During early pregnancy when placental growth is fastest, the level of arginine and its precursor ornithine is elevated in porcine amniotic and allantoic fluid (Wu et al., 2006). This abundance is associated with a high syntheses rate of nitric oxide and polyamine in the porcine placentae (Self et al., 2004). Wu et al. (2004) provided evidence showing that both nitric oxide and polyamines play key roles in angiogenesis, which is a critical event during placental growth and fetal development (Town et al., 2005). These observations led to the hypothesis that arginine is important for placental and fetal development. Recently, Bérard and Bee (2010) showed that supplementing the gestation diet with l-arginine, positively affected primary myofiber hyperplasia in semitendinosus muscles (STM) of 75 d old fetuses. Because primary fibers serve as a scaffold for the formation of secondary fibers we hypothesized that offspring from sows fed extra arginine bare the potential for greater fiber hyperplasia and ultimately more efficient postnatal growth. Especially low-birth weight pigs display low myofiber numbers. Thus, the goal of this experiment was to evaluate if arginine supplementation of the dams has a positive effect on muscle development of such piglets.
Offspring born from normal litter size (10 to 15 piglets) but classified as having lower than average birth weight (average of the sow herd used: 1.46 ± 0.2 kg; mean ± s.d.) carry at birth negative phenotypic traits normally associated with intrauterine growth restriction, such as brain-sparing and impaired myofiber hyperplasia. The objective of the study was to assess long-term effects of intrauterine crowding by comparing postnatal performance, carcass characteristics and pork quality of offspring born from litters with higher (>1.7 kg) or lower (<1.3 kg) than average litter birth weight. From a population of multiparous Swiss Large White sows (parity 2 to 6), 16 litters with high (H = 1.75 kg) or low (L = 1.26 kg) average litter birth weight were selected. At farrowing, two female pigs and two castrated pigs were chosen from each litter: from the H-litters those with the intermediate (HI = 1.79 kg) and lowest (HL = 1.40 kg) birth weight, and from L-litters those with the highest (LH = 1.49 kg) and intermediate (LI = 1.26 kg) birth weight. Average birth weight of the selected HI and LI piglets differed (P < 0.05), whereas birth weight of the HL- and LH-piglets were similar (P > 0.05). These pigs were fattened in group pen and slaughtered at 165 days of age. Pre-weaning performance of the litters and growth performance, carcass and meat quality traits of the selected pigs were assessed. Number of stillborn and pig mortality were greater (P < 0.05) in L- than in H-litters. Consequently, fewer (P < 0.05) piglets were weaned and average litter weaning weight decreased by 38% (P < 0.05). The selected pigs of the L-litters displayed catch-up growth during the starter and grower–finisher periods, leading to similar (P > 0.05) slaughter weight at 165 days of age. However, HL-gilts were more feed efficient and had leaner carcasses than HI-, LH- and LI-pigs (birth weight class × gender interaction P < 0.05). Meat quality traits were mostly similar between groups. The marked between-litter birth weight variation observed in normal size litters had therefore no evident negative impact on growth potential and quality of pigs from the lower birth weight group.
Recent evidence suggests that different patterns of prenatal survival causing different levels of intrauterine crowding are occurring in prolific sows bearing litters with 10–15 piglets born, resulting in marked differences in average litter birth weight. Because early intrauterine crowding of embryos is known to have negative effects on prenatal development, the objective of the study was to compare litter characteristics, as well as histomorphometrical and molecular traits of myofibers of selected offspring born from litters of high (H: >1.7kg) and low (L: <1.3kg) average birth weight. The selected newborn littermates were either two females representing the intermediate (HI: 1.73kg) and low (HL: 1.41kg) birth weight from H-litters or two females representing the intermediate (LI: 1.26kg) and high (LH: 1.55kg) birth weight from L-litters. These piglets were sacrificed the day of birth and the longissimus (LM) and semitendinosus (ST) muscles were collected. The average birth weight of the selected HI and LI piglets differed (P<0.05) whereas that of the HL and LH piglets was similar. From birth to weaning, H-offspring grew faster (P<0.05), which was associated with greater (P<0.05) body weight loss of H-compared with L-sows during lactation, where their feed intake did not differ. In LI offspring, brain proportion of birth weight and brain to ST ratio was greater (P<0.05) than in HI but similar between LH and HL progenies. Expressed per mm2, the dark portion of the ST of HI piglets had fewer (P<0.05) primary but similar secondary myofiber numbers compared to LI progeny. Nevertheless, due to the larger ST, total myofiber number was greater in HI and LH than LI piglets. In the LM, myofiber characteristics were similar across birth weight classes, except for the greater (P<0.10) secondary to primary myofiber ratio in HL than LH offspring. In the ST, but not in the LM, the expression of the myoblast differentiation factor 1 was greater (P<0.05) in LH than HL offspring. No birth weight class differences occurred in myosin heavy chain isoform distribution in the LM. In conclusion, female progenies falling in the mid-weight range of the L-litters, but not their heavier littermates, carried some negative phenotypic traits normally associated with intrauterine growth restriction, such as greater brain to ST ratio and impaired myofiber hyperplasia.
There are indications that intrauterine crowding may cause intrauterine growth retardation with the possibility of an impaired myofiber hyperplasia. The aim of the study was to confirm this by generating large differences in uterine space using sows that were unilaterally hysterectomized-ovariectomized (HO; crowded) or unilaterally oviduct ligated (OL; non-crowded). In the study, seven HO and seven OL Swiss Large White third parity sows were used. At farrowing, litter size and litter birth weight were determined. Subsequently, within each litter two male and two female progenies each with the respectively lowest (L) and highest (H) birth weight were sacrificed. Internal organs and brain were weighed, and longissimus (LM) and semitendinosus muscle (SM) samples were collected. Histological analyses were performed in both muscles using mATPase staining after preincubation at pH 4.3 and 10.2. Myosin heavy chain (MyHC) polymorphism was determined in the LM by means of SDS-PAGE. The number of piglets born alive was similar in both sow groups, but litter size expressed per uterine horn was lower (P < 0.05) in OL than HO sows. Consequently, OL progeny were markedly heavier (P < 0.01). Regardless of gender, the organs, the brain and the SM were heavier (P < 0.001) in OL and H compared with HO and L offspring, respectively. Compared with HO pigs, the SM of OL offspring tended (P < 0.1) to have more myofibers, which were of larger (P < 0.05) size. However, myofiber density appeared to be lower (P < 0.1) in the SM of OL than HO pigs. The impact of birth weight on myofiber characteristics was limited to the lower (P < 0.05) myofiber density in the SM and the larger (P < 0.01) myofiber size in the light portion of the SM of H than L offspring, whereas myofiber hyperplasia did not differ between birth weight categories. The SM, but not the LM, of male offspring had a greater (P < 0.05) myofiber density. This did not affect total SM myofiber number. The relative abundance of fetal and type I MyHC in the LM was lower (P < 0.05) and that of type II MyHC was greater (P < 0.001) in OL than HO pigs. The current data suggest that regardless of birth weight and gender, in the LM and SM of individuals born from a crowded environment, not only hyperplasia but also hypertrophy of myofibers is impaired and their maturity seems delayed.
High prolificacy of sows and increased fetal survival lead to greater incidence of intrauterine crowding (IUC), which may then affect pre- and postnatal development of the progeny. The aim of the study was to assess the impact of IUC, using unilaterally hysterectomized-ovariectomized gilts (UHO), on organ and muscle development of their progeny at birth. In the study, 7 UHO and 7 intact control (Con) Swiss Large White gilts were used. At farrowing, if available, 3 male and 3 female progeny with a low (>0.8 and <1.2 kg), medium (>1.2 and <1.4 kg), and high (>1.6 kg) birth weight (BtW) were killed. Internal organs and brain were weighed, and semitendinosus (STN), psoas major (PM), and rhomboideus (RH) muscles were collected. Histological analyses were performed in PM, RH, and STN (dark and light portion) using myofibrillar ATPase staining after preincubation at pH 10.3. Myosin heavy chain (MyHC) polymorphism was determined in the PM using SDS-PAGE gel electrophoresis. Despite that only one-half of the uterine space was available, litter size was smaller (P < 0.01) only by 35% in UHO compared with Con gilts. However, UHO progeny tended (P = 0.06) to be lighter than Con progeny. The average BtW of the selected piglets did not differ (P = 0.17) between the 2 sow groups, whereas PM and kidneys tended to be lighter (P < 0.07) in UHO than in Con progeny. Compared with Con progeny, the PM and the STNdark of UHO progeny had fewer (P ≤ 0.05) secondary and total myofibers as well as fewer (P = 0.10) primary myofibers in the PM. In the RH, the secondary-to-primary myofiber ratio was smaller (P < 0.01) in UHO than in Con progeny, whereas the total number of myofibers did not (P = 0.96) differ. The relative abundance of fetal MyHC was less (P = 0.02) and that of type I MyHC tended (P = 0.09) to be greater in UHO than in Con offspring. With increasing BtW, organ and brain weights increased (P < 0.01). Muscle cross-sectional area and total number of myofibers in the light portion of the STN were greater (P < 0.05) in high and medium than in low piglets. In conclusion, IUC reduced hyperplasia of secondary and total myofibers in the STNdark and PM. These effects were independent of the BtW and sex.