Literature DB >> 29673127

Cstf2t Regulates expression of histones and histone-like proteins in male germ cells.

P N Grozdanov1, J Li2, P Yu2, W Yan3, C C MacDonald1.   

Abstract

Formation of the 3' ends of mature mRNAs requires recognition of the correct site within the last exon, cleavage of the nascent pre-mRNA, and, for most mRNAs, addition of a poly(A) tail. Several factors are involved in recognition of the correct 3'-end site. The cleavage stimulation factor (CstF) has three subunits, CstF-50 (gene symbol Cstf1), CstF-64 (Cstf2), and CstF-77 (Cstf3). Of these, CstF-64 is the RNA-binding subunit that interacts with the pre-mRNA downstream of the cleavage site. In male germ cells where CstF-64 is not expressed, a paralog, τCstF-64 (gene symbol Cstf2t) assumes its functions. Accordingly, Cstf2t knockout (Cstf2t-/- ) mice exhibit male infertility due to defective development of spermatocytes and spermatids. To discover differentially expressed genes responsive to τCstF-64, we performed RNA-Seq in seminiferous tubules from wild-type and Cstf2t-/- mice, and found that several histone and histone-like mRNAs were reduced in Cstf2t-/- mice. We further observed delayed accumulation of the testis-specific histone, H1fnt (formerly, H1t2 or Hanp1) in Cstf2t-/- mice. High-throughput sequence analysis of polyadenylation sites (A-seq) indicated reduced use of polyadenylation sites within a cluster downstream of H1fnt in knockout mice. However, high-throughput sequencing of RNA isolated by cross-linking immunoprecipitation (HITS-CLIP) was not consistent with a direct role of τCstF-64 in polyadenylation of H1fnt. These findings together suggest that the τCstF-64 may control other reproductive functions that are not directly linked to the formation of 3' ends of mature polyadenylated mRNAs during male germ cell formation.
© 2018 American Society of Andrology and European Academy of Andrology.

Entities:  

Keywords:  H1fnt; male germ cells; polyadenylation; protamine; testis-specific histone

Mesh:

Substances:

Year:  2018        PMID: 29673127      PMCID: PMC6105451          DOI: 10.1111/andr.12488

Source DB:  PubMed          Journal:  Andrology        ISSN: 2047-2919            Impact factor:   3.842


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Review 1.  Formation of the 3' end of histone mRNA: getting closer to the end.

Authors:  Zbigniew Dominski; William F Marzluff
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2.  Spermatogenesis.

Authors:  Hitoshi Nishimura; Steven W L'Hernault
Journal:  Curr Biol       Date:  2017-09-25       Impact factor: 10.834

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5.  Developmental distribution of the polyadenylation protein CstF-64 and the variant tauCstF-64 in mouse and rat testis.

Authors:  A Michelle Wallace; Toni L Denison; Ebtesam N Attaya; Clinton C MacDonald
Journal:  Biol Reprod       Date:  2003-12-17       Impact factor: 4.285

6.  Synergistic effects of germ cell expressed genes on male fertility in mice.

Authors:  K Nayernia; A Meinhardt; B Drabent; I M Adham; C Müller; M Steckel; U Sancken; W Engel
Journal:  Cytogenet Genome Res       Date:  2003       Impact factor: 1.636

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