New feature of hMEIOB and hSPATA22 binding to ssDNA from a single-molecule perspective.

IF 3.3 2区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Yating Xu, Wei Qu, Erchi Zhou, Qi Sun, Weihao Gong, Lei Xu, Yaoke Lei, Zhangying Jia, Hanqing Shi, Xinghua Zhang, Mengcheng Luo
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Abstract

MEIOB and SPATA22 are gonad-specific proteins that function in meiosis recombination. Mutations in these two proteins cause oligospermia or azoospermia in human males. It has been reported that the heterodimer composed of MEIOB and SPATA22 recognizes and binds to the single-strand DNA (ssDNA) protected by the replication protein A (RPA) complex to promote DNA damage repair during homologous recombination. However, the amino acid sequences of the two proteins are inconsistent in humans and rodents, which leads to functional differences in meiosis. In this study, human-derived MEIOB (hMEIOB) and SPATA22 (hSPATA22) are expressed and purified for electrophoretic mobility shift assay (EMSA), magnetic tweezer (MT) assay and bio-layer interferometry (BLI) assay to analyze the ssDNA binding patterns. The results show that hMEIOB has low ssDNA-binding affinity and stability alone, but hSPATA22 binds to ssDNA faster and more stably and promotes ssDNA condensation. Strong binding affinity and stability to ssDNA are present when the hMEIOB-hSPATA22 heterodimer is formed. Moreover, we find that multiple hMEIOB-hSPATA22 heterodimers spontaneously aggregate in vitro. hRPA complex weakens the binding affinity of hMEIOB, hSPATA22 and hMEIOB-hSPATA22 heterodimer to ssDNA, and it can also bind to hSPATA22 and hMEIOB-hSPATA22 heterodimer in vitro, which might be related to the proven function of RPA complex to protect ssDNA and recruit proteins related to DNA damage repair during meiosis. Overall, this study is the first time to elucidate the binding patterns of the hMEIOB and hSPATA22 to ssDNA in vitro, and to verify the relationship between the RPA complex and meiosis-related proteins, MEIOB and SPATA22, from single-molecule perspective.

hMEIOB和hSPATA22与ssDNA单分子结合的新特征。
MEIOB和SPATA22是性腺特异性蛋白,在减数分裂重组中起作用。这两种蛋白的突变会导致男性少精子症或无精子症。有报道称,在同源重组过程中,由MEIOB和SPATA22组成的异源二聚体识别并结合复制蛋白A (RPA)复合体保护的单链DNA (ssDNA),促进DNA损伤修复。然而,这两种蛋白的氨基酸序列在人类和啮齿动物中不一致,导致减数分裂的功能差异。本研究对人源性MEIOB (hMEIOB)和SPATA22 (hSPATA22)进行了表达和纯化,并应用电泳迁移量转移法(EMSA)、磁镊法(MT)和生物层干涉法(BLI)分析ssDNA的结合模式。结果表明,hMEIOB单独结合ssDNA的亲和力和稳定性较低,而hSPATA22与ssDNA的结合速度更快、更稳定,并促进ssDNA的缩聚。hMEIOB-hSPATA22异源二聚体形成时,对ssDNA具有较强的结合亲和力和稳定性。此外,我们发现多个hMEIOB-hSPATA22异源二聚体在体外自发聚集。hRPA复合物削弱了hMEIOB、hSPATA22和hMEIOB-hSPATA22异源二聚体对ssDNA的结合亲和力,在体外也可以结合hSPATA22和hMEIOB-hSPATA22异源二聚体,这可能与RPA复合物在减数分裂中保护ssDNA和募集DNA损伤修复相关蛋白的功能已被证实有关。总体而言,本研究首次在体外阐明了hMEIOB和hSPATA22与ssDNA的结合模式,并从单分子角度验证了RPA复合物与减数分裂相关蛋白MEIOB和SPATA22之间的关系。
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来源期刊
Acta biochimica et biophysica Sinica
Acta biochimica et biophysica Sinica 生物-生化与分子生物学
CiteScore
5.00
自引率
5.40%
发文量
170
审稿时长
3 months
期刊介绍: Acta Biochimica et Biophysica Sinica (ABBS) is an internationally peer-reviewed journal sponsored by the Shanghai Institute of Biochemistry and Cell Biology (CAS). ABBS aims to publish original research articles and review articles in diverse fields of biochemical research including Protein Science, Nucleic Acids, Molecular Biology, Cell Biology, Biophysics, Immunology, and Signal Transduction, etc.
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