Testis-enriched circular RNA circ-Bbs9 plays an important role in Leydig cell proliferation by regulating a CyclinD2-dependent pathway
Minzhi Jia A * , Xiaoliang Li A * , Chuan Jiang A , Ke Wang A , Tao Zuo A , Guolin He B , Lang Qin B C C and Wenming Xu A B CA Joint Laboratory of Reproductive Medicine, SCU-CUHK, Key Laboratory of Obstetric, Gynaecologic and Paediatric Diseases and Birth Defects of Ministry of Education, West China Second University Hospital, Sichuan University, Chengdu 610041, P. R. China.
B Department of Obstetrics and Gynaecology, West China Second University Hospital, Sichuan University, Chengdu 610041, P. R. China.
C Reproductive Medical Center, Department of Obstetrics and Gynecology, West China Second University Hospital, Sichuan University, Chengdu 610041, China.
D Corresponding authors. Email: xuwenming@scu.edu.cn; cacier@163.com
Reproduction, Fertility and Development 32(4) 355-362 https://doi.org/10.1071/RD18474
Submitted: 21 November 2018 Accepted: 1 July 2019 Published: 11 November 2019
Abstract
Circular RNAs belong to a new category of non-coding RNAs, characterised by a circular structure, conservation, stability and high expression in eukaryotes. They often show tissue- or cell-specific expression. Here, we identified a testis-enriched circular RNA (circRNA), circular Bbs9 (circ-Bbs9) that is highly expressed in mouse testis. An RNase R treatment experiment confirmed that circ-Bbs9 is indeed a circRNA. In situ hybridisation experiments showed that circ-Bbs9 is expressed in Leydig cells along seminiferous tubules and in the cytoplasm of the TM3 Leydig cell line. Knocking down the circ-Bbs9 in TM3 cells by lentivirus vectors arrested cell proliferation, whereas overexpression of circ-Bbs9 induced cell proliferation significantly. Knocking down circ-Bbs9 inhibited the protein level of cyclin D2 (Ccnd2) and RNA immunoprecipitation results showed that circ-Bbs9 interacts with Ccnd2. Our results show that use of the Hedgehog pathway Smoothened Agonist (SAG) HCl and antagonists cyclopamine and gant6 affects the expression levels of Glioma-Associated Oncogene Homolog 1 (Gli1), Ccnd2 and other genes in this pathway. Our research reveals that a Leydig cell-specific circRNA, circ-Bbs9, plays a critical role in Leydig cell proliferation through regulating the levels of cell cycle-related Ccnd2. Thus, our results emphasise the important role of circRNA in the male reproductive system.
Additional keywords: cell cycle, cyclin D2, Leydig cell, proliferation.
References
Avasthi, P., Maser, R. L., and Tran, P. V. (2017). Primary cilia in cystic kidney disease. Results Probl. Cell Differ. 60, 281–321.| Primary cilia in cystic kidney disease.Crossref | GoogleScholarGoogle Scholar | 28409350PubMed |
Chen, W., and Schuman, E. (2016). Circular RNAs in brain and other tissues: a functional enigma. Trends Neurosci. 39, 597–604.
| Circular RNAs in brain and other tissues: a functional enigma.Crossref | GoogleScholarGoogle Scholar | 27445124PubMed |
Chen, H., Wang, Y., Ge, R., and Zirkin, B. R. (2017). Leydig cell stem cells: identification, proliferation and differentiation. Mol. Cell. Endocrinol. 445, 65–73.
| Leydig cell stem cells: identification, proliferation and differentiation.Crossref | GoogleScholarGoogle Scholar | 27743991PubMed |
Chittela, R. K., Gupta, G. D., and Ballal, A. (2014). Characterization of a plant (rice) translin and its comparative analysis with human translin. Planta 240, 357–368.
| Characterization of a plant (rice) translin and its comparative analysis with human translin.Crossref | GoogleScholarGoogle Scholar | 24863060PubMed |
Daniel, C., Behm, M., and Ohman, M. (2015). The role of Alu elements in the cis-regulation of RNA processing. Cell. Mol. Life Sci. 72, 4063–4076.
| The role of Alu elements in the cis-regulation of RNA processing.Crossref | GoogleScholarGoogle Scholar | 26223268PubMed |
Dong, W. W., Li, H. M., Qing, X. R., Huang, D. H., and Li, H. G. (2016). Identification and characterization of human testis derived circular RNAs and their existence in seminal plasma. Sci. Rep. 6, 39080.
| Identification and characterization of human testis derived circular RNAs and their existence in seminal plasma.Crossref | GoogleScholarGoogle Scholar | 27958373PubMed |
Du, W. W., Yang, W., Liu, E., Yang, Z., Dhaliwal, P., and Yang, B. B. (2016). Foxo3 circular RNA retards cell cycle progression via forming ternary complexes with p21 and CDK2. Nucleic Acids Res. 44, 2846–2858.
| Foxo3 circular RNA retards cell cycle progression via forming ternary complexes with p21 and CDK2.Crossref | GoogleScholarGoogle Scholar | 26861625PubMed |
Du, W. W., Zhang, C., Yang, W., Yong, T., Awan, F. M., and Yang, B. B. (2017). Identifying and characterizing circRNA–protein interaction. Theranostics 7, 4183–4191.
| Identifying and characterizing circRNA–protein interaction.Crossref | GoogleScholarGoogle Scholar | 29158818PubMed |
Han, B., Chao, J., and Yao, H. (2018). Circular RNA and its mechanisms in disease: from the bench to the clinic. Pharmacol. Ther. 187, 31–44.
| Circular RNA and its mechanisms in disease: from the bench to the clinic.Crossref | GoogleScholarGoogle Scholar | 29406246PubMed |
Hansen, T. B., Jensen, T. I., Clausen, B. H., Bramsen, J. B., Finsen, B., Damgaard, C. K., and Kjems, J. (2013). Natural RNA circles function as efficient microRNA sponges. Nature 495, 384–388.
| Natural RNA circles function as efficient microRNA sponges.Crossref | GoogleScholarGoogle Scholar | 23446346PubMed |
Khan, M. A., Mohan, S., Zubair, M., and Windpassinger, C. (2016). Homozygosity mapping identified a novel protein truncating mutation (p.Ser100Leufs*24) of the BBS9 gene in a consanguineous Pakistani family with Bardet–Biedl syndrome. BMC Med. Genet. 17, 10.
| Homozygosity mapping identified a novel protein truncating mutation (p.Ser100Leufs*24) of the BBS9 gene in a consanguineous Pakistani family with Bardet–Biedl syndrome.Crossref | GoogleScholarGoogle Scholar | 26846096PubMed |
Kristensen, L. S., Hansen, T. B., Veno, M. T., and Kjems, J. (2018). Circular RNAs in cancer: opportunities and challenges in the field. Oncogene 37, 555–565.
| Circular RNAs in cancer: opportunities and challenges in the field.Crossref | GoogleScholarGoogle Scholar | 28991235PubMed |
Li, Z., Huang, C., Bao, C., Chen, L., Lin, M., Wang, X., Zhong, G., Yu, B., Hu, W., Dai, L., Zhu, P., Chang, Z., Wu, Q., Zhao, Y., Jia, Y., Xu, P., Liu, H., and Shan, G. (2015). Exon–intron circular RNAs regulate transcription in the nucleus. Nat. Struct. Mol. Biol. 22, 256–264.
| Exon–intron circular RNAs regulate transcription in the nucleus.Crossref | GoogleScholarGoogle Scholar | 25664725PubMed |
Li, X., Wang, Z., Jiang, Z., Guo, J., Zhang, Y., Li, C., Chung, J., Folmer, J., Liu, J., Lian, Q., Ge, R., Zirkin, B. R., and Chen, H. (2016). Regulation of seminiferous tubule-associated stem Leydig cells in adult rat testes. Proc. Natl. Acad. Sci. USA 113, 2666–2671.
| Regulation of seminiferous tubule-associated stem Leydig cells in adult rat testes.Crossref | GoogleScholarGoogle Scholar | 26929346PubMed |
Li, P., Chen, H., Chen, S., Mo, X., Li, T., Xiao, B., Yu, R., and Guo, J. (2017). Circular RNA 0000096 affects cell growth and migration in gastric cancer. Br. J. Cancer 116, 626–633.
| Circular RNA 0000096 affects cell growth and migration in gastric cancer.Crossref | GoogleScholarGoogle Scholar | 28081541PubMed |
Liang, G., Yang, Y., Niu, G., Tang, Z., and Li, K. (2017). Genome-wide profiling of Sus scrofa circular RNAs across nine organs and three developmental stages. DNA Res. 24, 523–535.
| Genome-wide profiling of Sus scrofa circular RNAs across nine organs and three developmental stages.Crossref | GoogleScholarGoogle Scholar | 28575165PubMed |
Luo, Y. H., Zhu, X. Z., Huang, K. W., Zhang, Q., Fan, Y. X., Yan, P. W., and Wen, J. (2017). Emerging roles of circular RNA hsa_circ_0000064 in the proliferation and metastasis of lung cancer. Biomed. Pharmacother. 96, 892–898.
| Emerging roles of circular RNA hsa_circ_0000064 in the proliferation and metastasis of lung cancer.Crossref | GoogleScholarGoogle Scholar | 29223555PubMed |
Nishimura, D. Y., Swiderski, R. E., Searby, C. C., Berg, E. M., Ferguson, A. L., Hennekam, R., Merin, S., Weleber, R. G., Biesecker, L. G., Stone, E. M., and Sheffield, V. C. (2005). Comparative genomics and gene expression analysis identifies BBS9, a new Bardet–Biedl syndrome gene. Am. J. Hum. Genet. 77, 1021–1033.
| Comparative genomics and gene expression analysis identifies BBS9, a new Bardet–Biedl syndrome gene.Crossref | GoogleScholarGoogle Scholar | 16380913PubMed |
Rasmussen, K. D., and Helin, K. (2016). Role of TET enzymes in DNA methylation, development, and cancer. Genes Dev. 30, 733–750.
| Role of TET enzymes in DNA methylation, development, and cancer.Crossref | GoogleScholarGoogle Scholar | 27036965PubMed |
Wilusz, J. E. (2018). A 360 degrees view of circular RNAs: from biogenesis to functions. Wiley Interdiscip. Rev. RNA 9, e1478.
| A 360 degrees view of circular RNAs: from biogenesis to functions.Crossref | GoogleScholarGoogle Scholar | 29655315PubMed |
Wu, X., Guo, X., Wang, H., Zhou, S., Li, L., Chen, X., Wang, G., Liu, J., Ge, H. S., and Ge, R. S. (2017). A brief exposure to cadmium impairs Leydig cell regeneration in the adult rat testis. Sci. Rep. 7, 6337.
| A brief exposure to cadmium impairs Leydig cell regeneration in the adult rat testis.Crossref | GoogleScholarGoogle Scholar | 28740105PubMed |
Yamamura, S., Imai-Sumida, M., Tanaka, Y., and Dahiya, R. (2018). Interaction and cross-talk between non-coding RNAs. Cell. Mol. Life Sci. 75, 467–484.
| Interaction and cross-talk between non-coding RNAs.Crossref | GoogleScholarGoogle Scholar | 28840253PubMed |
You, X., Vlatkovic, I., Babic, A., Will, T., Epstein, I., Tushev, G., Akbalik, G., Wang, M., Glock, C., Quedenau, C., Wang, X., Hou, J., Liu, H., Sun, W., Sambandan, S., Chen, T., Schuman, E. M., and Chen, W. (2015). Neural circular RNAs are derived from synaptic genes and regulated by development and plasticity. Nat. Neurosci. 18, 603–610.
| Neural circular RNAs are derived from synaptic genes and regulated by development and plasticity.Crossref | GoogleScholarGoogle Scholar | 25714049PubMed |