[1] Chen FJ, Sun M, Li SQ, et al. Upregulation of the long non-coding RNA HOTAIR promotes esophageal squamous cell carcinoma metastasis and poor prognosis[J]. Mol Carcinog, 2013, 52(11): 908-915. [2] Li X, Ao J, Wu J. Systematic identification and comparison of expressed profiles of lncRNAs and circRNAs with associated co-expression and ceRNA networks in mouse germline stem cells[J]. Oncotarget, 2017, 8(16): 26573-26590. [3] Wang J, Gong X, Tian GG, et al. Long noncoding RNA growth arrest-specific 5 promotes proliferation and survival of female germline stem cells in vitro[J]. Gene, 2018, 653: 14-21. [4] Yerushalmi GM, Salmon-Divon M, Yung Y, et al. Characterization of the human cumulus cell transcriptome during final follicular maturation and ovulation[J]. Mol Hum Reprod, 2014, 20(8): 719-735. [5] Xu XF, Li J, Cao YX, et al. Differential Expression of Long Noncoding RNAs in Human Cumulus Cells Related to Embryo Developmental Potential: A Microarray Analysis[J]. Reprod Sci, 2015, 22(6): 672-678. [6] Salem H, Rachmin I, Yissachar N, et al. Nek7 kinase targeting leads to early mortality, cytokinesis disturbance and polyploidy[J]. Oncogene, 2010, 29(28): 4046-4057. [7] Ishak SD, Tan SH, Khong HK, et al. Upregulated mRNA expression of desaturase and elongase, two enzymes involved in highly unsaturated fatty acids biosynthesis pathways during follicle maturation in zebrafish[J]. Reprod Biol Endocrinol, 2008, 6: 56. [8] Kimura AP, Yoneda R, Kurihara M, et al. A Long Noncoding RNA, lncRNA-Amhr2, Plays a Role in Amhr2 Gene Activation in Mouse Ovarian Granulosa Cells[J]. Endocrinology, 2017, 158(11): 4105-4121. [9] Matsubara S, Kurihara M, Kimura AP. A long non-coding RNA transcribed from conserved non-coding sequences contributes to the mouse prolyl oligopeptidase gene activation[J]. J Biochem, 2014, 155(4): 243-256. [10] Liu YD, Li Y, Feng SX, et al. Long Noncoding RNAs: Potential Regulators Involved in the Pathogenesis of Polycystic Ovary Syndrome[J]. Endocrinology, 2017, 158(11): 3890-3899. [11] Das M, Djahanbakhch O, Hacihanefioglu B, et al. Granulosa cell survival and proliferation are altered in polycystic ovary syndrome[J]. J Clin Endocrinol Metab, 2008, 93(3): 881-887. [12] Xiong Y, Liu T, Wang S, et al. Cyclophosphamide promotes the proliferation inhibition of mouse ovarian granulosa cells and premature ovarian failure by activating the lncRNA-Meg3-p53-p66Shc pathway[J]. Gene, 2017, 596: 1-8. [13] 李加宇. 长链非编码RNA调控小鼠卵巢发育的初步研究[D].华南农业大学,2016. [14] Nakagawa S, Shimada M, Yanaka K, et al. The lncRNA Neat1 is required for corpus luteum formation and the establishment of pregnancy in a subpopulation of mice[J]. Development, 2014, 141(23): 4618-4627. [15] Stadtfeld M, Apostolou E, Akutsu H, et al. Aberrant silencing of imprinted genes on chromosome 12qF1 in mouse induced pluripotent stem cells[J]. Nature, 2010, 465(7295): 175-181. [16] 谷甜甜. Rian基因的表达调控及与Dlk1-Dio3印记区间的关系研究[D]. 哈尔滨工业大学,2012. [17] 余长威. 长非编码RNA Gtl2在小鼠胚胎发育早期的表达调控及功能研究[D]. 哈尔滨工业大学,2014. [18] Hoki Y, Kimura N, Kanbayashi M, et al. A proximal conserved repeat in the Xist gene is essential as a genomic element for X-inactivation in mouse[J]. Development, 2009, 136(1): 139-146. [19] Plath K, Fang J, Mlynarczyk-Evans SK, et al. Role of histone H3 lysine 27 methylation in X inactivation[J]. Science, 2003, 300(5616): 131-135. [20] Hasegawa Y, Brockdorff N, Kawano S, et al. The matrix protein hnRNP U is required for chromosomal localization of Xist RNA[J]. Dev Cell, 2010, 19(3): 469-476. [21] Pullirsch D, H?rtel R, Kishimoto H, et al. The Trithorax group protein Ash2l and Saf-A are recruited to the inactive X chromosome at the onset of stable X inactivation[J]. Development, 2010, 137(6): 935-943. [22] Agrelo R, Souabni A, Novatchkova M, et al. SATB1 defines the developmental context for gene silencing by Xist in lymphoma and embryonic cells[J]. Dev Cell, 2009, 16(4): 507-516. [23] Zhao J, Sun BK, Erwin JA, et al. Polycomb proteins targeted by a short repeat RNA to the mouse X chromosome[J]. Science, 2008, 322(5902): 750-756. [24] Engreitz JM, Pandya-Jones A, McDonel P, et al. The Xist lncRNA exploits three-dimensional genome architecture to spread across the X chromosome[J]. Science, 2013, 341(6147): 1237973. [25] Simon MD, Pinter SF, Fang R, et al. High-resolution Xist binding maps reveal two-step spreading during X-chromosome inactivation[J]. Nature, 2013, 504(7480): 465-469. [26] Vallot C, Patrat C, Collier AJ, et al. XACT Noncoding RNA Competes with XIST in the Control of X Chromosome Activity during Human Early Development[J]. Cell Stem Cell, 2017, 20(1): 102-111. [27] Li J, Han W, Shen X, et al. DNA methylation signature of long noncoding RNA genes during human pre-implantation embryonic development[J]. Oncotarget, 2017, 8(34): 56829-56838. |