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Plant J. 2006 Jun;46(5):780-93. doi: 10.1111/j.1365-313X.2006.02735.x.
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Compartmentalization of S-RNase and HT-B degradation in self-incompatible Nicotiana.自交不亲和烟草中S-RNase和HT-B降解的区室化
Nature. 2006 Feb 16;439(7078):805-10. doi: 10.1038/nature04491.
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Accumulation of nonfunctional S-haplotypes results in the breakdown of gametophytic self-incompatibility in tetraploid Prunus.无功能S单倍型的积累导致四倍体李属植物配子体自交不亲和性的破坏。
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Self-incompatibility in plants.植物中的自交不亲和性。
Annu Rev Plant Biol. 2005;56:467-89. doi: 10.1146/annurev.arplant.56.032604.144249.
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Molecular analysis of the conserved C4 region of the S11-RNase of Solanum chacoense.茄参S11核糖核酸酶保守C4区域的分子分析。
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Loss of pollen-S function in two self-compatible selections of Prunus avium is associated with deletion/mutation of an S haplotype-specific F-box gene.在两个甜樱桃自交亲和选择系中花粉-S功能的丧失与一个S单倍型特异性F-box基因的缺失/突变相关。
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The ubiquitin-proteasome pathway and plant development.泛素-蛋白酶体途径与植物发育
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A hitchhiker's guide to the cullin ubiquitin ligases: SCF and its kin.泛素连接酶Cullin家族指南:SCF及其同类物
Biochim Biophys Acta. 2004 Nov 29;1695(1-3):133-70. doi: 10.1016/j.bbamcr.2004.09.027.
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S-RNase and SLF determine S-haplotype-specific pollen recognition and rejection.S-RNase和SLF决定S单倍型特异性花粉的识别与排斥。
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参与基于S-核酸酶的自交不亲和性的矮牵牛假定S位点含F盒E3连接酶复合体的组分鉴定与表征

Identification and characterization of components of a putative petunia S-locus F-box-containing E3 ligase complex involved in S-RNase-based self-incompatibility.

作者信息

Hua Zhihua, Kao Teh-Hui

机构信息

Intercollege Graduate Degree Program in Plant Biology, Pensylvania State University, University Park, Pensylvania 16802, USA.

出版信息

Plant Cell. 2006 Oct;18(10):2531-53. doi: 10.1105/tpc.106.041061. Epub 2006 Oct 6.

DOI:10.1105/tpc.106.041061
PMID:17028207
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1626602/
Abstract

Petunia inflata S-locus F-box (Pi SLF) is thought to function as a typical F-box protein in ubiquitin-mediated protein degradation and, along with Skp1, Cullin-1, and Rbx1, could compose an SCF complex mediating the degradation of nonself S-RNase but not self S-RNase. We isolated three P. inflata Skp1s (Pi SK1, -2, and -3), two Cullin-1s (Pi CUL1-C and -G), and an Rbx1 (Pi RBX1) cDNAs and found that Pi CUL1-G did not interact with Pi RBX1 and that none of the three Pi SKs interacted with Pi SLF(2). We also isolated a RING-HC protein, S-RNase Binding Protein1 (Pi SBP1), almost identical to Petunia hybrida SBP1, which interacts with Pi SLFs, S-RNases, Pi CUL1-G, and an E2 ubiquitin-conjugating enzyme, suggesting that Pi CUL1-G, SBP1, and SLF may be components of a novel E3 ligase complex, with Pi SBP1 playing the roles of Skp1 and Rbx1. S-RNases interact more with nonself Pi SLFs than with self Pi SLFs, and Pi SLFs also interact more with nonself S-RNases than with self S-RNases. Bacterially expressed S(1)-, S(2)-, and S(3)-RNases are degraded by the 26S proteasomal pathway in a cell-free system, albeit not in an S-allele-specific manner. Native glycosylated S(3)-RNase is not degraded to any significant extent; however, deglycosylated S(3)-RNase is degraded as efficiently as the bacterially expressed S-RNases. Finally, S-RNases are ubiquitinated in pollen tube extracts, but whether this is mediated by the Pi SLF-containing E3 complex is unknown.

摘要

矮牵牛(Petunia inflata)S位点F盒蛋白(Pi SLF)被认为在泛素介导的蛋白质降解过程中发挥典型F盒蛋白的功能,并且它与Skp1、Cullin-1和Rbx1一起,可能组成一个SCF复合物,介导非自身S-RNase的降解,而不介导自身S-RNase的降解。我们分离出了3个矮牵牛Skp1(Pi SK1、-2和-3)、2个Cullin-1(Pi CUL1-C和-G)以及1个Rbx1(Pi RBX1)的cDNA,发现Pi CUL1-G不与Pi RBX1相互作用,并且3个Pi SKs均不与Pi SLF(2)相互作用。我们还分离出了一种RING-HC蛋白,即S-RNase结合蛋白1(Pi SBP1),它与矮牵牛(Petunia hybrida)的SBP1几乎相同,能与Pi SLFs、S-RNases、Pi CUL1-G以及一种E2泛素结合酶相互作用,这表明Pi CUL1-G、SBP1和SLF可能是一种新型E3连接酶复合物的组成成分,其中Pi SBP1发挥Skp1和Rbx1的作用。S-RNases与非自身Pi SLFs的相互作用比与自身Pi SLFs的相互作用更强,并且Pi SLFs与非自身S-RNases的相互作用也比与自身S-RNases的相互作用更强。在无细胞体系中,细菌表达的S(1)-、S(2)-和S(3)-RNases通过26S蛋白酶体途径被降解,尽管不是以S等位基因特异性的方式。天然糖基化的S(3)-RNase在很大程度上不会被降解;然而,去糖基化的S(3)-RNase的降解效率与细菌表达的S-RNases相同。最后,S-RNases在花粉管提取物中被泛素化,但这是否由含Pi SLF的E3复合物介导尚不清楚。