Sheep Methane Emission on Semiarid Native Pasture—Potential Impacts of Either Zinc Sulfate or Propylene Glycol as Mitigation Strategies

Simple Summary Feed availability for small ruminant production in the Brazilian semi-arid region is characterized by the seasonality of forage production over the year. Large variations of methane (CH4) production have been reported among forage types and are mainly explained by the rate of fermentation of plant cell contents and the presence of various plant secondary compounds, notably in heterogeneous pasture. The aim of this study was to evaluate the effects of Zinc sulfate and propylene glycol (PG) on CH4 emission, nutrient intake, digestibility, and production in sheep grazing on a native Caatinga (Brazilian semi-arid savannah) pasture during the rainy season (from March to June 2014). Fifteen mixed Santa Inês sheep were distributed into three treatments (control, Zn, and propylene glycol supplement) in this 112-day study. CH4 emission was measured using the SF6 tracer gas technique. Across the months of the trial, organic matter (OM) and neutral detergent fiber (NDF) intakes were greater in March, while the greatest emission of CH4 (g/day) was observed in May. Total CH4 emission (kg) from March to June (112 days of evaluation) was greater in PG. In conclusion, our results indicate that Zn and PG have no beneficial effects in mitigating sheep CH4 emission when grazing Caatinga-native pasture in the rainy season. Abstract The aim of this study was to evaluate the effects of Zinc sulfate and propylene glycol (PG) on methane (CH4) emission, nutrient intake, digestibility, and production in sheep grazing on a native Caatinga (Brazilian semi-arid savannah) pasture during the rainy season (from March to June 2014). Fifteen mixed Santa Inês sheep, all non-castrated males, with initial body weight of 19.8 ± 1.64 kg, and 4 ± 0.35 months of age, were distributed in a complete randomized design into three treatments: control (CT)—concentrate supplemented at 0.7% of body weight; CT + 300 mg of Zn/day; and CT + 2.5 mL of propylene glycol/kg LW0.75/day. Measurements were done in four periods during the rainy season, with 28 days of interval between each measurement. CH4 emission was measured using the SF6 tracer gas technique. CH4 emission per day was greater in PG than in CT and Zn (p < 0.05). However, no additive effect was observed on the intakes of organic matter (OM) and neutral detergent fiber (NDF), or on CH4 emission expressed as a function of OM and NDF intakes (p > 0.05). Across the months of the trial, OM and NDF intakes were greater in March, while the greatest emission of CH4 (g/day and g by g/OM intake) was observed in May (p < 0.05). Total CH4 emission (kg) from March to June (112 days of evaluation) was greater in PG compared with CT and Zn (p < 0.05). Zinc and PG had no effect on total CH4 emission when it was expressed per unit of body weight gain or carcass production (p > 0.05). The results of this study indicate that Zinc sulfate and propylene glycol have no beneficial effects in mitigating sheep CH4 emission. The CH4 emissions originated from sheep grazing native Caatinga pasture change throughout the rainy season due to fluctuations in availability and quality of pasture biomass. Moreover, the inclusion of zinc sulfate or propylene glycol did not improve animal feed intake, nutrient digestibility, and animal performance.


Introduction
Methane (CH 4 ) production through enteric fermentation is a global matter of concern due to its contribution to greenhouse gases (GHG) accumulation in the atmosphere. Enteric fermentation emissions in Brazil increased nearly threefold in the last 40 years [1]. CH 4 emissions in the livestock sector come from this natural digestive process, where countries from Latin-America contribute with 20.9 Tg CH 4 /yr, representing about 15% to the global enteric fermentation emissions of 104 Tg CH 4 /yr [1,2]. This process also represents a loss of dietary energy by the animal, with 5-9% of the dietary gross energy being lost this way [3,4]. Therefore, reducing CH 4 emissions can mitigate the impact of the livestock sector on climate change, improve energy utilization, and animal performance.
Reductions in CH 4 emissions by livestock are associated with improvements in diet quality, e.g., high nutritive pastures and feed supplementation [5]. Effective mitigation strategies should enable a reduced cost of meat production, which is associated to greater energy utilization, in addition to reductions in CH 4 emissions per unit of product produced [6,7].
Feed availability for small ruminant production in the Brazilian semi-arid region is characterized by the seasonality of forage production over the year. Because the rainfall is concentrated in a short period of the year, January to May [8,9], the availability and quality of forage are compromised during the dry season. Thus, large variations in CH 4 emission have been reported among forage types and are mainly explained by the rate of nutrient fermentation and the presence of various plant secondary compounds, notably in heterogeneous pastures in semiarid conditions [10].
Several possibilities for reducing emissions of CH 4 , mainly, with grazing animals have been suggested. Out of these, the most used strategy is the inclusion of feed additives with the objective of manipulating the ruminal environment in order to improve nutrient intake, fermentation efficiency, and increase animal production [11]. The supply of nutrients such as proteins and minerals (e.g., zinc) and greater energy intake (e.g., using propylene glycol) can improve nutrient intake and feed utilization, thereby minimizing energy losses [12].
Zn is generally added to diets to ensure that nutritional requirements are met; however, dietary Zn supply for ruminants often exceeds the actual requirements [13]. It has been observed that the inclusion of 100 ppm of Zn affects animal response to protein supplementation and utilization of low-quality forages by affecting ruminal fermentation traits [14]. The supplementation of 20 mg Zn/kg DM as Zn-methionine in a basal diet containing 34 mg Zn/kg DM for lambs significantly improved fiber digestibility and growth rate [15]. In addition, studies have demonstrated that supplementation of organic and inorganic combinations of Zn may enhance performance and improve health of sheep [13]. These reports indicate that ruminants can be fed high-Zn diets without adverse effects [13].
Propylene glycol (PG) can increase ruminal propionate concentration and consequently decrease CH 4 production in the rumen [16,17], which is energetically favorable to the animal. In vitro studies, with sheep ruminal content, indicate that the main products of PG fermentation were propanol and propionate [18]. A review performed by Nielsen and Ingvartsen [19] reported that propionate is the predominant end product of PG fermentation. PG addition decreased the acetate:propionate ratio in the rumen because part of PG is metabolized to propionate in the rumen. The fermentation of PG in the rumen is further characterized by producing CO 2 and significant inhibition of CH 4 production, resulting in less energy loss [18]. Moreover, in a study with lambs, the addition of 4% dietary PG had no difference in feed intake and performance, possibly due to relatively low dietary protein and diet digestibility [20]. The inconsistency in research findings when Zn and PG were fed to sheep justifies the need for studies evaluating their effects on feed intake, nutrient digestibility, and CH 4 emissions. Therefore, our hypothesis was that zinc and propylene glycol would reduce methanogenesis in sheep grazing native pastures in the semiarid region of Caatinga. The aim of this study was to evaluate the effects of zinc sulfate and propylene glycol on CH 4 emissions, nutrient intake, and production from sheep grazing in a native Caatinga (Brazilian semi-arid savannah) pasture during the rainy season.

Animal Use
Animal handling and procedures involving all experimental animals were undertaken according to protocols approved by the Ethics Committee on Animal use of the Federal University of Minas Gerais (CEUA/UFMG, no. 321/2013).

Characterization of the Experimental Area
The study was conducted at Embrapa Goats and Sheep, located in the state of Ceará, Northeast Brazil (3 • 45 51.59 S and 40 • 21 04.24 W, 92 m asl). Eight hectares of a native Caatinga pasture area were thinned according to Araújo Filho [21]. The area's predominant soils were litolic dystrophic, planosol and non-calcium brown. The experiments were executed during the rainy season (March to June 2014), with a precipitation of 514 mm ( Figure 1) and average temperature and air humidity of 26.5 • C and 78.0%, respectively [22]. Animals 2020, 10, 395 3 of 13 resulting in less energy loss [18]. Moreover, in a study with lambs, the addition of 4% dietary PG had no difference in feed intake and performance, possibly due to relatively low dietary protein and diet digestibility [20]. The inconsistency in research findings when Zn and PG were fed to sheep justifies the need for studies evaluating their effects on feed intake, nutrient digestibility, and CH4 emissions. Therefore, our hypothesis was that zinc and propylene glycol would reduce methanogenesis in sheep grazing native pastures in the semiarid region of Caatinga. The aim of this study was to evaluate the effects of zinc sulfate and propylene glycol on CH4 emissions, nutrient intake, and production from sheep grazing in a native Caatinga (Brazilian semi-arid savannah) pasture during the rainy season.

Animal Use
Animal handling and procedures involving all experimental animals were undertaken according to protocols approved by the Ethics Committee on Animal use of the Federal University of Minas Gerais (CEUA/UFMG, no. 321/2013).

Characterization of the Experimental Area
The study was conducted at Embrapa Goats and Sheep, located in the state of Ceará, Northeast Brazil (3°45'51.59" S and 40°21'04.24" W, 92 m asl). Eight hectares of a native Caatinga pasture area were thinned according to Araújo Filho [21]. The area's predominant soils were litolic dystrophic, planosol and non-calcium brown. The experiments were executed during the rainy season (March to June 2014), with a precipitation of 514 mm ( Figure 1) and average temperature and air humidity of 26.5 °C and 78.0%, respectively [22].

Animals and Experimental Treatments
Fifteen mixed Santa Inês sheep, all non-castrated males, with initial body weight of 19.8 ± 1.64 kg, and 4 ± 0.35 months of age, were distributed in a complete randomized design into three treatments: control (CT)-concentrate supplemented at 0.7% of body weight; CT + 300 mg of Zn/day; and CT + 2.5 mL of propylene glycol/kg LW 0.75 /day. Animals were kept in continuous stocking and weighed weekly to monitor daily body weight gain and supplementation feeding. All animals had free access to mineral salt, with compositions of:

Animals and Experimental Treatments
Fifteen mixed Santa Inês sheep, all non-castrated males, with initial body weight of 19.8 ± 1.64 kg, and 4 ± 0.35 months of age, were distributed in a complete randomized design into three treatments: control (CT)-concentrate supplemented at 0.7% of body weight; CT + 300 mg of Zn/day; and CT + 2.5 mL of propylene glycol/kg LW 0.75 /day. Animals were kept in continuous stocking and weighed weekly to monitor daily body weight gain and supplementation feeding. All animals had free access to mineral salt, with compositions of: Ca = 82.0 g/kg, Co = 30.0 mg/kg, Cu = 350 mg/kg, Cr = 11.7 mg/kg, S = 11.7 g/kg, P = 60.0 g/kg, I = 50.0 mg/kg, Mn = 1200 mg/kg, Mo = 180 mg/kg, Se = 15 mg/kg, Na = 132 g/kg, and Zn = 2600 mg/kg.
The daily Zn dosage required to increase concentration in ruminal fluid at 300 mg Zn/day was calculated. The amount of Zn was established considering the concentration in the mineral salt and the addition of ZnSO 4 .7H 2 O. The amounts of salt and zinc sulfate supplied to the animals were weighed and mixed prior to being provided and adjusted to not contain leftovers. For Zn supplementation, the procedures described by Arelovich et al. [23] and the maximum tolerable level of toxicity for sheep according to NRC (2007) [24] were used. PG was supplied at 2.5 mL × kgLW 0.75 animal/day [17], and mixed directly into concentrate. PG supply was adjusted weekly, according to the group's average body weight in kgLW 0.75 (n = 5).
A stocking rate of 0.4 ha/head was used, considering an animal of 30 kg of LW [21]. The animals were taken to the pasture at 07:00 and brought back at 16:00, when they were supplemented according to treatments. The concentrate was composed of corn (540 g/kg DM), soybean meal (451 g/kg DM) and limestone (9.0 g/kg DM), formulated as recommended by the NRC (2007) [24], for finishing lamb with a predicted average daily gain of 150 g.

Forage Availability and Botanical Composition
Before the start of the experimental period, the occurrence of the main forage groups and species were determined using the method proposed by Araújo Filho [21], with a frame measuring 0.25 m 2 and systematically arranged along lines, every 4 m, totaling 50 sampling points. The percentage of the main forage species of the herbaceous stratum in the area was analyzed. Forage availability in weight was estimated by collecting the forage from the herbaceous stratum contained within the frame every 12 m. The material was weighed and oven dried at 55 • C for 72 h to calculate DM/ha availability (Table 1).

Determination of Nutrient Intake and Pasture Sampling
Four intake and digestibility measurements were carried out in the rainy season during the months of March to June, with an interval of 28 days between periods. To determine total intake, external indicator LIPE ® (patent No BR0304736-9) was administered orally in the morning, at a dose of 0.25 g per animal/day, for a period of 7 days, with 2 days for adaptation and stabilization of the indicator in the gastrointestinal tract, and 5 days for fecal collection [25]. Fecal samples were collected directly from the animals' rectum, stored in plastic bags and frozen in a freezer at −20 • C. Samples composed by animal, by period, were dried at 55.0 • C for 72 h and milled so as to determine LIPE ® concentration in the feces and estimate fecal production (FP), as per the equation below: Fecal production, g/day = (LIPE ® supplied, g/LIPE ® recovered in feces, g) × fecal DM, g/kg (1) To assess digestibility and forage chemical composition (Table 2), two ruminally-cannulated adult sheep were used, with mean body weight of 34.5 ± 2.1 kg. Ruminal extrusa samples were collected as described by Olson [26], for 5 consecutive days in each experimental period, starting 1 day before feces collection using the animals used for intake determination. The collection procedure consisted of emptying all ruminal content, which was stored in clean plastic containers. Then, animals were allowed to graze for 1 hour. After this time, all ruminal extrusa were collected. After that, the ruminal content initially removed was returned to the rumen.  [27]; β Corn, soybean meal, and limestone; ¥ Dry matter on a as fed basis; ‡ aNDFom-NDF assayed with a heat stable amylase and expressed exclusive of residual ash NDF.

Determination of Enteric CH 4 Emission
Gases were collected in four occasions, with a 28-day interval, right after the intake measurements. CH 4 emitted by the animals was determined by the SF 6 tracer gas technique [29] with adjustments for measurements in sheep. The SF 6 permeation tubes that were used had average permeation rates of 1099 mg/day. The tubes were deployed in the animals' reticulum (per dosing), 28 days before the first collection. The collection was performed for two consecutive 48 h periods, per animal, monthly. The SF 6 capsules were calibrated to release 1-2 mg of SF 6 every 24 h, considering that the SF 6 and CH 4 followed similar emission patterns. Quantified gases were emitted from the mouth and nostrils of the animal.
To avoid alterations in normal feed-behavioral, sheep were previously acclimated to the devices used for measuring CH 4 . The devices were equipped with a nylon halter with three fixation points (mouth, lower jaw, and neck root behind the ears), a flow control valve, a particle filter, and a spiral hose with a quick connect in one end and a 445-cm 3 stainless cylinder (Figure 2). The other end of the hose, responsible for capturing the gases emitted to be stored in the cylinders, was fixed on the halter in a leather flap attached to the halter and placed over the muzzle near the animal's nostrils and mouth.
The cylinder was coupled to a bag attached to the back of the animal. The cylinder was cleaned previously with pure nitrogen 5.0 (degree of purity: 99.9%, for application in chromatography with a Flame Ionization Detector-FID) and vacuum-emptied to contain negative pressure prior to each sample collection. The flow regulators were calibrated to allow a remaining vacuum in the cylinder of about 500 mb (which represents half of the total cylinder volume) at the end of the sample collection period. The inlet regulator was calibrated for each collection period of 4 consecutive days. Two cylinders (blanks) were distributed in the area at a height similar to that of the grazing animals' reach for correction of the gases contained in the environment. The flow of CH 4 emitted by the animal was calculated by correlating it with the SF 6 flow, since the tracer gas release rate in the rumen had been determined previously [29]. The cylinder was coupled to a bag attached to the back of the animal. The cylinder was cleaned previously with pure nitrogen 5.0 (degree of purity: 99.9%, for application in chromatography with a Flame Ionization Detector-FID) and vacuum-emptied to contain negative pressure prior to each sample collection. The flow regulators were calibrated to allow a remaining vacuum in the cylinder of about 500 mb (which represents half of the total cylinder volume) at the end of the sample collection period. The inlet regulator was calibrated for each collection period of 4 consecutive days. Two cylinders (blanks) were distributed in the area at a height similar to that of the grazing animals' reach for correction of the gases contained in the environment. The flow of CH4 emitted by the animal was calculated by correlating it with the SF6 flow, since the tracer gas release rate in the rumen had been determined previously [29].
CH4 emission values were calculated in g/day. Based on these results, inter-relationships were made with productive parameters, and CH4 emission was determined as a function of OM and NDF intakes (g/day and g/kgLW 0.75 ), total CH4 emission as a function of body weight gain in the period (WGP), and per kilogram of cold carcass.

Statistical Analyses
A completely randomized design, with five replications (animals) per treatment, was used for the evaluation of CH4 emission in g/day and as a function of OM and NDF intakes (g/day and CH 4 emission values were calculated in g/day. Based on these results, inter-relationships were made with productive parameters, and CH 4 emission was determined as a function of OM and NDF intakes (g/day and g/kgLW 0.75 ), total CH 4 emission as a function of body weight gain in the period (WGP), and per kilogram of cold carcass.

Statistical Analyses
A completely randomized design, with five replications (animals) per treatment, was used for the evaluation of CH 4 emission in g/day and as a function of OM and NDF intakes (g/day and g/kgLW 0.75 ). Statistical differences of treatment parameters and periods were determined by the model below: Y ijkl = µ + T i + a ij + P k + (T*P) ik + e ijkl where µ = overall mean; T i = fixed effect of treatments (two degrees of freedom-DF) (i = CT, Zn, PG); a ij = random residual effect associated with animal; P k = fixed effect of period (three DF) (k = March, April, May, June); (T*P) ik = treatment*period interaction (six DF); and e ijkl = experimental error associated with the animal observation in each month.
The following statistical model was used to evaluate CH 4 emissions as a function of production parameters: where µ = overall mean; T i = fixed effect of treatments (i = CT, Zn, PG); a ij = random residual effect associated with animal; and e ijk = experimental error associated with the observation. Means were compared by the Tukey-Kramer test, with a significance of 0.05. The Proc GLM procedure of the Statistical Analysis System 9.0 (SAS Inst. Inc., Cary, SC, USA) was used.

Results
A greater amount of g CH 4 /day was emitted from PG compared with CT and Zn (p < 0.05; Table 3). However, no effects (p > 0.05) of treatments were observed in OM and NDF intakes or emission expressed in mg CH 4 relative to OM and NDF intakes (g/day and g/kg LW 0.75 ). Among periods, greater OM and NDF intakes were observed in March and greater g CH 4 /day emission was observed in May; the same pattern was observed for CH 4 in mg/OM intake (g/day and g/kg LW 0.75 ; p < 0.05). There was no effect of period in CH 4 emission as a function of NDF intake (p > 0.05).  There was no effect of treatments in production parameters (p > 0.05; Table 4). For total CH 4 emission in the period from March to June, totaling 112 days of evaluation, greater values were observed in PG compared with CT and Zn (p < 0.05). There was no effect of treatments in kg CH 4 /kg of body weight gain in the period, or kg CH 4 /kg NDF intake (p > 0.05).

Discussion
To our knowledge, studies measuring the emission of CH 4 in vivo in sheep in conditions of tropical semiarid regions, notably in the Caatinga biome, are scarce. It was important to understand how the great diversity of forages may contribute or not to emission of CH 4 , especially in the rainy season, a time of greater abundance of species. Allied to this, a few studies using Zn or PG as modulators in the rumen to mitigate the emission of CH 4 in vivo in sheep have been reported. We tested the strategic use of these as additives in sheep grazing in areas of heterogeneous pasture aiming to improve the use of pastures and mitigate CH 4 emission.
The lower OM and NDF intakes starting from April were affected by the quantity and quality of the pasture, which had lower in vitro DM and OM digestibility ( Table 2). The maturation of the native Caatinga pasture during the rainy season greatly modifies the chemical-physical structure of the feeding environment [37]. According to these authors, there is a decrease in the herbaceous layer, and, at the same time, annual shrubby species grow during the months of January to May; from then on, these species become highly lignified, affecting diet quality.
Holter and Young [38] reported the relationship between CH 4 emission and several dietary factors such as the diet chemical composition, nutrient intake, and digestibility. The decreased pasture quality (April to June) and lower intake may have contributed to the lower CH 4 emission, especially in June (Table 3). On the other hand, greater intakes promote a reduction in CH 4 emission per unit of feed ingested, which is directly related to alterations in the fermentation pathways and/or reduction of retention time [39]. In June, this last aspect seemingly contributed to the lower CH 4 emission. The data from this study fall within normal ranges. Such an aspect reinforces the notion that differences in CH 4 yield were related to variations in intake during the months. Another aspect that contributes to lower CH 4 emission indirectly as a mitigator is the secondary's compounds [40]. Greater content of total tannins was verified in the pasture component obtained in June. This condition is also closely linked to lower CH 4 emissions in the period. Changes in intake between low-quality and high-quality forages also resulted in changes in CH 4 per kg OM intake [41]. According to the authors, the intake level and ruminal outflow, which are often positively correlated, partly explain this variability.
Minerals play an important role in the ruminal environment, e.g., by changing the osmotic pressure, buffer capacity, and dilution rate in the rumen. Kurihara et al. (1997) demonstrated that supplementation with ZnSO 4 in ruminants' diets at levels greater than 1000 ppm promoted reductions in ruminal protozoa population, which may result in decreasing CH 4 emission. Moreover, later studies showed that greater levels of Zn in the diet increase propionate concentration and reduce the acetate:propionate ratio [14,23].
In this regard, we speculate that Zn addition could have increased propionate concentration in the rumen, which is considered an important hydrogen-competing pathway [12]. However, CH 4 emissions originating from sheep in the Zn treatment were similar to that of animals receiving CT, with no effects of Zn on CH 4 mitigation. Both of these treatments emitted lower CH 4 levels than PG.
In a study investigating the effect of ZnSO 4 supplementation in diets containing different levels of protein (6.5 and 8.5% CP, and 8.5% CP + 35 g ZnSO 4 /animal/day) for dairy cows, researchers observed that the possible ruminal protozoa reduction caused by zinc sulfate decreased CH 4 in L/kg DM by 60% [39]. In an experiment evaluating the effects of organic zinc supplementation (ZnSO 4 and Zn-peptides) in sheep, the authors observed that supplementation with Zn-peptides might result in a greater concentration of metabolizable energy and greater production of short-chain fatty acids [42]. Propylene glycol is metabolized in the rumen to lactate and propionate [43], allowing the capture of oxygen and reduction in CH 4 production. However, CH 4 emissions originated from animals on PG were 18.2% greater, which was not expected. By contrast, the greater intake obtained in May contributed to greater emissions of CH 4 as compared with June, probably due to the consumption of low-quality fractions, which implies longer retention of the fibrous fractions in the rumen.
Overall, tropical forages have greater proportions of fiber compared with temperate species, which contributes to acetic fermentation and greater production of CH 4 g/day. On the other hand, this type of fiber has low digestibility, as observed in this study (Table 2), when slower fermentation rates were observed, implying lower amounts of substrate for methanogenic microorganisms [44].
The average emission flow in the present study was 16.9 g CH 4 animal/day, considering that animals had 24.0 ± 1.81 kg LW, an average OM intake of 540 g/day, and 37.8% pasture IVOMD (Tables 2 and 3), yielding a supply of 204 g digestible OM/day. CH 4 emissions as a function of OM and NDF intakes (31.3 and 72.7 mg CH 4 /day, respectively) were not affected by the treatments, and the different months in the rainy season, except for the month of May, in which the greatest CH 4 emission was recorded. Emission rates were greater than the 11.8 g CH 4 animal/day observed by Leuning et al [45]. Also, in their study, emissions were originated from sheep with 27.0 kg LW, a DM intake of 508 g/animal/day, and pasture DM digestibility of 69.5%.
Evaluating the effect of supplementation with tropical tanniferous legumes as a strategy to mitigate CH 4 emission in sheep with an average LW of 27.9 ± 2.85 kg, emissions were obtained in the range from 7.80 to 11.3 g CH 4 /day [46]. Another study determined enteric flow of CH 4 of Somalis sheep with an average LW of 26.8 ± 2.90 kg, and 14.9 and 11.4 g CH 4 animal/day were observed for animals in enriched or unenriched thinned Caatinga areas, respectively [47]. Also, in that study, a flow of 13.0 mg CH 4 /g OM consumed by animals in an enriched thinned Caatinga area during the rainy season was observed. Therefore, improvements in pasture use efficiency and of supplementation strategies may reduce CH 4 emissions that originated from sheep.
Total CH 4 emissions were 22.3% greater for PG treatment. These greater emissions were not expected, as previously discussed, because the inclusion of PG in the concentrate might have changed the fermentation pattern, resulting in lower CH 4 emission. We believe that propylene glycol could have escaped ruminal fermentation and absorbed in the small intestine and converted to glucose in the liver [43]. Previous studies have indicated that propylene glycol can be rapidly absorbed from the rumen without affecting ruminal fermentation [20,48]. This aspect could have occurred, and although VFA was not evaluated, probably there were no changes in the acetate:propionate ratio, since acetate is directly related to CH 4 production. Average CH 4 emission per kg of cold carcass, or kg of product, was 0.243 kg. The concept of CH 4 emission intensity, based on emissions per unit of product, seems to reflect more precisely the effects of mitigation practices in intake, CH 4 emission, and productivity of an animal [7].
The animals in this study had unsatisfactory performance, with lower body weight gain and carcass yields than expected. However, CH 4 emissions based on productive parameters were not affected by the addition of ZnSO 4 and propylene glycol. It is important to correlate CH 4 emissions with productive parameters, as some studies indicate that ruminants raised on native pastures are the greatest CH 4 emitters. For the development of inventories and establishment of mitigation practices, this information should be associated with the carbon footprint for production of meat and other animal products.

Conclusions
The results of this study indicate that Zinc sulfate and propylene glycol have no beneficial effects in mitigating CH 4 emissions from sheep grazing native pastures in the Caatinga region. CH 4 emissions from sheep grazing native pastures in the Caatinga region change throughout the rainy season due to fluctuations in availability and quality of pasture biomass. Moreover, the inclusion of zinc sulfate or propylene glycol did not improve animal feed intake, nutrient digestibility, and animal performance. Funding: This research was funded by the National Council for Scientific and Technological Development (Conselho Nacional de Desenvolvimento Cientifico e Tecnológico-CNPq, Process Number-CNPq 480786/2012-7) and for the Doctoral scholarship to H. Costa; as well as the Coordination for the Improvement of Higher Education Personnel (Coordenadoria de Aperfeiçoamento de Pessoal de Nível Superior-CAPES) for granting the scholarship for the international internship. The supporting agencies participated neither in the study's design, data collection, and analysis, nor in the decision-making for preparation or publication of the manuscript.