The cellular electrophysiologic effect of GYKI 16638, a new antiarrhythmic compound was studied and compared with that of sotalol and mexiletine in undiseased human right ventricular muscle preparation by applying the conventional microelectrode technique. GYKI 16638 (5 microM), at stimulation cycle length of 1000 ms, lengthened action potential duration (APD(90)) from 338.9 +/- 28.6 ms to 385.4 +/- 24 ms (n = 9, p > 0.05). This APD lengthening effect, unlike that of sotalol (30 microM), was rate-independent. GYKI 16638, contrary to sotalol and like mexiletine (10 microM), exerted a use-dependent depression of the maximal rate of depolarization (V(max)) which amounted to 36.4 +/- 11.7% at cycle length of 400 ms (n = 5, p < 0.05) and was characterised with an offset kinetical time constant of 298.6 +/- 70.2 ms. It was concluded that GYKI 16638 in human ventricular muscle shows combined Class IB and Class III antiarrhythmic properties, resembling the electrophysiological manifestation seen after chronic amiodarone treatment.
The continuous flow method was used to study the decomposition of uniformly tagged glucose in soil with different inorganic nitrogen and phosphorus levels. It was found that the amount of glucose carbon mineralized to carbon dioxide was higher if nitrogen and phosphorus were added together with the glucose. Some of the labelled carbon escaped from the soil and the amount of leached-out carbon was in inverse proportion to the amount of nitrogen and phosphorus in the soil. The level of mineral nutrient elements stimulated the rate of glucose mineralization in the initial phase of the continuous process. The rate of glucose mineralization in the steady state was stimulated in soil continuously enriched with glucose together with nitrogen and phosphorus. The quantitative relationship between the assimilation and oxidation of glucose carbon depended on the nitrogen and phosphorus concentration and was in inverse proportion to the mineral element level. The continuous addition of glucose stimulated decomposition of the native soil organic matter. The resultant priming effect was balanced, however, by the retention of glucose carbon in the soil, with the result that the carbon balance remained positive. The rate of glucose oxidation, the amount of carbon retained in the soil and the priming effect of glucose were strongly influenced by the flow rate.
The effect of glucose on the decomposition of plant material in soil was studied. Soil samples were enriched with different fractions of labelled alfalfa: the soluble dialyzable fraction, the soluble nondialyzable fraction, cellulose-lignin, lucerne meal. The added substances were decomposed for 42 days. One soil sample in every experimental variant was then percolated with water and another with 200 ml. 0.5% glucose for another 21 days. It was found that the effect of glucose on decomposition of the plant material depended on the latter’s composition and degree of decomposition. It was small in soils pre-enriched with soluble alfalfa fractions, decomposition of which was largely completed within the given time. Glucose markedly inhibited the release of radioactive carbon from the celluloselignin fraction and stimulated the formation of radioactive carbon dioxide from alfalfa meal.
The effect of glucose on the decomposition of plant material in soil was studied. Soil samples were enriched with different fractions of labelled alfalfa: the soluble dialyzable fraction, the soluble nondialyzable fraction, cellulose-lignin, lucerne meal. The added substances were decomposed for 42 days. One soil sample in every experimental variant was then percolated with water and another with 200 ml. 0.5% glucose for another 21 days. It was found that the effect of glucose on decomposition of the plant material depended on the latter’s composition and degree of decomposition. It was small in soils pre-enriched with soluble alfalfa fractions, decomposition of which was largely completed within the given time. Glucose markedly inhibited the release of radioactive carbon from the celluloselignin fraction and stimulated the formation of radioactive carbon dioxide from alfalfa meal.Исследовалось действие глюкозы на разложение растительного материала в почве. Образцы почвы обогащали различными фракциями мененой люцерны: растворимая диализующаяся фракция, растворимая недиализующаяся фракция, целлюлоза-лигнин, мука из люцерны. Прибавленные материалы разлагались в течение 42 дней, после чего по 1 образцу почвы каждого варианта проливали водой, а второй образец— 200 мл 0,5% глюкозы в течение еще 21 дня. Оказалось, что действие глюкозы на разложение растительного материала зависит от его состава и от степени разложения: это действие было незначительным в почве, предварительно обогащенной растворимыми фракциями люцерны, разложение которых в указанные сроки уже было в значительной степени закончено. Действие глюкозы заметно понижало освобождение радиоактивного углерода из фракции целлюлоза-лигнин и, наоборот, стимулировало образование из люцерны двуокиси углерода.