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棘皮动物的骨骼发育依赖于含有内在无序、易于聚集和保守的球状相互作用结构域的蛋白质家族。

Skeletal development in the sea urchin relies upon protein families that contain intrinsic disorder, aggregation-prone, and conserved globular interactive domains.

机构信息

Laboratory for Chemical Physics, Center for Skeletal and Craniofacial Biology, New York University, New York, New York, United States of America.

出版信息

PLoS One. 2019 Oct 1;14(10):e0222068. doi: 10.1371/journal.pone.0222068. eCollection 2019.

Abstract

The formation of the sea urchin spicule skeleton requires the participation of hydrogel-forming protein families that regulate mineral nucleation and nanoparticle assembly processes that give rise to the spicule. However, the structure and molecular behavior of these proteins is not well established, and thus our ability to understand this process is hampered. We embarked on a study of sea urchin spicule proteins using a combination of biophysical and bioinformatics techniques. Our biophysical findings indicate that recombinant variants of the two most studied spicule matrix proteins, SpSM50 and SpSM30B/C (S. purpuratus) have a conformational landscape that include a C-terminal random coil/intrinsically disordered MAPQG sequence coupled to a conserved, folded N-terminal C-type lectin-like (CTLL) domain, with SpSM50 > SpSM30B/C with regard to intrinsic disorder. Both proteins possess solvent-accessible unfolded MAQPG sequence regions where Asn, Gln, and Arg residues may be accessible for protein hydrogel interactions with water molecules. Our bioinformatics study included seven other spicule matrix proteins where we note similarities between these proteins and rare, unusual proteins that possess folded and unfolded traits. Moreover, spicule matrix proteins possess three types of sequences: intrinsically disordered, amyloid-like, and folded protein-protein interactive. Collectively these reactive domains would be capable of driving protein assembly and hydrogel formation. Interestingly, three types of global conformations are predicted for the nine member protein set, wherein we note variations in the arrangement of intrinsically disordered and interactive globular domains. These variations may reflect species-specific requirements for spiculogenesis. We conclude that the molecular landscape of spicule matrix protein families enables them to function as hydrogelators, nucleators, and assemblers of mineral nanoparticles.

摘要

海胆刺的骨骼形成需要水凝胶形成蛋白家族的参与,这些蛋白家族调节矿化核的形成和纳米颗粒的组装过程,从而产生刺。然而,这些蛋白质的结构和分子行为还没有得到很好的确定,因此我们理解这个过程的能力受到了阻碍。我们使用生物物理和生物信息学技术的组合,开始研究海胆刺蛋白。我们的生物物理研究结果表明,两种研究最多的刺基质蛋白(S. purpuratus 的 SpSM50 和 SpSM30B/C)的重组变体具有构象景观,包括与保守折叠的 C 型凝集素样(CTLL)结构域相连的 C 端无规卷曲/固有无序 MAPQG 序列,SpSM50 比 SpSM30B/C 的固有无序程度更高。这两种蛋白质都具有可溶剂化的无规 MAQPG 序列区域,其中天冬酰胺、谷氨酰胺和精氨酸残基可能与水分子发生蛋白质水凝胶相互作用。我们的生物信息学研究包括另外七种刺基质蛋白,我们注意到这些蛋白与具有折叠和无规特征的罕见异常蛋白之间的相似性。此外,刺基质蛋白具有三种序列:固有无序、淀粉样和折叠蛋白-蛋白相互作用。这些反应性结构域共同驱动蛋白质组装和水凝胶形成。有趣的是,对于九种蛋白质集合,预测了三种类型的全局构象,其中我们注意到固有无序和相互作用球状结构域的排列存在差异。这些变化可能反映了种间特异性对刺发生的要求。我们得出的结论是,刺基质蛋白家族的分子景观使它们能够作为水凝胶形成剂、矿化核形成剂和纳米颗粒组装剂发挥作用。

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