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本文引用的文献

1
Rapid paracellular transmigration of Campylobacter jejuni across polarized epithelial cells without affecting TER: role of proteolytic-active HtrA cleaving E-cadherin but not fibronectin.空肠弯曲菌快速穿越极化上皮细胞的旁细胞迁移,而不影响 TER:蛋白水解活性的 HtrA 切割 E-钙黏蛋白而非纤连蛋白的作用。
Gut Pathog. 2012 Apr 25;4(1):3. doi: 10.1186/1757-4749-4-3.
2
Cage assembly of DegP protease is not required for substrate-dependent regulation of proteolytic activity or high-temperature cell survival.DegP 蛋白酶的 Cage 组装对于底物依赖性调节蛋白酶活性或高温细胞存活不是必需的。
Proc Natl Acad Sci U S A. 2012 May 8;109(19):7263-8. doi: 10.1073/pnas.1204791109. Epub 2012 Apr 23.
3
Newly folded substrates inside the molecular cage of the HtrA chaperone DegQ.新型分子笼 HtrA 伴侣 DegQ 内的折叠底物。
Nat Struct Mol Biol. 2012 Jan 15;19(2):152-7. doi: 10.1038/nsmb.2210.
4
Dynamic distribution of the SecA and SecY translocase subunits and septal localization of the HtrA surface chaperone/protease during Streptococcus pneumoniae D39 cell division.肺炎链球菌 D39 细胞分裂过程中 SecA 和 SecY 转运酶亚基的动态分布和 HtrA 表面伴侣/蛋白酶的隔膜定位。
mBio. 2011 Oct 11;2(5). doi: 10.1128/mBio.00202-11. Print 2011.
5
Competence in Streptococcus pneumoniae is regulated by the rate of ribosomal decoding errors.核糖体解码错误率调控肺炎链球菌的能力。
mBio. 2011 Sep 20;2(5). doi: 10.1128/mBio.00071-11. Print 2011.
6
Unique residues involved in activation of the multitasking protease/chaperone HtrA from Chlamydia trachomatis.涉及沙眼衣原体多功能蛋白酶/伴侣蛋白 HtrA 激活的独特残基。
PLoS One. 2011;6(9):e24547. doi: 10.1371/journal.pone.0024547. Epub 2011 Sep 8.
7
Solution structure of HtrA PDZ domain from Streptococcus pneumoniae and its interaction with YYF-COOH containing peptides.肺炎链球菌 HtrA PDZ 结构域的溶液结构及其与含有 YYF-COOH 肽段的相互作用
J Struct Biol. 2011 Oct;176(1):16-23. doi: 10.1016/j.jsb.2011.06.009. Epub 2011 Jul 2.
8
Molecular adaptation of the DegQ protease to exert protein quality control in the bacterial cell envelope.DegQ 蛋白酶的分子适应在细菌细胞包膜中发挥蛋白质质量控制作用。
J Biol Chem. 2011 Sep 2;286(35):30680-30690. doi: 10.1074/jbc.M111.243832. Epub 2011 Jun 17.
9
The Legionella HtrA homologue DegQ is a self-compartmentizing protease that forms large 12-meric assemblies.军团菌 HtrA 同源物 DegQ 是一种自我分隔的蛋白酶,形成大型 12 聚体组装。
Proc Natl Acad Sci U S A. 2011 Jun 28;108(26):10490-5. doi: 10.1073/pnas.1101084108. Epub 2011 Jun 13.
10
Membrane-associated DegP in Bordetella chaperones a repeat-rich secretory protein.膜相关 DegP 在百日咳鲍特菌中充当富含重复序列的分泌蛋白的伴侣。
Mol Microbiol. 2011 Jun;80(6):1625-36. doi: 10.1111/j.1365-2958.2011.07672.x. Epub 2011 May 12.

肺炎链球菌的丝氨酸蛋白酶 HtrA 可降解变性蛋白和感受态刺激肽。

The HtrA protease from Streptococcus pneumoniae digests both denatured proteins and the competence-stimulating peptide.

机构信息

Division of Infectious Diseases, Children's Hospital of Philadelphia, Philadelphia, Pennsylvania 19104, USA.

出版信息

J Biol Chem. 2012 Nov 9;287(46):38449-59. doi: 10.1074/jbc.M112.391482. Epub 2012 Sep 25.

DOI:10.1074/jbc.M112.391482
PMID:23012372
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3493890/
Abstract

The HtrA protease of Streptococcus pneumoniae functions both in a general stress response role and as an error sensor that specifically represses genetic competence when the overall level of biosynthetic errors in cellular proteins is low. However, the mechanism through which HtrA inhibits development of competence has been unknown. We found that HtrA digested the pneumococcal competence-stimulating peptide (CSP) and constituted the primary extracytoplasmic CSP-degrading activity in cultures of S. pneumoniae. Mass spectrometry demonstrated that cleavage predominantly followed residue Phe-8 of the CSP-1 isoform of the peptide within its central hydrophobic patch, and in competition assays, both CSP-1 and CSP-2 interacted with HtrA with similar efficiencies. More generally, analysis of β-casein digestion and of digestion within HtrA itself revealed a preference for substrates with non-polar residues at the P1 site. Consistent with a specificity for exposed hydrophobic residues, competition from native BSA only weakly inhibited digestion of CSP, but denaturation converted BSA into a strong competitive inhibitor of such proteolysis. Together these findings support a model in which digestion of CSP by HtrA is reduced in the presence of other unfolded proteins that serve as alternative targets for degradation. Such competition may provide a mechanism by which HtrA functions in a quality control capacity to monitor the frequency of biosynthetic errors that result in protein misfolding.

摘要

肺炎链球菌的 HtrA 蛋白酶既具有一般应激反应的作用,又作为一种错误传感器,当细胞蛋白质的整体生物合成错误水平较低时,特异性地抑制遗传能力。然而,HtrA 抑制能力发展的机制尚不清楚。我们发现 HtrA 消化了肺炎球菌刺激肽(CSP),并构成了肺炎链球菌培养物中主要的细胞外 CSP 降解活性。质谱分析表明,切割主要发生在肽的中央疏水区内 Phe-8 残基处,在竞争测定中,CSP-1 和 CSP-2 与 HtrA 的相互作用效率相似。更一般地,β-酪蛋白消化和 HtrA 自身消化的分析表明,其对 P1 位具有非极性残基的底物具有偏好性。与暴露的疏水性残基的特异性一致,来自天然 BSA 的竞争仅微弱抑制 CSP 的消化,但变性将 BSA 转化为这种蛋白水解的强竞争性抑制剂。这些发现共同支持了这样一种模型,即在存在其他充当降解替代靶标的未折叠蛋白时,HtrA 对 CSP 的消化减少。这种竞争可能提供了一种机制,使 HtrA 能够以质量控制的能力来监测导致蛋白质错误折叠的生物合成错误的频率。