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FEBS J. 2016 May;283(10):1962-78. doi: 10.1111/febs.13716. Epub 2016 Apr 6.
2
The AP-1 transcription factor homolog Pf-AP-1 activates transcription of multiple biomineral proteins and potentially participates in Pinctada fucata biomineralization.AP-1转录因子同源物Pf-AP-1激活多种生物矿化蛋白的转录,并可能参与合浦珠母贝的生物矿化过程。
Sci Rep. 2015 Sep 25;5:14408. doi: 10.1038/srep14408.
3
Dual Roles of the Lysine-Rich Matrix Protein (KRMP)-3 in Shell Formation of Pearl Oyster, Pinctada fucata.富含赖氨酸基质蛋白(KRMP)-3在合浦珠母贝贝壳形成中的双重作用
PLoS One. 2015 Jul 10;10(7):e0131868. doi: 10.1371/journal.pone.0131868. eCollection 2015.
4
The Effect of NF-κB Signalling Pathway on Expression and Regulation of Nacrein in Pearl Oyster, Pinctada fucata.NF-κB信号通路对合浦珠母贝珍珠层蛋白表达与调控的影响
PLoS One. 2015 Jul 9;10(7):e0131711. doi: 10.1371/journal.pone.0131711. eCollection 2015.
5
C/EBPβ and C/EBPδ transcription factors: Basic biology and roles in the CNS.C/EBPβ 和 C/EBPδ 转录因子:基础生物学及其在中枢神经系统中的作用。
Prog Neurobiol. 2015 Sep;132:1-33. doi: 10.1016/j.pneurobio.2015.06.003. Epub 2015 Jul 2.
6
Microarray: a global analysis of biomineralization-related gene expression profiles during larval development in the pearl oyster, Pinctada fucata.微阵列分析:对珍珠贝(Pinctada fucata)幼体发育过程中生物矿化相关基因表达谱的全面分析。
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7
A homeodomain transcription factor gene, PfMSX, activates expression of Pif gene in the pearl oyster Pinctada fucata.一个同源域转录因子基因 PfMSX 激活了珍珠贝 Pinctada fucata 中 Pif 基因的表达。
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8
Cloning and characterization of the shell matrix protein Shematrin in scallop Chlamys farreri.栉孔扇贝贝壳基质蛋白Shematrin的克隆与特性分析
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9
Mapping nanomechanical properties of freshly grown, native, interlamellar organic sheets on flat pearl nacre.在平坦的珍珠母贝上绘制新生长的、天然的、层间有机薄片的纳米力学性质。
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10
A novel acidic matrix protein, PfN44, stabilizes magnesium calcite to inhibit the crystallization of aragonite.一种新型酸性基质蛋白 PfN44 稳定了镁方解石,从而抑制了霰石的结晶。
J Biol Chem. 2014 Jan 31;289(5):2776-87. doi: 10.1074/jbc.M113.504027. Epub 2013 Dec 3.

珍珠贝中基质蛋白 Shematrin-2 在贝壳形成过程中的转录调控

Transcriptional regulation of the matrix protein Shematrin-2 during shell formation in pearl oyster.

机构信息

From the Protein Science Laboratory of the Ministry of Education, School of Life Sciences, Tsinghua University, Beijing 100084.

From the Protein Science Laboratory of the Ministry of Education, School of Life Sciences, Tsinghua University, Beijing 100084.

出版信息

J Biol Chem. 2018 Nov 16;293(46):17803-17816. doi: 10.1074/jbc.RA118.005281. Epub 2018 Oct 3.

DOI:10.1074/jbc.RA118.005281
PMID:30282805
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6240880/
Abstract

The molluscan shell is a fascinating biomineral consisting of a highly organized calcium carbonate composite. Biomineralization is elaborately controlled and involves several macromolecules, especially matrix proteins, but little is known about the regulatory mechanisms. The matrix protein Shematrin-2, expression of which peaks in the mantle tissues and in the shell components of the pearl oyster , has been suggested to be a key participant in biomineralization. Here, we expressed and purified Shematrin-2 from and explored its function and transcriptional regulation. An functional assay revealed that Shematrin-2 binds the calcite, aragonite, and chitin components of the shell, decreases the rate of calcium carbonate deposition, and changes the morphology of the deposited crystal in the calcite crystallization system. Furthermore, we cloned the Shematrin-2 gene promoter, and analysis of its sequence revealed putative binding sites for the transcription factors CCAAT enhancer-binding proteins (Pf-C/EBPs) and nuclear factor-Y (NF-Y). Using transient co-transfection and reporter gene assays, we found that cloned and recombinantly expressed Pf-C/EBP-A and Pf-C/EBP-B greatly and dose-dependently up-regulate the promoter activity of the gene. Importantly, Pf-C/EBP-A and Pf-C/EBP-B knockdowns decreased gene expression and induced changes in the inner-surface structures in prismatic layers that were similar to those of antibody-based Shematrin-2 inhibition. Altogether, our data reveal that the transcription factors Pf-C/EBP-A and Pf-C/EBP-B up-regulate the expression of the matrix protein Shematrin-2 during shell formation in , improving our understanding of the transcriptional regulation of molluscan shell development at the molecular level.

摘要

软体动物壳是一种引人入胜的生物矿物,由高度有序的碳酸钙复合材料组成。生物矿化受到精心调控,涉及多种大分子,尤其是基质蛋白,但对调控机制知之甚少。基质蛋白 Shematrin-2 在珍珠贝的套膜组织和贝壳成分中表达量最高,被认为是生物矿化的关键参与者。在这里,我们从 中表达和纯化了 Shematrin-2,并探索了其功能和转录调控。功能测定表明,Shematrin-2 结合贝壳的方解石、文石和几丁质成分,降低碳酸钙沉积速率,并改变方解石结晶系统中沉积晶体的形态。此外,我们克隆了 Shematrin-2 基因启动子,序列分析显示其可能结合转录因子 CCAAT 增强子结合蛋白(Pf-C/EBPs)和核因子-Y(NF-Y)的结合位点。通过瞬时共转染和报告基因分析,我们发现克隆和重组表达的 Pf-C/EBP-A 和 Pf-C/EBP-B 极大地、剂量依赖性地上调 基因的启动子活性。重要的是,Pf-C/EBP-A 和 Pf-C/EBP-B 的敲低降低了 基因的表达,并诱导棱柱层内表面结构发生变化,类似于基于抗体的 Shematrin-2 抑制作用。总之,我们的数据表明,转录因子 Pf-C/EBP-A 和 Pf-C/EBP-B 在 贝壳形成过程中上调基质蛋白 Shematrin-2 的表达,提高了我们对分子水平上软体动物壳发育的转录调控的理解。