BLOC1S1促进山羊精原干细胞增殖
作者:
基金项目:

国家自然科学基金(32072806);国家重点研发计划(2022YFD1302201);陕西省畜牧科技示范和畜牧专项项目(20221086,20230978)


BLOC1S1 promotes proliferation of goat spermatogonial stem cells
Author:
  • 摘要
  • | |
  • 访问统计
  • |
  • 参考文献 [28]
  • |
  • 相似文献
  • | | |
  • 文章评论
    摘要:

    随着基因编辑技术迅速发展,研究精原干细胞(spermatogonial stem cells, SSCs)对精子发生及其调控机制研究、转基因动物研发、基因治疗和不孕不育症的治疗以及珍稀物种的保护均具有重要意义。溶酶体相关细胞器生物合成复合体1亚基1 (biogenesis of lysosome-related organelles complex 1 subunit 1, BLOC1S1)具有抗布鲁氏菌的潜能,研究BLOC1S1对山羊SSCs的影响不仅能探究BLOC1S1促进SSCs增殖的能力,还能为其抗病育种研究提供细胞学基础。本研究通过同源重组构建BLOC1S1过表达载体,通过慢病毒包装、转染与嘌呤霉素筛选成功构建了山羊精原干细胞BLOC1S1过表达细胞株。通过实时荧光定量PCR (real time quantitative PCR, RT-qPCR)检测BLOC1S1的过表达效率为18倍,同时细胞生长曲线、流式细胞术检测细胞周期、5-乙炔基-2'脱氧尿嘧啶核苷(5-ethynyl-2'-deoxyuridine, EdU)染色等实验结果表明,BLOC1S1能显著增加山羊SSCs的增殖活性。RT-qPCR、免疫荧光染色、Western blotting结果显示与增殖相关的基因(PCNACDK2CCND1)上调,同时调控精原干细胞增殖的关键基因EIF2S3Y的表达量也上调。本研究成功构建了山羊精原干细胞BLOC1S1过表达细胞株,提高其增殖能力,并且这种促增殖能力可能是通过EIF2S3Y/ERK通路实现的。本研究为探究BLOC1S1对山羊精原干细胞的调控作用奠定了细胞学基础,并为进一步研究BLOC1S1的生物学功能提供细胞平台,为繁育BLOC1S1修饰抗病山羊奠定了基础。

    Abstract:

    With the rapid development of gene editing technology, the study of spermatogonial stem cells (SSCs) holds great significance in understanding spermatogenesis and its regulatory mechanism, developing transgenic animals, gene therapy, infertility treatment and protecting rare species. Biogenesis of lysosome-related organelles complex 1 subunit 1 (BLOC1S1) is believed to have anti-brucella potential. Exploring the impack of BLOC1S1 on goat SSCs not only helps investigate the ability of BLOC1S1 to promote SSCs proliferation, but also provides a cytological basis for disease-resistant breeding research. In this study, a BLOC1S1 overexpression vector was constructed by homologous recombination. The BLOC1S1 overexpression cell line of goat spermatogonial stem cells was successfully constructed by lentivirus packaging, transfection and puromycin screening. The overexpression efficiency of BLOC1S1 was found to be 18 times higher using real time quantitative PCR (RT-qPCR). Furthermore, the results from cell growth curve analysis, flow cytometry for cell cycle detection, and 5-ethynyl-2′-deoxyuridine (EdU) staining showed that BLOC1S1 significantly increased the proliferation activity of goat SSCs. The results of RT-qPCR, immunofluorescence staining and Western blotting analyses revealed up-regulation of proliferation-related genes (PCNA, CDK2, CCND1), and EIF2S3Y, a key gene regulating the proliferation of spermatogonial stem cells. These findings strongly suggest that the proliferative ability of goat SSCs can be enhanced through the EIF2S3Y/ERK pathway. In summary, this study successfully created a goat spermatogonial stem cell BLOC1S1 overexpression cell line, which exhibited improved proliferation ability. This research laid the groundwork for exploring the regulatory role of BLOC1S1 in goat spermatogonia and provided a cell platform for further study into the biological function of BLOC1S1. These findings also establish a foundation for breeding BLOC1S1 overexpressing goats.

    参考文献
    [1] YU XW, LI TT, DU XM, SHEN QY, ZHANG MF, WEI YD, YANG DH, XU WJ, CHEN WB, BAI CL, LI XL, LI GP, LI N, PENG S, LIAO MZ, HUA JL. Single-cell RNA sequencing reveals atlas of dairy goat testis cells[J]. Zoological Research, 2021, 42(4): 401-405.
    [2] PU J, SCHINDLER C, JIA R, JARNIK M, BACKLUND P, BONIFACINO JS. BORC, a multisubunit complex that regulates lysosome positioning[J]. Developmental Cell, 2015, 33(2): 176-188.
    [3] GUARDIA CM, FARÍAS GG, JIA R, PU J, BONIFAXINO JS. BORC functions upstream of kinesins 1 and 3 to coordinate regional movement of lysosomes along different microtubule tracks[J]. Cell Reports, 2016, 17(8): 1950-1961.
    [4] PU J, KEREN-KAPLAN T, BONIFACINO JS. A ragulator-BORC interaction controls lysosome positioning in response to amino acid availability[J]. Journal of Cell Biology, 2017, 216(12): 4183-4197.
    [5] BRIGHT MD, ITZHAK DN, WARDELL CP, MORGAN GJ, DAVIES FE. Cleavage of BLOC1S1 mRNA by IRE1 is sequence specific, temporally separate from XBP1 splicing, and dispensable for cell viability under acute endoplasmic reticulum stress[J]. Molecular and Cellular Biology, 2015, 35(12): 2186-2202.
    [6] BAE D, MOORE KA, MELLA JM, HAYASHI SY, HOLLIEN J. Degradation of Blos1 mRNA by IRE1 repositions lysosomes and protects cells from stress[J]. Journal of Cell Biology, 2019, 218(4): 1118-1127.
    [7] PANDEY A, LIN FR, CABELLO AL, Da COSTA LF, FENG XH, FENG HQ, ZHANG MZ, IWAWAKI T, RICE-FICHT A, FICHT TA, de FIGUEIREDO P, QIN QM. Activation of host IRE1α-dependent signaling axis contributes the intracellular parasitism of Brucella melitensis[J]. Frontiers in Cellular and Infection Microbiology, 2018, 8: 103.
    [8] 朱海鲸. CD49f和miR-302对奶山羊雄性生殖干细胞体外培养生物学特性的影响[D]. 杨凌: 西北农林科技大学博士学位论文, 2014. ZHU HJ. Influences of CD49f and miR-302 on biological properties of dairy goat male germline stem cells cultured in vitro[D]. Yangling: Doctoral Dissertation of Northwest A&F University, 2014(in Chinese).
    [9] ZHANG MF, WAN SC, CHEN WB, YANG DH, LIU WQ, LI BL, AIERKEN A, DU XM, LI YX, WU WP, YANG XC, WEI YD, LI N, PENG S, LI XL, LI GP, HUA JL. Transcription factor Dmrt1 triggers the SPRY1-NF-κB pathway to maintain testicular immune homeostasis and male fertility[J]. Zoological Research, 2023, 44(3): 505-521.
    [10] 张梦菲. Eif2s3y对奶山羊精原干细胞增殖的调控作用及机理研究[D]. 杨凌: 西北农林科技大学硕士学位论文, 2019. ZHANG MF. The regulation and mechanism of Eif2s3y in the proliferation of dairy goat spermatogonial stem cells[D]. Yangling: Master’s Thesis of Northwest A&F University, 2019(in Chinese).
    [11] 华进联, 郑丽明. 一种基于去甲基化促进生殖干细胞自我更新和增殖的载体及其应用: CN104630272A[P]. 2015-05-20. HUA JL, ZHEN LM. Vector based on demethylation to promote self-renewal and proliferation of germline stem cells and application: CN104630272A[P]. 2015-05-20(in Chinese).
    [12] 马方琳. LIN28A促进奶山羊精原干细胞自我更新和增殖的机制[D]. 杨凌: 西北农林科技大学博士学位论文, 2019. MA FL. The Mechanism of LIN28A on promoting the self-renewal and proliferation of spermatogonial stem cells in dairy goats[D]. Yangling: Doctoral Dissertation of Northwest A&F University, 2019(in Chinese).
    [13] 翟源心, 郑丽明, 华进联. E-cadherin对奶山羊雄性生殖干细胞自我更新与增殖的影响[J]. 农业生物技术学报, 2016, 24(9): 1439-1449. ZHAI YX, ZHENG LM, HUA JL. E-cadherin affects the self-renewal and proliferation in dairy goat (Capra hircus) male germline stem cells[J]. Journal of Agricultural Biotechnology, 2016, 24(9): 1439-1449(in Chinese).
    [14] NIU BW, WU J, MU HL, LI B, WU CY, HE X, BAI CL, LI GP, HUA JL. MiR-204 regulates the proliferation of dairy goat spermatogonial stem cells via targeting to sirt1[J]. Rejuvenation Research, 2016, 19(2): 120-130.
    [15] 华进联, 吴江, 牛博文. 一种促进奶山羊精原干细胞的自我更新和增殖的载体及其应用: CN104404083B[P]. 2018-02-16. HUA JL, WU J, NIU BW. Vector capable of promoting self renewal and proliferation of spermatogonial stem cells of dairy goat and application of vector: CN104404083B[P]. 2018-02-16(in Chinese).
    [16] HASEGAWA K, NAMEKAWA SH, SAGA Y. MEK/ERK signaling directly and indirectly contributes to the cyclical self-renewal of spermatogonial stem cells[J]. Stem Cells, 2013, 31(11): 2517-2527.
    [17] WHITE J, STEAD E, FAAST R, CONN S, CARTWRIGHT P, DALTON S. Developmental activation of the Rb-E2F pathway and establishment of cell cycle-regulated cyclin-dependent kinase activity during embryonic stem cell differentiation[J]. Molecular Biology of the Cell, 2005, 16(4): 2018-2027.
    [18] MOHAMED SK, AHMED AAE, ELMORSY EM, NOFAL S. ERK activation by zeranol has neuroprotective effect in cerebral ischemia reperfusion[J]. Life Sciences, 2019, 227: 137-144.
    [19] 高晟斌, 韦欣捷, 刘爱玲, 孙利凯, 王幼明. 羊布鲁氏菌病直接经济损失与防控成本效益分析方法构建及实证研究[J]. 中国动物检疫, 2022, 39(7): 1-6. GAO SB, WEI XJ, LIU AL, SUN LK, WANG YM. Establishment of an analytical method for direct economic loss caused by sheep brucellosis and cost-effectiveness of its control with empirical research[J]. China Animal Health Inspection, 2022, 39(7): 1-6(in Chinese).
    [20] LI YX, WU WP, XU WJ, WANG YQ, WAN SC, CHEN WB, YANG DH, ZHANG MF, WU XJ, YANG XC, DU XM, WANG CL, HAN M, CHENG YG, LI N, HUA JL. Eif2s3y alleviated LPS-induced damage to mouse testis and maintained spermatogenesis by negatively regulating Adamts5[J]. Theriogenology, 2023, 211: 65-75.
    [21] 许银丰, 万伟. 溶酶体的生物学功能与相关疾病研究进展[J]. 中国细胞生物学学报, 2019, 41(7): 1428-1436. XU YF, WAN W. Lysosome function and lysosome-related diseases[J]. Chinese Journal of Cell Biology, 2019, 41(7): 1428-1436(in Chinese).
    [22] JIA R, GUARDIA CM, PU J, CHEN Y, BONIFACINO JS. BORC coordinates encounter and fusion of lysosomes with autophagosomes[J]. Autophagy, 2017, 13(10): 1648-1663.
    [23] WU KY, WANG LD, CHEN Y, PIROOZNIA M, SINGH K, WÄLDE S, KEHLENBACH RH, SCOTT I, GUCEK M, SACK MN. GCN5L1 interacts with αTAT1 and RanBP2 to regulate hepatic α-tubulin acetylation and lysosome trafficking[J]. Journal of Cell Science, 2018, 131(22): jcs221036.
    [24] WU KY, SCOTT I, WANG LD, THAPA D, SACK MN. The emerging roles of GCN5L1 in mitochondrial and vacuolar organelle biology[J]. Biochimica et Biophysica Acta (BBA)-Gene Regulatory Mechanisms, 2021, 1864(2): 194598.
    [25] PIZARRO-CERDÁ J, MÉRESSE S, PARTON RG, van der GOOT G, SOLA-LANDA A, LOPEZ-GOÑI I, MORENO E, GORVEL JP. Brucella abortus transits through the autophagic pathway and replicates in the endoplasmic reticulum of nonprofessional phagocytes[J]. Infection and Immunity, 1998, 66(12): 5711-5724.
    [26] WU KY, SEYLANI A, WU J, WU XF, BLECK CKE, SACK MN. BLOC1S1/GCN5L1/BORCS1 is a critical mediator for the initiation of autolysosomal tubulation[J]. Autophagy, 2021, 17(11): 3707-3724.
    [27] STARR T, CHILD R, WEHRLY TD, HANSEN B, HWANG S, LÓPEZ-OTIN C, VIRGIN HW, CELLI J. Selective subversion of autophagy complexes facilitates completion of the Brucella intracellular cycle[J]. Cell Host & Microbe, 2012, 11(1): 33-45.
    [28] WELLS KM, HE K, PANDEY A, CABELLO A, ZHANG DM, YANG J, GOMEZ G, LIU Y, CHANG HW, LI XQ, ZHANG H, FENG XH, Da COSTA LF, METZ R, JOHNSON CD, LEE MARTIN C, SKROBARCZYK J, BERGHMAN LR, PATRICK KL, LEIBOWITZ J, et al. Brucella activates the host RIDD pathway to subvert BLOS1-directed immune defense[J]. eLife, 2022, 11: 73625.
    相似文献
    引证文献
    网友评论
    网友评论
    分享到微博
    发 布
引用本文

万仕成,张梦菲,陈文博,韩苗,杨栋慧,王聪亮,吴文萍,王瑜琪,李娜,朱海鲸,Ahmed Hamed Arisha,华进联. BLOC1S1促进山羊精原干细胞增殖[J]. 生物工程学报, 2023, 39(12): 4901-4914

复制
分享
文章指标
  • 点击次数:239
  • 下载次数: 1055
  • HTML阅读次数: 631
  • 引用次数: 0
历史
  • 收稿日期:2023-08-15
  • 录用日期:2023-09-27
  • 在线发布日期: 2023-12-07
  • 出版日期: 2023-12-25
文章二维码
您是第6510057位访问者
生物工程学报 ® 2025 版权所有

通信地址:中国科学院微生物研究所    邮编:100101

电话:010-64807509   E-mail:cjb@im.ac.cn

技术支持:北京勤云科技发展有限公司