留言板

尊敬的读者、作者、审稿人, 关于本刊的投稿、审稿、编辑和出版的任何问题, 您可以本页添加留言。我们将尽快给您答复。谢谢您的支持!

姓名
邮箱
手机号码
标题
留言内容
验证码

RSBP15 interacts with and stabilizes dRSPH3 during sperm axoneme assembly in Drosophila

Ya Wang Rui Xu Yiwei Cheng Haowei Cao Zibin Wang Tianyu Zhu Jiayin Jiang Hao Zhang Chang Wang Lin Qi Mingxi Liu Xuejiang Guo Juan Huang Jiahao Sha

Ya Wang, Rui Xu, Yiwei Cheng, Haowei Cao, Zibin Wang, Tianyu Zhu, Jiayin Jiang, Hao Zhang, Chang Wang, Lin Qi, Mingxi Liu, Xuejiang Guo, Juan Huang, Jiahao Sha. RSBP15 interacts with and stabilizes dRSPH3 during sperm axoneme assembly in Drosophila[J]. Journal of Genetics and Genomics, 2019, 46(6): 281-290. doi: 10.1016/j.jgg.2019.05.001
Citation: Ya Wang, Rui Xu, Yiwei Cheng, Haowei Cao, Zibin Wang, Tianyu Zhu, Jiayin Jiang, Hao Zhang, Chang Wang, Lin Qi, Mingxi Liu, Xuejiang Guo, Juan Huang, Jiahao Sha. RSBP15 interacts with and stabilizes dRSPH3 during sperm axoneme assembly in Drosophila[J]. Journal of Genetics and Genomics, 2019, 46(6): 281-290. doi: 10.1016/j.jgg.2019.05.001

doi: 10.1016/j.jgg.2019.05.001

RSBP15 interacts with and stabilizes dRSPH3 during sperm axoneme assembly in Drosophila

More Information
    • 关键词:
    •  / 
    •  / 
    •  / 
    •  
  • [1] Afzelius, B., 1959. Electron microscopy of the sperm tail; results obtained with a new fixative. J. Biophys. Biochem. Cytol. 5, 269-278.
    [2] Bader, M., Benjamin, S., Wapinski, O.L., Smith, D.M., Goldberg, A.L., Steller, H., 2011. A conserved F box regulatory complex controls proteasome activity in Drosophila. Cell 145, 371-382.
    [3] Bassett, A.R., Liu, J.L., 2014. CRISPR/Cas9 and genome editing in Drosophila. J. Genet. Genomics 41, 7-19.
    [4] Bastin, P., Pullen, T.J., Moreira-Leite, F.F., Gull, K., 2000. Inside and outside of the trypanosome flagellum:a multifunctional organelle. Microbes Infect. 2, 1865-1874.
    [5] Castleman, V.H., Romio, L., Chodhari, R., Hirst, R.A., de Castro, S.C.P., Parker, K.A., Ybot-Gonzalez, P., Emes, R.D., Wilson, S.W., Wallis, C., Johnson, C.A., Herrera, R.J., Rutman, A., Dixon, M., Shoemark, A., Bush, A., Hogg, C., Gardiner, R.M., Reish, O., Greene, N.D.E., O’Callaghan, C., Purton, S., Chung, E.M.K., Mitchison, H.M., 2009. Mutations in radial spoke head protein genes RSPH9 and RSPH4A cause primary ciliary dyskinesia with central-microtubular-pair abnormalities. Am. J. Hum. Genet. 84, 197-209.
    [6] Cong, L., Ran, F.A., Cox, D., Lin, S., Barretto, R., Habib, N., Hsu, P.D., Wu, X., Jiang, W., Marraffini, L.A., Zhang, F., 2013. Multiplex genome engineering using CRISPR/Cas systems. Science 339, 819-823.
    [7] Coutton, C., Vargas, A.S., Amiri-Yekta, A., Kherraf, Z.E., Ben Mustapha, S.F., Le Tanno, P., Wambergue-Legrand, C., Karaouzene, T., Martinez, G., Crouzy, S., Daneshipour, A., Hosseini, S.H., Mitchell, V., Halouani, L., Marrakchi, O., Makni, M., Latrous, H., Kharouf, M., Deleuze, J.F., Boland, A., Hennebicq, S., Satre, V., Jouk, P.S., Thierry-Mieg, N., Conne, B., Dacheux, D., Landrein, N., Schmitt, A., Stouvenel, L., Lores, P., El Khouri, E., Bottari, S.P., Faure, J., Wolf, J.P., Pernet-Gallay, K., Escoffier, J., Gourabi, H., Robinson, D.R., Nef, S., Dulioust, E., Zouari, R., Bonhivers, M., Toure, A., Arnoult, C., Ray, P.F., 2018. Mutations in CFAP43 and CFAP44 cause male infertility and flagellum defects in Trypanosoma and human. Nat. Commun. 9, 686.
    [8] Cox J. and Mann, M., MaxQuant enables high peptide identification rates, individualized p.p.b.-range mass accuracies and proteome-wide protein quantification, Nat. Biotechnol. 26, 2008, 1367-1372
    [9] Diener, D.R., Ang, L.H., Rosenbaum, J.L., 1993. Assembly of flagellar radial spoke proteins in Chlamydomonas: identification of the axoneme binding domain of radial spoke protein 3. J. Cell Biol. 123, 183-190.
    [10] Fabian, L., Brill, J.A., 2012. Drosophila spermiogenesis: big things come from little packages. Spermatogenesis 2, 197-212.
    [11] Frommer, A., Hjeij, R., Loges, N.T., Edelbusch, C., Jahnke, C., Raidt, J., Werner, C., Wallmeier, J., Grosse-Onnebrink, J., Olbrich, H., Cindric, S., Jaspers, M., Boon, M., Memari, Y., Durbin, R., Kolb-Kokocinski, A., Sauer, S., Marthin, J.K., Nielsen, K.G., Amirav, I., Elias, N., Kerem, E., Shoseyov, D., Haeffner, K., Omran, H., 2015. Immunofluorescence analysis and diagnosis of primary ciliary dyskinesia with radial spoke defects. Am. J. Respir. Cell Mol. Biol. 53, 563-573.
    [12] Ghosh-Roy, A., Kulkarni, M., Kumar, V., Shirolikar, S., Ray, K., 2004. Cytoplasmic dynein-dynactin complex is required for spermatid growth but not axoneme assembly in Drosophila. Mol. Biol. Cell 15, 2470-2483.
    [13] Goodenough, U.W., Heuser, J.E., 1985. Substructure of inner dynein arms, radial spokes, and the central pair/projection complex of cilia and flagella. J. Cell Biol. 100, 2008-18.
    [14] Gottardo, M., Callaini, G., Riparbelli, M.G., 2013. The cilium-like region of the Drosophila spermatocyte: an emerging flagellum? J. Cell Sci. 126, 5441-5452.
    [15] Guo, X., Fillmore, T.L., Gao, Y., Tang, K., 2016. Capillary electrophoresis-nanoelectrospray ionization-selected reaction monitoring mass spectrometry via a true sheathless metal-coated emitter interface for robust and high-sensitivity sample quantification. Anal. Chem. 88, 4418-4425.
    [16] Han, X., Xie, H., Wang, Y., Zhao, C., 2018. Radial spoke proteins regulate otolith formation during early zebrafish development. FASEB J. 32, 3984-3992.
    [17] Hu, X., Yan, R., Song, L., Lu, X., Chen, S., Zhao, S., 2014. Subcellular localization and function of mouse radial spoke protein 3 in mammalian cells and central nervous system. J. Mol. Histol. 45, 723-732.
    [18] Huang, J., Zhou, W., Hong, Y., Watson, A.M., Dong, W., 2009. Directed, efficient, and versatile modifications of the Drosophila genome by genomic engineering. Proc. Natl. Acad. Sci. USA 106, 8284-8289.
    [19] Inaba, K., 2007. Molecular basis of sperm flagellar axonemes: structural and evolutionary aspects. Ann. N Y Acad. Sci. 1101, 506-526.
    [20] Inaba, K., 2011. Sperm flagella: comparative and phylogenetic perspectives of protein components. Mol. Hum. Reprod. 17, 524-538.
    [21] Jeanson, L., Copin, B., Papon, J.F., Dastot-Le Moal, F., Duquesnoy, P., Montantin, G., Cadranel, J., Corvol, H., Coste, A., Desir, J., Souayah, A., Kott, E., Collot, N., Tissier, S., Louis, B., Tamalet, A., de Blic, J., Clement, A., Escudier, E., Amselem, S., Legendre, M., 2015. RSPH3 mutations cause primary ciliary dyskinesia with central-complex defects and a near absence of radial spokes. Am. J. Hum. Genet. 97, 153-162.
    [22] Lee, J.Y., Dada, R., Sabanegh, E., Carpi, A., Agarwal, A., 2011. Role of genetics in azoospermia. Urology 77, 598-601.
    [23] Lin, J., Heuser, T., Carbajal-Gonzalez, B.I., Song, K., Nicastro, D., 2012. The structural heterogeneity of radial spokes in cilia and flagella is conserved. Cytoskelet. 69, 88-100.
    [24] Lin, J., Yin, W., Smith, M.C., Song, K., Leigh, M.W., Zariwala, M.A., Knowles, M.R., Ostrowski, L.E., Nicastro, D., 2014. Cryo-electron tomography reveals ciliary defects underlying human RSPH1 primary ciliary dyskinesia. Nat. Commun. 5, 5727.
    [25] Mali, P., Yang, L., Esvelt, K.M., Aach, J., Guell, M., DiCarlo, J.E., Norville, J.E., Church, G.M., 2013. RNA-guided human genome engineering via Cas9. Science 339, 823-826.
    [26] Marchler-Bauer, A., Bo, Y., Han, L., He, J., Lanczycki, C.J., Lu, S., Chitsaz, F., Derbyshire, M.K., Geer, R.C., Gonzales, N.R., Gwadz, M., Hurwitz, D.I., Lu, F., Marchler, G.H., Song, J.S., Thanki, N., Wang, Z., Yamashita, R.A., Zhang, D., Zheng, C., Geer, L.Y., Bryant, S.H., 2017. CDD/SPARCLE: functional classification of proteins via subfamily domain architectures. Nucleic Acids Res. 45, D200-D203.
    [27] Nakajima, Y.I., Kuranaga, E., 2017. Caspase-dependent non-apoptotic processes in development. Cell Death Differ. 24, 1422-1430.
    [28] Onoufriadis, A., Shoemark, A., Schmidts, M., Patel, M., Jimenez, G., Liu, H., Thomas, B., Dixon, M., Hirst, R.A., Rutman, A., Burgoyne, T., Williams, C., Scully, J., Bolard, F., Lafitte, J.J., Beales, P.L., Hogg, C., Yang, P., Chung, E.M., Emes, R.D., O’Callaghan, C., Uk10K, Bouvagnet, P., Mitchison, H.M., 2014. Targeted NGS gene panel identifies mutations in RSPH1 causing primary ciliary dyskinesia and a common mechanism for ciliary central pair agenesis due to radial spoke defects. Hum. Mol. Genet. 23, 3362-3374.
    [29] Pigino, G., Ishikawa, T., 2012. Axonemal radial spokes: 3D structure, function and assembly. Bioarchitecture 2, 50-58.
    [30] Ren, X., Sun, J., Housden, B.E., Hu, Y., Roesel, C., Lin, S., Liu, L.P., Yang, Z., Mao, D., Sun, L., Wu, Q., Ji, J.Y., Xi, J., Mohr, S.E., Xu, J., Perrimon, N., Ni, J.Q., 2013. Optimized gene editing technology for Drosophila melanogaster using germ line-specific Cas9. Proc. Natl. Acad. Sci. USA 110, 19012-19017.
    [31] Sale, W.S., Satir, P., 1976. Splayed Tetrahymena cilia. A system for analyzing sliding and axonemal spoke arrangements. J. Cell Biol. 71, 589-605.
    [32] Sartain, C. V, Wolfner, M.F., 2012. The spermatid individualization complex of Drosophila melanogaster. Mol. Reprod. Dev. 79, 367.
    [33] Soulavie, F., Piepenbrock, D., Thomas, J., Vieillard, J., Duteyrat, J.L., Cortier, E., Laurencon, A., Gopfert, M.C., Durand, B., 2014. Hemingway is required for sperm flagella assembly and ciliary motility in Drosophila. Mol. Biol. Cell 25, 1276-1286.
    [34] Tokuyasu, K.T., Peacock, W.J., Hardy, R.W., 1972. Dynamics of spermiogenesis in Drosophila melanogaster. I. Individualization process. Z. Zellforsch Mikrosk Anat. 124, 479-506.
    [35] Tokuyasu, K.T., 1975. Dynamics of spermiogenesis in Drosophila melanogaster. V. Head-tail alignment. J. Ultrastruct. Res. 50, 117-129.
    [36] Vieillard, J., Paschaki, M., Duteyrat, J.L., Augiere, C., Cortier, E., Lapart, J.A., Thomas, J., Durand, B., 2016. Transition zone assembly and its contribution to axoneme formation in Drosophila male germ cells. J. Cell Biol. 214, 875-889.
    [37] Warner, F.D., 1970. New observations on flagellar fine structure. The relationship between matrix structure and the microtubule component of the axoneme. J. Cell Biol. 47, 159-182. https://doi.org/10.1083/jcb.47.1.159
    [38] Warner, F.D., Satir, P., 1974. The structural basis of ciliary bend formation. Radial spoke positional changes accompanying microtubule sliding. J. Cell Biol. 63, 35-63.
    [39] White-Cooper, H., 2009. Studying how flies make sperm--investigating gene function in Drosophila testes. Mol. Cell Endocrinol. 306, 66-74.
    [40] Wirschell, M., Zhao, F., Yang, C., Yang, P., Diener, D., Gaillard, A., Rosenbaum, J.L., Sale, W.S., 2008. Building a radial spoke: flagellar radial spoke protein 3 (RSP3) is a dimer. Cell Motil. Cytoskelet. 65, 238-248.
    [41] Xu, S., Tyagi, S., Schedl, P., 2014. Spermatid cyst polarization in Drosophila depends upon apkc and the CPEB family translational regulator orb2. PLoS Genet. 10, e1004380.
    [42] Yang, P., Diener, D.R., Rosenbaum, J.L., Sale, W.S., 2001. Localization of calmodulin and dynein light chain LC8 in flagellar radial spokes. J. Cell Biol. 153, 1315-1326.
    [43] Yang, P., Diener, D.R., Yang, C., Kohno, T., Pazour, G.J., Dienes, J.M., Agrin, N.S., King, S.M., Sale, W.S., Kamiya, R., Rosenbaum, J.L., Witman, G.B., 2006. Radial spoke proteins of Chlamydomonas flagella. J. Cell Sci. 119, 1165-1174.
  • 加载中
计量
  • 文章访问数:  89
  • HTML全文浏览量:  20
  • PDF下载量:  2
  • 被引次数: 0
出版历程
  • 收稿日期:  2019-03-14
  • 录用日期:  2019-05-29
  • 修回日期:  2019-05-28
  • 网络出版日期:  2019-06-01
  • 刊出日期:  2019-06-20

目录

    /

    返回文章
    返回