Next Article in Journal
Metabolic Alterations in Canine Mammary Tumors
Previous Article in Journal
Alpha2 Antagonist Vatinoxan Does Not Abolish the Preconditioning Effect of Dexmedetomidine on Experimental Ischaemia–Reperfusion Injury in the Equine Small Intestine
 
 
Font Type:
Arial Georgia Verdana
Font Size:
Aa Aa Aa
Line Spacing:
Column Width:
Background:
Article

Nutritional Quality of Meat from Barren Merino Ewes in Comparison to Meat from Traditional Lambs

by
Begoña Panea
1,2,
Guillermo Ripoll
1,2,* and
María J. Alcalde
3
1
Animal Science Department, Centro de Investigación y Tecnología Agroalimentaria de Aragon (CITA), Avda. Montañana 930, 50059 Zaragoza, Spain
2
Agrifood Institute of Aragon-IA2 (CITA-Zaragoza University), Avda. Miguel Servet 177, 50013 Zaragoza, Spain
3
Department of Agronomy, Universidad de Sevilla, Ctra. Utrera km. 1, 41013 Seville, Spain
*
Author to whom correspondence should be addressed.
Animals 2023, 13(17), 2756; https://doi.org/10.3390/ani13172756
Submission received: 24 July 2023 / Revised: 18 August 2023 / Accepted: 29 August 2023 / Published: 30 August 2023
(This article belongs to the Section Animal Products)

Abstract

:

Simple Summary

Barren ewes represent approximately 2% of the census of the herd, which constitutes a major loss in revenue for the farmer. It would, therefore, be an interesting market strategy to revalue the meat of these barren ewes. We studied the nutritional quality of barren ewes’ meat in comparison to traditional lambs’ meat by studying 10 barren ewes, 10 male lambs, and 10 female lambs from the Merino breed. There was no effect of animal type (males, females, and ewes) on pH, and differences in subcutaneous fat color, lipid oxidation, and texture were irrelevant from a practical point of view. The tissue composition, in the three groups of animals, reflected a high percentage of saleable meat, with no penalty for intensive fattening in any of the groups. The ewes’ meat presented a higher percentage of moisture, collagen, ash, calcium, iron, α-tocopherol, and retinol than the lambs’ meat. In addition, it had a higher content of DHA and CLA and lower values for the ratio n6/n3, which is beneficial for health, although it also contained more fat, saturated fatty acids, and cholesterol than lambs’ meat. Ewes’ meat therefore has a good nutritional composition and can be considered an attractive product for consumers.

Abstract

In Spain, lamb consumption has decreased over the last few years. To increase farmers’ income, we studied the nutritional quality of the barren ewes’ meat in comparison to traditional lambs’ meat with 10 barren ewes, 10 male lambs, and 10 female lambs from the Merino breed. We measured the subcutaneous fat, muscle color, and carcass tissue composition, as well as proximal composition, mineral, tocopherol, retinol, lutein, and cholesterol contents, and the TPA texture profile, fatty acid profile, and lipid oxidation of the meat. There was no effect of the animal type (males, females, and ewes) on the pH, and the differences in the subcutaneous fat color, lipid oxidation, and texture were irrelevant from a practical point of view. The tissue composition in the three groups of animals reflected a high percentage of saleable meat, with no penalty incurred for intensive fattening in any of the groups. The ewes’ meat presented a higher percentage of moisture, collagen, ash, calcium, iron, α-tocopherol, and retinol than the lambs’ meat. In addition, it had higher content of DHA and CLA and lower values for the ratio n6/n3, which is beneficial for health, although it also contained more fat, saturated fatty acids, and cholesterol than the lambs’ meat.

1. Introduction

Spain is one of the largest producers of sheep meat in the EU-27. In Spain, most sheep farms are located in marginal areas, which are not used for other activities and are often classified as high nature value farmland [1]. These livestock systems are multifunctional [2] and provide meat and meat products with extrinsic characteristics that are becoming increasingly important for the consumer [3], such as the local origin or environmentally friendly production [4]. Despite this, lamb consumption has fallen in recent years, so it is essential to seek strategies to increase farmers’ income, since their work is essential to fixing the sheep population in sparsely populated areas. In this context, the future of farms necessarily involves taking advantage of the extrinsic quality characteristics, linking production to the territory through the exploitation of native breeds and obtaining differentiated, high-quality products [5].
In Spain, the meat production of some native ovine breeds is almost exclusively limited to a single product, often endorsed by a quality label. In the case of the Merino breed, the P.G.I. “Cordero de Extremadura” protects the meat of lambs that are slaughtered before 100 days and whose weight is less than 16 kg for males and 14 kg for females. This system responds to the requirements of the majority of Spanish consumers, who prefer the meat of younger animals [6]. However, with new market trends encouraging product diversification as a means of increasing market share, it is advisable to value the meat of other types of animals, such as barren ewes. Barren ewes are classified as those that are permanently sterile or that had their last calving more than two years previously. Barren ewes represent approximately 2% of the census of the herd, which constitutes a major financial loss for the farmer, since they consume resources but do not produce. Their only possible use is therefore culinary, and their meat has traditionally been highly appreciated among farmers. For this reason, it would be an interesting market strategy to revalue barren ewes’ meat. Taking into account the fact that the age and sex of an animal greatly influence the quality of its meat, including nutritional characteristics [7], and that consumers are becoming increasingly aware of the relationship between nutrition and health, consumers’ purchasing decision can be helped by determining the nutritional characteristics of barren ewes’ meat [8]. Therefore, this study was carried out at the request of the National Association of Merino Cattle Breeders to evaluate the nutritional quality of the meat of barren ewes in comparison to traditional lambs’ meat.

2. Material and Methods

2.1. Animal Rearing and Slaughtering

This study was conducted in southwest Spain, where all of the animals were reared on commercial farms. We worked with the following types of animals:
-
Barren ewes (10 animals, referred to hereinafter as “ewes”): The animals came from a single farm, located in Trujillo, where they were raised under an extensive management system with a reproductive system of three births in two years. It is a transhumant flock, and the sheep usually spend the winter in Trujillo and go up to the mountains of Leon in summer to pasture. Ewes that have not become pregnant one year after being incorporated into the flock as breeders are usually eliminated from the flock;
-
Lambs: The animals came from 12 farms located in the provinces of Cáceres and Badajoz. A total of 20 lambs from single parturitions (10 females and 10 males) were reared on their respective farms until weaning. After weaning, they were moved to the Animal Selection and Reproduction Centre of Extremadura (Badajoz, Spain, http://www.gobex.es/con03/censyra, accessed on 1 June 2023), where they were fed with a mixed ration ad libitum. The chemical composition of the mixed rations for the lambs was as follows: 91.1% dry matter, 15.9% protein, 3.8% fat, 7.6% ash, 16.5% NFD, 6.4% ADF, and 0.1% ADL. For the duration of the trial, all animals were weighed weekly, and the lambs were slaughtered when they reached the live weight of 22–25 kg (approximately 115 days of age).
All animals were slaughtered at a slaughterhouse in Agudo (Spain, 38°58′45″ N 4°52′23″ W), following European regulations [9]. The hot carcass weight (HCW) was recorded, and the carcasses were hung by the calcaneus tendon and kept at 4 °C/24 h until fat color measurements were taken.

2.2. Subcutaneous Fat Color and Tissue Composition

The color of the subcutaneous fat of all carcasses was measured at the 8th rib level with a Minolta CM-600d Spectrophotometer (Konica Minolta Holdings, Inc., Osaka, Japan) in CIEL*a*b* space (CIE, Cambridge, UK, 1986) with the specular component including 0% UV, observer angles of 10 and 0, and white calibration. The measurement area was 8 mm in diameter, and the illuminant used was D65. The spectrophotometer was rotated on the horizontal plane before each reading, and the mean of three readings was used for analysis. The lightness (L*), redness (a*), and yellowness (b*) indices were recorded using SpectraMagic NX v. 3.31 software (Minolta Co., Ltd., Osaka, Japan), and the hue angle ( h ab = tan 1 ( ( b * ) / ( a * ) ) · 180 ° / Π ) and chroma ( C ab * = ( a * ) 2 + ( b * ) 2 ) were calculated.
After the color measurement, the left forelimb was separated from the carcass [10], vacuum-packed, and stored at −20 °C until sampling. After thawing overnight at 4 °C, the forelimb was weighed and dissected into muscle, intermuscular fat, subcutaneous fat, bone, and others (major blood vessels, ligaments, tendons, and thick connective tissue sheets associated with muscle). The tissue composition of the forelimb was expressed as a percentage of the thawed forelimb weight, following Panea, Ripoll, Albertí, Joy, and Teixeira [10].

2.3. Meat Quality Sampling and Procedures

The left longissimus thoracis et lumborum muscle and the left triceps brachii muscle were removed and used for the meat quality measurements.
The pH was measured at 24 h post mortem on the cranial side of the longissimus thoracis et lumborum muscle with a Crison pH meter pH/mv-506 m, and the following samples were obtained, vacuum-packed, and frozen at −20 °C until the analysis.
From longissimus thoracis et lumborum:
-
Proximal composition, using a FoodScan 2® NIRS (Foss Iberia, S.A., Barcelona, Spain); Percentages of moisture, protein, intramuscular fat, saturated fat, collagen, and ash were recorded;
-
Measurement of mineral content. Samples were previously lyophilized using a VirTis Genesis machine (SP Scientific Products, Warminster, PA, USA), and the mineral content was measured using an i CAP PRO XP Duo ICP Plasma Atomic Emission Spectrometer (ICP-OES, Thermo Fisher Scientific Inc., Madrid, Spain), following an internal procedure of the Analysis Service of the University of Zaragoza, Zaragoza, Spain), with duplicate measurements taken;
-
Tocopherol, retinol, lutein, and cholesterol contents were measured, following Bertolín et al. [11], by means of a chromatographic system using an ACQUITY UPLC H-Class liquid chromatograph (Waters, Milford, MA, USA) equipped with a silica-based bonded phase column (Acquity UPLC HSS T3, 1.8 μm × 2.1 mm × 150 mm column (Waters, Milford, MA, USA), an absorbance detector (Acquity UPLC Photodiode Array PDA eλ Detector, Waters), and a fluorescence detector (2475 Multi λ Fluorescence Detector, Waters). The UHPLC system was controlled using Empower 3 software. Duplicate measurements were taken;
-
TPA texture profile was measured, following Ripoll et al. [12], using an Instron machine model 5543 (Instron Limited, Cerdanyola, Spain). A minimum of 5 probes were obtained by sample, measuring hardness (maximum force exerted in the first compression cycle, in N) and adhesiveness (area of negative force obtained after the first compression, representing the force needed to separate the compression plunger from the food, in MJ);
-
Muscle color, using a Minolta CM-600d spectrophotometer (Konica Minolta, Osaka, Japan) in the same way as described for fat color.
From the triceps brachii:
-
To separate the fatty acid profile from its quantitative percentage, an Agilent 6890N model gas chromatograph (Agilent Technologies, Santa Barbara, CA, USA) was used, equipped with a flame ionization detector. An HP-88 capillary column 100 m long, with an internal diameter of 0.25 mm and a phase thickness of 0.2 µm, was used in the stationary phase. H2 was used as the carrier gas, with a flow of 2 mL min−1. The initial temperature of the oven was 100 °C, which was then increased by 3 °C per minute until it reached 158 °C; it was then increased further by 1.5 °C up to 190 °C, and this temperature was maintained for 15 min. Next, the temperature was raised to 200 °C with an increase of 2 °C per minute. Finally, a rapid rise of 10 °C per minute was made until it reached 240 °C, and this temperature was maintained for 10 min. The injector temperature was programmed at 300 °C and the detector temperature at 320 °C. The split mode was used for the injection. The identification of the fatty acids was carried out by comparing their retention times with the retention times in a mixture of patterns [13]. Duplicate measurements were taken;
-
Lipid oxidation was measured by determining the TBARS index. Once thawed, the samples were cut into two pieces: one was used to determine the lipid oxidation level at day 1, and the other one was kept in the dark at 4 °C for 7 days and used to determine lipid oxidation at 7 days of aging. Lipid oxidation [14,15] was expressed as mg of malondialdehyde (MDA)/kg fresh meat. Duplicate measurements were taken.

2.4. Statistics

All the statistics were calculated using the XLSTAT statistical package v.3.05 (Addinsoft, New York, NY, USA). Means were calculated for all of the variables studied. An ANOVA was performed with the type of animal (male, female, and ewe) as a fixed effect. The differences among the samples were measured with a Tukey test and a significance of p < 0.05.

3. Results and Discussion

3.1. Subcutaneous Fat Color

The values found for the subcutaneous fat color are shown in Table 1. The values are comparable to those collected by other authors in Merino breed animals of similar weights [16,17]. Differences among types of animals were found only for luminosity (L*), which was higher in ewes than in lambs, which could be related to the fatty acid profile. Although, in general, the literature concurs that the color of subcutaneous fat is mainly due to animal feeding, tending to be more yellow in grass-based diets [18], this effect was not found in our study. In addition, the white color of the body fat of sheep and goats is thought to be mainly due to the extremely low concentration of carotenoids in these animals [19].
From a practical point of view, the small differences found in this paper are of no practical interest.

3.2. Tissue Composition

Table 2 shows the tissue composition of the shoulders. This piece is representative of the tissue composition of the entire carcass [10]. The current data are consistent with those reported by other authors in several Spanish breeds [20,21].
The weight of the ewes’ shoulders was greater than that of the lambs, as expected. Differences among types of animals were found only for the percentage of muscle, with the ewes presenting a percentage of muscle similar to that of male lambs. Although some authors [22] have reported that after dissecting lambs’ shoulders, females were found to have higher fat percentages and males higher bone percentages, in the current study no differences in the lambs were found by sex.

3.3. pH and Proximal Composition

Table 3 shows the pH and proximal composition data of the meat depending on the type of animal. No differences in pH were found depending on the type of animal, in line with several authors [7,23]. The current values are usual for sheep meat [7,24,25,26], indicating that there was no effect of the pH on the rest of the measured parameters.
The values found for the proximal composition agreed with those described by other authors for animals with similar characteristics [7,24,26].
The ewes’ meat presented a higher percentage of moisture, fat, saturated fats, collagen, and ash than that of the lambs’ in which no influence of sex was found. This lack of differences between males and females in fat content in young animals has been described by other authors [24,27]. However, we did expect differences in fat content due to the animals’ weight [7,28], with a major difference in collagen content depending on their age. There is little literature on the collagen content of sheep meat, but the results we found for lambs coincide with those described by Baila, Lobon, Blanco, Casasus, Ripoll, and Joy [25] for suckling lambs (0.77%), and the data from the ewes agreed with those described by Tschirhart-Hoelscher et al. [29] for animals with a carcass weight of approximately 30 kg (2.6–2.9 mg/g fresh meat) or those described by Ramírez-Zamudio et al. [30] for ewes (2.05–2.3 mg/g fresh meat).
Regardless of the differences due to the animals’ sex or weight, it is clear that sheep meat is an excellent source of protein and that the percentages of saturated fat are moderate. The EFSA recommends that the percentage of saturated fat should be <10% of the total energy consumed, which for a diet of 2000 Kcal/day is approximately 16–20 g of saturated fat/day. Here, a standard 200 g ration of lamb would provide only 2 g of saturated fat in the case of lambs and 4.6 g of saturated fat in the case of ewes.

3.4. Mineral Content

The mineral content of each type of meat is shown in Table 4. Minerals are essential inorganic elements for the body and cannot be synthesized, so they must be included in the diet. They intervene in tissue structure (calcium, phosphorus, and magnesium), control the composition of body fluids (sodium, chlorine, potassium, magnesium, and phosphorus), and are part of enzymes and other proteins involved in metabolism.
The values here are similar to those described by other authors in animals with similar characteristics [31,32,33].
Except for Zn, there are differences in the mineral content between ewes’ meat and that of lambs. Ewes’ meat contains higher amounts of calcium and iron and lower amounts of the other minerals than lambs’ meat. Again, there is no influence of sex among lambs. Novoselec, Salavardic, Samac, Ronta, Steiner, Sicaja, and Antunovic [18], working with Merino lambs between 95 and 125 days of age, pointed out that the mineral content increases with the animal’s age, especially magnesium and iron, which could be related to the proportion of each type of muscle fiber, depending on the age [34]. In the present work, this effect was found only for calcium, which is associated with bone metabolism, and for iron, which is due to the meat of adult animals having a greater amount of myoglobin than that of lambs [35]. On the other hand, Holman et al. [32] reported that the addition of lucerne to the animals’ diet resulted in increased iron and phosphorus content, which reinforces the current results for iron in ewes which were fed mainly on forage.
In humans, the nutritional daily recommendations for minerals [36] in adults are as follows: calcium (1000 mg), iron (8–18 mg), magnesium (300–400 mg), phosphorus (1000 mg), potassium (2800–3800 mg), sodium (450–900 mg), and zinc (8–14 mg). A 200 g serving of Merino meat would provide 12–22 mg of calcium, 4–7 mg of iron, 690–800 mg of potassium, 50–57 mg of magnesium, 90–120 mg of sodium, 490–460 mg of phosphorus, and 5–6 mg of zinc.

3.5. Content in Tocopherol, Retinol, Lutein, and Cholesterol

Vitamin E is composed of a set of eight stereoisomers. It cannot be synthesized by the animals, so it must be ingested with the diet [35]. Of these, α-tocopherol is the most active as a vitamin and γ-tocopherol as an antioxidant. When vitamin E levels are high, vitamin A absorption decreases, as they compete for the same absorption mechanisms [19,37]. In addition, carotenoids are widespread isoprenoid secondary metabolites, some of which can be converted into vitamin A in animals. However, animals cannot synthesize carotenoids de novo and rely on the diet as a source. These vitamins are therefore significant from a nutritional point of view, and the role of fat-soluble vitamins in the nutritional and sensory properties of foods has been pointed out [38].
A study carried out by Álvarez, Meléndez-Martínez, Vicario, and Alcalde [37] in lambs showed that carotenoids were not detected in any fat sample. However, this is in disagreement with Yang, Larsen, and Tume [19], who reported that lutein was present in the adipose tissue of sheep, albeit in very low quantities, as found in our work.
On the other hand, Alvarez [37] reported that both retinol and α-tocopherol were detected in the fat samples of the lambs studied. The levels of α-tocopherol were higher than those of retinol in the groups, which was expected, as adipose tissue is one of the main storage sites of tocopherol, while for retinol it is the liver [39,40].
An effect of animal type was found for all of the variables (Table 5), except for γ-tocopherol. Because these compounds are fat soluble and are deposited in intramuscular fat, which is higher in ewes, the ewes’ meat contained more α-tocopherol, retinol, and cholesterol than that of the lambs’, in which there are no differences. On the other hand, the meat of the females presented a higher content of δ-tocopherol than the meat of males or ewes, which showed no differences due to sex.
No lutein was detected in the male lambs’ meat and, as expected, the content was much higher in the ewes’ meat than in the female lambs’ meat. There is little literature with data on vitamins and cholesterol in Merino lambs. However, Campo, Silva, Guerrero, Castro, Olleta, Martin, Fernández, and López [33], working with lambs of several Spanish breeds (including Merino), found α-tocopherol values of between 0.27 mg and 0.31 mg/100 g edible portion (muscle + visible fat), which is clearly lower than those found in the present experiment. Despite this, those authors found cholesterol values of 0.65–0.68 mg/100 g edible portion, which is in line with those found in our experiment.

3.6. Fatty Acid Profile

The results (shown in Table 6) agree with those found by other authors for the Merino breed [41,42,43,44]. We found an effect of the type of animal in 23 of the 41 fatty acids detected and, in general, the content of almost all of the fatty acids was higher in ewes’ meat than in lambs’ meat, probably due to the higher fat content of the former [45]. Numerous studies have indicated that increased intramuscular fat content is associated with an increase in total saturated fatty acids and a decrease in polyunsaturated fatty acids [46]. However, in our study, we found no differences among animal types for these values.
The only differences found were among lambs in C18:1n9c, with higher values in the meat of males than females. This low effect of sex in the young animals is in line with the results of other authors [23,44].
The ewes’ meat had a higher content of DHA and CLA fatty acids than that of the lambs’, which is considered to have health benefits for humans [43]. It has been described that the CLA content depends fundamentally on the diet, so that grass-based diets favor higher levels of CLA in meat [47], which could explain the results found in the ewes’ meat.
On the other hand, the ewes’ meat presented a lower percentage of n-6 fatty acids and a higher percentage of n-3 fatty acids than the lambs’ meat, resulting in lower values for the n6/n3 ratio. Our results partially coincide with the conclusions of Santos-Silva et al. [48], in Merino Branco with a live weight of 24 or 29 kg, who describe how the proportion of n-6 and n-3 acids decreases with an increased slaughter weight, although they found no effect of slaughter weight for the ratio n-6/n-3. Values greater than seven in the ratio n6/n3 are typical of animals raised on cereals [33], which would account for the ratio found for lambs.
The n-6 and n-3 fatty acids are key for maintaining the structure of cell membranes, facilitating the absorption of fat-soluble vitamins, regulating cholesterol metabolism, and controlling homeostasis. Despite the fact that numerous intervention studies have shown that a diet rich in n-3 fatty acids reduces coronary mortality and sudden cardiac death and that it is important to have an adequate n6/n3 ratio, the maximum levels of intake for n-6 and n-3 fatty acids have not yet been established. There is also no agreement on the best ratio of DHA and EPA. Most guidelines recommend 20–35% of total energy in the form of fats, divided into 7–10% saturated fat, 20% monounsaturated, and 6–10% polyunsaturated. These recommendations also state that the correct intake of n-3 fatty acids is 0.5–2 g/day with an upper limit of 3 g/day, while that of n-6 fatty acids is between 2.5 and 10 g/day, with a recommended n-6/n-3 ratio of 5:1 [49]. The ewes’ meat in our trial complies with this ratio, although the lambs’ meat exceeds the recommended limit. On the other hand, the recommended content of EPA and DHA is at least 500 mg daily [49], and one 200 g serving of Merino meat could provide between 30 and 75 mg of EPA+DHA.
The meat of adult animals often has a bad reputation because it is supposed to have an unhealthy lipid profile; however, our data have shown that, beyond the fact that there may be differences in any specific acid, probably due to differences in the animals’ handling, ewes’ meat can be considered just as healthy as lambs’ meat.

3.7. Lipid Oxidation (TBAR)

Lipid oxidation (Figure 1) increased over the storage time, as expected [50,51]. There were no differences among types on the first day, but, surprisingly, on day 7 the lambs’ meat presented higher oxidation values than that of the ewes’, although no differences in unsaturated fatty acids sums were detected. However, both lambs’ and ewes’ meat presented very low lipid oxidation values at 7 days, which was much lower than those described by other authors in the meat of the Merino breed aged 7 days [43,50,51].

3.8. Texture Profile

In the TPA (texture profile analysis) assay, a plunger compresses a sample uniaxially and twice consecutively to simulate jaw movement during chewing. Thus, the analysis of the curve obtained allows us to calculate several texture parameters correlated with the sensory evaluation. Hardness is defined as the maximum force exerted in the first compression cycle, while adhesiveness represents the work necessary to separate the plunger from the food and represent the sticky mouthfeel. Springiness is defined as the height at which food can recover between the first and the second bites, and compression is defined as the ratio between the force needed for the first and the second bites [52].
In our study, slight differences were found for cohesiveness and springiness, while no differences were found either for hardness or for adhesiveness (Table 7), which coincides with the results of other authors [28] and indicates that ewes’ meat is similar, in terms of texture, to that of lambs. The values found for hardness, however, are much lower than those reported in animals of similar characteristics by other authors [17,42,53,54]. Martinez-Cerezo, Sanudo, Panea, Medel, Delfa, Sierra, Beltran, Cepero, and Olleta [7], in a study that compared the Merino with other breeds and studied the effect of slaughter weight (20 kg or 30 kg live weight), found that there were no differences in texture depending on the animal’s weight and that Merino meat was more tender than that of the other breeds, which may be due to the high solubility of collagen in this breed. This would explain why ewes’ meat, which has a higher amount of collagen than that of lambs, is not, however, harder than lambs’ meat.

3.9. Meat Color

The results for meat color are shown in Table 8. The values match with those described by other authors for the Merino breed in animals of similar weights [17,22,23,44,54]. The ewes’ meat registered lower values of luminosity (L*) and tone (hab) and higher values of red index (a*) than the lambs’ meat. The color of the meat is mostly due to myoglobin and its iron atom, which explains why the ewes’ meat is redder than that of the lambs’, since the content of myoglobin and iron increases with the age of the animal, and the ewes’ meat has a higher iron content than that of lambs’ [35], as shown in Table 6. The absence of effect of sex on meat color when the animals are young has been described by several authors [22,23].

4. Conclusions

There was no effect of animal type (males, females, and ewes) on pH, and differences in subcutaneous fat color, lipid oxidation, and texture were irrelevant from a practical point of view. The tissue composition, in the three groups of animals, reflects a high percentage of saleable meat, without there being a penalty for the intensive fattening in any of the groups. The ewes’ meat presented a higher percentage of moisture, collagen, ash, calcium, iron, α-tocopherol, and retinol than the lambs’ meat. In addition, it had a higher content of DHA and CLA, as well as lower values for the ratio n6/n3, which is beneficial for health, although it also contained more fat, saturated fat, and cholesterol than the lambs’ meat. In view of the results obtained, we can consider that ewes’ meat, despite there being some differences between male and female lambs, has a good nutritional composition and adequate physicochemical characteristics and can be an attractive product for marketing.

Author Contributions

Conceptualization, B.P., M.J.A. and G.R.; methodology, B.P., M.J.A. and G.R.; formal analysis, B.P., M.J.A. and G.R.; investigation, B.P., M.J.A. and G.R.; resources, B.P., M.J.A. and G.R.; data curation, B.P., M.J.A. and G.R.; writing—original draft preparation, B.P., M.J.A. and G.R.; writing—review and editing, B.P., M.J.A. and G.R.; funding acquisition, M.J.A. All authors have read and agreed to the published version of the manuscript.

Funding

This research was funded by the Asociación Nacional de Criadores de Ganado Merino.

Institutional Review Board Statement

Ethical review and approval were waived for this study since all the animals came from commercial farms and were slaughtered at a commercial abattoir, and no additional handling of the animals was made at any of the research centers’ facilities.

Informed Consent Statement

The study was carried out at the request of the breeders’ association, whose express consent is reflected in the agreement signed with the research centers to which the authors belong.

Data Availability Statement

The data presented in this study are available on request from the corresponding author.

Acknowledgments

To the Asociación Nacional de Criadores de Ganado Merino, for their financial support; to the slaughterhouse of Agudo for the use of their facilities; to Luis Alfonso Barba, Oliva Opolo, Servicio General de Investigación Agraria de la Universidad de Sevilla, Andrés Domínguez, Angelines Legua, Juan Ramón Bertolín and the Servicio de Análisis Químico (Servicio General de Apoyo a la Investigación—SAI) de la Universidad de Zaragoza, for their technical support.

Conflicts of Interest

The authors declare no conflict of interest.

References

  1. EEA (European Environment Agency). High Nature Value Farmland: Characteristics, Trends and Policy Challenges; European Environment Agency: Copenhagen, Denmark, 2004. [Google Scholar]
  2. Rodríguez-Ortega, T.; Olaizola, A.M.; Bernués, A. A novel management-based system of payments for ecosystem services for targeted agri-environmental policy. Ecosyst. Serv. 2018, 34, 74–84. [Google Scholar] [CrossRef]
  3. Bernués, A.; Ripoll, G.; Panea, B. Consumer segmentation based on convenience orientation and attitudes towards quality attributes of lamb meat. Food Qual. Prefer. 2012, 26, 211–220. [Google Scholar] [CrossRef]
  4. Bernués, A.; Rodríguez-Ortega, T.; Ripoll-Bosch, R.; Alfnes, F. Socio-cultural and economic valuation of ecosystem services provided by Mediterranean mountain agroecosystems. PLoS ONE 2014, 9, e102479. [Google Scholar] [CrossRef]
  5. Ripoll-Bosch, R.; Álvarez-Rodríguez, J.; Blasco, I.; Picazo, R.; Joy, M. Producción de leche y crecimiento de corderos en la raza Ojinegra de Teruel. ITEA Inf. Técnica Económica Agrar. 2012, 108, 298–311. [Google Scholar]
  6. Martinez-Cerezo, S.; Sanudo, C.; Panea, B.; Olleta, J.L. Breed, slaughter weight and ageing time effects on consumer appraisal of three muscles of lamb. Meat Sci. 2005, 69, 797–805. [Google Scholar] [CrossRef]
  7. Martinez-Cerezo, S.; Sanudo, C.; Panea, B.; Medel, I.; Delfa, R.; Sierra, I.; Beltran, J.A.; Cepero, R.; Olleta, J.L. Breed, slaughter weight and ageing time effects on physico-chemical characteristics of lamb meat. Meat Sci. 2005, 69, 325–333. [Google Scholar] [CrossRef] [PubMed]
  8. Bialkova, S.; Sasse, L.; Fenko, A. The role of nutrition labels and advertising claims in altering consumers’ evaluation and choice. Appetite 2016, 96, 38–46. [Google Scholar] [CrossRef] [PubMed]
  9. European Union. Reglamento (CE) n.o 1/2005 del Consejo, de 22 de Diciembre de 2004, Relativo a la Protección de los Animales Durante el Transporte y las Operaciones Conexas y por el Que se Modifican las Directivas 64/432/CEE y 93/119/CE y el Reglamento (CE) n.o 1255/97; European Union: Brussels, Belgium, 2005; pp. 1–44. [Google Scholar]
  10. Panea, B.; Ripoll, G.; Albertí, P.; Joy, M.; Teixeira, A. Atlas de disección de la canal de los ruminantes. ITEA Inf. Técnica Económica Agrar. 2012, 108, 1–105. [Google Scholar]
  11. Bertolín, J.; Joy, M.; Rufino-Moya, P.; Lobón, S.; Blanco, M. Simultaneous determination of carotenoids, tocopherols, retinol and cholesterol in ovine lyophilised samples of milk, meat, and liver and in unprocessed/raw samples of fat. Food Chem. 2018, 257, 182–188. [Google Scholar] [CrossRef]
  12. Ripoll, G.; Alcalde, M.J.; Córdoba, M.G.; Casquete, R.; Argüello, A.; Ruiz-Moyano, S.; Panea, B. Influence of the Use of Milk Replacers and pH on the Texture Profiles of Raw and Cooked Meat of Suckling Kids. Foods 2019, 8, 589. [Google Scholar] [CrossRef]
  13. Aldai, N.; Osoro, K.; Barron, L.; Nájera, A. Gas–liquid chromatographic method for analysing complex mixtures of fatty acids including conjugated linoleic acids (cis9trans11 and trans10cis12 isomers) and long-chain (n-3 or n-6) polyunsaturated fatty acids: Application to the intramuscular fat of beef meat. J. Chromatogr. 2006, 1110, 133–139. [Google Scholar]
  14. Bruna, J.M.; Ordóñez, J.A.; Fernández, M.; Herranz, B.; de la Hoz, L. Microbial and physico-chemical changes during the ripening of dry fermented sausages superficially inoculated with or having added an intracellular cell-free extract of Penicillium aurantiogriseum. Meat Sci. 2001, 59, 87–96. [Google Scholar] [CrossRef] [PubMed]
  15. Lorenzo, J.M.; Domínguez, R.; Pateiro, M.; Munekata, P.E. Methods to Assess the Quality of Meat Products; Springer: New York, NY, USA, 2022. [Google Scholar]
  16. Blanco, C.; Bodas, R.; Prieto, N.; Andrés, S.; López, S.; Giráldez, F.J. Concentrate plus ground barley straw pellets can replace conventional feeding systems for light fattening lambs. Small Rumin. Res. 2014, 116, 137–143. [Google Scholar] [CrossRef]
  17. Andres, S.; Valdes, C.; Santos, A.; Mateo, J.; Giraldez, F.J. Effects of Birth Weight on Animal Performance, Fattening Traits and Meat Quality of Lambs. Animals 2020, 10, 2364. [Google Scholar] [CrossRef]
  18. Novoselec, J.; Salavardic, Z.K.; Samac, D.; Ronta, M.; Steiner, Z.; Sicaja, V.; Antunovic, Z. Slaughter Indicators, Carcass Measures, and Meat Quality of Lamb Fattened with Spelt (Triticum aestivum spp. Spelta L.). Foods 2021, 10, 726. [Google Scholar] [CrossRef]
  19. Yang, A.; Larsen, T.W.; Tume, R.K. Carotenoid and retinol concentrations in serum, adipose tissue and liver and carotenoid transport in sheep, goats and cattle. Aust. J. Agric. Res. 1992, 43, 1809–1817. [Google Scholar] [CrossRef]
  20. Sañudo, C.; Campo, M.M.; Muela, E.; Olleta, J.L.; Delfa, R.; Jiménez-Badillo, R.; Alcalde, M.J.; Horcada, A.; Oliveira, I.; Cilla, I. Carcass characteristics and instrumental meat quality of suckling kids and lambs. Span. J. Agric. Res. 2012, 10, 690. [Google Scholar] [CrossRef]
  21. Alcalde, M.J.; Sañudo, C.; Osorio, J.C.; Olleta, J.L.; Sierra, I. Evaluación de la Calidad de la Canal y de la Carne en Canales Ovinas Ligeras del Tipo Comercial “Ternasco”. Inf. Técnico Económicas Agrar. (ITEA) 1999, 95, 49–64. [Google Scholar]
  22. Rodríguez, A.B.; Bodas, R.; Landa, R.; López-Campos, Ó.; Mantecón, A.R.; Giráldez, F.J. Animal performance, carcass traits and meat characteristics of Assaf and Merino×Assaf growing lambs. Livest. Sci. 2011, 138, 13–19. [Google Scholar] [CrossRef]
  23. Tejeda, J.F.; Peña, R.E.; Andrés, A.I. Effect of live weight and sex on physico-chemical and sensorial characteristics of Merino lamb meat. Meat Sci. 2008, 80, 1061–1067. [Google Scholar] [CrossRef]
  24. Lobón, S.; Sanz, A.; Blanco, M.; Ripoll, G.; Joy, M. The type of forage and condensed tannins in dams’ diet: Influence on meat shelf life of their suckling lambs. Small Rumin. Res. 2017, 154, 115–122. [Google Scholar] [CrossRef]
  25. Baila, C.; Lobon, S.; Blanco, M.; Casasus, I.; Ripoll, G.; Joy, M. Sainfoin in the Dams’ Diet as a Source of Proanthocyanidins: Effect on the Growth, Carcass and Meat Quality of Their Suckling Lambs. Animals 2022, 12, 408. [Google Scholar] [CrossRef] [PubMed]
  26. Juarez, M.; Alcalde, M.J.; Horcada, A.; Molina, A. Southern Spain lamb types discrimination by using visible spectroscopy and basic physicochemical traits. Meat Sci. 2008, 80, 1249–1253. [Google Scholar] [CrossRef]
  27. Panea, B.; Joy, M.; Ripoll, G.; Boscolo, J.; Albertí, P. Características de la canal y de la carne del lechal de raza Ansontana: Efecto del sexo. ITEA Inf. Técnico Económicas Agrar. 2010, 106, 1–16. [Google Scholar]
  28. della Malva, A.; Albenzio, M.; Annicchiarico, G.; Caroprese, M.; Muscio, A.; Santillo, A.; Marino, R. Relationship between slaughtering age, nutritional and organoleptic properties of Altamurana lamb meat. Small Rumin. Res. 2016, 135, 39–45. [Google Scholar] [CrossRef]
  29. Tschirhart-Hoelscher, T.E.; Baird, B.E.; King, D.A.; McKenna, D.R.; Savell, J.W. Physical, chemical, and histological characteristics of 18 lamb muscles. Meat Sci 2006, 73, 48–54. [Google Scholar] [CrossRef]
  30. Ramírez-Zamudio, G.D.; Silva, L.H.; Vieira, N.M.; Vilela, R.S.; Assis, D.E.; Assis, G.J.; Estrada, M.M.; Rodrigues, R.T.; Duarte, M.S.; Chizzotti, M.L. Effect of short-term dietary protein restriction before slaughter on meat quality and skeletal muscle metabolomic profile in culled ewes. Livest. Sci. 2022, 261, 104956. [Google Scholar] [CrossRef]
  31. Osorio, M.T.; Zumalacárregui, J.M.; Bermejo, B.; Lozano, A.; Figueira, A.C.; Mateo, J. Effect of ewe’s milk versus milk-replacer rearing on mineral composition of suckling lamb meat and liver. Small Rumin. Res. 2007, 68, 296–302. [Google Scholar] [CrossRef]
  32. Holman, B.W.B.; Hayes, R.C.; Newell, M.T.; Refshauge, G.; McGrath, S.R.; Fowler, S.M.; Shanley, A.R.; Hopkins, D.L. The quality and mineral composition of the longissimus lumborum and semimembranosus muscles from lambs fed perennial or annual wheat forage with or without lucerne. Meat Sci 2021, 180, 108564. [Google Scholar] [CrossRef]
  33. Campo, M.d.M.; Silva, A.; Guerrero, A.; Castro, L.G.; Olleta, J.L.; Martin, N.; Fernández, C.; López, F. Nutrient composition of Spanish small ruminants. J. Food Compos. Anal. 2021, 102, 104019. [Google Scholar] [CrossRef]
  34. Pannier, L.; Gardner, G.E.; O’Reilly, R.A.; Pethick, D.W. Factors affecting lamb eating quality and the potential for their integration into an MSA sheepmeat grading model. Meat Sci. 2018, 144, 43–52. [Google Scholar] [CrossRef]
  35. Ponnampalam, E.N.; Plozza, T.; Kerr, M.G.; Linden, N.; Mitchell, M.; Bekhit, A.E.A.; Jacobs, J.L.; Hopkins, D.L. Interaction of diet and long ageing period on lipid oxidation and colour stability of lamb meat. Meat Sci. 2017, 129, 43–49. [Google Scholar] [CrossRef]
  36. Intakes, I.R.D. Nutrient Reference Values for Australia and New Zealand; Commonwealth Department of Health and Ageing: Brisbane, Australia, 2005. [Google Scholar]
  37. Álvarez, R.; Meléndez-Martínez, A.; Vicario, I.; Alcalde, M. Effect of pasture and concentrate diets on concentrations of carotenoids, vitamin A and vitamin E in plasma and adipose tissue of lambs. J. Food Compos. Anal. 2014, 36, 59–65. [Google Scholar] [CrossRef]
  38. Sauvant, P.; Cansell, M.; Hadj Sassi, A.; Atgié, C. Vitamin A enrichment: Caution with encapsulation strategies used for food applications. Food Res. Int. 2012, 46, 469–479. [Google Scholar] [CrossRef]
  39. Ortega, R.M.; Mena, M.C.; Andrés, P. Vitamina A. In Tratado de Nutrición. Tomo I: Bases Fisiológicas y Bioquímicas de la Nutrición, 2nd ed.; Gil, A., Sánchez de Medina, F., Eds.; Médica Paramericana S.A.: Madrid, Spain, 2005; pp. 547–569. [Google Scholar]
  40. Ramírez, M.C.; Quiles, J.L. Vitamina C, vitamina E y coenzima Q. In Tratado de Nutrición, Tomo I: Bases Fisiológicas y Bioquímicas de la Nutrición, 2nd ed.; Gil, A., Sánchez de Medina, F., Eds.; Médica Paramericana S.A.: Madrid, Spain, 2005; pp. 481–500. [Google Scholar]
  41. Juarez, M.; Horcada, A.; Alcalde, M.J.; Aldai, N.; Polvillo, O.; Valera, M.; Molina, A. Short communication: Fatty acid composition of lamb fat depots as an origin discriminator. Span. J. Agric. Res. 2010, 8, 976–980. [Google Scholar] [CrossRef]
  42. Santos, A.; Giraldez, F.J.; Mateo, J.; Frutos, J.; Andres, S. Programming Merino lambs by early feed restriction reduces growth rates and increases fat accretion during the fattening period with no effect on meat quality traits. Meat Sci. 2018, 135, 20–26. [Google Scholar] [CrossRef] [PubMed]
  43. Andres, S.; Moran, L.; Aldai, N.; Tejido, M.L.; Prieto, N.; Bodas, R.; Giraldez, F.J. Effects of linseed and quercetin added to the diet of fattening lambs on the fatty acid profile and lipid antioxidant status of meat samples. Meat Sci. 2014, 97, 156–163. [Google Scholar] [CrossRef] [PubMed]
  44. Juarez, M.; Horcada, A.; Alcalde, M.J.; Valera, M.; Polvillo, O.; Molina, A. Meat and fat quality of unweaned lambs as affected by slaughter weight and breed. Meat Sci. 2009, 83, 308–313. [Google Scholar] [CrossRef]
  45. Ripoll, G.; Failla, S.; Panea, B.; Hocquette, J.-F.; Dunner, S.; Olleta, J.L.; Christensen, M.; Ertbjerg, P.; Richardson, I.; Contò, M. Near-infrared reflectance spectroscopy for predicting the phospholipid fraction and the total fatty acid composition of freeze-dried beef. Sensors 2021, 21, 4230. [Google Scholar] [CrossRef]
  46. Horcada, A.L.; Polvillo, O. Conceptos básicos sobre la carne. In La Producción de Carne en Andalucía; University of Seville: Sevilla, Spain, 2010. [Google Scholar]
  47. Juarez, M.; Horcada, A.; Alcalde, M.J.; Valera, M.; Mullen, A.M.; Molina, A. Estimation of factors influencing fatty acid profiles in light lambs. Meat Sci. 2008, 79, 203–210. [Google Scholar] [CrossRef]
  48. Santos-Silva, J.; Bessa, R.; Santos-Silva, F. Effect of genotype, feeding system and slaughter weight on the quality of light lambs: II. Fatty acid composition of meat. Livest. Prod. Sci. 2002, 77, 187–194. [Google Scholar] [CrossRef]
  49. Sanz Paris, A.; Mari Sanchis, A.; Garcia Malpartida, K.; Garcia Gomez, M.C. Proposed profile of omega 3 fatty acids in enteral nutrition. Nutr. Hosp. 2012, 27, 1782–1802. [Google Scholar] [CrossRef] [PubMed]
  50. Gutiérrez, J.I.; Tejeda, J.F.; Parra, V.; Andrés, A.I. Evolution of the fatty acid composition and oxidative stability of Merino lamb meat stored under different modified atmospheres. Ir. J. Agric. Food Res. 2013, 52, 81–92. [Google Scholar]
  51. Moran, L.; Andres, S.; Bodas, R.; Prieto, N.; Giraldez, F.J. Meat texture and antioxidant status are improved when carnosic acid is included in the diet of fattening lambs. Meat Sci. 2012, 91, 430–434. [Google Scholar] [CrossRef]
  52. Szczesniak, A.S. Texture is a sensory property. Food Qual. Prefer. 2002, 13, 215–225. [Google Scholar] [CrossRef]
  53. Andres, S.; Jaramillo, E.; Mateo, J.; Caro, I.; Carballo, D.E.; Lopez, S.; Giraldez, F.J. Grain grinding size of cereals in complete pelleted diets for growing lambs: Effects on animal performance, carcass and meat quality traits. Meat Sci. 2019, 157, 107874. [Google Scholar] [CrossRef]
  54. Lopez-Campos, O.; Bodas, R.; Prieto, N.; Frutos, P.; Andres, S.; Giraldez, F.J. Vinasse added to the concentrate for fattening lambs: Intake, animal performance, and carcass and meat characteristics. J. Anim. Sci. 2011, 89, 1153–1162. [Google Scholar] [CrossRef]
Figure 1. Evolution of lipid oxidation values (TBAR) over storage time, depending on the type of animal (means and standard error bars). a, b—Differences among batches (p < 0.05).
Figure 1. Evolution of lipid oxidation values (TBAR) over storage time, depending on the type of animal (means and standard error bars). a, b—Differences among batches (p < 0.05).
Animals 13 02756 g001
Table 1. Means and standard error (s.e.) for the color of subcutaneous fat depending on the type of animal. p-Values (significance of the animal type effect) for the different variables.
Table 1. Means and standard error (s.e.) for the color of subcutaneous fat depending on the type of animal. p-Values (significance of the animal type effect) for the different variables.
MalesFemalesEwess.e.p-Values
L*63.4 b65.2 b70.4 a0.795<0.001
a*4.63.93.80.3300.577
b*15.114.114.50.3020.429
hab73.574.776.00.8960.560
C*ab15.814.715.10.3750.465
a, b—Differences among means (p < 0.05).
Table 2. Means and standard error (s.e.) for shoulder weight (g) and tissue composition (percentage over shoulder weight) depending on the type of animal. p-Values (significance of animal type effect) for the different variables.
Table 2. Means and standard error (s.e.) for shoulder weight (g) and tissue composition (percentage over shoulder weight) depending on the type of animal. p-Values (significance of animal type effect) for the different variables.
MalesFemalesEwess.e.p-Values
Shoulder weight (g)1163.95 b1074.88 b2425.17 a191.19<0.001
Muscle (%)58.50 a52.94 b57.85 a0.910.007
Fat (%)16.5221.3820.941.140.160
Bones and others (%)23.7424.4220.110.850.072
a, b—Differences among means (p < 0.05).
Table 3. Means and standard error (s.e.) for the pH and proximal composition of the meat depending on the type of animal. p-Values (significance of animal type effect) for the different variables.
Table 3. Means and standard error (s.e.) for the pH and proximal composition of the meat depending on the type of animal. p-Values (significance of animal type effect) for the different variables.
MalesFemalesEwess.e.p-Values
pH5.705.745.680.0480.650
Moisture (%)75.69 a75.51 a71.75 b0.310<0.001
Protein content (%)22.0922.1522.160.1510.932
Collagen content (%)0.901 b0.776 b2.244 a0.078<0.001
Intramuscular fat content (%)3.38 b3.59 b6.89 a0.312<0.001
Saturated fat content (%)0.95 b1.09 b2.29 a0.150<0.001
Ash content (%)2.15 b2.04 b3.39 a0.06<0.001
a, b—Differences among means (p < 0.05).
Table 4. Means (mg/100 g) and standard error (s.e.) for the mineral content of meat depending on the type of animal. p-Values (significance of the animal type effect) for the different variables.
Table 4. Means (mg/100 g) and standard error (s.e.) for the mineral content of meat depending on the type of animal. p-Values (significance of the animal type effect) for the different variables.
MalesFemalesEwess.e.p-Values
Ca6.1 b6.3 b11.5 a0.24<0.001
Fe1.9 b1.9 b3.3 a0.36<0.001
K413.4 a404.6 a345.9 b0.02<0.001
Mg28.0 a28.7 a25.3 b0.06<0.001
Na62.1 a60.5 a46.9 b0.05<0.001
P233.0 a237.8 a197.0 b0.02<0.001
Zn2.62.62.80.230.216
a, b—Differences among means (p < 0.05).
Table 5. Means and standard error (s.e.) for tocopherol, retinol, lutein, and cholesterol content depending on the type of animal. p-Values (significance of the animal type effect) for the different variables.
Table 5. Means and standard error (s.e.) for tocopherol, retinol, lutein, and cholesterol content depending on the type of animal. p-Values (significance of the animal type effect) for the different variables.
MalesFemalesEwess.e.p-Values
α-Tocopherol (µg/g fresh matter)0.64 b0.90 b4.80 a0.367<0.001
γ-Tocopherol (µg/g fresh matter)0.100.140.090.0090.105
δ-Tocopherol (µg/g fresh matter)0.014 b0.020 a0.016 b0.001<0.001
Retinol (µg/g fresh matter)0.038 b0.047 b0.060 a0.0030.002
Lutein (ng/g fresh matter)n.d. 0.531 b6.490 a0.9770.006
Cholesterol (mg/g fresh matter)0.680 b0.681 b0.769 a0.0120.001
a, b—Differences among means (p < 0.05). n.d., Not detectable.
Table 6. Means (g/in 100 g of methylated fatty acids) and standard error (s.e.) for fatty acids depending on the type of animal. p-Values (significance of the animal type effect) for the different variables.
Table 6. Means (g/in 100 g of methylated fatty acids) and standard error (s.e.) for fatty acids depending on the type of animal. p-Values (significance of the animal type effect) for the different variables.
MalesFemalesEwess.e.p-Values
C80.035 b0.048 ab0.065 a0.0070.021
C100.1580.1500.1670.0150.702
C110.034 b0.020 b0.056 a0.0060.0005
C120.450 b0.450 b1.382 a0.090<0.0001
C130.5470.0460.0610.0040.075
C142.8152.9342.4590.1720.147
C14:10.2550.2410.2550.0200.833
C150.5230.5240.4660.0350.427
C15:10.1090.1170.1470.0110.067
C1622.98523.44623.3990.3890.658
C16:12.0272.1532.0380.0960.600
C17:01.400 a1.261 a0.845 b0.047<0.001
C17:10.7180.7880.7840.3750.347
C1812.620 a13.217 ab13.863 b0.3410.051
C18:1n9t0.533 ab0.548 a0.381 b0.0500.048
C18:1n11t0.1360.0900.1160.0160.153
C18:1n9c44.23 a42.988 b43.246 ab0.3310.032
C18:2n6t0.14110.1120.1470.110.063
C18:2n6c7.628 a7.826 a5.755 b0.4780.009
C18:3n6g0.1270.1040.0840.0170.224
C18:3n3a0.329 b0.378 b0.954 a0.044<0.001
C200.1150.0960.1140.01070.382
C220.027 b0.026 b0.067 a0.004<0.001
C20:1n90.078 b0.065 b0.128 a0.009<0.001
9c-11tCLA0.357 b0.377 b0.577 a0.038<0.001
9c-11cCLA0.0930.0630.0880.0120.177
10t12cCLA0.0840.0570.0820.0120.232
C210.020 b0.013 b0.048 a0.004<0.001
C20:20.116 b0.116 b0.196 a0.015<0.001
C20:3n60.074 b0.068 b0.136 a0.011<0.001
C220.027 b0.026 b0.067 a0.004<0.001
C20:3n30.3410.2940.3470.0330.470
C230.031 b0.030 b0.066 a0.0070.002
C22:10.035 b0.031 b0.065 a0.005<0.001
C20:4n6n0.539 a0.445 ab0.433 b0.0290.027
C22:20.010 b0.010 b0.034 a0.002<0.001
C24:00.010 b0.010 b0.034 a0.002<0.001
C20:5n3(EPA)0.3000.3510.3390.0320.503
C24:10.010 b0.010 b0.034 a0.002<0.001
DPA0.3180.3560.3370.0330.827
C22:6n3(DHA)0.131 b0.150 ab0.199 a0.0150.010
Total n68.44 a8.49 a6.42 b0.3200.007
Total n31.18 b1.24 b1.98 a0.082<0.001
Ratio n6/n37.40 a7.07 a3.28 b0.414<0.001
Total SFA41.342.343.10.540.075
Total MUFA48.147.047.20.330.054
Total PUFA10.5910.709.710.540.380
a, b—Differences among batches (p < 0.05). SFA—saturated fatty acid; MUFA—monounsaturated fatty acid; PUFA—polyunsaturated fatty acid.
Table 7. Means and standard error (s.e.) for texture variables depending on the type of animal. p-Values (significance of the animal type effect) for the different variables.
Table 7. Means and standard error (s.e.) for texture variables depending on the type of animal. p-Values (significance of the animal type effect) for the different variables.
MalesFemalesEwess.e.p-Values
Hardness (N)50.851.161.20.080.321
Adhesiveness (MJ)0.220.190.222.300.937
Cohesiveness (dimensionless)0.24 ab0.27 a0.22 b0.010.004
Springiness (dimensionless)2.48 b2.70 ab2.81 a0.050.020
a, b—Differences among batches (p < 0.05).
Table 8. Means and standard error (s.e.) for muscle color depending on the type of animal. p-Values (significance of the animal type effect) for the different variables.
Table 8. Means and standard error (s.e.) for muscle color depending on the type of animal. p-Values (significance of the animal type effect) for the different variables.
MalesFemalesEwess.e.p-Values
L*44.04 b41.39 b37.15 a0.93<0.0001
a*6.20 b5.82 b10.33 a0.76<0.0001
b*8.518.128.211.070.960
C*ab10.6010.1013.41.220.130
hab52.47 b53.35 b35.94 a3.20<0.0001
a, b—Differences among means (p < 0.05).
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content.

Share and Cite

MDPI and ACS Style

Panea, B.; Ripoll, G.; Alcalde, M.J. Nutritional Quality of Meat from Barren Merino Ewes in Comparison to Meat from Traditional Lambs. Animals 2023, 13, 2756. https://doi.org/10.3390/ani13172756

AMA Style

Panea B, Ripoll G, Alcalde MJ. Nutritional Quality of Meat from Barren Merino Ewes in Comparison to Meat from Traditional Lambs. Animals. 2023; 13(17):2756. https://doi.org/10.3390/ani13172756

Chicago/Turabian Style

Panea, Begoña, Guillermo Ripoll, and María J. Alcalde. 2023. "Nutritional Quality of Meat from Barren Merino Ewes in Comparison to Meat from Traditional Lambs" Animals 13, no. 17: 2756. https://doi.org/10.3390/ani13172756

Note that from the first issue of 2016, this journal uses article numbers instead of page numbers. See further details here.

Article Metrics

Back to TopTop