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The effect of temperature on the growth of virus-induced frog carcinoma. II. The temperature coefficient of growth in vitro.

The temperature coefficient of van't Hoff, Q(10), for growth of frog carcinoma in vitro over a range of 20-35 degrees C, averages 2.5. This value is closely similar to those obtained for various forms of normal growth. The values of the temperature coefficient slightly but progressively decrease with advancing age of the cancer colonies. A similar relation obtains in many but not in all forms of normal growth. Thus, the law of van't Hoff is found to hold equally for growth of the malignant tissue now under discussion and for normal tissue.

In Vitro Techniques↗

Modification by temperature of conduction and ganglionic transmission in the gastropod nervous system.

The pedal ganglia of the terrestrial gastropod Ariolimax contain junctions between nerve fibers which are shown to be preferential points of fatigue and which exhibit facilitation (summation) of preganglionic impulses to produce a postganglionic spike. These characteristics in conjunction with others previously reported (reversible susceptibility to nicotine, convergence of preganglionic impulses, and inhibition of transmission through setting up a refractory state in the postganglionic fiber) are considered sufficient to indicate synaptic transmission in the pedal ganglia. The mean conduction velocity of the fastest fibers in the pedal nerves is 0.52 meter per second for preganglionic and 0.50 meter per second for postganglionic fibers at 7.56 degrees C. The conduction rates at 21.76 degrees C. are respectively 0.80 meter per second and 0.83 meter per second. The mean ganglionic delay is 0.033 second at 7.56 degrees C. and 0.019 second at 21.76 degrees C. The mean Q(10)'s for conduction velocity are thus 1.37 for preganglionic and 1.42 for postganglionic fibers. The mean Q(10) for ganglionic delay is 1.49. If the assumption is made that the Q(10) for ganglionic delay is that of a limiting reaction, this figure then represents a value below which the Q(10) for synaptic delay is statistically improbable.

Animals↗

The alteration of intracellular enzymes. III. The effect of temperature on the kinetics of altered and unaltered yeast catalase.

1. The very large increase in catalase activity (Euler effect) which follows treatment of yeast cells with CHCl(3), UV and n-propanol is accompanied by highly significant changes in kinetic properties. With respect to the enzymatic decomposition of H(2)O(2), the thermodynamic constants of the activation process micro, DeltaHdouble dagger, DeltaSdouble dagger, DeltaFdouble dagger, decrease, following treatment of the intracellular enzyme, by 4.5 kcal., 4.5 kcal., 10.1 e.u. and 1.7 kcal., respectively, all these differences being significant at the 1 per cent level. 2. Similar differences exist between the untreated, intracellular enzyme on the one hand, and the extracted yeast and crystalline beef liver catalases on the other. Significant differences in these thermodynamic constants do not exist among the treated intracellular, extracted yeast, and crystalline liver catalases. 3. These data provide unequivocal confirmation of the phenomenon of enzyme alteration reported previously, and confirm previous evidence that the extracted and crystalline enzymes have also undergone enzyme alteration and have properties which are identical with, or very similar to, those of the catalase altered in situ. 4. With respect to the process of heat destruction of catalase, the greatly diminished stability to heat of the altered enzymes, previously reported, has been confirmed. The thermodynamic constants of activation of this process have likewise changed following alteration, in the case of micro, DeltaHdouble dagger, and DeltaSdouble dagger an increase of 20.6 kcal., 20.6 kcal., and 70 e.u., respectively, and of DeltaFdouble dagger a decrease of 2.8 kcal. 5. All these data have been shown to be consistent with, and in some cases predictable from, the interfacial hypothesis, which states that the unaltered catalase exists within the cell adsorbed to some interface, in a partially, but reversibly, unfolded configuration of relatively low specificity; enzyme alteration consists, in the case of catalase, of desorbing the enzyme from the interface into its rolled-up, soluble, highly specific configuration. While the interfacial hypothesis has successfully withstood this experimental attack, the present data do not provide its unequivocal proof, since they are consistent with any hypothesis of alteration in which the unaltered, intracellular enzyme is in a relatively disordered state by comparison to the altered enzyme. While evidence of an interfacial process in enzyme alteration has been adduced previously, critical proof of the interfacial hypothesis awaits creation of a model system, in which most of the aspects of intracellular alteration can be reproduced. 6. Certain of the changes in kinetic properties following alteration of the intracellular enzyme, such as increased activity and the modified energies and entropies of activation of both enzyme-substrate system and heat destruction of the catalase itself, might be explained by a decrease (two orders of magnitude) in the effective hydrogen ion concentration, allowing the intracellular enzyme to be brought to the same pH as the extracellular medium. If such a pH change does, in fact, occur, it is necessary to invoke the interfacial hypothesis to explain why the unaltered, intracellular enzyme is in equilibrium with a medium whose pH is approximately 2 units lower than that of the cytoplasm itself. 7. It is concluded that kinetic data of this kind may be used to shed light on the structure of a soluble, cytoplasmic enzyme, not attached to any of the formed elements within the cell, yet organized within it in a condition of relatively low structural specificity; further, that information obtained exclusively from a study of the kinetics of the extracted or crystalline enzymes may not, in the case of this enzyme, at least, be extrapolated to the same enzyme within the intact cell.

Animals↗

The effect of temperature, potassium, and sodium on the conductance change accompanying the action potential in the squid giant axon.

Conductance changes associated with the response of the squid giant axon have been studied at two temperature ranges (26-27 degrees C.; 9-10 degrees C.) and with modified concentrations of sodium and potassium in the medium. The phase of "initial after-conductance," during which the membrane resistance increases above the resting value, is smaller at the lower temperature. At both temperature ranges it is diminished by doubling K(+) in the medium and enhanced by removal of K(+). Halving the Na(+) of the medium also enhances this phase when K(+) is absent, but not otherwise. The time course of the conductance changes alters in form with changes of the external medium. These changes indicate independent changes in the complex of ionic events associated with the response. The experiments therefore confirm the reality of the phase of increased membrane resistance. The magnitude of this change appears to be considerable and requires a transient decrease in the mobility and/or concentration of ions in the membrane. The possible cause of this decrease is discussed.

Action Potentials↗

Studies on the origin of bacterial viruses. V. The effect of temperature on the terramycin-resistant and phage-producing cells of Bacillus megatherium cultures.

The growth rates, the mutation frequency rate constants of the terramycin-resistant cells, the burst size of the phage-producing cells, and the ratio of phage to cells all have a temperature coefficient of about 2 from 20 to 35 degrees (micro = 9 x 10(3) calories), with a maximum at 40 degrees . The mutation frequency rate constant (or time rate constant) of the phage-producing cells increases from 20 to 45 degrees with a temperature coefficient of about 3 (micro = 2 to 3 x 10(4) cal.). The change in the values for the growth rate, mutation rate, and cell volume occurs in less than 1 hour, after the temperature is changed. The value for the burst size of phage-producing cells changes for 3 to 4 hours. Prolonged growth of megatherium 899 at 48 to 50 degrees results in the production of C + S phage, in place of T. Returning the culture to 25 degrees results in the production of small T phage.

Bacillus megaterium↗

Effect of temperature on electrolyte metabolism of isolated frog skin.

A study is presented on the effect of temperature on unidirectional active ion transport, resting electrolyte equilibrium (electrolyte composition), and oxygen consumption in isolated frog skin. The aims were twofold: first, to find out whether the rate of active transport can be changed without affecting the Na(+) and K(+) balance of skin itself; second, to arrive at minimal DeltaNa/DeltaO(2) values by correlating quantitatively inhibition of active ion transport with inhibition of O(2) consumption. NaCl transport was maximal at 20 degrees C. At 28 degrees and at temperatures below 20 degrees , rate of NaCl transport was diminished. In many instances NaCl transport was diminished in skins which maintained their normal Na(+) and K(+) content. In several cases, however, neither rate of transport nor resting electrolyte equilibrium was affected; in other cases, both were. O(2) consumption decreased when lowering the temperature over the range from 28 to 10 degrees C. From a plot of log Q(OO2) against 1/T an activation energy of micro 13,700 cal. was calculated, valid for the range from 10 to 20 degrees C. It appeared that micro was smaller for temperatures above 20 degrees C. Working between 10 and 20 degrees , it was found that, on the average, 4 to 5 equivalents of Na(+) were transported for one mole of O(2) consumed in skins with undisturbed resting electrolyte equilibrium.

Animals↗

Oxygen consumption of animals and tissues as a function of temperature.

The generally accepted view that rates of oxygen consumption of tissues and poikilotherms increase regularly with rising temperature was subjected to careful examination using brain slices and skin of rats and nine different species of aquatic and terrestrial animals. It was found that, although there are statements in the literature to the contrary, the influence of temperature is a regular one and respiration increases with rising temperature so that when rates of oxygen consumption are plotted against temperature the resulting curve is regular without dips or peaks except the maximum expected at the optimum temperature.

Animals↗