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Quaternary ammonium compounds as water channel blockers. Specificity, potency, and site of action.

Excessive water uptake through Aquaporins (AQP) can be life-threatening and reversible AQP inhibitors are needed. Here, we determined the specificity, potency, and binding site of tetraethylammonium (TEA) to block Aquaporin water permeability. Using oocytes, externally applied TEA blocked AQP1/AQP2/AQP4 with IC50 values of 1.4, 6.2, and 9.8 microM, respectively. Related tetraammonium compounds yielded some (propyl) or no (methyl, butyl, or pentyl) inhibition. TEA inhibition was lost upon a Tyr to Phe amino acid switch in the external water pore of AQP1/AQP2/AQP4, whereas the water permeability of AQP3 and AQP5, which lack a corresponding Tyr, was not blocked by TEA. Consistent with experimental data, multi-nanosecond molecular dynamics simulations showed one stable binding site for TEA, but not tetramethyl (TMA), in AQP1, resulting in a nearly 50% water permeability inhibition, which was reduced in AQP1-Y186F due to effects on the TEA inhibitory binding region. Moreover, in the simulation TEA interacted with charged residues in the C (Asp128) and E (Asp185) loop, and the A(Tyr37-Asn42-Thr44) loop of the neighboring monomer, but not directly with Tyr186. The loss of TEA inhibition in oocytes expressing properly folded AQP1-N42A or -T44A is in line with the computationally predicted binding mode. Our data reveal that the molecular interaction of TEA with AQP1 differs and is about 1000-fold more effective on AQPs than on potassium channels. Moreover, the observed experimental and simulated similarities open the way for rational design and virtual screening for AQP-specific inhibitors, with quaternary ammonium compounds in general, and TEA in particular as a lead compound.

Amino Acid Sequence↗

Determination of low cencentrations of the quaternary ammonium compound thiazinamium methylsulphate in plasma and urine.

A sensitive and selective method for the quantitative determination of the quaternary ammonium antiacetylcholine-compound thiazinamium methylsulphate (Multergan) in plasma and urine is described. The procedure is based on ion pair extraction of the compound with iodide as the counter ion. This is followed by gas chromatography using an alkali flame ionization detector. The detection limit is 2 ng ml-1 with a recovery of 88-0 +/- 6-2% from plasma, 91-4 +/- 4-6% from urine. The described method can also be applied to other quaternary ammonium compounds.

Chromatography, Gas↗

Plaque control with chlorhexidine and D-301, a quaternary ammonium compound.

Eighteen female dental hygiene students took part in a double-blind, crossover clinical trial of equimolar (2.2 mmol) rinsing solutions of D-301, a quaternary ammonium compound and chlorhexidine digluconate, Rinsings were partly supervised, test periods were 7 days (5 days without oral hygiene) with a 1-week interval. Plaque formation was significantly reduced by both test solutions versus the control; on not precleaned tooth surfaces plaque formation was equally inhibited by the chlorhexidine and D-301 mouthrinses. On precleaned surfaces D-301 significantly inhibited plaque formation compared with the control rinse, but was less effective than chlorhexidine. There was no significant change in the PBI, a measure of gingival inflammation, during any of the test period. Staining of teeth and tongue was judged as equal after chlorhexidine and D-301 use. Reports of taste and gastric disturbances were minimal but more frequent during the D-301 test period.

Benzalkonium Compounds↗