中国畜禽种业 ›› 2023, Vol. 19 ›› Issue (6): 105-112.
吴雨1, 周迪1,*, 陈琨2, 蒋桂荣1, 杨蓉1, 王燕1, 敖叶1, 方华1, 王舍1
Wu Yu1, Zhou Di1,*, Chen Kun2, Jiang Gui rong1, Wang Yan1, Yang Rong1, AO Ye1, Fang Hua1, Wang She1
摘要: 在现代养猪业中,精液品质是检验种公猪生产性能的一项重要指标,包括精子的密度、活力、形态和DNA片段等参数,受雄性动物体内环境、外环境等多种因素影响,不同地方猪群体间存在一定差异。目前,通过常规方法来评定种公猪精液质量存在误差大、周期长以及效率低等问题,严重制约了养猪业的发展。因此,为进一步解析地方猪精子发生机制,改善其精液品质,可从分子遗传学角度进行深入探究。故该文综述了AKAP3、HSF-1、WIP1、SPATA6和MTHFR基因在地方猪精液品质中的研究进展,以期为后续优质公猪的选育提供参考资料。
[1] 许美娜, 朱奕舟, 林思远, 等. CRISPR/Cas9基因编辑技术在猪育种中的研究进展[J]. 广东农业科学, 2022, 49(8):87-96. [2] Umesiobi D O.Boar effects and their relations to fertility and litter size in sows[J]. South African Journal of Animal Science, 2010, 40(5):471-475. [3] 张恒. 公猪精液性状遗传参数估计及候选基因分析[D]. 广州:华南农业大学, 2020. [4] 林燕华, 刘爱华, 李学军. A型激酶锚定蛋白的结构和生物学功能[J]. 生理科学进展, 2005(3):241-244. [5] Rafaee A, Kashani E, Meybodi A M, et al.Structural modeling of human AKAP3 protein and in silico analysis of single nucleotide polymorphisms associated with sperm motility[J]. Scientific Reports, 2022, 12(1):3656. [6] Xu K B, Qi H Y.Sperm-specific AKAP3 is a dual-specificity anchoring protein that interacts with both protein kinase a regulatory subunits via conserved N-terminal amphipathic peptides[J]. Molecular Reproduction and Development, 2014, 81(7) :595-607. [7] Zapata H, Baron L, Kong M, et al.Protein kinase A (prka) activity is regulated by the proteasome at the onset of human sperm capacitation[J]. Cells, 2021, 10(12):3501. [8] Mahabadi J A, Tameh A A, Talaei S A, et al.Retinoic acid and/or progesterone differentiate mouse induced pluripotent stem cells into male germ cells in vitro[J]. Journal of Cellular Biochemistry, 2019, 121(3):2159-2169. [9] Vizel R, Hillman P, Ickowice D, et al.AKAP3 degradation in sperm capacitation is regulated by its tyrosine phosphorylation[J]. Biochimicaet Biophysica Acta-General Subjects, 2015, 1850(9):1912-1920. [10] Qu X L, Han Y, Chen X, et al.Inhibition of 26S proteasome enhances AKAP3-mediated cAMP-PKA signaling during boar sperm capacitation[J]. Animal Reproduction Science, 2022, 247:107079. [11] 王丽, 叶翔杨, 温晓, 等. 猪营养调控技术研究进展[J]. 广东农业科学, 2020, 47(11):114-124. [12] Xu Y, Han Q, Ma C, et al.Comparative Proteomics and Phos-phoproteomics Analysis Reveal the Possible Breed Difference in Yorkshire and Duroc Boar Spermatozoa[J]. Frontiers in Cell and Developmental Biology, 2021, 9:652809. [13] Xu K B, Yang L L, Zhang L, er al. Lack of AKAP3 disrupts integrity of the subcellular structure and proteome of mouse sperm and causes male sterility[J]. Development, 2020, 147(2):181057. [14] Luconi M, Cantini G, Baldi E, et al.Role of a-kinase anchoring proteins (AKAPs) in reproduction[J]. Front Biosci, 2011, 16(4):1315. [15] Karanwal S, Pal A, Chera J S, et al.Identification of protein can-didates in spermatozoa of water buffalo (Bubalus bubalis) bulls helps in predicting their fertility status[J]. Frontiers in Cell and Developmental Biology, 2023, 11:1119220. [16] Liu C Y, Shen Y, Tang S Y, et al.Homozygous variants in AKAP3 induce asthenoteratozoospermia and male infertility[J]. Journal of Medical Genetics, 2023, 60(2): 137-143. [17] Jahan K, Nie H, Yan X.Revealing the potential regulatory relationship between HSP70, HSP90 and HSF genes under temperature stress[J]. Fish & Shellfish Immunology, 2023, 134:108607. [18] Zhang H C, Shao S P, Zeng Y, et al.Reversible phase separation of HSF1 is required for an acute transcriptional response during heat shock[J]. Nature Cell Biology, 2022, 24(3):340-352. [19] Kawagoe S, Kumashiro M, Mabuchi T, et al.Heat-Induced Conformational Transition Mechanism of Heat Shock Factor 1 Investigated by Tryptophan Probe[J]. Biochemistry, 2022, 61(24):2897-2908. [20] Sarge K D.Male Germ Cell-specific Alteration in Temperature Set Point of the Cellular Stress Response[J]. Journal of Biological Chemistry, 1995, 270(32):18745-18748. [21] 王彩云. 公猪精液质量评价及相关基因表达分析[D]. 合肥:安徽农业大学, 2021. [22] Xu A S, Zhang J S, Zuo L P, et al.FTO promotes multiple myeloma progression by posttranscriptional activation of HSF1 in an m6A-YTHDF2-dependent manner[J]. Molecular therapy : the journal of the American Society of Gene Therapy, 2021, 30(3):1104-1118. [23] Zhang M, Yue Z H, Liu Z J, et al.Hsp70 and HSF-1 expression is altered in the tissues of pigs transported for various periods of times[J]. Journal of Veterinary Science, 2012, 13(3):253-259. [24] Kim H,Rocio G P.HSF1 and Its Role in Huntington's Disease Pathology[J]. Advances in Experimental Medicine and Biology 2022, 19:1-61. [25] Fiscella M, Zhang H L, Fan S, et al.Wip1, a novel human protein phosphatase that is induced in response to ionizing radiation in a p53-dependent manner[J]. Proceedings of the National Academy of Sciences, 1997, 94(12):6048-6053. [26] Cho S J, Cha B S, Kwon O S, et al.Wip1 directly dephosphorylates NLK and increases Wnt activity during germ cell development[J]. Biochimica et Biophysica Acta-Molecular Basis of Disease, 2017, 1863(4):1013-1022. [27] Leem J, Bai G Y, Oh J S.The Capacity to Repair Sperm DNA Damage in Zygotes is Enhanced by Inhibiting WIP1 Activity[J]. Frontiers in Cell and Developmental Biology, 2022, 10:841327. [28] Wei Y H, Gao Q, Niu P X, et al.Integrative Proteomic and Phosphoproteomic Profiling of Testis from Wip1 Phosphatase-Knockout Mice: Insights into Mechanisms of Reduced Fertility[J]. Molecular & Cellular Proteomics, 2019, 18(2):216-230. [29] Wang B Y, Zhang M R, Che J J, et al.Wild-type p53-induced phosphatase 1 (WIP1) regulates the proliferation of swine Sertoli cells through P53[J]. Reproduction, Fertility and Development, 2021, 32(18):1350-1356. [30] Xu K, Zhang X L, Liu Z G, et al.A transgene-free method for rapid and efficient generation of precisely edited pigs without monoclonal selection[J]. Science China Life Sciences, 2022, 65(8):1535-1546. [31] Sun J M, Deng L G, Gong Y.MiR-145-5p inhibits the invasion of prostate cancer and induces apoptosis by inhibiting WIP1[J]. Journal of Oncology, 2021(8):4412705-4412716. [32] Sujit K M, Singh V, Trivedi S, et al.Increased DNA methylation in the spermatogenesis associated (SPATA) genes correlates with infertility[J]. Andrology, 2020, 8(3):602-609. [33] Yuan S Q, Stratton C J, Bao J Q, et al.Spata6 is required for normal assembly of the sperm connecting piece and tight head-tail conjunction[J]. Proceedings of the National Academy of Sciences, 2015, 112(5): 430-439. [34] Abu M, Ayesh B M, Hart M, et al.Differential expression of miR-23a/b-3p and its target genes in male patients with subfertility[J]. Fertility and Sterility, 2019, 112(2):323-335. [35] Sujit K M, Singh V, Trivedi S, et al.Increased DNA methylation in the spermatogenesis﹞associated (SPATA) genes correlates with infertility[J]. Andrology, 2020, 8(3):602-609. [36] Song H B, Zhu L H,,et al.Exploiting RNA-sequencing data from the porcine testes to identify the key genes involved in spermatogenesis in Large White pigs[J]. Gene, 2015, 573(2):303-309. [37] 周佳伟, 吴俊静, 乔木, 等. 猪SPATA6基因的多态性与精液品质性状的关联分析[J]. 湖北农业科学, 2019, 58(24):163-166. [38] 周佳伟, 梅书棋, 彭先文, 等. 猪SPATA6基因第十内含子内与猪精液品质性状相关的单倍型标记与应用[P]. 中国专利:CN110468215A, 2019-11-19. [39] Li X D, Yao X L, Xie H Q, et al.Effects of SPATA6 on proliferation, apoptosis and steroidogenesis of Hu sheep Leydig cells in vitro[J]. Theriogenology, 2021, 166:9-20. [40] 彩丽干. 蒙古马睾丸发育及精子生成相关基因的筛选与分析[D]. 呼和浩特:内蒙古农业大学, 2017. [41] Diakite B, Kassogue Y, Maiga M, et al.Lack of Association of C677T Methylenetetrahydrofolate Reductase Polymorphism with Breast Cancer Risk in Mali[J]. Genetics Research, 2023:4683831. [42] 陶薇, 宋沧桑, 张阳, 等. MTHFR、MTRR基因多态性与复发性流产相关性的研究进展[J]. 中国药物评价, 2019, 36(5):368-371. [43] Lal H, Sharma B, Sambyal V, et al.Association of MTHFR 677C> T polymorphism with breast cancer risk: A case-control study and meta-analysis[J]. Journal of Cancer Research and Therapeutics, 2022, 18(6):1451-1460. [44] Clement A, Amar E, Brami C, et al.MTHFR SNPs (Methyl Tetrahy-drofolate Reductase, Single Nucleotide Polymorphisms) C677T and A1298C Prevalence and Serum Homocysteine Levels in> 2100 Hypofertile Caucasian Male Patients[J]. Biomolecules, 2022, 12(8):1086. [45] Fatima T, Afzal U, Shaharyar S, et al.MTHFR-c 677C> T polymorphism and male infertility: An analysis in a cohort of Pakistani men[J]. Revista Internacional de Andrologia, 2022, 20(4):274-280. [46] 赖文. MTHFR基因多态性与公猪精液品质的相关性的研究[D]. 武汉:华中农业大学, 2019. [47] Onteru S K, Fan B, Mote B, et al.SNP discovery in genes affecting leg health traits in pigs[M]. Animal Genomics for Animal Health. Karger Publishers, 2008, 132:337-342. [48] Fan B, Ontreu S K, Nikkila M T, et al.Identification of genetic markers associated with fatness and leg weakness traits in the pig[J]. Animal genetics, 2009, 40(6):967-970. |
[1] | 赵同渊, 夏娜, 刘玉静, 申茂欣, 杨代蓉, 魏嘉, 康一岚, 徐慧琳. 不同因素对山羊精液低温保存效果的影响[J]. 中国畜禽种业, 2023, 19(4): 21-24. |
[2] | 王玉梅, 杨拧嘉, 霍晨曦, 石雪, 付盼盼, 郭利亚, 张伟. 热应激对南阳牛种公牛精液品质的影响及对策[J]. 中国畜禽种业, 2021, 17(4): 128-128. |
[3] | 金福源, 陶艳华, 刘美华, 李成贵, 彭会建, 王亚丽, 计昌华. 银杏叶提取物对种羊精液品质的影响[J]. 中国畜禽种业, 2021, 17(12): 49-50. |
[4] | 钟观新. 广东小耳花猪冷冻精液制备效果影响因素分析[J]. 中国畜禽种业, 2021, 17(1): 103-104. |
[5] | 宋卫涛, 李慧芳, 莫英文, 刘国发, 陈维. 麻鸭人工授精技术及注意事项[J]. 中国畜禽种业, 2021, 17(1): 176-177. |
[6] | . 牛冷冻精液的质量检测与管控[J]. 中国畜禽种业, 2019, 15(1): 0-. |
[7] | . 提高和牛冷冻精液生产质量关键措施[J]. 中国畜禽种业, 2019, 15(1): 0-. |
[8] | . 精力莱公猪料对公猪精液品质的比较试验[J]. 中国畜禽种业, 2019, 15(1): 0-. |
[9] | . 短光照季节光强对种公猪血液指标影响试验[J]. 中国畜禽种业, 2019, 15(1): 0-. |
|