1.RBM46 is essential for gametogenesis and functions in post-transcriptional roles affecting meiotic cohesin subunits.
Yue LV ; Gang LU ; Yuling CAI ; Ruibao SU ; Liang LIANG ; Xin WANG ; Wenyu MU ; Xiuqing HE ; Tao HUANG ; Jinlong MA ; Yueran ZHAO ; Zi-Jiang CHEN ; Yuanchao XUE ; Hongbin LIU ; Wai-Yee CHAN
Protein & Cell 2023;14(1):51-63
RBM46 is a germ cell-specific RNA-binding protein required for gametogenesis, but the targets and molecular functions of RBM46 remain unknown. Here, we demonstrate that RBM46 binds at specific motifs in the 3'UTRs of mRNAs encoding multiple meiotic cohesin subunits and show that RBM46 is required for normal synaptonemal complex formation during meiosis initiation. Using a recently reported, high-resolution technique known as LACE-seq and working with low-input cells, we profiled the targets of RBM46 at single-nucleotide resolution in leptotene and zygotene stage gametes. We found that RBM46 preferentially binds target mRNAs containing GCCUAU/GUUCGA motifs in their 3'UTRs regions. In Rbm46 knockout mice, the RBM46-target cohesin subunits displayed unaltered mRNA levels but had reduced translation, resulting in the failed assembly of axial elements, synapsis disruption, and meiotic arrest. Our study thus provides mechanistic insights into the molecular functions of RBM46 in gametogenesis and illustrates the power of LACE-seq for investigations of RNA-binding protein functions when working with low-abundance input materials.
Animals
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Mice
;
3' Untranslated Regions/genetics*
;
Cell Cycle Proteins/metabolism*
;
Gametogenesis/genetics*
;
Meiosis/genetics*
;
Nuclear Proteins/genetics*
;
RNA-Binding Proteins/genetics*
2.Loss of RBFOX2 inhibits meiotic initiation in male mice.
Lin YAN ; Jian CHEN ; Yan NING ; Chunsheng HAN
Chinese Journal of Biotechnology 2023;39(10):4108-4122
Meiotic initiation is a critical step in gametogenesis. Recently, some genes required for meiotic initiation have been identified. However, meiosis-initiating factors and the underlying mechanisms are far from being fully understood. We have established a long-term culture system of spermatogonial stem cells (SSCs) and an in vitro model of meiotic initiation using mouse SSCs. Our previous study revealed that the RNA-binding protein RBFOX2 may regulate meiotic initiation, but the role and the mechanism need to be further elucidated. In this study, we constructed RBFOX2 knockdown SSC lines by using lentivirus-mediated gene delivery method, and found that the knockdown SSCs underwent normal self-renewal, mitosis and differentiation. However, they were unable to initiate meiosis when treated with retinoic acid, and they underwent apoptosis. These results indicate that RBFOX2 plays an essential role in meiotic initiation of spermatogonia. This work provides new clues for understanding the functions of RNA-binding proteins in meiotic initiation.
Mice
;
Male
;
Animals
;
Spermatogonia/metabolism*
;
Meiosis/genetics*
;
Cell Differentiation
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Tretinoin/pharmacology*
;
Mitosis
;
Testis/metabolism*
3.Molecular Mechanism of Aurora Kinase A Regulating the Meiosis of Oocyte.
Feng LIU ; Bo YAO ; Xiao-Long MO ; Qiong-You LIU ; Yan-Ping REN
Acta Academiae Medicinae Sinicae 2022;44(1):142-148
Aurora kinase A (AURKA),a family member of aurora kinases,is involved in mitotic entry,maturation and separation of centrosome,assembly and stabilization of bipolar spindle,and condensation and separation of chromosome.Studies have demonstrated that AURKA plays a similar role in meiosis,while the specific mechanism and the similarities and differences in its role between meiosis and mitosis remain unclear.Therefore,we reviewed the studies about the localization and activation of AURKA in oocyte meiosis,and compared the role of AURKA in regulating spindle formation,activating spindle assembly checkpoint,and correcting the kinetochore-microtubule attachment between the meiosis of oocytes and the mitosis of somatic cells.This review will lay a theoretical foundation for revealing the mechanism of AURKA in the regulation of cell division and for the clinical research related to cancer and reproduction.
Aurora Kinase A/genetics*
;
Cell Cycle Proteins/genetics*
;
Chromosome Segregation
;
Humans
;
Meiosis
;
Oocytes
4.Advances in research on the development of female germ cells.
Xiaojie SUN ; Congrong LIU ; Yan LIU
Chinese Journal of Medical Genetics 2021;38(3):286-289
The development of female germ cells can be mainly divided into two stages: fetal germ cells and oocytes in folliculogenesis after puberty. Mitosis-meiosis transition, meiosis arrest and re-activation are the key phases of the development. Several phases may be characterized by their distinct molecular events, which involve precise regulation of gene expression and interaction with corresponding gonadal niche cells. In recent years, single-cell transcriptome studies have clarified phase-specific patterns of gene expression, signaling pathways and epigenetic modification during oogenesis and folliculogenesis. These works have provided important insights into the development of female germ cells and pathogenesis of germ-cell related diseases, which may promote clinical application of reproductive genetic research.
Female
;
Germ Cells
;
Humans
;
Meiosis
;
Oocytes
;
Oogenesis/genetics*
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Signal Transduction
5.Crossover patterns under meiotic chromosome program.
Shunxin WANG ; Yongliang SHANG ; Yanlei LIU ; Binyuan ZHAI ; Xiao YANG ; Liangran ZHANG
Asian Journal of Andrology 2021;23(6):562-571
Repairing DNA double-strand breaks (DSBs) with homologous chromosomes as templates is the hallmark of meiosis. The critical outcome of meiotic homologous recombination is crossovers, which ensure faithful chromosome segregation and promote genetic diversity of progenies. Crossover patterns are tightly controlled and exhibit three characteristics: obligatory crossover, crossover interference, and crossover homeostasis. Aberrant crossover patterns are the leading cause of infertility, miscarriage, and congenital disease. Crossover recombination occurs in the context of meiotic chromosomes, and it is tightly integrated with and regulated by meiotic chromosome structure both locally and globally. Meiotic chromosomes are organized in a loop-axis architecture. Diverse evidence shows that chromosome axis length determines crossover frequency. Interestingly, short chromosomes show different crossover patterns compared to long chromosomes. A high frequency of human embryos are aneuploid, primarily derived from female meiosis errors. Dramatically increased aneuploidy in older women is the well-known "maternal age effect." However, a high frequency of aneuploidy also occurs in young women, derived from crossover maturation inefficiency in human females. In addition, frequency of human aneuploidy also shows other age-dependent alterations. Here, current advances in the understanding of these issues are reviewed, regulation of crossover patterns by meiotic chromosomes are discussed, and issues that remain to be investigated are suggested.
Cell Division/physiology*
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Chromosome Segregation/physiology*
;
Humans
;
Meiosis/genetics*
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Recombination, Genetic
6.The molecular control of meiotic double-strand break (DSB) formation and its significance in human infertility.
Yang LI ; Yu-Fan WU ; Han-Wei JIANG ; Ranjha KHAN ; Qi-Qi HAN ; Furhan IQBAL ; Xiao-Hua JIANG ; Qing-Hua SHI
Asian Journal of Andrology 2021;23(6):555-561
Meiosis is an essential step in gametogenesis which is the key process in sexually reproducing organisms as meiotic aberrations may result in infertility. In meiosis, programmed DNA double-strand break (DSB) formation is one of the fundamental processes that are essential for maintaining homolog interactions and correcting segregation of chromosomes. Although the number and distribution of meiotic DSBs are tightly regulated, still abnormalities in DSB formation are known to cause meiotic arrest and infertility. This review is a detailed account of molecular bases of meiotic DSB formation, its evolutionary conservation, and variations in different species. We further reviewed the mutations of DSB formation genes in association with human infertility and also proposed the future directions and strategies about the study of meiotic DSB formation.
DNA Breaks, Double-Stranded
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DNA Repair/genetics*
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Humans
;
Infertility/genetics*
;
Meiosis/physiology*
7.The role of retinoic acid in the commitment to meiosis.
Rachel L GEWISS ; M Christine SCHLEIF ; Michael D GRISWOLD
Asian Journal of Andrology 2021;23(6):549-554
Male meiosis is a complex process whereby spermatocytes undergo cell division to form haploid cells. This review focuses on the role of retinoic acid (RA) in meiosis, as well as several processes regulated by RA before cell entry into meiosis that are critical for proper meiotic entry and completion. Here, we discuss RA metabolism in the testis as well as the roles of stimulated by retinoic acid gene 8 (STRA8) and MEIOSIN, which are responsive to RA and are critical for meiosis. We assert that transcriptional regulation in the spermatogonia is critical for successful meiosis.
Animals
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Cell Differentiation/genetics*
;
Humans
;
Meiosis/drug effects*
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Spermatogenesis/physiology*
;
Tretinoin/metabolism*
8.MIME-Mitosis instead of meiosis and its application in crop apomixis.
Yanhong HOU ; Guizhi GONG ; Zhuchun PENG ; Qianqian DONG ; Ai LUO ; Qibin HONG
Chinese Journal of Biotechnology 2020;36(4):612-621
Apomixis has been widely concerned because of its great potential in heterosis fixation. Artificial apomixis is an important direction of current apomixis research. Mitosis instead of Meiosis (MIME) produces diploid gametes that is identical with the maternal genetic composition and is a key step in the artificial creation of apomixes. This paper reviews the occurrence of MIME and its application in crop apomixis and the problems encountered, in an aim to provide reference for expanding the application of MIME in crop apomixis.
Apomixis
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Crops, Agricultural
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genetics
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Diploidy
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Germ Cells
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Meiosis
;
Mitosis
9.Advances in molecular mechanisms of meiotic arrest and luteinizing hormone-induced meiotic resumption in oocytes.
Xiao-Qiong HAO ; Shao-Kai XU ; Rui-Li SHI
Acta Physiologica Sinica 2020;72(4):513-522
Mammalian oocytes within Graafian follicles are arrested at prophase I of meiosis. C-type natriuretic peptide (NPPC), secreted by mural granulosa cells (MGCs), maintains oocyte meiotic arrest via binding to its cognate receptor natriuretic peptide receptor 2 (NPR2) and producing cyclic guanosine monophosphate (cGMP). NPR2 is most concentrated in the cumulus cells. In addition, cAMP, gap junction, inosine monophosphate dehydrogenase (IMPDH) and other important regulatory factors are also involved in meiotic arrest. Luteinizing hormone (LH) then rapidly decreases cGMP and induces oocyte meiotic resumption. In this paper, advances in the molecular mechanisms of meiotic arrest and LH-induced meiotic resumption were reviewed. This paper may provide new ideas for the prevention, diagnosis and treatment of related reproductive diseases.
Animals
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Cumulus Cells
;
Female
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Luteinizing Hormone
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Meiosis
;
Natriuretic Peptide, C-Type
;
genetics
;
Oocytes
10.The role of tyrosine phosphatase Shp2 in spermatogonial differentiation and spermatocyte meiosis.
Yang LI ; Wen-Sheng LIU ; Jia YI ; Shuang-Bo KONG ; Jian-Cheng DING ; Yi-Nan ZHAO ; Ying-Pu TIAN ; Gen-Sheng FENG ; Chao-Jun LI ; Wen LIU ; Hai-Bin WANG ; Zhong-Xian LU
Asian Journal of Andrology 2020;22(1):79-87
The transition from spermatogonia to spermatocytes and the initiation of meiosis are key steps in spermatogenesis and are precisely regulated by a plethora of proteins. However, the underlying molecular mechanism remains largely unknown. Here, we report that Src homology domain tyrosine phosphatase 2 (Shp2; encoded by the protein tyrosine phosphatase, nonreceptor type 11 [Ptpn11] gene) is abundant in spermatogonia but markedly decreases in meiotic spermatocytes. Conditional knockout of Shp2 in spermatogonia in mice using stimulated by retinoic acid gene 8 (Stra8)-cre enhanced spermatogonial differentiation and disturbed the meiotic process. Depletion of Shp2 in spermatogonia caused many meiotic spermatocytes to die; moreover, the surviving spermatocytes reached the leptotene stage early at postnatal day 9 (PN9) and the pachytene stage at PN11-13. In preleptotene spermatocytes, Shp2 deletion disrupted the expression of meiotic genes, such as disrupted meiotic cDNA 1 (Dmc1), DNA repair recombinase rad51 (Rad51), and structural maintenance of chromosome 3 (Smc3), and these deficiencies interrupted spermatocyte meiosis. In GC-1 cells cultured in vitro, Shp2 knockdown suppressed the retinoic acid (RA)-induced phosphorylation of extracellular-regulated protein kinase (Erk) and protein kinase B (Akt/PKB) and the expression of target genes such as synaptonemal complex protein 3 (Sycp3) and Dmc1. Together, these data suggest that Shp2 plays a crucial role in spermatogenesis by governing the transition from spermatogonia to spermatocytes and by mediating meiotic progression through regulating gene transcription, thus providing a potential treatment target for male infertility.
Animals
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Cell Cycle Proteins/genetics*
;
Cell Line
;
Cell Survival
;
Chondroitin Sulfate Proteoglycans/genetics*
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Chromosomal Proteins, Non-Histone/genetics*
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Gene Expression Regulation
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Gene Knockdown Techniques
;
Infertility, Male
;
Male
;
Meiosis/genetics*
;
Mice
;
Mice, Knockout
;
Mice, Transgenic
;
Phosphate-Binding Proteins/genetics*
;
Protein Tyrosine Phosphatase, Non-Receptor Type 11/genetics*
;
Rad51 Recombinase/genetics*
;
Real-Time Polymerase Chain Reaction
;
Spermatocytes/metabolism*
;
Spermatogenesis/genetics*
;
Spermatogonia/metabolism*

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