59 by regulating blood flow, yet the volume and ionic compositions of in vivo stimulated saliva from wil
61 include temperature, nutrient availability, ionic composition, pH, osmolarity, oxidative stress, con
62 reagents, changes in sample pH, and altered ionic composition result in decreased recoveries and mis
63 sed to hypertonic Ringer solutions of normal ionic composition showed no such E(m) shifts, suggesting
66 asured in extracellular solutions of various ionic composition to determine relative permeability of
67 an intracellular phosphate buffer matched in ionic composition to the intracellular fluid of growth p
68 ing intracellular solutions of physiological ionic composition, we isolated individual components of
69 he regulation of airway surface liquid (ASL) ionic composition, we measured ASL composition using the