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Creatine metabolism in skeletal muscle of cold-acclimated rats.

Creatine metabolism in skeletal muscle of cold-acclimated rats was studied with the aid of [14C]creatine as a tracer. Creatine contents of all muscles studied were significantly lower in cold-acclimated rats than in controls. Radioactive creatine uptake by soleus of cold-acclimated rats was significantly lower than that of controls, while radioactive creatine uptakes by heart, diaphragm, and gastrocnemius of cold-acclimated rats were not different from those of controls. Urinary creatine dervied from muscle creatine plus urinary creatinine, which corresponds to total creatine release from muscle, increased in the early stage of cold exposure and was restored to control level after completion of cold acclimation. Creatine turnover rate in skeletal muscle was not different between control and cold-acclimated rats. These findings indicate that cold acclimation results in reduced creatine content and uptake of skeletal muscle, and could be interpreted as reflecting enhanced ability of nonshivering thermogenesis in skeletal muscle.

Acclimatization↗

Effects of age and acclimation on responses to passive heat exposure.

To examine the effect of chronological age on thermoregulation during passive heat exposure, six older (O, 61 +/- 1 yr) and six young (Y, 26 +/- 2 yr) men sat at rest during a 30-min baseline period (dry-bulb temperature = 28 degrees C), a 60-min thermal transient (28-46 degrees C by 2 degrees C steps every 5 min), and 30 min at 46 degrees C dry-bulb temperature. Subjects were matched for maximal O2 consumption, anthropometry, and body composition. Testing was repeated after a 9-day active heat acclimation protocol. There were no age differences in rectal (Tre), mean skin (Tsk), or mean body temperature (Tb = 0.8Tre + 0.2Tsk) before or after acclimation, but heart rate was lower (P < 0.01) in the O group in both acclimation states. Heat acclimation resulted in a significantly lower baseline Tre and Tb in both groups, which remained lower throughout the passive heat stress (P < 0.05). To examine the effects of age and acclimation on thermoregulatory effector function, forearm blood flow (by venous occlusion plethysmography) and chest sweating rate (SRch, by dew-point hygrometry) were plotted against Tb. The slope of the forearm blood flow-Tb relationship was significantly (P < 0.05) lower in the O group before and after acclimation. A lower maximal SRch (P < 0.05) was achieved by the O group, but neither the slope of SRch-Tb relationship nor the Tb threshold for sweating was affected by age. Predictably, acclimation resulted in a lower Tb threshold for the onset of sweating and skin vasodilation.(ABSTRACT TRUNCATED AT 250 WORDS)

Acclimatization↗

The cardiovascular responses of the red-eared slider (Trachemys scripta) acclimated to either 22 or 5 degrees C. II. Effects of anoxia on adrenergic and cholinergic control.

Cardiovascular control in cold-acclimated freshwater turtles during chronic anoxic exposure is not well understood. We tested the hypothesis that the observed bradycardia in Trachemys scripta results from increased cholinergic inhibitory tone and reduced sympathetic activity. Cardiovascular status was measured in vivo in turtles acclimated to either 22 degrees C or 5 degrees C and either acutely exposed (6 h) to anoxia at 22 degrees C or chronically exposed (22 days) to anoxia at 5 degrees C. In 22 degrees C-acclimated turtles, injection of the cholinergic antagonist atropine induced a significant tachycardia under both normoxic and anoxic conditions. However, in 5 degrees C-acclimated turtles, atropine injection had little effect on heart rate. Therefore, cholinergic control of heart rate was suppressed during cold acclimation; instead, temperature effects are more important in bringing about bradycardia, while the intrinsic effects of anoxia and acidosis are probably important during chronic anoxia. Injection of adrenaline caused a pressor response through increased systemic resistance at both acclimation temperatures. This response was blunted by acute and chronic anoxic exposure, suggesting that systemic vasomotor control was altered independently of acclimation temperature. This anoxic blunting may be related in part to the anoxia-induced increase in systemic resistance. Injection of nadolol after atropine decreased systemic cardiac output. The tonic beta-adrenergic cardiac stimulation was attenuated by acute and chronic anoxic exposure. Some of this attenuation of beta-adrenergic control could be attributed to the 39-40 % reduction in cell surface beta-adrenoreceptor density in the ventricles of these turtles that accompanied acute and chronic anoxic exposure. In conclusion and contrary to our original hypothesis, cholinergic and adrenergic control of the cardiovascular system in turtles was attenuated under cold anoxic conditions, perhaps assisting in the depressed physiological state of these animals.

Acid-Base Equilibrium↗

Thermal acclimation and stress in the American lobster, Homarus americanus: equivalent temperature shifts elicit unique gene expression patterns for molecular chaperones and polyubiquitin.

Using homologous molecular probes, we examined the influence of equivalent temperature shifts on the in vivo expression of genes coding for a constitutive heat shock protein (Hsc70), heat shock proteins (Hsps) (Hsp70 and Hsp90), and polyubiquitin, after acclimation in the American lobster, Homarus americanus. We acclimated sibling, intermolt, juvenile male lobsters to thermal regimes experienced during overwintering conditions (0.4 +/- 0.3 degrees C), and to ambient Pacific Ocean temperatures (13.6 +/- 1.2 degrees C), for 4-5 weeks. Both groups were subjected to an acute thermal stress of 13.0 degrees C, a temperature shift previously found to elicit a robust heat shock response in ambient-acclimated lobsters. Animals were examined after several durations of acute heat shock (0.25-2 hours) and after several recovery periods (2-48 hours) at the previous acclimation temperature, following a 2-hour heat shock. Significant inductions in Hsp70, Hsp90, and polyubiquitin messenger RNA (mRNA) levels were found for the ambient-acclimated group. Alternatively, for the cold-acclimated group, an acute thermal stress over an equivalent interval resulted in no induction in mRNA levels for any of the genes examined. For the ambient-acclimated group, measurements of polyubiquitin mRNA levels showed that hepatopancreas, a digestive tissue, incurred greater irreversible protein damage relative to the abdominal muscle, a tissue possessing superior stability over the thermal intervals tested.

Animals↗

Consequences of acclimation on survival and reproductive capacities of cold-stored mummies of Aphidius rhopalosiphi (Hymenoptera: Aphidiinae).

The cold storage of parasitoid mummies is a crucial point during mass production of parasitoids for aphid control in wheat, Triticum spp. In this study, the effect of acclimation to cold before storage of mummies containing Aphidius rhopalosiphi DeStefani-Peres (Hymenoptera: Braconidae: Aphidiinae) was evaluated on survival, sterility, and fecundity of parasitoids. Groups of 1-d-old and 3-d-old mummies were stored at -5 degrees C for 10 d without acclimation or after one of five different acclimation treatments. One-day-old and 3-d-old mummies contain prepupa and postmetamorphosis but not yet sclerotinized adult parasitoids, respectively. The offspring and sex ratio of stored parasitoids were compared with a control that was left at rearing temperatures (20 degrees C). Without acclimation, two-thirds of the parasitoids died during storage, for both ages of mummies tested. For stored 1-d-old mummies, subsequent survival increased under progressive exposure to low temperatures and reached 67.3% after 480 min of acclimation. In the same way, percentage of male sterility decreased with acclimation duration, whereas female fecundity increased. For stored 3-d-old mummies, subsequent survival improved with the duration of the acclimation treatment, but not male sterility and female fecundity.

Acclimatization↗

A model of thermal acclimation in cattle.

A model of temperature effects on cattle daily feed intake has been developed that takes into account (1) time course of thermal acclimation and (2) behavioral responses to short-term thermal stress (STTS). The key difference between this model and the classical intake-temperature model is its consideration of the acclimation state of the animal. Time course of physiological acclimation is represented by a running average temperature. The STTS is defined as the difference between the current acclimated temperature [Tacci(L)] and current daily mean temperature (Ti). Ruminants were postulated as decreasing activity in response to STTS. An empirical relationship between daily feed intake (I) and environmental temperature was derived as: I = 100% - b'[Ti - Tacci(L)]2. Length of the acclimation period, L, and value of the behavioral response coefficient, b', were determined for grazing time of free-roaming cattle and feed intake of five breeds of feedlot cattle. Cattle breeds displayed apparent differences in L but no significant differences in b'. Feeding situation (feedlot vs free-roaming) had a significant effect on b' in cattle, but not on L. Because of explicit treatment of acclimation and stress, two-dimensional representation of thermal environment may be a more meaningful expression of effective environmental temperature in fluctuating environments than mean daily temperature alone. This model may have value in the interpretation of laboratory studies, as well as field studies, because the time frame of experiments will influence the results obtained, depending upon the acclimation state of the animal.

Acclimatization↗

Effects of cold acclimation and fasting on thyroxine 5'-deiodinase in brown adipose tissue of ob/ob mice.

Gradual acclimation to mild cold for 6 weeks increases the total activity of thyroxine 5'-deiodinase in brown adipose tissue (BAT) of genetically obese (ob/ob) mice to a level greater than that in similarly acclimated lean mice. This increase is largely due to the growth of the BAT in the ob/ob mouse, because specific activity of the enzyme is only slightly increased. In similarly cold-acclimated lean mice, the specific activity of thyroxine 5'-deiodinase was not altered. BAT mitochondrial GDP binding increased to the same high level in the gradually cold-acclimated ob/ob mouse as in cold-acclimated lean mice. We conclude that the growth and maintenance of BAT in the cold-acclimated ob/ob mouse, as in the cold-acclimated lean mouse, does not require greatly increased activity of thyroxine 5'-deiodinase. Fasting for 48 hr did not alter thyroxine 5'-deiodinase activity of BAT in either lean or ob/ob mice. The fasting-induced increase in activity seen by others in lean mice is probably due to thermoregulatory stimulation of BAT occasioned by the low environmental temperature at which the fasting occurred.

Acclimatization↗

Acute heat acclimation and kidney function in broilers.

Broilers previously exposed to high environmental temperatures (heat-acclimated) are more resistant to heat stress and consume more water during heat stress than nonacclimated controls. Two experiments were conducted to determine whether heat-acclimated broilers conserve body water by reducing urine and solute (Na) excretion. In the first experiment, renal function studies were conducted at an ambient temperature (Ta) of approximately 21 C using anesthetized 7-wk-old male broilers. Control birds reared at a constant Ta of 24 C (Group N: noncycled Ta) were compared with birds that had been heat-acclimated by exposure for 3 to 6 d to a daily sinusoidal cycle of 24 to 35 to 24 C (Group C: cycled Ta). In the second experiment, renal function studies were conducted on anesthetized 5-wk-old control and heat-acclimated male broilers while they were exposed to a Ta of 21 C (Ambient Ta: Groups NA, CA), or to a Ta of 32 C (High Ta: Groups NH, CH). When high intravenous infusion rates (.37 mL/kg body mass per min) were used to simulate the volume expansion caused by thermogenic polydipsia, urine flow rates were significantly lower in Groups C and CA than in Groups N and NA, osmolal clearances were lower in Groups CA and CH than in Groups NA and NH, and all heat-acclimated groups in both experiments (Groups C, CA, CH) had significantly lower glomerular filtration rates (GFR), filtered loads of Na, and tubular Na reabsorption rates than the respective control groups (Groups N, NA, NH). These changes in kidney function potentially would minimize urinary fluid and solute loss when heat-acclimated broilers consume large quantities of water to support evaporative cooling. Reductions in GFR, filtered loads of Na, and tubular Na reabsorption rates also may help heat-acclimated broilers reduce the metabolic heat load associated with active (energy requiring) recovery of solute (Na) from the glomerular ultrafiltrate.

Acclimatization↗

Effects of thermal acclimation on the relaxation system of crucian carp white myotomal muscle.

Many cyprinid fish are able to compensate for a decrease in ambient temperature by process of physiological adaptation in the function of muscles. In the winter habitat of crucian carp (Carassius carassius L.), low temperature is associated with simultaneous oxygen shortage. Because of the oxygen deprivation, there is probably little space for compensatory adaptation because positive thermal compensation would increase energy demand and accelerate depletion of glycogen reserves. Thus, we assumed that the crucian carp, unlike many other cyprinid fish, would not show positive thermal compensation but either no compensation or inverse compensation in muscle function. To test this hypothesis in the relaxation system of skeletal muscles, we determined the parvalbumin content and the activity of sarcoplasmic reticular (SR) Ca-ATPase in white myotomal muscle of winter- and summer-acclimated crucian carp. In the laboratory, the winter fish were kept at 2 degrees C and the summer fish at 22 degrees C for a minimum of 3 weeks before the experiments. The specific activity of SR Ca-ATPase at low experimental temperature (2 degrees C) was similar in summer- and winter-acclimated fish (0.26 +/- 0.04 vs. 0.25 +/- 0.04 mM/mg/min; P > 0.05). Because of the bigger Q(10) of cold-acclimated carp, the enzyme activity at 30 degrees C was higher in cold-acclimated winter fish than in warm-acclimated summer fish (7.42 +/- 0.90 vs. 5.18 +/- 0.53 mM/mg/min; P < 0.05). In contrast, the yield of SR protein was 70% higher in summer than winter fish (0.315 +/- 0.045 vs. 0.187 +/- 0.017 mg/g; P < 0.001). Because of these opposing changes, total Ca-ATPase activity of SR (per gram muscle weight) remained relatively constant. Similarly, the parvalbumin content of the myotomal muscle was not different between summer (4.09 +/- 0.95 mg/g) and winter (3.70 +/- 0.60 mg/g) fish. Although there were no seasonal changes in the total relaxing system of the crucian carp white myotomal muscle, the same activity of SR Ca-ATPase in winter fish was obtained with less amount of SR pump protein, owing to the increased catalytic activity of the enzyme. The higher catalytic activity of winter fish SR Ca-ATPase might be caused by differences in fatty acid composition noted in membrane lipids; i.e., fewer saturated fatty acids and more n-6 polyunsaturated fatty acids (PUFAs), at the expense of n-3 PUFAs, were present in the SR of cold-acclimated winter fish. Temperature-induced changes in enzyme protein, however, cannot be excluded. Thus, the present results indicate the absence of positive thermal compensation in the relaxing system of crucian carp white muscle. It seems, however, that lipid composition of SR membranes and temperature dependence of SR Ca-ATPase are altered by seasonal acclimation.

Adaptation, Physiological↗

Photosynthetic and respiratory acclimation and growth response of Antarctic vascular plants to contrasting temperature regimes.

Air temperatures have risen over the past 50 yr along the Antarctic Peninsula, and it is unclear what impact this is having on Antarctic plants. We examined the growth response of the Antarctic vascular plants Colobanthus quitensis (Caryophyllaceae) and Deschampsia antarctica (Poaceae) to temperature and also assessed their ability for thermal acclimation, in terms of whole-canopy net photosynthesis (P(n)) and dark respiration (R(d)), by growing plants for 90 d under three contrasting temperature regimes: 7°C day/7°C night, 12°C day/7°C night, and 20°C day/7°C night (18 h/6 h). These daytime temperatures represent suboptimal (7°C), near-optimal (12°C), and supraoptimal (20°C) temperatures for P(n) based on field measurements at the collection site near Palmer Station along the west coast of the Antarctic Peninsula. Plants of both species grown at a daytime temperature of 20°C had greater RGR (relative growth rate) and produced 2.2-3.3 times as much total biomass as plants grown at daytime temperatures of 12° or 7°C. Plants grown at 20°C also produced 2.0-4.1 times as many leaves, 3.4-5.5 times as much total leaf area, and had 1.5-1.6 times the LAR (leaf area ratio; leaf area:total biomass) and 1.1-1.4 times the LMR (leaf mass ratio; leaf mass:total biomass) of plants grown at 12° or 7°C. Greater RGR and biomass production at 20°C appeared primarily due to greater biomass allocation to leaf production in these plants. Rates of P(n) (leaf-area basis), when measured at their respective daytime growth temperatures, were highest in plants grown at 12°C, and rates of plants grown at 20°C were only 58 (C. quitensis) or 64% (D. antarctica) of the rates in plants grown at 12°C. Thus, lower P(n) per leaf area in plants grown at 20°C was more than offset by much greater leaf-area production. Rates of whole-canopy P(n) (per plant), when measured at their respective daytime growth temperatures, were highest in plants grown at 20°C, and appeared well correlated with differences in RGR and total biomass among treatments. Colobanthus quitensis exhibited only a slight ability for relative acclimation of P(n) (leaf-area basis) as the optimal temperature for P(n) increased from 8.4° to 10.3° to 11.5°C as daytime growth temperatures increased from 7° to 12° to 20°C. There was no evidence for relative acclimation of P(n) in D. antarctica, as plants grown at all three temperature regimes had a similar optimal temperature (10°C) for P(n). There was no evidence for absolute acclimation of P(n) in either species, as rates of P(n) in plants grown at a daytime temperature of 12°C were higher than those of plants grown at daytime temperatures of 7° or 20°C, when measured at their respective growth temperatures. The poor ability for photosynthetic acclimation in these species may be associated with the relatively stable maritime temperature regime during the growing season along the Peninsula. In contrast to P(n), both species exhibited full acclimation of R(d), and rates of R(d) on a leaf-area basis were similar among treatments when measured at their respective daytime growth temperature. Our results suggest that in the absence of interspecific competition, continued warming along the Peninsula will lead to improved vegetative growth of these species due to (1) greater biomass allocation to leaf-area production (as opposed to improved rates of P(n) per leaf area) and (2) their ability to acclimate R(d), such that respiratory losses per leaf area do not increase under higher temperature regimes.

Journal Article↗

[Simulation of cold acclimation by chronic treatment with noradrenaline, with special reference to metabolic responses to noradrenaline (author's transl)].

Rats treated with noradrenaline (NA) or L-dopa for 28 days were infused i.v. with NA for 30 min and changes in rectal temperature and plasma concentrations of nonesterified fatty acids (NEFA), glycerol, blood sugar, and lactate were observed. Results obtained were compared with those in cold-acclimated rats. The NA infusions caused a significant elevation of the rectal temperature in cold-acclimated and NA-treated rats, but not in L-dopa-treated ones. NA-induced increase in the plasma NEFA level was less in extent in cold-acclimated rats than in warm-adapted ones. Similar difference in the NEFA increase was observed between NA-treated and control rats. Changes in plasma glycerol level were the same in cold-acclimated and warm-adapted rats and in NA-treated and control rats. NA-induced increase in blood sugar level was less in extent in cold-acclimated and NA-treated rats as compared to the increase in respective control rats. No consistent changes were observed in blood lactate concentration. From the results it was inferred that the responses to exogenous NA in NA-treated rats, but not in L-dopa treated ones, were similar to those in cold-acclimated rats. It was thus suggested that the chronic treatment with NA may produce similar metabolic state as in cold-acclimation.

Acclimatization↗

Cold acclimation improves recovery of cryopreserved grass (Zoysia and Lolium sp.).

Cold acclimation of Lolium L. and Zoysia Willd. Grass cultivars significantly increased regrowth of cryopreserved meristems. One wk of cold acclimation improved recovery following cryopreservation but extended acclimation (4-8 wk) resulted in the best regrowth. Cold acclimation also significantly increased the dehydration tolerance of both Zoysia and Lolium meristems. Lolium apices cold acclimated for 4 wk produced 60-100% regrowth following cryopreservation by slow freezing or encapsulation-dehydration. Cold-acclimated Zoysia had greater than 60% regrowth following encapsulation-dehydration when beads were dehydrated to less than 22% water content. Non-acclimated meristems of both genera had little or no regrowth. Thawed meristems grew quickly without callus formation and the plantlets produced were transplanted to pots in the greenhouse after 4 to 6 wk. Samples of each cultivar were stored in liquid nitrogen as part of the U.S. National Plant Germplasm System.

Journal Article↗

[Effect of actinomycin D on salinity acclimation of Paramecium calkinsi (Ciliophora, Peniculia)].

Salinity acclimation of euryhaline ciliate Paramecium calkinsi evaluated by swimming velocity was over in 4-5 days. In two series of the main experiment, the acclimation was over in two and three days when actinomycin D (an inhibitor of DNA-dependent RNA polymerase) was added after various periods of the ciliate incubation at a changed salinity (0, 3, 6, and 24 h). The obtained data indicate that the inhibiting effect of actinomycin D on salinity acclimation of P. calkinsi is manifested only within the first day of the ciliate incubation in an altered environment; by the end of this period their swimming velocity was similar to the control one (acclimation in the absence of the inhibitor). Thus, expression of genes associated with salinity acclimation in paramecium largely completes within the first day, while the acclimation continues for at least 4-5 days. We propose that the acclimation-competent species possess a correspondingly rich genetic program.

Acclimatization↗

Variation of the microbial activity during the acclimation phase of a SBR system degrading 4-chlorophenol.

The variation of microbial activity during acclimation to 4-chlorophenol (4CP) in an aerobic automated sequencing batch reactor was studied. The results show a reduction in degradation time as the acclimation process occurred. During acclimation for an initial concentration of 50 mg 4CP/L, degradation time was reduced from 40 h to 50 min after 10 cycles. In the case of an initial concentration of 100 mg/L, degradation time was reduced from 52 h to 1.16 h, also after 10 cycles. Doubling the initial concentration of a previously acclimated sludge produces only a slight increase in degradation time. It was found that as acclimation took place, the affinity of the consortia to biodegrade the toxic increased, whereas the ability to biodegrade acetate decreased. The evolution of the substrate uptake rate over time during the acclimation period was highly correlated with an exponential relationship. It was also observed that acclimation decreased both the production of a toxic metabolite and the sludge volumetric index.

Acclimatization↗

[Effects of cold acclimation and repetitive stress on stress-induced neuroendocrine response].

In order to elucidate the mechanism (S) involved in improved cold tolerance by means of enhanced non-shivering thermogenesis of the repetitively stressed rats, noradrenaline (NA) turnover of brown adipose tissue (BAT) and adrenocortical responses were investigated. (1) NA turnover of BAT in the cold-acclimated rats was greater than that in the resting controls. NA level of BAT in the cold-acclimated rats decreased to about 40% of the control level. It was thus inferred that this lower NA levels was induced by accelerated NA turnover. (2) NA turnover of BAT in the stressed rats after repetitive immobilization stress was higher than that of the non-stressed controls. Therefore, increased sympathetic activity of BAT would be one of the mechanisms of cross adaptation between cold and stress. (3) NA turnovers of BAT in the controls, the cold-acclimated rats and stressed ones were increased by acute cold exposure (-5 degrees C). NA turnovers of BAT in the controls and the stressed rats were increased by acute immobilization stress. (4) Plasma corticoids (corticosterone and deoxycorticosterone) in the cold-acclimated rats were higher than that of controls. Plasma corticoids in the controls, the cold-acclimated rats and stressed ones were increased by acute cold exposure (-5 degrees C, 15 min) and acute immobilization stress (30 min). The extents of increases in plasma corticoids in the stressed rats, but not in the cold-acclimated ones, were greater than those in the controls. It was suggested that repetitive immobilization stress could enhance nonshivering thermogenesis via an enhanced responsiveness of adrenocortical secretion to acute stress and cold. It would be concluded from these results that enhanced responses of corticoid secretion and accelerated sympathetic activity were associated with the establishment of cross adaptation between cold and stress. It was suggested that the extent of participation of these factors was not necessarily the same between the cold-acclimated and the stressed organisms.

Acclimatization↗

Does heat acclimation lower the rate of metabolism elicited by muscular exercise?

Heat acclimation has been suggested to either lower or have no effect on the rate of metabolism (M) elicited by muscular exercise. The purpose of the present investigation (Study I) was to examine the effect heat acclimation has on the M (W . kg-1 or VO2 in ml . kg-1 . min-1) elicited by muscular exercise. Two additional investigations were evaluated to determine if season (summer or winter) of year (Study II) and subject gender (Study III) further influence the effect heat acclimation has on M during exercise. Volunteers for Study I (n = 15 men), II (n = 8 men), and III (n = 10 men and 9 women) completed standardized treadmill walks in hot (40 degrees C, 30% rh or 49 degrees C, 20% rh) and cool (20 degrees C, 40% rh) environments immediately before and after heat acclimation. After heat acclimation, a lower M was observed for Study I (-4%; p less than 0.05), II (-2%; N.S.) and III (-3%; p = 0.06) in the hot environments. In addition, after heat acclimation a lower M was observed for Study I (-3%; p = 0.08), II (-5%; p less than 0.05) and III (-6%; p less than 0.05) in the cool environment. Season of year and subject gender did not have a significant effect on these results. These data indicate that heat acclimation does lower the M elicited by exercise. The observed percent decrease was lower in the hot (-3%) than cool (-5%) test environments.

Acclimatization↗

Effects of warm acclimation on Na+,K+-ATPase alpha-subunit expression in chloride cells of Antarctic fish.

The teleosts Trematomus bernacchii thrive in southern oceanic waters with temperatures below 0 degrees C. These fish have serum osmolalities almost double those found in fish of temperate waters, thereby lowering their serum's freezing point and the energy needed for ionic homeostasis. Upon warm acclimation to 4 degrees C, T. bernacchii decrease their serum osmolality and increase the Na+,K+-ATPase activity in their gills. Na+,K+-ATPase alpha1-, alpha2-, and alpha3-subunit isoforms are expressed in the gills of T. bernacchii and it is thought that Na+,K+-ATPase subunit composition in chloride cells changes with warm acclimation. Using immunohistochemistry, we compared the number of chloride cells expressing various alpha-isoforms of the Na+,K+-ATPase in the gills of cold- and warm-acclimated T. bernacchii. We found no change in the number of alpha2- or alpha3-immunopositive cells in warm-acclimated fish gills or in the number of cells immunopositive for the Na+,K+,2Cl- cotransporter. However, the number of pan-alpha-immunopositive (recognizing all three alpha-isoforms) and alpha1-immunopositive cells both increased in warm-acclimated fish. This suggests that changes in the number of alpha1-isoform-expressing chloride cells could contribute to the increased Na+,K+-ATPase activity that occurs with warm-acclimation.

Acclimatization↗

Turnover of cytochrome C in skeletal muscle of green sunfish (Lepomis cyanellus, R.) during thermal acclimation.

The concentration of cytochrome c in the skeletal muscle of the green sunfish (Lepomis cyanellus) increases with decreasing temperature of acclimation: 1.51 +/- 0.09, 1.17 +/- 0.03, and 0.98 +/- 0.07 nanomoles per gram wet weight from muscle of animals acclimated to 5 degrees, 15 degrees, and 25 degrees C, respectively. The roles of synthesis and degradation of cytochrome c during thermal acclimation were investigated by measurement of loss of specific radioactivity from cytochrome c and from total mitochondrial heme protein, and by analysis of the rate of change in concentration of cytochrome c. The radioisotope used was 14C-delta-aminolevulinic acid, a non-reutilizable heme precursor. At 25 degrees C, the half-life of cytochrome c was 7.1 days based on radioactivity measurements and 5.6 days based on change in concentration. Statistical analysis showed no significant difference in half-lives obtained by the two methods. The half-life of total mitochondrial heme protein was determined to be 5.7 days on the basis of radioactivity data, under the same conditions. No significant difference was found between the rate of turnover of the heme protein pool from mitochondria and either measurement for cytochrome c at 25 degrees C. At an acclimation temperature of 5 degrees C, the half-life of cytochrome c from skeletal muscle was 13.7 days based upon changes in concentration. At low acclimation temperature, radioactive label was retained in acid-soluble form by fish for many days, precluding measurement of half-life by this technique. Transfer of fish from 25 degrees to 5 degrees C resulted in a rapid decrease of approximately 40% in rates in synthesis of skeletal muscle cytochrome c, and a concomitant decrease in the degradation rate constant for this molecule of approximately 60%. The disproportionality in temperature-sensitivities of these two processes leads to an approximately 50% net increase in the concentration of cytochrome c during acclimation. In transfer from 5 degrees to 25 degrees C, the converse, rapid readjustments in synthetic and degradative parameters occur, resulting in the observed decrease in cytochrome c content.

Acclimatization↗