Literature DB >> 27865410

Comparative analysis of testis transcriptomes associated with male infertility in cattleyak.

Xin Cai1, Shumin Yu2, TserangDonko Mipam3, Fang Yang4, Wangsheng Zhao5, Wenjing Liu5, SuiZhong Cao4, Liuhong Shen4, Fangfang Zhao5, Lei Sun5, Chuanfei Xu5, Shixin Wu5.   

Abstract

Cattleyak exhibit equivalent adaptability to harsh environment as yak and much higher performances than yak. However, male infertility of cattleyak due to spermatogenic arrest greatly restricts their effective utilization in yak breeding. Although much work has been done to investigate the mechanisms of spermatogenic arrest, there is little information available in regard to the differences in transcriptomic profiling between cattleyak and yak testes. In this work, histologic observation indicated that spermatogonia were the main type of germ cells present in cattleyak testis, whereas all types of germ cells in differentiation were present in yak testis. Transcriptomic profiling identified 2960 differentially expressed genes (DEGs) in which 679 were upregulated and 2281 were downregulated in cattleyak. Significantly enriched gene ontology terms comprised a large number of DEGs associated with male infertility of cattleyak. The upregulation of STRA8 and NLRP14 may be associated with the accumulation of undifferentiated spermatogonial cells and serious cellular apoptosis in cattleyak. However, downregulated SPP1, SPIN2B, and PIWIL1 were associated with cell cycle progression and spermatogonial genome integrity, whereas CDKN2C, CYP26A1, OVOL1, GGN, MAK, INSL6, RNF212, TSSK1B, TSSK2, and TSSK6 were involved in meiosis. Furthermore, scores of genes associated with sperm components were also downregulated in cattleyak. Wnt/β-catenin signaling pathway was involved in the top-listed three significantly enriched pathways, and the downregulation of Wnt3a, PP2A, and TCF/LEF-1 may have contributed to the arrest of spermatogonial differentiation in cattleyak. The data suggest that spermatogenic arrest of cattleyak might occur at the stage of spermatogonial differentiation and get aggravated during meiosis, which results in minimal number of sperms with morphologic abnormalities and structural deficiency lacking fertilization ability.
Copyright © 2016 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  Cattleyak; Male infertility; Spermatogenesis; Testis; Testis transcriptomes

Mesh:

Substances:

Year:  2016        PMID: 27865410     DOI: 10.1016/j.theriogenology.2016.09.047

Source DB:  PubMed          Journal:  Theriogenology        ISSN: 0093-691X            Impact factor:   2.740


  15 in total

1.  Testis transcriptome profiling identified lncRNAs involved in spermatogenic arrest of cattleyak.

Authors:  Xin Cai; Shixin Wu; TserangDonko Mipam; Hui Luo; Chuanping Yi; Chuanfei Xu; Wangsheng Zhao; Hongying Wang; Jincheng Zhong
Journal:  Funct Integr Genomics       Date:  2021-10-09       Impact factor: 3.410

2.  Promoter hypermethylation of PIWI/piRNA pathway genes associated with diminished pachytene piRNA production in bovine hybrid male sterility.

Authors:  Gong-Wei Zhang; Ling Wang; Huiyou Chen; Jiuqiang Guan; Yuhui Wu; Jianjun Zhao; Zonggang Luo; Wenming Huang; Fuyuan Zuo
Journal:  Epigenetics       Date:  2020-03-06       Impact factor: 4.528

3.  Gene expression dynamics during the gonocyte to spermatogonia transition and spermatogenesis in the domestic yak.

Authors:  Guowen Wang; Yongchang Li; Qilin Yang; Shangrong Xu; Shike Ma; Rongge Yan; Ruina Zhang; Gongxue Jia; Deqiang Ai; Qi'en Yang
Journal:  J Anim Sci Biotechnol       Date:  2019-07-12

4.  Comparative RNA-Seq Analysis of Differentially Expressed Genes in the Epididymides of Yak and Cattleyak.

Authors:  Wangsheng Zhao; Kifayatullah Mengal; Meng Yuan; Eugene Quansah; Pengcheng Li; Shixin Wu; Chuanfei Xu; Chuanping Yi; Xin Cai
Journal:  Curr Genomics       Date:  2019-05       Impact factor: 2.236

5.  Bovid microRNAs involved in the process of spermatogonia differentiation into spermatocytes.

Authors:  Chuanfei Xu; Mujahid Ali Shah; TserangDonko Mipam; Shixin Wu; Chuanping Yi; Hui Luo; Meng Yuan; Zhixin Chai; Wangsheng Zhao; Xin Cai
Journal:  Int J Biol Sci       Date:  2020-01-01       Impact factor: 6.580

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Authors:  S Lam; J Zeidan; F Miglior; A Suárez-Vega; I Gómez-Redondo; P A S Fonseca; L L Guan; S Waters; A Cánovas
Journal:  BMC Genomics       Date:  2020-10-08       Impact factor: 3.969

7.  Using publicly available transcriptomic data to identify mechanistic and diagnostic biomarkers in azoospermia and overall male infertility.

Authors:  Temidayo S Omolaoye; Mahmood Yaseen Hachim; Stefan S du Plessis
Journal:  Sci Rep       Date:  2022-02-16       Impact factor: 4.379

8.  Differentially expressed microRNAs between cattleyak and yak testis.

Authors:  Chuanfei Xu; Shixin Wu; Wangsheng Zhao; TserangDonko Mipam; Jingbo Liu; Wenjing Liu; Chuanping Yi; Mujahid Ali Shah; Shumin Yu; Xin Cai
Journal:  Sci Rep       Date:  2018-01-12       Impact factor: 4.379

9.  Identification and characterization of circular RNAs in Qinchuan cattle testis.

Authors:  Yuan Gao; Mingli Wu; Yingzhi Fan; Shipeng Li; Zhenyu Lai; Yongzhen Huang; Xianyong Lan; Chuzhao Lei; Hong Chen; Ruihua Dang
Journal:  R Soc Open Sci       Date:  2018-07-25       Impact factor: 2.963

10.  Testis transcriptome profiling identified genes involved in spermatogenic arrest of cattleyak.

Authors:  Shixin Wu; TserangDonko Mipam; Chuanfei Xu; Wangsheng Zhao; Mujahid Ali Shah; Chuanping Yi; Hui Luo; Xin Cai; Jincheng Zhong
Journal:  PLoS One       Date:  2020-02-24       Impact factor: 3.240

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