Literature DB >> 22416139

Novel basic protein, PfN23, functions as key macromolecule during nacre formation.

Dong Fang1, Cong Pan, Huijuan Lin, Ya Lin, Guiyou Zhang, Hongzhong Wang, Maoxian He, Liping Xie, Rongqing Zhang.   

Abstract

The fine microstructure of nacre (mother of pearl) illustrates the beauty of nature. Proteins found in nacre were believed to be "natural hands" that control nacre formation. In the classical view of nacre formation, nucleation of the main minerals, calcium carbonate, is induced on and by the acidic proteins in nacre. However, the basic proteins were not expected to be components of nacre. Here, we reported that a novel basic protein, PfN23, was a key accelerator in the control over crystal growth in nacre. The expression profile, in situ immunostaining, and in vitro immunodetection assays showed that PfN23 was localized within calcium carbonate crystals in the nacre. Knocking down the expression of PfN23 in adults via double-stranded RNA injection led to a disordered nacre surface in adults. Blocking the translation of PfN23 in embryos using morpholino oligomers led to the arrest of larval development. The in vitro crystallization assay showed that PfN23 increases the rate of calcium carbonate deposition and induced the formation of aragonite crystals with characteristics close to nacre. In addition, we constructed the peptides and truncations of different regions of this protein and found that the positively charged C-terminal region was a key region for the function of PfN23 Taken together, the basic protein PfN23 may be a key accelerator in the control of crystal growth in nacre. This provides a valuable balance to the classic view that acidic proteins control calcium carbonate deposition in nacre.

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Year:  2012        PMID: 22416139      PMCID: PMC3346131          DOI: 10.1074/jbc.M112.341594

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  33 in total

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  23 in total

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4.  Identification and Characterization of the Lysine-Rich Matrix Protein Family in Pinctada fucata: Indicative of Roles in Shell Formation.

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

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6.  A novel acidic matrix protein, PfN44, stabilizes magnesium calcite to inhibit the crystallization of aragonite.

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9.  In-depth proteomic analysis of shell matrix proteins of Pinctada fucata.

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10.  Heterogeneous distribution of dye-labelled biomineralizaiton proteins in calcite crystals.

Authors:  Chuang Liu; Liping Xie; Rongqing Zhang
Journal:  Sci Rep       Date:  2015-12-17       Impact factor: 4.379

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