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在基因组RNA:DNA杂交体的抗体检测过程中,单链RNA导致的复杂性。

Complexities due to single-stranded RNA during antibody detection of genomic rna:dna hybrids.

作者信息

Zhang Zheng Z, Pannunzio Nicholas R, Hsieh Chih-Lin, Yu Kefei, Lieber Michael R

机构信息

USC Norris Comprehensive Cancer Ctr. Molecular and Computational Biology Program, Department of Biological Sciences, University of Southern California Keck School of Medicine, 1441 Eastlake Ave., Rm. 5428, Los Angeles, CA, 90089-9176, USA.

Departments of Pathology, Biochemistry & Molecular Biology; Molecular Microbiology & Immunology; Urology, University of Southern California Keck School of Medicine, 1441 Eastlake Ave., Rm. 5428, Los Angeles, CA, 90089-9176, USA.

出版信息

BMC Res Notes. 2015 Apr 8;8:127. doi: 10.1186/s13104-015-1092-1.

Abstract

BACKGROUND

Long genomic R-loops in eukaryotes were first described at the immunoglobulin heavy chain locus switch regions using bisulfite sequencing and functional studies. A mouse monoclonal antibody called S9.6 has been used for immunoprecipitation (IP) to identify R-loops, based on the assumption that it is specific for RNA:DNA over other nucleic acid duplexes. However, recent work has demonstrated that a variable domain of S9.6 binds AU-rich RNA:RNA duplexes with a KD that is only 5.6-fold weaker than for RNA:DNA duplexes. Most IP protocols do not pre-clear the genomic nucleic acid with RNase A to remove free RNA. Fold back of ssRNA can readily generate RNA:RNA duplexes that may bind the S9.6 antibody, and adventitious binding of RNA may also create short RNA:DNA regions. Here we investigate whether RNase A is needed to obtain reliable IP with S9.6.

FINDINGS

As our test locus, we chose the most well-documented site for kilobase-long mammalian genomic R-loops, the immunoglobulin heavy chain locus (IgH) class switch regions. The R-loops at this locus can be induced by using cytokines to stimulate transcription from germline transcript promoters. We tested IP using S9.6 with and without various RNase treatments. The RNase treatments included RNase H to destroy the RNA in an RNA:DNA duplex and RNase A to destroy single-stranded (ss) RNA to prevent it from binding S9.6 directly (as duplex RNA) and to prevent the ssRNA from annealing to the genome, resulting in adventitious RNA:DNA hybrids. We find that optimal detection of RNA:DNA duplexes requires removal of ssRNA using RNase A. Without RNase A treatment, known regions of R-loop formation containing RNA:DNA duplexes can not be reliably detected. With RNase A treatment, a signal can be detected over background, but only within a limited 2 or 3-fold range, even with a stable kilobase-long genomic R-loop.

CONCLUSION

Any use of the S9.6 antibody must be preceded by RNase A treatment to remove free ssRNA that may compete for the S9.6 binding by forming RNA:RNA regions or short, transient RNA:DNA duplexes. Caution should be used when interpreting S9.6 data, and confirmation by independent structural and functional methods is essential.

摘要

背景

真核生物中的长基因组R环最初是在免疫球蛋白重链基因座转换区通过亚硫酸氢盐测序和功能研究描述的。一种名为S9.6的小鼠单克隆抗体已被用于免疫沉淀(IP)以鉴定R环,其依据是假定它对RNA:DNA比对其他核酸双链体具有特异性。然而,最近的研究表明,S9.6的可变结构域与富含AU的RNA:RNA双链体结合,其解离常数(KD)仅比对RNA:DNA双链体弱5.6倍。大多数IP实验方案没有用核糖核酸酶A预处理基因组核酸以去除游离RNA。单链RNA(ssRNA)的回折很容易产生可能与S9.6抗体结合的RNA:RNA双链体,并且RNA的偶然结合也可能产生短的RNA:DNA区域。在这里,我们研究是否需要核糖核酸酶A来使用S9.6获得可靠的IP。

研究结果

作为我们的测试基因座,我们选择了哺乳动物基因组中千碱基长R环记录最完善的位点,即免疫球蛋白重链基因座(IgH)类别转换区。该基因座处的R环可以通过使用细胞因子刺激种系转录本启动子的转录来诱导。我们测试了使用有或没有各种核糖核酸酶处理的S9.6进行IP。核糖核酸酶处理包括核糖核酸酶H以破坏RNA:DNA双链体中的RNA,以及核糖核酸酶A以破坏单链(ss)RNA,以防止其直接(作为双链RNA)与S9.6结合,并防止ssRNA与基因组退火,从而产生偶然的RNA:DNA杂交体。我们发现,对RNA:DNA双链体的最佳检测需要使用核糖核酸酶A去除ssRNA。如果不进行核糖核酸酶A处理,包含RNA:DNA双链体的已知R环形成区域就无法可靠检测。经过核糖核酸酶A处理后,可以在背景之上检测到信号,但即使是稳定的千碱基长基因组R环,也只能在有限的2或3倍范围内检测到信号。

结论

在任何使用S9.6抗体的实验之前,都必须先用核糖核酸酶A处理,以去除可能通过形成RNA:RNA区域或短的、瞬时的RNA:DNA双链体来竞争S9.6结合的游离ssRNA。在解释S9.6数据时应谨慎,并且通过独立的结构和功能方法进行确认至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/10fd/4393563/21b91dd82c1a/13104_2015_1092_Fig1_HTML.jpg

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