Our results demonstrate that saccharidic derivatives obtained by adding a C8 alkyl group through various heteroatomes (O, N or S) to a monoacetonide residue possess an inhibitory effect towards putative P-type calcium channels expressed in Xenopus oocytes. These derivatives partially and reversibly inhibit the activity these channels without changing their electrophysiological properties. Nevertheless, the derivative containing the heteroatome N also affects the fast and tetrodotoxin-sensitive sodium channel activity. Thus, only ether and thioether compounds (heteroatome O or S) can be selected for their inhibitory effect on P-type apparented calcium channels.
Ethers and thioethers of monosaccharides have been synthesised which show potent toxicity to mouse (LD50 > or = 4 g.kg-1 O.W. and 0.2 to 1.5 g.kg-1 I.P.W.). A study of calcium antagonist activity for the full series of compounds indicated that the activity was similar for both O- and S- ethers and maximum activities were observed for monoacetoneglucose ethers possessing carbon chain close to 8 carbons.
Our results demonstrate that saccharidic derivatives obtained by adding a C8 alkyl group through various heteroatomes (O, N or S) to a monoacetonide residue possess an inhibitory effect towards putative P-type calcium channels expressed in Xenopus oocytes. These derivatives partially and reversibly inhibit the activity of these channels without changing their electrophysiological properties. Nevertheless, the derivative containing the heteroatome N also affects the fast and tetrodotoxin-sensitive sodium channel activity. Thus, only ether and thioether compounds (heteroatome O or S) can be selected for their inhibitory effect on P-type apparented calcium channels.
Our results demonstrate that saccharidic derivatives obtained by adding a C8 alkyl group through various heteroatomes (O, N or S) to a monoacetonide residue possess an inhibitory effect towards putative P-type calcium channels expressed in Xenopus oocytes. These derivatives partially and reversibly inhibit the activity these channels without changing their electrophysiological properties. Nevertheless, the derivative containing the heteroatome N also affects the fast and tetrodotoxin-sensitive sodium channel activity. Thus, only ether and thioether compounds (heteroatome O or S) can be selected for their inhibitory effect on P-type apparented calcium channels.
We have studied the effects of two saccharidic derivatives [MAGlu-O-C-8 and (MAGlu)(2)-O-C-8] on P-type voltage-dependent calcium channels expressed in Xenopus oocytes following injection of rat cerebellar mRNA. At a concentration of 100 mu M, MAGlu-O-C-8 inhibited 52 +/- 8% (n = 12) of the barium current whereas (MAGlu)(2)-O-C-8 inhibited 71 +/- 7% (n = 11) of the same current. Moreover, on the Ca2+-dependent chloride current (I-CI(Ca)), MAGlu-O-C-8 showed a half maximal effect at a concentration of 98 +/- 5 mu M (n = 17) and (MAGlu)(2)-O-C-8 at 33 +/- 5 mu M (n = 16). It is concluded that the two saccharidic derivatives may constitute a novel class of calcium channel antagonists with specificity to the central nervous system channels, namely the P-type calcium channels.
Endogenous calcium channels of Xenopus oocyte membrane do not fit with pharmacological classification of calcium channels. The present study demonstrates that the saccharidic derivate, OC8-MAGlu-MAGlu, has potent inhibitory effect on this channel activity.
P-type calcium channels are expressed in Xenopus oocytes after injection of rat cerebellar mRNA. The FTX and omega-Aga-IVa toxins extracted from Agelenopsis aperta venom are known to inhibit the activity of this channel. The present results demonstrate that 8RN-DAGal is also a antagonist of P-type calcium channels. The inhibition of the current, obtained with Ba2+, as charge carrier, is voltage dependent.