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本文引用的文献

1
NOVEL ICE-BINDING PROTEINS FROM A PSYCHROPHILIC ANTARCTIC ALGA (CHLAMYDOMONADACEAE, CHLOROPHYCEAE)(1).来自南极嗜冷藻类(绿藻门,衣藻科)的新型冰结合蛋白(1)
J Phycol. 2009 Feb;45(1):130-6. doi: 10.1111/j.1529-8817.2008.00623.x. Epub 2009 Feb 3.
2
Characterization of an antifreeze protein from the polar diatom Fragilariopsis cylindrus and its relevance in sea ice.从极地硅藻脆杆藻中鉴定出一种抗冻蛋白及其在海冰中的相关性。
Cryobiology. 2011 Dec;63(3):210-9. doi: 10.1016/j.cryobiol.2011.08.006. Epub 2011 Aug 26.
3
Crystallization and preliminary X-ray crystallographic studies of the ice-binding protein from the Arctic [correction of Aantarctic] yeast Leucosporidium sp. AY30.北极[纠正为南极]酵母Leucosporidium sp. AY30冰结合蛋白的结晶及初步X射线晶体学研究。
Acta Crystallogr Sect F Struct Biol Cryst Commun. 2011 Jul 1;67(Pt 7):800-2. doi: 10.1107/S1744309111018446. Epub 2011 Jun 30.
4
Anchored clathrate waters bind antifreeze proteins to ice.锚定的笼形水合物将抗冻蛋白结合到冰上。
Proc Natl Acad Sci U S A. 2011 May 3;108(18):7363-7. doi: 10.1073/pnas.1100429108. Epub 2011 Apr 11.
5
Structures and ice-binding faces of the alanine-rich type I antifreeze proteins.富含丙氨酸的 I 型抗冻蛋白的结构和冰结合面。
Biochem Cell Biol. 2010 Apr;88(2):223-9. doi: 10.1139/o09-183.
6
An extracellular ice-binding glycoprotein from an Arctic psychrophilic yeast.一种来自北极嗜冷酵母的细胞外冰结合糖蛋白。
Cryobiology. 2010 Apr;60(2):222-8. doi: 10.1016/j.cryobiol.2010.01.002. Epub 2010 Jan 11.
7
Comparison of functional properties of two fungal antifreeze proteins from Antarctomyces psychrotrophicus and Typhula ishikariensis.比较南极耐寒真菌和石狩耐寒菇两种真菌抗冻蛋白的功能特性。
FEBS J. 2010 Jan;277(2):394-403. doi: 10.1111/j.1742-4658.2009.07490.x. Epub 2009 Dec 18.
8
Identification of the ice-binding face of a plant antifreeze protein.植物抗冻蛋白冰结合面的鉴定
FEBS Lett. 2009 Feb 18;583(4):815-9. doi: 10.1016/j.febslet.2009.01.035. Epub 2009 Jan 29.
9
Ice-binding proteins from enoki and shiitake mushrooms.来自金针菇和香菇的冰结合蛋白。
Cryobiology. 2009 Apr;58(2):151-6. doi: 10.1016/j.cryobiol.2008.11.009. Epub 2008 Dec 16.
10
Solid-state NMR on a type III antifreeze protein in the presence of ice.在冰存在的情况下对III型抗冻蛋白进行固态核磁共振研究。
J Am Chem Soc. 2008 Dec 24;130(51):17394-9. doi: 10.1021/ja8047893.

抗冻蛋白来自北极酵母的冰结合蛋白的结构基础。

Structural basis for antifreeze activity of ice-binding protein from arctic yeast.

机构信息

Division of Polar Life Sciences, Korea Polar Research Institute, Incheon 406-840, Republic of Korea.

出版信息

J Biol Chem. 2012 Mar 30;287(14):11460-8. doi: 10.1074/jbc.M111.331835. Epub 2012 Feb 2.

DOI:10.1074/jbc.M111.331835
PMID:22303017
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3322824/
Abstract

Arctic yeast Leucosporidium sp. produces a glycosylated ice-binding protein (LeIBP) with a molecular mass of ∼25 kDa, which can lower the freezing point below the melting point once it binds to ice. LeIBP is a member of a large class of ice-binding proteins, the structures of which are unknown. Here, we report the crystal structures of non-glycosylated LeIBP and glycosylated LeIBP at 1.57- and 2.43-Å resolution, respectively. Structural analysis of the LeIBPs revealed a dimeric right-handed β-helix fold, which is composed of three parts: a large coiled structural domain, a long helix region (residues 96-115 form a long α-helix that packs along one face of the β-helix), and a C-terminal hydrophobic loop region ((243)PFVPAPEVV(251)). Unexpectedly, the C-terminal hydrophobic loop region has an extended conformation pointing away from the body of the coiled structural domain and forms intertwined dimer interactions. In addition, structural analysis of glycosylated LeIBP with sugar moieties attached to Asn(185) provides a basis for interpreting previous biochemical analyses as well as the increased stability and secretion of glycosylated LeIBP. We also determined that the aligned Thr/Ser/Ala residues are critical for ice binding within the B face of LeIBP using site-directed mutagenesis. Although LeIBP has a common β-helical fold similar to that of canonical hyperactive antifreeze proteins, the ice-binding site is more complex and does not have a simple ice-binding motif. In conclusion, we could identify the ice-binding site of LeIBP and discuss differences in the ice-binding modes compared with other known antifreeze proteins and ice-binding proteins.

摘要

北极酵母 Leucosporidium sp. 产生一种糖基化的冰结合蛋白(LeIBP),其分子量约为 25 kDa,一旦与冰结合,就可以将冰点降低到熔点以下。LeIBP 是一个大型冰结合蛋白家族的成员,其结构尚不清楚。在这里,我们分别以 1.57 和 2.43 Å 的分辨率报告了非糖基化 LeIBP 和糖基化 LeIBP 的晶体结构。LeIBP 的结构分析揭示了一个二聚右手β-螺旋折叠结构,它由三部分组成:一个大的螺旋结构域、一个长的螺旋区域(残基 96-115 形成一个长的α-螺旋,沿着β-螺旋的一个面堆积)和一个 C 末端疏水性环区域((243)PFVPAPEVV(251))。出乎意料的是,C 末端疏水性环区域具有延伸的构象,远离螺旋结构域的主体,并形成交织的二聚体相互作用。此外,对糖基化 LeIBP 的结构分析表明,糖基化的 LeIBP 与附着在 Asn(185)上的糖基结合,为以前的生化分析以及糖基化 LeIBP 的稳定性和分泌增加提供了基础。我们还通过定点突变确定了 Thr/Ser/Ala 残基在 LeIBP 的 B 面上的冰结合是关键的。尽管 LeIBP 具有与典型的高活性抗冻蛋白相似的常见β-螺旋折叠,但冰结合位点更复杂,没有简单的冰结合基序。总之,我们可以确定 LeIBP 的冰结合位点,并讨论与其他已知的抗冻蛋白和冰结合蛋白相比,冰结合模式的差异。