Heat stress in feedlot cattle is known to reduce their performance. The challenge comes in determining reliable predictors of current and near-future changes in thermal status and performance. A 42-d study, using crossbred (Bos taurus) steers was conducted during summer months (July through August) to identify best environmental determinants of rumen temperature (Trumen) and feed intake (FI) in feedlot cattle with access to shade. A further goal was to define the relationship between Trumen and FI. Shade coverage was approximately 50%, and all animals were provided standard feedlot diets and water ad libitum. Intraruminal telemetric boluses recorded Trumen several times each hour. Ear tags, telemetrically connected to a feed monitoring system, provided FI data using RFID technology. Data loggers recorded ambient conditions in sun and shade, along with black globe temperature. Regression analyses identified daylight black globe and air temperatures in shade, with one hour delays, as the best predictors of Trumen. Prediction of FI was much less reliable. Unexpectedly, Trumen was not superior to ambient variables in predicting FI. Maximum daily temperature humidity index, calculated using BG in sun with a 5-d lag, was the best significant predictor of FI. These results indicate for feedlot cattle that although air temperature alone in the shade may be the best predictor of Trumen in the heat, black globe temperature in the sun may be a better determinant of feed intake over time. Additional studies are needed to verify the delayed FI response which seems unusually long.
Cattle of the same breed from different regions of the USA may have altered responses to heat stress and fescue toxicosis. Angus steers from Missouri (MO ANG, n = 10, 513.6 ± 13.6 kg BW) and Oklahoma (OK ANG, n = 10, 552.8 ± 12.0 kg BW) were fed a diet containing either endophyte-infected (E+, 30 μg ergovaline/kg BW/day) or endophyte-uninfected (E−, 0 μg ergovaline/kg BW/day) tall fescue seed for 23 days. Diet treatment began on day 2. Animals were maintained at thermoneutrality (TN, 19–22 °C, days 1–8) and then exposed to heat stress (HS, cycling 26–36 °C, days 9–22). On day 23, ambient temperature was returned to TN and used as a recovery day. Feed intake (FI) was measured daily, with rectal and skin temperatures determined six times daily. Feed intake reduction from pretreatment levels was greater (P < 0.01) for E + (13.9 ± 0.9 versus 11.9 ± 0.3 kg/day) compared to E − (12.6 ± 0.9 versus 12.4 ± 0.3 kg/day) steers over the entire TN period, regardless of Angus group. During HS, E + cattle had reduced FI (P < 0.02; 6.9 ± 0.2 versus 8.4 ± 0.2 kg/day) compared to E − animals, independent of region of origin. A greater decrease in FI (P < 0.01) was observed for OK (12.1 ± 0.3 versus 6.2 ± 0.2 kg/day) compared to MO ANG (12.2 ± 0.3 versus 7.9 ± 0.2 kg/day) when ambient temperature was increased from TN to HS. On day 13 and days 15–22, OK ANG (E+) had reduced FI (P < 0.01, −2.21 kg) compared to OK ANG (E−), while there was no effect on MO ANG. From day 12 to day 22 of HS, daily minimum temperatures for ear, rump, and tail skin were less for E + (P < 0.05) when compared with E−treated steers, signifying peripheral vasoconstriction in E + animals. This was supported by reduced shoulder and lower tail temperatures (P < 0.01) for E + compared to E−treated OK ANG on the recovery day. In summary, regional differences in the response to fescue toxicosis exist, with peripheral vasomotor effects becoming most evident when animals are subjected to rapid changes in their environment.
Heat stress (HS) causes seasonal infertility in sows and decreases reproductive efficiency. The objective was to examine thermoregulation, metabolic responses, and reproduction in sows exposed to HS or thermoneutral (TN) conditions during different phases of a production cycle (gestation, lactation, and breeding). Fifty-eight first-parity Landrace (n = 26) or Landrace × Large White F1 (n = 32) sows were rotated through environmental chambers for 57 d beginning in late gestation. The ambient temperature sequences included either TN (18°C to 20°C) or HS (24°C to 30°C) for each production phase with the following treatment groups: TN-TN-TN (n = 15), TN-HS-TN (n = 14), HS-TN-HS (n = 14), and HS-HS-HS (n = 15) for gestation-farrowing-breeding (20, 24, and 13 d, respectively). Regardless of the temperature treatment, rectal temperatures were greater (P < 0.001) during lactation (39.36°C ± 0.01°C) than during the gestation (38.27°C ± 0.01°C) or the breeding period (38.77°C ± 0.01°C). The increase in rectal temperature (P < 0.001) and respiration rate (P < 0.001) in response to the HS was greatest during lactation. There was an effect of day (P < 0.001) on serum IGF-1 and insulin concentrations because both insulin and IGF-1 increased after farrowing. Compared with HS sows, the TN sows had greater feed intake (P < 0.001) and greater serum concentrations of insulin (early lactation; P < 0.05) and IGF-1 (late lactation; P < 0.05) when they were lactating. The effects of HS on sow BW, back fat, and loin eye area were generally not significant. Average BW of individual piglets at weaning was approximately 0.5 kg lighter for the sows in the HS farrowing room (P < 0.05). Weaning-to-estrus interval, percentage sows inseminated after weaning, subsequent farrowing rate, and subsequent total born were not affected by treatment. In summary, regardless of ambient temperature, sows undergo pronounced and sustained changes in rectal temperature when they transition through gestation, lactation, weaning, and rebreeding. The effects of HS on rectal temperature, respiration rate, feed intake, and metabolic hormones were greatest during lactation. The controlled HS that we imposed affected piglet weaning weight, but rebreeding and subsequent farrowing performance were not affected.
Heat stress in Bos taurus cattle is a problem that affects many regions of the world. Numerous studies have focused on heat stress in feedlots or environmental chambers; but few have looked at undisturbed cattle on pasture. The present study followed two Bos taurus cattle breeds throughout a mid-Missouri summer to determine thermoregulatory responses to fluctuating summer air temperature (Ta), as well as differences in adaptation to heat. Heat-sensitive Angus steers (ANG; n=22; 480±7.15 kg BW), and heat-tolerant Romosinuano steers (RO; n=11; 352±6 kg BW) were monitored on 12 day from June through August of 2009 in an endophyte free tall fescue pasture. Data were grouped into two, six-day periods representing peak (Period 1) and late (Period 2) summer for determination of adaptation. Respiration rate (RR) was measured via flank counting and telemetric temperature transmitters in the rumen of each animal monitored core temperature (Trum). Romosinuano sustained a lower (P<0.05) RR and Trum compared to ANG during both periods. Linear relationships for RR and Trum, compared against Ta for both Periods were determined. Slopes of RR to Ta from Period 1 to Period 2 decreased (P<0.05) from 2.63 to 1.08 bpm/°C and 2.25 to 0.49 bpm/°C for ANG and RO, respectively. Slopes of Trum to Ta also decreased (P<0.05) from Periods 1 to 2 from 0.12 to 0.02 °C Trum/°C Ta for ANG; however, RO showed no differences between periods. Although Romosinuano have a lower respiration rate and ruminal temperature than Angus, they share a similar pattern of respiration rate adaptation from early to late summer periods.
Studies of fescue toxicosis using whole seed diets show reduced feed intake and thermoregulatory ability, but much of the seed passes undigested through the animal. Cattle were fed ground tall fescue seed at different levels to potentially facilitate digestion and absorption of toxins and identify toxin sensitivity for major characteristics of the condition [i.e., hyperthermia, reduced feed intake (FI), reduced blood prolactin]. Steers (n = 18; 350 kg BW) were housed in the Brody Climatology Laboratory at thermoneutrality (TN; 19°C) and randomly assigned to daily diet treatments with either ground endophyte-infected [E+; low and high doses at 20 and 40 μg ergovaline/(kg BW/d), respectively] or endophyte-free [E-; control at 0 μg ergovaline/(kg BW/d)] tall fescue seed. After 12 d at TN, animals received 2 d of transition to heat stress (HS; 36°C daytime, 25°C nighttime) and maintained for 14 more days. Cattle were fed twice daily at 0800 and 1600 h, with water ad libitum. Feed intake was measured at 0700 h, with skin and rectal temperatures, and respiration rate at 0600, 1100, 1600, and 2100 h. Blood was sampled on selected days for prolactin and leptin determinations. Steers fed ground E+ diet decreased (P ≤ 0.0001) FI below controls at TN, with no dose effect. Maximum FI reduction with E+ treatment was 25% at TN, with an additional 46% decrease during HS (P ≤ 0.05). By the end of HS, E+ FI increased (P > 0.05) to that of E-, suggesting recovery. Prolactin was reduced (P ≤ 0.05) in high E+ cattle below controls at study end. Leptin blood concentrations were unaffected by E+ treatment (P > 0.05) but was reduced (P ≤ 0.05) by the end of HS. Pattern of rectal temperature response to HS showed a more rapid initial increase and decline for both E+ groups compared with controls (P ≤ 0.05). Skin temperature was the only variable that identified E+ dose differences. Although there were no treatment differences at TN, skin temperature was lower (P ≤ 0.05) for high E+ steers compared with controls during HS when air temperature was reduced each day. In general, FI was more responsive to E+ toxins than body temperature or blood prolactin, declining even at TN and exhibiting dynamic activity during HS. Although body temperature response to E+ toxins appears to stabilize during HS, this is misleading as rapid change in air temperature exposes effects on skin temperature.
This study determined the potential for short-term adaptation to fescue toxicosis and heat stress in rats. Male CD outbred rats (n=24) were implanted with temperature transmitters (Respironics, Bend, OR) to measure core temperature (Tc) and general activity. All rats were initially fed diets with ground, uninfected tall fescue seed (E−) and exposed to 21°C (thermoneutral, TN) to establish baseline values. In Period 1, all groups were maintained at TN for 7 days, with one group fed a diet containing ground, endophyte-infected tall fescue seed (E+, approximately 165μg ergovaline/kg BW/d) and two groups fed E− diet. Ergovaline is thought to be the primary toxin responsible for many symptoms associated with fescue toxicosis. Period 1 was followed by 7 days at 31°C (heat stress, HS, Period 2) on the same diets. All animals were fed E− diet during the second 7 day of HS (Period 3). In the final 7 day (Period 4), E+ diet was returned to the original group and fed to one of the previously E− groups, with the third group remaining on E− diet. A 40% decrease in FI occurred with E+ treatment at TN (P<0.05), with a comparable BW reduction (P<0.05) after 4 day. Both responses worsened during HS. Treatment with E+ in Period 4 indicated that FI and BW had not adapted to fescue toxicosis. A reduction in daily Tc occurred with E+ treatment at TN (P<0.05) followed by hyperthermia during the initial stage of HS (P<0.05). Although feed intake and growth rate showed no change over time, there was a reduction in fescue toxicosis-induced hyperthermia in the heat with repeat treatment. Conditioning animals to fescue toxicosis and heat stress prior to exposure may be beneficial in reducing impacts on thermal status of the animal.
Exposure to ergot alkaloids in endophyte-infected fescue (E+) is associated with impaired animal productivity, especially during heat stress, which is commonly referred to as fescue toxicosis. To elucidate the pathogenesis of this condition, the effects of short-term heat stress (HS) on hepatic gene expression in rats exposed to endophytic ergot alkaloids were evaluated. Rats implanted with telemetric transmitters to continuously measure core temperature were fed an E+ diet and maintained under thermoneutral (TN) conditions (21 degrees C) for 5 d, followed by TN or 31 degrees C (HS) conditions for 3 d. Feed intake (FI) and BW were monitored daily. The E+ and HS-induced alterations in hepatic genes were evaluated using DNA microarrays and PCR analyses. Hepatic antioxidant enzyme activities, as well as the incidence of apoptosis, were determined. As expected, intake of E+ reduced FI and BW from pretreatment levels under TN conditions, with greater reductions during short-term HS. Genes involved in gluconeogenesis and apoptosis were upregulated, whereas genes associated with oxidative phosphorylation, xenobiotic metabolism, antioxidative mechanisms, immune function, cellular proliferation, and chaperone activity were all downregulated with short-term HS. Hepatocytic apoptosis was increased and antioxidant enzyme activity decreased in the livers of rats exposed to HS. The hypothesized, exacerbating effects of HS on the direct, endophytic toxin-related and indirect, reduced caloric intake-associated alterations in hepatic gene expression were clearly demonstrated in rats and may help to elucidate the pathogenesis of fescue toxicosis in various animal species.
Intake of endophyte-infected tall fescue by cattle results in fescue toxicosis, which is characterized by increased hyperthermia during heat stress and concomitant reductions in feed intake and growth. Rats were monitored at 21 or 31 °C for short- or long-term periods to determine temporal changes associated with the intake of endophyte-infected (E+) or uninfected (E−) fescue seed diets. Core temperature only changed in rats fed E+ diet at 31 °C. Intake of E+ diet reduced feed intake, daily gain, and serum prolactin. There were temporal and thermal differences in the response to endophytic toxins, with short-term changes diminishing over time at 21 °C, but increasing for certain parameters at 31 °C.
Exposure of sows to summer heat decreases reproductive performance, with a decrease in follicular development and an increase in the occurrence of anestrus (i.e., lengthening of the weaning-to-estrus interval). The present study concentrates on late gestation, farrowing/lactation and rebreeding to determine which period of the reproductive cycle is most sensitive to heat stress. Two different thermal environments were evaluated, by simulation, within the Brody Environmental Center at the University of Missouri. They included a simulated forced-air cooling (HOT) environment resulting in a condition several degrees warmer than outside air, and a simulated evaporative cooling (COOL) environment which was cooler than outside air temperature. Primiparous sows (n= 22) were moved into chambers three weeks prior to expected farrowing date and treatments begun. Exposures were HOT or COOL, in four different combinations, for gestation, farrowing/lactation and rebreeding periods. Measurements of thermal status (i.e., rectal temperature, shaved skin temperature, respiration rate) were made 4 times daily during the temperature cycle. Respiration rate and rectal temperatures were determined not to be very good indicators of heat stress, while ear skin temperatures demonstrated significant differences and, thus, would likely be a useful parameter in the development of a physiological strain index. Physiological strain index attributes are being evaluated to develop a model that combines air temperature with change in individual thermal status from thermoneutral baseline, and evaluated to determine “best” predictor of performance.
Feed intake of rats may serve as a sensitive respondent to toxins found in endophyte-infected fescue. Unfortunately, there have been few controlled studies of feed intake to create a reliable model. In the present study, rats were fed diets containing different amounts of endophyte-infected fescue (E+) and ergovaline (EV; a primary toxin associated with fescue toxicosis) to develop a dose-response curve for feed intake. Dose-dependent reduction in feed intake was observed, with a decrease even at the lowest concentration of EV. Involvement of ergotamine (i.e. another toxin in E+) in fescue toxicosis-induced reduction in intake was evaluated by adding it to diets. In contrast to EV treatment, there was only a small reduction in feed intake with ergotamine, followed by rapid recovery to pretreatment levels. A more effective paradigm for evaluating the effect of different toxins on feed intake and potential treatments may be a restricted feed regimen. Rats placed on a 2-h restricted-feed program of ground commercial chow followed by E+ diet show a decrease in both feed intake and growth. Future studies will refine this routine to identify specific effects of toxins found in endophyte-infected fescue on feed intake. Keywords: rat, fescue toxicosis, feed intake
Intake of endophyte-infected fescue diets (E+) during heat stress results in hyperthermia. This may be due to increased peripheral vasoconstriction as a result of a reduction in nitric oxide (NO) level. Rats were exposed to 32°C for 22d. During the last 15d, they received exogenous NO (molsidomine; M+; 120mg/mL drinking water) in combination with E+ or endophyte-free diets (E−). Treatment with M+ produced ∼0.4°C reduction in night hyperthermia due to E+ treatment (P<0.01), with no effect on day temperature (P>0.13), to suggest that NO deficiency is partially responsible for fescue toxicosis-induced hyperthermia.
Male Sprague Dawley rats (n=38) were allocated to thermoneutral, diurnal heat stress or constant heat stress treatments during pre-pubertal and post-pubertal ages. Analyses of internal body temperature and performance traits suggest animals respond differently in diurnal versus constant heat stress conditions. Greater fluctuations in average daily internal body temperature during diurnal heat stress may mediate partial recovery from heat stress, and hence, better performance than during constant heat stress. Correlation coefficients indicate early measures of internal body temperature can be used to gauge subsequent performance in similar environmental conditions.