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Review

Genetic Effects of Single Nucleotide Polymorphisms in the Goat GDF9 Gene on Prolificacy: True or False Positive?

1
College of Animal Science and Technology, Northwest A&F University, Shaanxi Key Laboratory of Molecular Biology for Agriculture, Yangling 712100, China
2
Shaanxi Provincial Engineering and Technology Research Center of Cashmere Goats, Yulin University, Yulin 719000, China
3
Life Science Research Center, Yulin University, Yulin 719000, China
4
School of Medicine, Sun Yat-sen University, Guangzhou 510080, China
5
School of Life Sciences and Biotechnology, Shanghai Jiao Tong University, Shanghai 200030, China
*
Authors to whom correspondence should be addressed.
Animals 2019, 9(11), 886; https://doi.org/10.3390/ani9110886
Submission received: 26 September 2019 / Revised: 27 October 2019 / Accepted: 29 October 2019 / Published: 31 October 2019
(This article belongs to the Collection Reproductive Management of Sheep and Goats)

Abstract

:

Simple Summary

As an important regulator factor, which was secreted by female oocytes, the growth differentiation factor 9 (GDF9) plays an essential role during the growth and differentiation of ovarian follicles. Single nucleotide polymorphisms (SNPs) within the GDF9 gene have been found to be involved in reproductive traits in livestock, and some of these mutations have been used as the effective makers in animal molecular breeding. However, it is remarkable that the SNPs of the goat GDF9 gene have not been systematically sorted and analyzed from the reported studies, which leads to an inability to find effective loci that could be applied in improving the prolificacy of goats via the molecular breeding method. In this study, we gathered and sorted 45 SNPs of the goat GDF9 gene from all relevant studies and the National Center for Biotechnology Information Search database (NCBI), and especially analyzed and discussed the relationship between part controversial and potentially effective SNPs and the reproductive traits. The results indicated that non-synonymous SNPs A240V, Q320P, and V397I and synonymous SNPs L61L, N121N, and L141L were six “true” positive SNPs in improving goat fertility. Nevertheless, the regulation pathways and the specific mechanism of these six SNPs on goat fecundity are not clear, which still need further study in more goat breeds and a large sample size. These results provided an effective tool for follow-up research studies on the molecular genetic breeding of goats’ reproductive traits.

Abstract

Goat reproductive traits are complex quantitative traits controlled by polygenes and multipoint. To date, some high-fertility candidate genes in livestock have been unearthed and the growth differentiation factor 9 (GDF9) gene is one of them, which plays a crucial role in early folliculogenesis. According to the relevant previous studies and the National Center for Biotechnology Information Search database (NCBI), a total of 45 single nucleotide polymorphisms (SNPs) have been detected in the goat GDF9 gene, but which one or which ones have important effects on goat fecundity is still uncertain. Hence, in order to find effective molecular markers for goat genetic breeding and accelerate the goat improvement, this study summarized and classified the above 45 SNPs into four kinds, as well as compared and analyzed the same SNP effects and the different SNPs linkage effects on the reproductive traits in different goat breeds. Since there were many SNPs in the goat GDF9 gene, only 15 SNPs have been identified in more than 30 goat breeds worldwide and they showed different effects on the litter size. Therefore, this study mainly chose these 15 SNPs and discussed their relationship with goat productivity. Results showed that three non-synonymous SNPs A240V, Q320P, and V397I and three synonymous ones L61L, N121N, and L141L played a “true” role in the litter size trait in many goat breeds around the world. However, the regulatory mechanisms still need further research. These results provide an effective tool for follow-up research developing the goat molecular breeding strategies and improving the goat reproductive traits.

1. Introduction

As one of the earliest domesticated animals, goats have an excellent production performance and their products are ubiquitous and popular all over the world. Goat milk has the characteristics of richer casein micelles, less lactose, and higher proportion of small milk fat globules, which makes it more similar to human milk and easier for human absorption and utilization. Therefore, goat dairy products, like cheese, yogurt, or butter have superior nutritional value for people than other mammalian milk and dairy products [1,2]. In most developing countries, goat meat has captured the meat consumption market for a long time due to its reasonable prices and its ability to meet the animal protein requirement and nutritional needs of the locals. It is also popular in developed countries [3]. Moreover, cashmere is used as a raw material for high-end clothing due to its great quality. It can be seen that goat products play a key role in people’s lives from the above phenomena, which means increasing goat stocks and improving the goat production performance are particularly important and meaningful. However, the global goat product supplies cannot satisfy people’s higher demand in terms of quantity and quality at present [4]. Hence, it is imperative to improve the reproductive traits and productivity of goats to better solve the imbalance between supply and demand of goat products fundamentally and stimulate the development of the goat industry.
However, reproductive traits are determined by complex regulatory factors, including the genetic material, nutrient levels, feeding environment, and management, etc. Genetic factors are more stable and easier to select than the more volatile nutrition and environmental factors in regulating goats’ fertility process [5,6,7]. The last decade has witnessed the development of the molecular genetic breeding method in livestock, such as C657T and G749C mutations in the Pregnancy-Associated Glycoprotein gene family (PAGs), which has significantly increased the number of live-born piglets (p ≤ 0.05) in Hirschmann hybrid-line sows [8]. Genome-wide association analysis and gene set enrichment analysis identified 22 quantitative trait loci (QTLs) and nine gene sets that were closely associated with cattle pregnancy establishment [9]. An 18-bp indel in the 5′ untranslated region (5′ UTR) of pig SRY-box transcription factor 9 (SOX9) gene was significantly associated with boar testis weight (p < 0.05) and controlled the expression of SOX9 [10]. Additionally, a single nucleotide polymorphism (SNP) locus within Exon3 of the insulin-like growth factor 1 (IGF-1) gene significantly affected the semen quality (p < 0.05) in Sanjabi rams [11].
In goats and sheep, many high prolific candidate genes have been identified, like bone morphogenetic protein receptor type 1B (BMPR1B) gene, bone morphogenetic protein 15 (BMP15) gene, growth differentiation factor 9 (GDF9) gene, etc. Meanwhile, some key mutant loci within these genes had been used as useful DNA markers for selecting high prolificacy individuals [12]. The BMPR1B gene, also known as the FecB gene, plays a major role in sheep prolificacy, and several research projects have identified that the mutation Q249R within the FecB gene was highly associated with the ovulation rate in many sheep breeds (e.g., Scottish Blackface Merino, Booroola Merino, Garole, Javanese, Mérinos d’ Arles, and Small Tailed Han ewes) around the world [13,14,15,16,17,18]. Conversely, it showed low polymorphism in goats (e.g., Black Bengal, Beetal, Barbari, Malabari, Osmanabadi, Ganjam, Jining Grey, Wendeng Dairy, and Inner Mongolia Cashmere goats) and had no association with reproductive traits [19,20,21,22]. Moreover, FecXR, FecXH, FecXI, FecXL, FecXG, and FecXB were six noted SNPs within the sheep BMP15 gene, and the heterozygous nature of these six loci resulted in an increase in the ovulation rate [23,24,25]. However, except for FecXB, no other mutations were found in goats [19,20,26].
Apart from the FecB and BMP15 genes, the polymorphisms of the GDF9 gene seem to play an important role in the reproductive process of both sheep and goats. Recently, Chu et al. (2018) reported that the expression levels of GDF9 in the ovaries were higher in high prolific Small Tail Han sheep than that in low prolific specimens, which indicated that GDF9 may play a positive regulator role in the lambing performance [26]. Furthermore, there are five certain SNP loci—including G1 [27,28], G8 [29], FecTT [30], FecGE [31], and G1111A [32,33]—within GDF9 associated with the sheep ovulation rate and fecundity. Pan et al. (2015) collected ovary tissues from the multiparous and uniparous goat breeds to analyze the expression characteristics of the GDF9 gene. However, their study showed no significant difference [34]. It also found that the GDF9 expression levels of the small antral follicles were nearly 2.5-fold more than those of large antral follicles in Black Bengal and Sirohi goats (two high prolificacy breeds) [35]. Moreover, GDF9, except for having the highest expression in the goat’s ovary, is also expressed in 19 other tissues, including the uterus, hypothalamus, pituitary, and more. [34]. All of these studies have demonstrated that the GDF9 gene is closely related to the differentiation and development of follicles and it may play a wide role in a variety of complex biochemical and physiological processes. However, research studying the mechanism of the goat GDF9 gene in regulating various normal physiological and metabolic processes of ovaries and how to maintain the normal function of ovaries are still scarce, and further studies are required to clarify these issues. Nevertheless, the genetic polymorphisms of the GDF9 gene in goats were much richer than in sheep, as well as more complicated. According to the previous literature and the NCBI SNP database, a total of 45 SNP mutations were shown in the goat GDF9 gene and 15 of them were detected and identified in more than 30 goat breeds around the world (Table S1, Table 1 and Table 2). An intriguing finding is that each of these 15 SNPs showed a significant association with the goat litter size trait. However, in different research studies, the same SNP mutation exhibited inconsistent characteristics, such as different positive allele and mutation frequencies, as well as diverse effects on lambing. This made it more difficult for the goat breeders to find effective, applicable, and valuable SNPs. Hence, the aim of this study was to summarize and sort the goat GDF9 SNP loci, and mainly focus on some controversial and potentially effective SNPs with difference effects on goat reproductive traits, in order to find important polymorphic mutations and provide a more effective tool for follow-up research on the genetic selection of goat reproductive traits.

2. Mutations in the Goat GDF9 Gene

As a member of the transforming growth factor beta (TGF-β) superfamily, the GDF9 gene was first found in the mouse ovaries by McPherron and Lee in 1993 [36]. It was specifically secreted by follicles and acted as a paracrine factor with the BMP15 protein in regulating the proliferation and differentiation of the granulosa cells [37,38,39], and could make the cumulus cells expand by controlling the key enzymes, which suggests the essential role of the GDF9 gene in the process of folliculogenesis in female mammals [23,40,41]. Moreover, the GDF9 gene could also stimulate or reduce the expression level of its receptor genes, such as the FSH receptor (FSHR) and LH receptor (LHR), for the acquisition of oocytes against atresia and developmental competence [40].
In livestock species, the expression of the GDF9 gene was shown to be specific at the primordial follicle stage within ovine and bovine ovaries [42]. In goats, however, GDF9 mRNA was expressed in all developmental phases of follicles and was significantly richer in small follicles than in large antral follicles [35,43]. Meanwhile, GDF9 was expressed broadly in 20 tissues in goats, including the ovary, hypothalamus, pituitary, uterus, and more. The highest expression was exhibited in the ovary, which confirmed that it might play a preponderant role in reproductive organs, and also have wide effects in other organs and tissues [34]. Furthermore, GDF9 and FSH could maintain follicular integrity and promote the activation of primordial follicles and growth during the long-term in vitro culture of goat preantral follicles [44]. These studies further suggested that the GDF9 gene could plausibly affect goat fecundity through its highest expression in the ovary and interaction with other fecundity genes in different tissues. Therefore, it is of great significance to explore and select some important SNP markers in the goat GDF9 gene, which like using the Q249R mutation of FecB as a key marker gene to improve the fecundity of sheep.
Until now, a total of 15 GDF9 SNPs have been reported in various goat breeds around the world. However, different studies have shown that the same mutation site has different physiological effects. For instance, the association between one SNP locus and reproductive traits varied with different goat breeds. At the same time, the same allele exhibited positive correlation with high prolificacy in some goat breeds but showed a negative correlation in other goat breeds. These results make it difficult to find a real and effective SNP locus for goat molecule breeding. Therefore, based on the depth and width of previous studies, we selected these 15 controversial and potentially relevant valuable SNPs, and divided them into the following four parts for systematic and comprehensive summary and discussion.

2.1. Non-Synonymous SNPs within the Goat GDF9 Gene

2.1.1. V397I Mutation

V397I, also written as g.4135G>A or p.Val397Ile, is a well-known non-synonymous site within Exon2 of the goat GDF9 gene and is a benign mutation that does not damage the protein structure [45]. Currently, it has been verified in a total of 32 goat breeds across the world by PCR-SSCP, PCR-RFLP, and sequencing methods. Markhoz goats, which are an endangered Iran breed with the characteristic of variation in the litter size, were used to detect the mutation V397I in 164 individuals via the PCR-RFLP method. These samples were fed in the Sanandaj Markhoz goat Performance Testing Station, located in the Kurdistan province of Iran. No selection on reproduction traits was performed in previous years. The genotyping result showed that the frequency of the mutant allele “A” was 0.686. However, it showed no association with the litter size trait [46]. Ahlawat et al. (2015, 2016) and Maitra et al. (2016) used seven Indian goat breeds, including Black Bengal goats (n = 110/158/158, each number represents the sample size of the each cited research. The following expression has the same meaning), Barbari goats (n = 49/50/0), Ganjam goats (n = 50/50/0), Osmanabadi goats (n = 41/41/0), Beetal goats (n = 28/28/0), Jhakrana goats (n = 13/14/0), and Sangamneri goats (n =50/50/0) (Table 1) to identify the V397I mutation using the PCR-RFLP method [23,47,48]. Although the V397I mutation was detected in the above seven breeds from three studies, the mutation frequency “A” was almost 0.1–0.2 (Table 1). Furthermore, none of these three studies found the mutation V397I had significant effects on litter size, while, in the prolific Black Bengal goats, Ahlawat et al. (2016) found the effect of parity on litter size was significant due to the V397I mutation [47]. This may be due to the small sample size and low individual selection intensity in the above seven goat breeds.
For Chinese goat breeds, V397I was detected in Shaanbei white cashmere goats (n = 1511) [45], Xinong Saanen dairy goats (n = 241), Guanzhong dairy goats (n = 197), Boer goats (n = 203) [49], Jining Grey goats (n = 178), Guizhou White goats (n = 71), Boer goats (n = 47), and Liaoning cashmere goats (n = 40) [50], as well as in Inner Mongolia cashmere goats (n = 761) [51]. Zhu et al. (2013) and Wang et al. (2013) also found V397I in Big foot black goats (n = 96) and Jintang black goats (n = 81) by PCR-SSCP, and in Henan dairy goats (n = 168), Yaoshan goats (n = 98), and Taihang Black goats (n = 102) by PCR-RFLP [52,53]. Moreover, V397I was also detected in Wendeng goats (n = 40), Beijing native goats (n = 31), Anhui White goats (n = 67), Haimen goats (n = 113), Xuhuai goats (n = 88), Laiwu black goats (n = 32), Laoshan goats (n = 55), Chongming goats (n = 75), Lubei goats (n = 90), and Yimeng goats (n = 80) by using PCR-SSCP and sequencing methods [54,55,56,57,58,59]. In these studies, the frequency of mutant allele “A” was higher in Xinong Saanen dairy goats, Guanzhong dairy goats, Jintang black goats, and Shaanbei white cashmere goats, with a range of nearly 0.45-0.71 (Table 1). In these breeds, the V397I mutation showed significant effects on the litter size trait. However, in other breeds, the “A” frequency was about 0.2 and showed no association with reproductive traits (Table 1), which was similar to the studies in the Indian goat population. This is presumably due to the number of effective mutant populations being small.
In addition, it is worth noting that the previous studies found V397I in a total of 23 Chinese goat breeds and demonstrated that it was significantly associated with the litter size trait in some breeds. However, the major allele with high prolificacy was not consistent. As seen in Table 3, the major allele with a high prolificacy was the “G” allele (reference allele) in Jining Grey, Inner Mongolia cashmere, and Laiwu black goats. The “GG” genotype have greater litter size than the “AA” genotype (p < 0.05), which suggests this SNP mutation played negative effects on litter size traits in these three breeds. However, in Xinong Saanen dairy, Guanzhong dairy, Boer, Anhui White, Big foot black, and Jintang black goats, the litter size of individuals with the “AA” genotype was better than that of individuals with the “GG” genotype (p < 0.05). It can be concluded that the V397I mutation showed positive effects on the litter size in these six goat breeds. Furthermore, the V397I mutation exhibited heterosis in Shaanbei white cashmere goats. The individuals with the “GA” genotype had the greatest litter size (P = 0.015). Recently, Mahmoudi et al. (2019) used meta-analysis to investigate effects of V397I on litter size, which used four different genetic models to calculate the pooling results from parts of the above published studies, and it was found that the effects were inconsistent in different models but the sensitivity analysis suggested that this SNP negatively affected the goat litter size trait [60]. These results suggested that V397I seems to play a “true” role in goat reproductive traits, but the inconsistent results might be due to the fact that this mutation is a minor quantitative trait nucleotide (QTN) that is linked with other stabilized QTNs during the long-term selection of evolution in goat breeds with different economic performances.

2.1.2. Q320P Mutation

The Q320P mutation is an A to C transversion at the 3905nt within Exon2 of the goat GDF9 gene (written as g.3905A>C or p.Gln320Pro). Zhao et al. (2016) pointed out that the “AA” and the “CC” genotypes were differentially distributed (p < 0.05) in high-fecundity (more than two litters for a continuous six years) and low-fecundity Inner Mongolia cashmere goats via sequencing [51]. Moreover, Q320P was detected in Yangtse River Delta White goats (n = 105), Huanghuai goats (n = 40), and Boer goats (n = 55) by PCR-SSCP and sequencing methods [61], as well as in Jining Grey goats (n = 234), Lubei White goats (n = 90), and Yimeng Black goats (n = 80) [58]. By using PCR-RFLP and sequencing methods, the Q320P mutation was also identified in Shaanbei white cashmere goats (n = 1511) [45], Jining Grey goats (n = 177), Guizhou White goats (n = 71), Boer goats (n = 47), and Liaoning cashmere goats (n = 41) [50]. The frequency of the mutant allele “C” in the above breeds was about 0.15-0.68 (Table 1). Moreover, among these results, only Wang et al. (2019) and Feng et al. (2011) found that the Q320P mutation had significant positive effects on litter size in Shaanbei white cashmere goats (low fecundity breed) and Jining Grey goats (high fecundity breed) (p < 0.5) with an accordant dominant genotype “CC.” The frequencies of the mutant allele “C” were 0.286 and 0.350, respectively (Table 4) [45,50].
By contrast, Arefnejad et al. (2018) found that Q320P significantly affected the litter size in a negative way with a reference allele “A” in 120 Markhoz goats [46]. However, Shokrollahi and Morammazi (2018) recently adopted a larger sample size of Markhoz goats (n = 146) for research and found that the frequency of the mutant allele was similar (about 0.6), but it did not affect the litter size trait anymore (Table 4) [62]. This suggests that the sample size might be a factor that has influenced the conclusions made by the researchers. Larger experimental populations are needed for further study to improve the reliability and accuracy of the results. In addition, Ahlawat et al. (2015,2016) found Q320P polymorphisms in five Indian native goat breeds, including Black Bengal goats (n = 158/110), Barbari goats (n = 0/49), Ganjam goats (n = 0/50), Osmanabadi goats (n = 0/41), and Sangamneri goats (n = 0/50) by the PCR-RFLP method [23,47]. Maitra et al. (2016) also found this mutation in the Indian goat breeds Beetal (n = 28) and Jhakrana (n = 14), but not in the above five breeds [48]. However, Q320P showed no effects on the litter size trait of any of the above seven Indian breeds, which might due to the low mutation frequency (no greater than 5%). Therefore, based on the results of studies in Chinese, Iranian, and Indian goats, the effect of Q320P locus on the litter size trait was unstable and varied with the change of goat breeds. Nevertheless, it showed great and stable effects on Chinese cashmere goat reproductive traits with a large sample size (n = 1511). Therefore, it is of great significance to find the true role of Q320P via further research with larger sample sizes and a wide range of global goat breeds, as well as the mechanism of Q320P in the reproductive traits.

2.1.3. A240V Mutation

Dong and Du first found A240V (also known as g.3665C>T and p.Ala240Val) in Jining Grey goats (n = 234), Lubei White goats (n = 90), and Yimeng Black goats (n = 80) [58]. The minor allele frequency (MAF) of the mutant allele “T” was 0.092, 0.009, and 0.116, respectively, and there was no significant association between A240V and the litter size trait of these three breeds. Subsequently, Wang et al. (2013) used Henan dairy goats (n = 116), Yaoshan goats (n = 98), and Taihang Black goats (n = 102) to further explore whether the A240V has an influence on goat reproduction. Interestingly, only “CC” and “CT” genotypes were identified and the frequency of the “T” allele was still low, with values of 0.075, 0.036, and 0.024, respectively. Nonetheless, the association analysis showed the A240V significantly affected the first-born litter size of Henan dairy goats (p < 0.05), which heterozygous individuals (genotype CT) had 0.60 kids more than those of the wild homozygote individuals (genotype CC) [53]. In the previously mentioned studies, there were no mutant homozygotes in six goat breeds and the mutation frequency was lower, which might be due to the elimination of “TT” individuals from goat breeding over time. Furthermore, the “CT” genotype showed greater litter size but only in one breed. Therefore, it is necessary to focus on more breeds and a large experimental population to further study the relationship between the A240V and goat reproduction.

2.2. Synonymous SNPs within the Goat GDF9 Gene

2.2.1. L61L Mutation

Non-synonymous mutations could lead to the replacement of encoded amino acids and change the protein structure and functions. Apart from it, synonymous mutations could not change the composition of the peptide chain directly. However, it is still important in the translation process, which could alter the programmed translational velocity and then influence the encoded protein folding and function [63]. Therefore, the synonymous SNPs of the goat GDF9 gene could not be ignored because they may also have key effects on goat fecundity. Synonymous mutation L61L (also known as g.2006C>A or p.Leu61Leu ) was located at Exon1 of the goat GDF9 gene. Chu et al. (2011) found this SNP in Jining Grey goats (n = 224), Wendeng dairy goats (n = 40), Liaoning cashmere goats (n = 39), Beijing native goats (n = 40), and Boer goats (n = 39) by PCR-SSCP and sequencing methods. The results showed that the MAF of the “C” allele (reference allele) was between 0.09 and 0.39, which suggested that the mutation frequency was higher in these goat breeds (Table 2). Meanwhile, association analysis indicated that L61L showed a significant negative effect on the litter size of the prolific breed Jining Grey goats, and mutant homozygote “AA” had the lowest litter size (p < 0.05) [64]. Moreover, L61L was detected in Anhui White goats (n = 68), Lubei goats (n = 90), and Yimeng goats (n = 80), and it also affected the litter size of Anhui White goats and Yimeng goats, for which the dominant genotypes with a high fecundity were consistent with the study by Chu et al. (2011) [54,58]. It can be seen that there was a negative correlation between the L61L and the goat litter size trait, which means it could be used as a marker to select the high fecundity individuals in the goat breeding process. Furthermore, it is meaningful to further explore the effect of the L61L mutation on reproductive traits in other goat breeds.

2.2.2. N121N Mutation

Chu et al. (2011) firstly reported synonymous N121N in the goat GDF9 gene by PCR-SSCP and sequencing methods, which is also written as g.2159C>T and p.Asn336Asn. The MAF of the “T” allele (mutant allele) was about 0.12 in low prolificacy breeds, such as Wendeng dairy goats (n = 40), Liaoning cashmere goats (n = 39), Beijing native goats (n = 40), and Boer goats (n = 39) [64]. However, in high prolificacy among Jining Grey goats (n = 224), it reached 0.39, whose distribution was different (p < 0.01) (Table 2) [64]. Meanwhile, the correlation analysis results showed N121N had a significant positive effect on the first-born litter size of Jining Grey goats (p < 0.05), and the mutant homozygote “TT” had 0.72 kids more than the wild type. However, it had no effects on the other goat breeds [58]. Therefore, it can be concluded that this mutation has higher mutant frequency in high prolificacy goat breeds (p < 0.01) and mutation on this locus could significantly improve the reproductive traits of the high prolificacy goat breed, but it also needs to be further explored in more high or low prolificacy goat breeds to make this conclusion more accurate.

2.2.3. L141L Mutation

L141L, which is also known as g.3369G>A and p.Leu423Leu, is the only synonymous mutation verified within the Exon 2 of goat GDF9 gene. It was found in Jining Grey goats (n = 178/109/60), Guizhou White goats (n = 71), Boer goats (n = 47/28), Liaoning cashmere goats (n = 40/38), Wendeng dairy goats (n = 40), Beijing native goats (n = 31), Laiwu Black goats (n = 32), and Laoshan dairy goats (n = 55) by PCR-SSCP and sequencing [47,56,59]. In Laoshan dairy and Wendeng dairy goats, the frequencies of the mutant allele “A” was 0.709 and 0.687, respectively. However, in other goat breeds, this mutation rate was only about 15% (Table 2), which suggests that L141L might be a selected marker subject to intense selection during the breeding of dairy goats. Moreover, this mutation was associated with the first-born litter size trait in the high fertility breed Jining Grey goats, in which the individuals with “GA” and “AA” genotypes showed nearly 0.6 kids more than those of the individuals with the “GG” genotype (p < 0.05). It showed no effects on other low fertility goats, which was possibly due to the breed-specific effect or the limited sample size [51,56,59].

2.3. Mutations in the Regulatory Region of the Goat GDF9 Gene

As we know, the mutations in the gene regulatory region generally affect the expression and functions of genes. For example, g.224A>G and g.227C>T within the 5′ flanking region of the IGF-1 gene were significantly associated with goat litter size [65]. A 14-base pair indel locus in the core promoter region of goat CKLF-like MARVEL transmembrane domain containing 2 (CMTM2) gene could significantly decrease the goat litter size [66]. Three novel indel mutations within the promoter and introns of the goat membrane-associated ring finger (C3HC4) 1 (MARCH1) gene were associated with the first-born litter size by impacting the expression levels of MARCH1 [67]. The g.173057T>C within the 3′ UTR of the goat prolactin receptor (PRLR) gene had significant effects on litter size by altering the binding site of bta-miR-302a [68]. The 10 base pair indel located in the Intron19 of goat sperm flagella 2 (SPEF2) gene, which is a fragment binding to the androgen receptor (AR), was significantly correlated with litter size [69]. It is worth noting that, based on the NCBI SNP database, we found that half of the mutations were located in the regulatory region of the goat GDF9 gene, which includes Intron1, promoter, 3′ UTR, and 3′ flanking. However, only two loci were identified and one was g.3288G>A, which was located in Intron1 and it had been detected in the Jining Grey goat (n = 175), Guizhou White goat (n = 71), Boer goat (n = 47), and Liaoning Cashmere goat (n = 40) with a mutant frequency of 0.06, 0.01, 0.19, and 0.34, respectively. Nevertheless, this mutation had no effects on the litter size (Table S1) [50]. The other was a 12-base pair indel (NC_022299.1:g.66028950insTACTTTCAACAA, rs670709574) in the 3′ regulatory region, which was detected in 1328 Shaanbei white cashmere goats. Its mutant frequency was 0.455. In addition, this indel could affect the first-born litter size, but is due to the main effects of goat growth traits [70]. Therefore, neither have a direct effect on the goat reproductive traits. Whether unverified loci could play a role in goat reproductive traits need further research.

2.4. Other Mutations within the Goat GDF9 Gene

In addition to the previously reported SNP mutations, there were also many tested SNP mutations that have been found to be unrelated to reproductive traits in goats and untested mutations. For example, G40G (g.1941C>T/p.Gly40Gly) and N112N (g.2159C>T/p.Asn112Asn) were two synonymous SNP loci within the goat GDF9 gene, which have been identified in different Chinese goat breeds. Yang et al. (2012) found G40G in two local Chinese goat breeds with opposite fecundity, which include Lezhi black goats (n = 6) and Tibetan goats (n = 6), by using RT-PCR and sequencing methods [71]. Chu et al. (2011) found N112N in four Chinese indigenous goat breeds and Boer goats, but it did not affect the litter size trait [64]. Moreover, D129D (g.2211G>A/p.Asp129Asp) and S165S (g.3441C>A/p.Ser165Ser) were detected in Indian Assam hill goats by PCR-RFLP, and both of them showed no association with litter size [72]. For non-synonymous SNP mutations, L50P (g.1972T>C/p.Leu50Pro) and A273V (g.3764C>T/p.Ala273Val) were two loci that have received less attention and study. L50P was detected in six Lezhi black goats (prolific breed) and six Tibetan goats (non-prolific breed) by using RT-PCR and sequencing [71]. A273V was mainly exhibited in seven Indian goat breeds and had no association with prolificacy traits [23,47,48,73]. Furthermore, the mutations P27R (g.1902C>G/p.Pro27Arg), A85G (g.2077C>G/p.Ala85Gly), E204Q (g.3556G>C/p.Glu204Gln), and T217T (g.3597G>T/p.Thr217Thr) were searched for in the NCBI SNP database but have not been identified and reported in any goat breeds so far. This part of the SNP-related research is relatively lacking, and there is still a need to further explore and research a rich variety of goats.

3. Conclusions

In this study, we gathered and sorted 45 SNP loci from the goat GDF9 gene, and mainly analyzed and discussed the relationship between part potentially “true” SNPs and the goat reproductive traits. Among these mutations, three non-synonymous mutations, which include A240V, Q320P, and V397I, and three synonymous mutations, which include L61L, N121N, and L141L, were found to have a high mutant frequency in many fecundity goat breeds, especially the Q320P, V397I, L61L, and N112N, which are as high as 0.5–0.7 (Table 1 and Table 2). Meanwhile, these six SNPs significantly related to the litter size trait in Chinese goat breeds, while some results of these studies were not consistent. For example, the major allele with high prolificacy of the V397I mutation was the mutant allele “G” in Shaanbei white cashmere, Inner Mongolia cashmere, Lubei White, Jining Grey, and Laiwu black goats [51,56,58], but the reference allele “A” was found with greater litter size in Xinong Saanen dairy, Guanzhong dairy, Big foot black, Jintang black, and Yimeng black goats [29,52,58]. This is likely due to the breed-specific effect or the effects of this locus was due to a linkage with other mutations [45,51]. Therefore, it would be meaningful to detect these six SNPs in more goat breeds or in large herds and conduct further functional gain or loss experiments to explore the influencing mechanism and explain this theory more clearly. Furthermore, it is noteworthy that the previous studies mostly focused on a single SNP site and ignored the fact that reproductive traits are complex quantitative traits involving QTL, QTN, and interactions by the fecundity gene. Only Wang et al. (2019) found that Q320P and V397I mutations were well linked in cashmere goats, which needs to be further explored in other goat breeds around the world [45]. Therefore, it is necessary to pay attention to the combined effects of multiple loci on goat reproductive traits.
According to the summary and analytic results of the current SNP loci within the goat GDF9 gene in this study, it was found that A240V, Q320P, V397I, L61L, N121N, and L141L are six effective SNPs associated with the litter size trait. In most goat breeds worldwide, the V397I and L61L mutations showed a negative relationship with strong goat fertility and the other four SNPs exhibited a positive effect. These findings provide important information to develop goat molecular breeding strategies and improve the reproduction and production performance of goats.

Supplementary Materials

The following are available online at https://www.mdpi.com/2076-2615/9/11/886/s1. Table S1: A total of 45 SNP loci were predicted and verified within the goat GDF9 gene.

Funding

The National Natural and Science Foundation of China (No. 31702115; 31760650) and Provincial Key Projects of Shaanxi (2014KTDZ02-01) supported this work.

Conflicts of Interest

The authors declare no conflict of interest.

References

  1. Silanikove, N.; Leitner, G.; Merin, U.; Prosser, C.G. Recent advances in exploiting goat’s milk: Quality, safety and production aspects. Small Rumin. Res. 2010, 89, 110–124. [Google Scholar] [CrossRef]
  2. Clark, S.; Mora García, M.B. A 100-YEAR REVIEW: Advances in goat milk research. J. Dairy Sci. 2017, 100, 10026–10044. [Google Scholar] [CrossRef] [PubMed]
  3. Aziz, M.A. Present status of the world goat populations and their productivity. Lohmann Inf. 2010, 45, 42–52. [Google Scholar]
  4. Lu, C.D.; Miller, B.A. Current status, challenges and prospects for dairy goat production in the Americas. Asian Australas. J. Anim. Sci. 2019, 32, 1244–1255. [Google Scholar] [CrossRef] [PubMed]
  5. Nogueira, D.M.; Gummow, B.; Gardiner, C.P.; Cavalieri, J.; Fitzpatrick, L.A.; Parker, A.J. A survey of the meat goat industry in Queensland and New South Wales. 2. Herd management, reproductive performance and animal health. Anim. Prod. Sci. 2016, 56, 1533–1544. [Google Scholar] [CrossRef]
  6. Naicy, T.; Venkatachalapathy, R.T.; Aravindakshan, T.V.; Raghavan, K.C.; Mini, M.; Shyama, K. Relative abundance of tissue mRNA and association of the single nucleotide polymorphism of the goat NGF gene with prolificacy. Anim. Reprod. Sci. 2016, 173, 42–48. [Google Scholar] [CrossRef]
  7. Bernabucci, U.; Lacetera, N.; Baumgard, L.H.; Rhoads, R.P.; Ronchi, B.; Nardone, A. Metabolic and hormonal acclimation to heat stress in domesticated ruminants. Animal 2010, 4, 1167–1183. [Google Scholar] [CrossRef] [Green Version]
  8. Panasiewicz, G.; Bieniek-Kobuszewska, M.; Lipka, A.; Majewska, M.; Jedryczko, R.; Szafranska, B. Novel effects of identified SNPs within the porcine Pregnancy-Associated Glycoprotein gene family (pPAGs) on the major reproductive traits in Hirschmann hybrid-line sows. Res. Vet. Sci. 2017, 114, 123–130. [Google Scholar] [CrossRef]
  9. Neupane, M.; Geary, T.W.; Kiser, J.N.; Burns, G.W.; Hansen, P.J.; Spencer, T.E.; Neibergs, H.L. Loci and pathways associated with uterine capacity for pregnancy and fertility in beef cattle. PLoS ONE 2017, 12, e0188997. [Google Scholar] [CrossRef]
  10. Chen, M.Y.; Wang, J.; Liu, N.; Cui, W.B.; Dong, W.Z.; Xing, B.S.; Pan, C.Y. Pig SOX9: Expression profiles of Sertoli cell (SCs) and a functional 18 bp indel affecting testis weight. Theriogenology 2019, 138, 94–101. [Google Scholar] [CrossRef]
  11. Bakhtiar, R.; Abdolmohammadi, A.; Hajarian, H.; Nikousefat, Z.; Kalantar-Neyestanaki, D. Investigation of the 5′ flanking region and exon 3 polymorphisms of IGF-1 gene showed moderate association with semen quality in Sanjabi breed rams. Theriogenology 2017, 104, 186–191. [Google Scholar] [CrossRef] [PubMed]
  12. Sonika, A.; Rekha, S.; Maitra, A.; Tantia, M.S. Current status of molecular genetics research of goat fecundity. Small Rumin. Res 2015, 125, 34–42. [Google Scholar]
  13. Souza, C.J.; MacDougall, C.; Campbell, B.K.; McNeilly, A.S.; Baird, D.T. The Booroola (FecB) phenotype is associated with a mutation in the bone morphogenetic receptor type 1B (BMPRIB) gene. J. Endocrinol. 2001, 169, R1–R6. [Google Scholar] [CrossRef] [PubMed]
  14. Wilson, T.; Wu, X.Y.; Juengel, J.L.; Ross, I.K.; Lumsden, J.M.; Lord, E.A.; Dodds, K.G.; Walling, G.A.; McEwan, J.C.; O’Connell, A.R.; et al. Highly prolific Booroola sheep have a mutationin the intracellular kinase domain of bone morphogenetic protein IB receptor (ALK-6) that is expressed in both oocytes and granulosa cells. Biol. Reprod. 2001, 64, 1225–1235. [Google Scholar] [CrossRef] [PubMed]
  15. Davis, G.H.; Galloway, S.M.; Ross, I.K.; Gregan, S.M.; Ward, J.; Nimbkar, B.V.; Ghalsasi, P.M.; Nimbkar, C.; Gray, G.D.; Subandriyo; et al. DNA tests in prolific sheep from eight countries provide new evidence on origin of the Booroola (FecB) mutation. Biol. Reprod. 2002, 66, 1869–1874. [Google Scholar] [CrossRef]
  16. Mulsant, P.; Lecerf, F.; Fabre, S.; Schibler, L.; Monget, P.; Lanneluc, I.; Pisselet, C.; Riquet, J.; Monniaux, D.; Callebaut, I.; et al. Mutation in bone morphogenetic protein receptor-IB is associated with increased ovulation rate in Booroola Mérino ewes. Proc. Natl. Acad. Sci. USA 2001, 98, 5104–5109. [Google Scholar] [CrossRef]
  17. Fabre, S.; Pierre, A.; Pisselet, C.; Mulsant, P.; Lecerf, F.; Pohl, J.; Monget, P.; Monniaux, D. The Booroola mutation in sheep is associated with an alteration of the bone morphogenetic protein receptor-IB functionality. J. Endocrinol. 2003, 177, 435–444. [Google Scholar] [CrossRef] [Green Version]
  18. Chu, M.X.; Liu, Z.H.; Jiao, C.L.; He, Y.Q.; Fang, L.; Ye, S.C.; Chen, G.H.; Wang, J.Y. Mutations in BMPR-IB and BMP-15 genes are associated with litter size in Small Tailed Han sheep (Ovis aries). J. Anim. Sci. 2007, 85, 598–603. [Google Scholar] [CrossRef]
  19. Polley, S.; De, S.; Batabyal, S.; Kaushik, R.; Yadav, P.; Arora, J.S.; Chattopadhyay, S.; Pan, S.; Brahma, B.; Datta, T.K.; et al. Polymorphism of fecundity genes (BMPR1B, BMP15 and GDF9) in the Indian prolific Black Bengal goat. Small Rumin. Res 2009, 85, 122–129. [Google Scholar] [CrossRef]
  20. Ahlawat, S.; Sharma, R.; Maitra, A. Screening of indigenous goats for prolificacy associated DNA markers of sheep. Gene 2013, 517, 128–131. [Google Scholar] [CrossRef]
  21. Ahlawat, S.; Sharma, R.; Maitra, A.; Tantia, M.S.; Roy, M.; Mandakmalen, S. New genetic polymorphisms in Indian goat BMPR1B gene. Indian J. Anim. Sci. 2014, 84, 37–42. [Google Scholar]
  22. Chu, M.X.; Zhao, X.H.; Zhang, Y.J.; Jin, M.; Wang, J.Y.; Di, R.; Cao, G.L.; Feng, T.; Fang, L.; Ma, Y.H.; et al. Polymorphisms of BMPR-IB gene and their relationship with litter size in goats. Mol. Biol. Rep. 2010, 37, 4033–4039. [Google Scholar] [CrossRef] [PubMed]
  23. Ahlawat, S.; Sharma, R.; Roy, M.; Mandakmale, S.; Tantia, M.S.; Prakash, V. Association analysis of novel SNPs in BMPR1B, BMP15 and GDF9 genes with reproductive traits in Black Bengal goats. Small Rumin. Res 2015, 132, 92–98. [Google Scholar] [CrossRef]
  24. Davis, G.H.; Balakrishnan, L.; Ross, I.K.; Wilson, T.; Galloway, S.M.; Lumsden, B.M.; Hanrahan, J.P.; Mullen, M.; Mao, X.Z.; Wang, G.L.; et al. Investigation of the Booroola (FecB) and Inverdale (FecXI) mutations in 21 prolific breeds and strains of sheep sampled in 13 countries. Anim. Reprod. Sci. 2006, 92, 87–96. [Google Scholar] [CrossRef]
  25. Monteagudo, L.V.; Ponz, R.; Tejedor, M.T.; Lavina, A.; Sierra, I. A 17 bp deletion in the bone morphogenetic protein 15 (BMP15) gene is associated to increased prolificacy in the Rasa Aragonesa sheep breed. Anim. Reprod. Sci. 2009, 110, 139–146. [Google Scholar] [CrossRef]
  26. Tang, J.; Hu, W.; Di, R.; Liu, Q.; Wang, X.; Zhang, X.; Zhang, J.; Chu, M. Expression analysis of the prolific candidate genes, BMPR1B, BMP15, and GDF9 in Small Tail Han Ewes with three fecundity (FecB gene) genotypes. Animals 2018, 8, 166. [Google Scholar] [CrossRef]
  27. Zamani, P.; Abdoli, R.; Deljou, A.; Rezvan, H. Polymorphism and bioinformatics analysis of growth differentiation factor 9 gene in Lori sheep. Ann. Anim. Sci. 2015, 2, 337–348. [Google Scholar] [CrossRef]
  28. Zuo, B.; Qian, H.; Wang, Z.; Wang, X.; Nisa, N.; Bayier, A.; Ying, S.; Hu, X.; Gong, C.; Guo, Z.; et al. A study on BMPRIB genes of Bayanbulak Sheep. Asian Australas. J. Anim. Sci. 2013, 26, 36–42. [Google Scholar] [CrossRef]
  29. Hanrahan, J.P.; Gregan, S.M.; Mulsant, P.; Mullen, M.; Davis, G.H.; Powell, R.; Galloway, S.M. Mutations in the genes for oocyte-derived growth factors GDF9 and BMP15 are associated with both increased ovulation rate and sterility in Cambridge and Belclare sheep (Ovis aries). Biol. Reprod. 2004, 70, 900–909. [Google Scholar] [CrossRef]
  30. Nicol, L.; Bishop, S.C.; Pong-Wong, R.; Bendixen, C.; Holm, L.E.; Rhind, S.M.; McNeilly, A.S. Homozygosity for a single base-pair mutation in the oocyte-specific GDF9 gene results in sterility in Thoka sheep. Reproduction 2009, 138, 921–933. [Google Scholar] [CrossRef] [Green Version]
  31. El Fiky, Z.A.; Hassan, G.M.; Nassar, M.I. Genetic polymorphism of growth differentiation factor 9 (GDF9) gene related to fecundity in two Egyptian sheep breeds. J. Assist. Reprod. Genet. 2017, 34, 1683–1690. [Google Scholar] [CrossRef]
  32. Abdoli, R.; Zamani, P.; Deljou, A.; Rezvan, H. Association of BMPR-1B and GDF9 genes polymorphisms and secondary protein structure changes with reproduction traits in Mehraban ewes. Gene 2013, 524, 296–303. [Google Scholar] [CrossRef] [PubMed]
  33. Vage, D.I.; Husdal, M.; Kent, M.P.; Klemetsdal, G.; Boman, I.A. A missense mutation in growth differentiation factor 9 (GDF9) is strongly associated with litter size in sheep. BMC Genet. 2013, 14, 1–8. [Google Scholar] [CrossRef] [PubMed]
  34. Pan, Z.Y.; Di, R.; Tang, Q.Q.; Jin, H.H.; Chu, M.X.; Huang, D.W.; He, J.N.; Liu, Q.Y.; Hu, W.P.; Wang, X.Y. Tissue-specific mRNA expression profiles of GDF9, BMP15, and BMPR1B genes in prolific and non-prolific goat breeds. Czech J. Anim. Sci. 2015, 60, 452–458. [Google Scholar] [CrossRef]
  35. Pramod, R.K.; Sharma, S.K.; Singhi, A.; Pan, S.; Mitra, A. Differential ovarian morphometry and follicular expression of BMP15, GDF9 and BMPR1B influence the prolificacy in goat. Reprod. Domest. Anim. 2013, 48, 803–809. [Google Scholar] [CrossRef]
  36. McPherron, A.C.; Lee, S.J. GDF-3 and GDF-9: Two new members of the transforming growth factor-beta superfamily containing a novel pattern of cysteines. J. Biol. Chem. 1993, 268, 3444–3449. [Google Scholar]
  37. Hennet, M.L.; Combelles, C.M.H. The antral follicle: A microenvironment for oocyte differentiation. Int. J. Dev. Biol. 2012, 56, 819–831. [Google Scholar] [CrossRef]
  38. Peng, J.; Li, Q.; Wigglesworth, K.; Rangarajan, A.; Kattamuri, C.; Peterson, R.T.; Eppig, J.J.; Thompson, T.B.; Matzuk, M.M. Growth differentiation factor 9:bone morphogenetic protein 15 heterodimers are potent regulators of ovarian functions. Proc. Natl. Acad. Sci. USA 2013, 110, E776–E785. [Google Scholar] [CrossRef] [Green Version]
  39. Dias, F.C.; Khan, F.M.I.R.; Adams, G.P.; Sirard, M.A.; Singh, J. Granulosa cell function and oocyte competence: Super-follicles, super-moms and super-stimulation in cattle. Anim. Reprod. Sci. 2014, 149, 80–89. [Google Scholar] [CrossRef]
  40. Otsuka, F.; McTavish, K.J.; Shimasaki, S. Integral role of GDF-9 and BMP-15 in ovarian function. Mol. Reprod. Dev. 2011, 78, 9–21. [Google Scholar] [CrossRef]
  41. Paulini, F. Expression of Growth and Differentiation Factor 9 (GDF9) and Bone Morphogenetic Protein 15(BMP15) and Their Effect on In Vitro Luteinization of Bovine Granulosan Cells. Master’s Thesis, School of Agronomy and Veterinary Medicine, UnB, Brasília, Brazil, 2010. [Google Scholar]
  42. Bodensteiner, K.J.; Clay, C.M.; Moeller, C.L.; Sawyer, H.R. Molecular cloning of the ovine growth/differentiation factor-9 gene and expression of growth/differentiation factor-9 in ovine and bovine ovaries. Biol. Reprod. 1999, 60, 381–386. [Google Scholar] [CrossRef] [PubMed]
  43. Silva, J.R.; van den Hurk, R.; van Tol, H.T.; Roelen, B.A.; Figueiredo, J.R. Expression of growth differentiation factor 9 (GDF9), bone morphogenetic protein 15 (BMP15), and BMP receptors in the ovaries of goats. Mol. Reprod. Dev. 2005, 70, 11–19. [Google Scholar] [CrossRef] [PubMed]
  44. Alves, A.M.C.V.; Chaves, R.N.; Rocha, R.M.P.; Lima, L.F.; Andrade, P.M.; Lopes, C.A.P.; Souza, C.E.A.; Moura, A.A.A.; Campello, C.C.; Bao, S.N. Dynamic medium containing growth differentiation factor-9 and FSH maintains survival and promotes in vitro growth of caprine preantral follicles after long-term in vitro culture. Reprod. Fertil. Dev. 2013, 25, 955–965. [Google Scholar] [CrossRef] [PubMed]
  45. Wang, X.Y.; Yang, Q.; Wang, K.; Yan, H.L.; Pan, C.Y.; Chen, H.; Liu, J.W.; Zhu, H.J.; Qu, L.; Lan, X.Y. Two strongly linked single nucleotide polymorphisms (Q320P and V397I) in GDF9 gene are associated with litter size in cashmere goats. Theriogenology 2019, 125, 115–121. [Google Scholar] [CrossRef]
  46. Shokrollahi, B.; Morammazi, S. Polymorphism of GDF9 and BMPR1B genes and their association with litter size in Markhoz goats. Reprod. Domest. Anim. 2018, 53, 971–978. [Google Scholar] [CrossRef]
  47. Ahlawat, S.; Sharma, R.; Roy, M.; Mandakmale, S.; Prakash, V.; Tantia, M.S. Genotyping of novel SNPs in BMPR1B, BMP15, and GDF9 genes for association with prolificacy in seven Indian goat breeds. Anim. Biotechnol. 2016, 27, 199–207. [Google Scholar] [CrossRef]
  48. Maitra, A.; Sharma, R.; Ahlawat, S.; Boranal, K.; Tantia, M.S. Fecundity gene SNPs as informative markers for assessment of Indian goat genetic architecture. Indian J. Anim. Res. 2016, 50, 349–356. [Google Scholar]
  49. An, X.P.; Hou, J.X.; Zhao, H.B.; Li, G.; Bai, L.; Peng, J.Y.; M Yan, Q.; Song, Y.X.; Wang, J.G.; Cao, B.Y. Polymorphism identification in goat GNRH1 and GDF9 genes and their association analysis with litter size. Anim. Genet. 2013, 44, 234–238. [Google Scholar] [CrossRef]
  50. Feng, T.; Geng, X.; Lang, X.Z.; Chu, M.X.; Cao, G.L.; Di, R.; Fang, L.; Chen, H.Q.; Liu, X.L.; Li, N. Polymorphisms of caprine GDF9 gene and their association with litter size in Jining Grey goats. Mol. Biol. Rep. 2011, 38, 5189–5197. [Google Scholar] [CrossRef]
  51. Zhao, J.; Liu, S.Q.; Zhou, X.B.; Zhang, R.; Li, Y.; Wang, X.L.; Chen, Y.L. A non-synonymous mutation in GDF9 is highly associated with litter size in cashmere goats. Anim. Genet. 2016, 47, 628–633. [Google Scholar] [CrossRef]
  52. Zhu, G.Q.; Wang, Q.I.; Kang, Y.G.; Lv, Y.Z.; Cao, B.Y. Polymorphisms in GDF9 gene and its relationship with litter size in five breeds of Black Goats. Iran. J. Appl. Anim. Sci. 2013, 3, 625–628. [Google Scholar]
  53. Wang, Y.C.; Zhang, X.H.; Chu, M.X. Polymorphisms of caprine GDF9 gene and their association with litter size in Henan dairy goat. J. Anim. Vet. Adv. 2013, 12, 1590–1596. (In Chinese) [Google Scholar]
  54. Tang, J.S.; Zhang, W.; Zhu, D.J.; Hui, W.Q.; Su, S.G.; Chen, S. Effects of GDF9 gene polymorphisms on serum levels of FSH and LH in goat ewes. Anim. Husb. Vet. Med. 2017, 49, 13–18. (In Chinese) [Google Scholar]
  55. Lu, X.Y.; Sun, W.; Lu, W.W.; Gao, W.; Yu, J.R.; Bao, J.J.; Wang, L.H.; Wang, Q.Z.; Li, Y.J.; Zhang, Z.J.; et al. Polymorphisms of FSH-β and GDF-9 genes and their relationships with prolificacy in Haimen goat and Xuhuai goat. J. Yangzhou Univ. (Agric. Life Sci. Ed.) 2016, 37, 41–46. (In Chinese) [Google Scholar]
  56. Wang, B.C.; Zhang, Q.K.; Xu, J.J.; Chen, M.; Liu, K.D.; Li, Z.; Pan, Q.J. Polymorphism detection of GDF9 gene exon 2 in three China goat breeds. China Herbiv. Sci. Collect. Pap. 2014, S1, 132–136. (In Chinese) [Google Scholar]
  57. Ren, L.N.; Liu, S.G.; Hu, D.W.; Lan, C.; Tan, T.T.; Wang, J.J.; Chen, J.Q.; Ma, H.D.; Cheng, G.X. Polymorphism of growth differentiation factor 9 gene and its relationship with litter size of Chong-ming white goats. Anim. Husb. Vet. Med. 2012, 44, 25–29. (In Chinese) [Google Scholar]
  58. Dong, C.H.; Du, L.X. Research on polymorphism analysis of GDF9 gene related to reproduction trait of goat. J. Shandong Agric. Univ. (Nat. Sci. Ed.) 2011, 42, 227–237. (In Chinese) [Google Scholar]
  59. Wu, Z.H.; Chu, M.X.; Li, X.W.; Fang, L.; Ye, S.C.; Liu, Z.H.; Chen, G.H. PCR-SSCP analysis on exon 2 of growth differentiation factor 9 gene in goats. Sci. Agric. Sin. 2006, 39, 802–808. (In Chinese) [Google Scholar]
  60. Mahmoudi, P.; Rashidi, A.; Rostamzadeh, J.; Razmkabir, M. Association between c.1189G> A single nucleotide polymorphism of GDF9 gene and litter size in goats: A meta-analysis. Anim. Reprod. Sci. 2019, 209, 106140. [Google Scholar] [CrossRef]
  61. Zhang, H.Y.; Ding, X.L.; Ying, S.J.; Wang, Z.Y.; Pang, X.S.; Wang, R.F.; Chen, Q.K.; Shi, J.F.; Zhang, H.; Wang, F. SSCP analysis on exon2 of GDF9 gene in local of Jiangsu province. Jiangsu Agric. Sci. 2008, 5, 51–53. (In Chinese) [Google Scholar]
  62. Arefnejad, B.; Mehdizadeh, Y.; Javanmard, A.; Zamiri, M.J.; Niazi, A. novel single nucleotide polymorphisms (SNPs) in two oogenesis specific genes (BMP15, GDF9) and their association with litter size in Markhoz goat (Iranian Angora). Iranian J. Appl. Anim. Sci. 2018, 8, 91–99. [Google Scholar]
  63. Brazil, D.F.; Rauscher, R.; Ignatova, Z. Timing during translation matters: Synonymous mutations in human pathologies influence protein folding and function. Biochem. Soc. Trans. 2018, 46, 937–944. [Google Scholar]
  64. Chu, M.X.; Wu, Z.H.; Feng, T.; Cao, G.; Fang, L.; Di, R.; Huang, D.W.; Li, X.; Li, N. Polymorphism of GDF9 gene and its association with litter size in goats. Vet. Res. Commun. 2011, 35, 329–336. [Google Scholar] [CrossRef]
  65. Thomas, N.; Venkatachalapathy, T.; Aravindakshan, T.; Raghavan, K.C. Molecular cloning, SNP detection and association analysis of 5′ flanking region of the goat IGF1 gene with prolificacy. Anim. Reprod. Sci. 2016, 167, 8–15. [Google Scholar] [CrossRef] [PubMed]
  66. Kang, Z.H.; Zhang, S.H.; He, L.B.; Zhu, H.J.; Wang, Z.; Yan, H.L.; Huang, Y.Z.; Dang, R.H.; Lei, C.Z.; Chen, H.; et al. A 14-bp functional deletion within the CMTM2 gene is significantly associated with litter size in goat. Theriogenology 2019, 139, 49–57. [Google Scholar] [CrossRef] [PubMed]
  67. Kang, Z.H.; Jiang, E.H.; Wang, K.; Pan, C.Y.; Chen, H.; Yan, H.L.; Zhu, H.J.; Liu, J.W.; Qu, L.; Lan, X.Y. Goat membrane associated ring-CH-type finger 1 (MARCH1) mRNA expression and association with litter size. Theriogenology 2019, 128, 8–16. [Google Scholar] [CrossRef]
  68. An, X.P.; Hou, J.; Gao, T.; Lei, Y.; Li, G.; Song, Y.; Wang, J.; Cao, B. Single-nucleotide polymorphisms g.151435C> T and g.173057T> C in PRLR gene regulated by bta-miR-302a are associated with litter size in goats. Theriogenology 2015, 83, 1477–1483. [Google Scholar] [CrossRef]
  69. Chen, M.Y.; Yan, H.L.; Wang, K.; Cui, Y.; Chen, R.; Liu, J.W.; Zhu, H.J.; Qu, L.; Pan, C.Y. Goat SPEF2: Expression profile, indel variants identification and association analysis with litter size. Theriogenology. 2019, 139, 147–155. [Google Scholar] [CrossRef]
  70. Wang, X.Y.; Yang, Q.; Wang, K.; Zhang, S.; Pan, C.; Chen, H.; Qu, L.; Yan, H.L.; Lan, X.Y. A novel 12-bp indel polymorphism within the GDF9 gene is significantly associated with litter size and growth traits in goats. Anim. Genet. 2017, 48, 735–736. [Google Scholar] [CrossRef]
  71. Yang, C.X.; Zi, X.D.; Wang, Y.; Yang, D.Q.; Ma, L.; Lu, J.Y.; Niu, H.R.; Xiao, X. Cloning and mRNA expression levels of GDF9, BMP15, and BMPR1B genes in prolific and non-prolific goat breeds. Mol. Reprod. Dev. 2012, 79, 2. [Google Scholar] [CrossRef]
  72. Dutta, R.; Das, B.; Laskar, S.; Kalita, D.J.; Borah, P.; Zaman, G.; Saikia, D.P. Polymorphism, sequencing and phylogenetic characterization of growth differentiation factor 9 (GDF9) gene in Assam Hill goat. Afr. J. Biotechnol. 2013, 12, 6894–6900. [Google Scholar]
  73. Ahlawat, S.; Sharma, R.; Maitra, A.; Roy, M.; Tantia, M.S. Designing, optimization and validation of tetra-primer ARMS PCR protocol for genotyping mutations in caprine Fec genes. Meta Gene 2014, 2, 439–449. [Google Scholar] [CrossRef] [PubMed]
Table 1. All non-synonymous SNP loci (verified and predicted) within the goat GDF9 gene.
Table 1. All non-synonymous SNP loci (verified and predicted) within the goat GDF9 gene.
SNP LocusRs of the SNPBreed and Sample SizeMutant allele FrequencyEffect of the Mutant Allele on the Litter Size Traitp ValuesReference
g.1972T>C/ c.149T>C/p.L50P-Lezhi black goats, n = 6---[70]
-Tibetan goats, n = 6---
g.3665C>T/ c.719C>T/ p.A240Vrs637835524Henan dairy goats, n = 1660.075Positivep < 0.05[53]
Yaoshan goats, n = 980.036--
Taihang Black goats, n = 1020.024--
g.3665C>T/ c.719C>T/ p.A240Vrs637835524Jining Grey goats, n = 2340.092-p > 0.05[58]
Lubei White goats, n = 900-p > 0.05
Yimeng Black goats, n = 800.116-p > 0.05
g.3764C>T/ c.818C>T/ p.A273Vrs662668357Black Bengal goats, n = 158026-p > 0.05[23]
g.3764C>T/ c.818C>T/ p.A273Vrs662668357Black Bengal goats, n = 1100.34-p > 0.05[47]
Barbari, n = 490.082-p > 0.05
Beetal, n = 280-p > 0.05
Ganjam, n = 500.04-p > 0.05
Jhakrana, n = 140-p > 0.05
Osmanabadi, n = 410-p > 0.05
Sangamneri, n = 500.04-p > 0.05
g.3764C>T/ c.818C>T/ p.A273Vrs662668357Black Bengal goats, n = 1580.256--[48]
Barbari, n = 500.06--
Beetal, n = 280--
Ganjam, n = 500.02--
Jhakrana, n = 140--
Osmanabadi, 410--
Sangamneri, n = 500.02--
g.3905A>C/ c.959A>C/ p.Q320Prs645345606Markhoz goats, n = 1200.623Positivep < 0.05[61]
g.3905A>C/ c.959A>C/ p.Q320Prs645345606Markhoz goats, n = 1640.686-p > 0.05[46]
g.3905A>C/ c.959A>C/ p.Q320Prs645345606Black Bengal goats, n = 1100.032-p > 0.05[47]
Barbari, n = 490.041-p > 0.05
Beetal, n = 270-p > 0.05
Ganjam, n = 500.04-p > 0.05
Jhakrana, n = 130-p > 0.05
Osmanabadi, n = 410.024-p > 0.05
Sangamneri, n = 500.07-p > 0.05
g.3905A>C/ c.959A>C/ p.Q320Prs645345606Black Bengal goats, n = 1580.035--[48]
Barbari, n = 500.040--
Beetal, n = 280.018--
Ganjam, n = 500.030--
Jhakrana, n = 140.036--
Osmanabadi, n = 410.024--
Sangamneri, n = 500.070--
g.3905A>C/ c.959A>C/ p.Q320Prs645345606Jining Grey goats, n = 1770.350Positivep < 0.05[50]
Guizhou White goats, n = 710.373-p > 0.05
Boer goats, n = 470.70-p > 0.05
Liaoning cashmere goats, n = 400.200-p > 0.05
g.3905A>C/ c.959A>C/ p.Q320Prs645345606Black Bengal goats, n = 1580.040-p > 0.05[23]
g.3905A>C/ c.959A>C/ p.Q320Prs645345606Lubei White goats, n = 900151-p > 0.05[58]
Yimeng Black goats, n = 800.182-p > 0.05
g.3905A>C/ c.959A>C/ p.Q320Prs645345606Yangtse River Delta White goats, n = 1050.262--[60]
Huanghuai goats, n = 400.150--
Boer goats, n = 350.086--
g.3905A>C/ c.959A>C/ p.Q320Prs645345606Shaanbei white cashmere goats, n = 15110.286Positivep < 0.05[45]
g.4135A>G/c.1189A>G/ p.V397Irs637044681Shaanbei white cashmere goats, n = 15110.523Negativep < 0.05[45]
g.4135A>G/c.1189A>G/ p.V397Irs637044681Markhoz goats, n = 1640.314-p > 0.05[46]
g.4135A>G/c.1189A>G/ p.V397Irs637044681Xinong Saanen dairy goats, n = 2410.290Positivep < 0.05[49]
Guanzhong dairy goats, n = 1970290Positivep < 0.05
Boer goats, n = 2030.290Positivep < 0.05
g.4135A>G/c.1189A>G/ p.V397Irs637044681Jining Grey goats, n = 1780.83-p > 0.05[50]
Guizhou White goats, n = 710.96--
Continued in Table 1
Boer goats, n = 470.81--
Liaoning cashmere goats, n = 400.64--
g.4135A>G/c.1189A>G/ p.V397Irs637044681Henan dairy goats, n = 1680.83Positivep < 0.05[53]
Yaoshan goats, n = 980.92--
Taihang Black goats, n = 1020.89--
g.4135A>G/c.1189A>G/ p.V397Irs637044681Black Bengal goats, n = 1100.92-p > 0.05[47]
Barbari, n = 490.90-p > 0.05
Beetal, n = 280.64-p > 0.05
Ganjam, n = 500.93-p > 0.05
Jhakrana, n = 130.50-p > 0.05
Osmanabadi, n = 410.99-p > 0.05
Sangamneri, n = 500.78-p > 0.05
g.4135A>G/c.1189A>G/ p.V397Irs637044681Black Bengal goats, n = 1580.89--[48]
Barbari, n = 500.90--
Beetal, n = 280.61--
Ganjam, n = 500.93--
Jhakrana, n = 140.54--
Osmanabadi, n = 410.84--
Sangamneri, n = 500.78--
g.4135A>G/c.1189A>G/ p.V397Irs637044681Inner Mongolia cashmere goats, n = 7610.68Positivep < 0.05[51]
g.4135A>G/c.1189A>G/ p.V397Irs637044681Big foot black goats, n = 960.57Negativep < 0.05[52]
Jintang black goats, n = 810.32Negativep < 0.05
g.4135A>G/c.1189A>G/ p.V397Irs637044681Black Bengal goats, n = 1580.89-p > 0.05[23]
g.4135A>G/c.1189A>G/ p.V397Irs637044681Jining Grey goats, n = 1090.93Positivep < 0.05[59]
Wendeng dairy goats, n = 400.31--
Liaoning cashmere goats, n = 380.40--
Beijing native goats, n = 310.68--
Boer goats, n = 280.57--
g.4135A>G/c.1189A>G/ p.V397Irs637044681Anhui White goats, n = 670.72Negativep < 0.05[54]
g.4135A>G/c.1189A>G/ p.V397Irs637044681Haimen goats, n = 1130.77-p > 0.05[55]
Xuhuai goats, n = 880.89-p > 0.05
g.4135A>G/c.1189A>G/ p.V397Irs637044681Laiwu Black goats, n = 320.86Positivep < 0.05[56]
Jining Grey goats, n = 600.92Positivep < 0.05
Laoshan dairy goats, n = 550.40-p > 0.05
g.4135A>G/c.1189A>G/ p.V397Irs637044681Chongming White goats, n = 750.80-P >0.05[57]
g.4135A>G/c.1189A>G/ p.V397Irs637044681Jining Grey goats, n = 2340.80-p > 0.05[58]
Lubei White goats, n = 900.68Negativep < 0.05
Yimeng Black goats, n = 800.85Negativep < 0.05
g.1902C>G/c.79C>G/ p.P27Rrs671913497-----
g.2077C>G/c.254C>G/ p.A85Grs654628150-----
g.3556G>C/ c.610G>C/ p.E204Qrs666975374-----
Table 2. All synonymous SNP loci (verified and predicted) within goat GDF9 gene.
Table 2. All synonymous SNP loci (verified and predicted) within goat GDF9 gene.
SNP LocusRs of the SNPBreed and Sample SizeMutant Allele FrequencyEffect of the Mutant Allele on the Litter Size Traitp ValuesReference
g.1941C>T/ c.118C>T/p.G40G-Lezhi black goats, n = 6---[70]
-Tibetan goats, n = 6---
g.2006C>A/ c.183C>A/p.L61Lrs669811820Jining Grey goats, n = 2240.61NegativeP < 0.05[63]
Wendeng dairy goats, n = 400.84--
Liaoning cashmere goats, n = 390.88--
Beijing native goats, n = 400.91--
Boer goats, n = 390.88--
g.2006C>A/ c.183C>A/p.L61Lrs669811820Jining Grey goats, n = 2340.33-P > 0.05[58]
Lubei White goats, n = 900.20-P > 0.05
Yimeng Black goats, n = 800.35NegativeP < 0.05
g.2006C>A/ c.183C>A/p.L61Lrs669811820Anhui White goats, n = 680.618NegativeP < 0.05[54]
g.2159C>T/c.336C>T/p.N112N-Jining Grey goats, n = 2240.39PositiveP < 0.05[63]
Wendeng dairy goats, n = 400.16--
Liaoning cashmere goats, n = 390.12--
Beijing native goats, n = 400.09--
Boer goats, n = 390.12--
g.2211G>A/c.387G>A/p.D129D-Assam hill goat, n = 92---[71]
g.3441C>A/c.495C>A/p.S165S-Assam hill goat, n = 92---[71]
g.3369G>A/ c.423G>A/p.L141Lrs650650729Jining Grey goats, n = 1780.104-P > 0.05[50]
Guizhou White goats, n = 710.021-P > 0.05
Boer goats, n = 470.192-P > 0.05
Liaoning cashmere goats, n = 400.363-P > 0.05
g.3369G>A/ c.423G>A/p.L141Lrs650650729Jining Grey goats, n = 1090.087NegativeP < 0.05[59]
Wendeng dairy goats, n = 400.313--
Liaoning cashmere goats, n = 380.605--
Beijing native goats, n = 310.097--
Boer goats, n = 280.304--
g.3369G>A/ c.423G>A/p.L141Lrs650650729Laiwu Black goats, n = 320.187-P > 0.05[56]
Jining Grey goats, n = 600.108NegativeP < 0.05
Laoshan dairy goats, n = 550.709-P > 0.05
g.3597G>T/ c.651G>T/p.T217Trs651511232-----
Table 3. V397I mutation within the GDF9 gene associated with litter size in global goat breeds.
Table 3. V397I mutation within the GDF9 gene associated with litter size in global goat breeds.
NumberTest MethodCountryBreedsSample SizeMinor Allele FrequencyParityp ValuesDominant GenotypeReference
1PCR-RFLP SequencingChinaShaanbei white cashmere goats1511A-0.4771stp < 0.05AG
2PCR-RFLP SequencingChinaXinong Saanen dairy goats241G-0.2901stp < 0.05AA, GA[49]
PCR-RFLP SequencingChinaXinong Saanen dairy goats241G-0.2902ndp < 0.05AA
PCR-RFLP SequencingChinaXinong Saanen dairy goats241G-0.2903rdp < 0.05AA, GA
PCR-RFLP SequencingChinaXinong Saanen dairy goats241G-0.2904thp > 0.05AA
PCR-RFLP SequencingChinaXinong Saanen dairy goats241G-0.290Averagep < 0.05AA, GA
PCR-RFLP SequencingChinaGuanzhong dairy goats197G-0.2901stp < 0.05
PCR-RFLP SequencingChinaGuanzhong dairy goats197G-0.2902ndp < 0.05AA
PCR-RFLP SequencingChinaGuanzhong dairy goats197G-0.2903rdp < 0.05AA, GA
PCR-RFLP SequencingChinaGuanzhong dairy goats197G-0.2904thp > 0.05AA
PCR-RFLP SequencingChinaGuanzhong dairy goats197G-0.290Averagep < 0.05AA, GA
PCR-RFLP SequencingChinaBoer goats203G-0.2901stp < 0.05
PCR-RFLP SequencingChinaBoer goats203G-0.2902ndp < 0.05AA
PCR-RFLP SequencingChinaBoer goats203G-0.2903rdp < 0.05AA, GA
PCR-RFLP SequencingChinaBoer goats203G-0.2904thp > 0.05AA
PCR-RFLP SequencingChinaBoer goats203G-0.290Averagep < 0.05AA, GA
3PCR-RFLP SequencingChinaJining Grey goats178A-0.1711stp > 0.05GG[50]
PCR-RFLP SequencingChinaGuizhou White goats71A-0.032
PCR-RFLP SequencingChinaBoer goats41A-0.192
PCR-RFLP SequencingChinaLiaoning cashmere goats40A-0.363
4PCR-RFLP SequencingChinaHenan dairy goats168A-0.1731stp < 0.05GA[53]
PCR-RFLP SequencingChinaYaoshan goats98A-0.082
PCR-RFLP SequencingChinaTaihang Black goats102A-0.113
5PCR-RFLPIndiaBlack Bengal goats110A-0.1801stp > 0.05GA[47]
PCR-RFLPIndiaBlack Bengal goats110A-0.1802ndp > 0.05AA
PCR-RFLPIndiaBlack Bengal goats110A-0.1803rdp > 0.05AA
PCR-RFLPIndiaBarbari49A-0.1021stp > 0.05GA
PCR-RFLPIndiaBarbari49A-0.1022ndp > 0.05GA
PCR-RFLPIndiaBarbari49A-0.1023rdp > 0.05GA
PCR-RFLPIndiaBeetal28A-0.3571stp > 0.05GG
PCR-RFLPIndiaBeetal28A-0.3572ndp > 0.05GG
PCR-RFLPIndiaBeetal28A-0.3573rdp > 0.05GG
PCR-RFLPIndiaGanjam50A-0.0701stp > 0.05GG
PCR-RFLPIndiaGanjam50A-0.0702ndp > 0.05GG
PCR-RFLPIndiaGanjam50A-0.0703rdp > 0.05GG
PCR-RFLPIndiaJhakrana13A-0.5001stp > 0.05
PCR-RFLPIndiaJhakrana13A-0.5002ndp > 0.05
PCR-RFLPIndiaJhakrana13A-0.5003rdp > 0.05
PCR-RFLPIndiaOsmanabadi41A-0.0121stp > 0.05GA
PCR-RFLPIndiaOsmanabadi41A-0.0122ndp > 0.05GG
PCR-RFLPIndiaOsmanabadi41A-0.0123rdp > 0.05GA
PCR-RFLPIndiaSangamneri50A-0.2201stp > 0.05GA
PCR-RFLPIndiaSangamneri50A-0.2202ndp > 0.05GA
PCR-RFLPIndiaSangamneri50A-0.2203rdp > 0.05GG
6PCR-RFLPIndiaBlack Bengal goats158A-0.108 [48]
PCR-RFLPIndiaBarbari50A-0.100
PCR-RFLPIndiaBeetal28A-0.393
PCR-RFLPIndiaGanjam50A-0.070
PCR-RFLPIndiaJhakrana14A-0.464
PCR-RFLPIndiaOsmanabadi41A-0.159
PCR-RFLPIndiaSangamneri50A-0.220
7PCR-RFLP SequencingChinaInner Mongolia cashmere goats761A-0.3201stp < 0.05GG[51]
PCR-RFLP SequencingChinaInner Mongolia cashmere goats761A-0.3202ndp < 0.05GG
PCR-RFLP SequencingChinaInner Mongolia cashmere goats761A-0.3203rdp > 0.05GG
PCR-RFLP SequencingChinaInner Mongolia cashmere goats761A-0.3204thp < 0.05GG
PCR-RFLP SequencingChinaInner Mongolia cashmere goats761A-0.3205thp < 0.05GG
PCR-RFLP SequencingChinaInner Mongolia cashmere goats761A-0.3206thp < 0.05GG
PCR-RFLP SequencingChinaInner Mongolia cashmere goats761A-0.320Averagep < 0.05GG
8PCR-SSCPChinaBig foot black goats96A-0.430 p < 0.05AA, GA[52]
PCR-SSCPChinaJintang black goats81G-0.320 p < 0.05AA, GA
9PCR-RFLPIndiaBlack Bengal goats158A-0.110 p > 0.05GA[23]
10PCR-SSCP SequencingChinaJining Grey goats109A-0.0731stp < 0.05GG[59]
PCR-SSCP SequencingChinaWendeng dairy goats40G-0.313
PCR-SSCP SequencingChinaLiaoning cashmere goats38G-0.395
PCR-SSCP SequencingChinaBeijing native goats31A-0.323
PCR-SSCP SequencingChinaBoer goats28A-0.429
11PCR-SSCP SequencingChinaAnhui White goats67A-0.2841stp < 0.05AA[54]
12PCR-SSCP SequencingChinaHaimen goats113A-0.2301stp > 0.05GA[55]
PCR-SSCP SequencingChinaXuhuai goats88A-0.1101stp > 0.05
13PCR-SSCP SequencingChinaLaiwu Black goats32A-0.1411stp < 0.05GG[56]
PCR-SSCP SequencingChinaJining Grey goats60A-0.0831stp < 0.05GG
PCR-SSCP SequencingChinaLaoshan dairy goats55A-0.6001stp > 0.05GA
14PCR-SSCP SequencingChinaChongming goats75A-0.2001stp > 0.05GA[57]
15PCR-SSCP SequencingChinaLubei White goats90A-0.3251stp < 0.05AG, GG[58]
PCR-SSCP SequencingChinaYimeng Black goats80A-0.1481stp < 0.05AA
16PCR-RFLPIranMarkhoz goats164G-0.3141stp > 0.05 [46]
Table 4. Q320P mutation within the GDF9 gene associated with litter size in global goat breeds.
Table 4. Q320P mutation within the GDF9 gene associated with litter size in global goat breeds.
NumberCountryBreedsSample SizeMinor Allele FrequencyParityp ValuesDominant GenotypeReference
1ChinaShaanbei white cashmere goats 1511C-0.2861stp < 0.05AC, CC[45]
2IndiaBlack Bengal goats 110C-0.0321stp > 0.05AC[47]
IndiaBlack Bengal goats 110C-0.0322ndp > 0.05AA
IndiaBlack Bengal goats 110C-0.0323rdp > 0.05AC
IndiaBarbari 49C-0.0411stp > 0.05AA
IndiaBarbari 49C-0.0412ndp > 0.05AA
IndiaBarbari 49C-0.0413rdp > 0.05AA
IndiaBeetal 27C-01stp > 0.05AA
IndiaBeetal 27C-02ndp > 0.05AA
IndiaBeetal 27C-03rdp > 0.05AA
IndiaGanjam 46C-0.0401stp > 0.05AA
IndiaGanjam 46C-0.0402ndp > 0.05AA
IndiaGanjam 46C-0.0403rdp > 0.05AA
IndiaJhakrana 13C-01stp > 0.05
IndiaJhakrana 13C-02ndp > 0.05
IndiaJhakrana 13C-03rdp > 0.05
IndiaOsmanabadi 39C-0.0241stp > 0.05AA
IndiaOsmanabadi 39C-0.0242ndp > 0.05AA
IndiaOsmanabadi 39C-0.0243rdp > 0.05AA
IndiaSangamneri 43C-0.0701stp > 0.05AA
IndiaSangamneri 43C-0.0702ndp > 0.05AA
IndiaSangamneri 43C-0.0703rdp > 0.05AA
3IndiaBlack Bengal goats158C-0.035 [48]
IndiaBarbari50C-0.040
IndiaBeetal28C-0.018
IndiaGanjam50C-0.030
IndiaJhakrana14C-0.036
IndiaOsmanabadi41C-0.024
IndiaSangamneri50C-0.070
4ChinaJining Grey goats177C-0.3501stp < 0.5AC, CC[50]
ChinaGuizhou White goats71C-0.373
ChinaBoer goats47C-0.170
ChinaLiaoning cashmere goats40C-0.200
5IndiaBlack Bengal goats158C-0.040 p > 0.05AC[23]
6ChinaLubei White goats90C-0.151 p > 0.05CC[58]
ChinaYimeng Black goats80C-0.182 p > 0.05AA
7ChinaYangtse River Delta White goats105C-0.262 [60]
ChinaHuanghuai goats40C-0.150
ChinaBoer goats35C-0.086
8IranMarkhoz goats120A-0.377 p < 0.05AC[61]
9IranMarkhoz goats164A-0.314 p > 0.05AA[46]

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Wang, X.; Yang, Q.; Zhang, S.; Zhang, X.; Pan, C.; Chen, H.; Zhu, H.; Lan, X. Genetic Effects of Single Nucleotide Polymorphisms in the Goat GDF9 Gene on Prolificacy: True or False Positive? Animals 2019, 9, 886. https://doi.org/10.3390/ani9110886

AMA Style

Wang X, Yang Q, Zhang S, Zhang X, Pan C, Chen H, Zhu H, Lan X. Genetic Effects of Single Nucleotide Polymorphisms in the Goat GDF9 Gene on Prolificacy: True or False Positive? Animals. 2019; 9(11):886. https://doi.org/10.3390/ani9110886

Chicago/Turabian Style

Wang, Xinyu, Qing Yang, Sihuan Zhang, Xiaoyu Zhang, Chuanying Pan, Hong Chen, Haijing Zhu, and Xianyong Lan. 2019. "Genetic Effects of Single Nucleotide Polymorphisms in the Goat GDF9 Gene on Prolificacy: True or False Positive?" Animals 9, no. 11: 886. https://doi.org/10.3390/ani9110886

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