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丝氨酸蛋白酶介导的寄生线虫斯氏线虫对宿主的侵袭。

Serine protease-mediated host invasion by the parasitic nematode Steinernema carpocapsae.

机构信息

Departamento de Biologia, Universidade dos Açores, Centro de Investigação de Recursos Naturais, Apartado 1422, Ponta Delgada 9501-801, Portugal.

出版信息

J Biol Chem. 2010 Oct 1;285(40):30666-75. doi: 10.1074/jbc.M110.129346. Epub 2010 Jul 23.

Abstract

Steinernema carpocapsae is an insect parasitic nematode used in biological control, which infects insects penetrating by mouth and anus and invading the hemocoelium through the midgut wall. Invasion has been described as a key factor in nematode virulence and suggested to be mediated by proteases. A serine protease cDNA from the parasitic stage was sequenced (sc-sp-1); the recombinant protein was produced in an Escherichia coli system, and a native protein was purified from the secreted products. Both proteins were confirmed by mass spectrometry to be encoded by the sc-sp-1 gene. Sc-SP-1 has a pI of 8.7, a molecular mass of 27.3 kDa, a catalytic efficiency of 22.2 × 10(4) s(-1) m(-1) against N-succinyl-Ala-Ala-Pro-Phe-pNA, and is inhibited by chymostatin (IC 0.07) and PMSF (IC 0.73). Sc-SP-1 belongs to the chymotrypsin family, based on sequence and biochemical analysis. Only the nematode parasitic stage expressed sc-sp-1. These nematodes in the midgut lumen, prepared to invade the insect hemocoelium, expressed higher levels than those already in the hemocoelium. Moreover, parasitic nematode sense insect peritrophic membrane and hemolymph more quickly than they do other tissues, which initiates sc-sp-1 expression. Ex vivo, Sc-SP-1 was able to bind to insect midgut epithelium and to cause cell detachment from basal lamina. In vitro, Sc-SP-1 formed holes in an artificial membrane model (Matrigel), whereas Sc-SP-1 treated with PMSF did not, very likely because it hydrolyzes matrix glycoproteins. These findings highlight the S. carpocapsae-invasive process that is a key step in the parasitism thus opening new perspectives for improving nematode virulence to use in biological control.

摘要

斯氏线虫是一种用于生物防治的昆虫寄生线虫,它通过口和肛门感染昆虫,并通过中肠壁侵入血腔。侵袭已被描述为线虫毒力的关键因素,并被认为是由蛋白酶介导的。从寄生阶段测序了一个丝氨酸蛋白酶 cDNA(sc-sp-1);重组蛋白在大肠杆菌系统中产生,从分泌产物中纯化得到天然蛋白。两种蛋白均通过质谱法确认为 sc-sp-1 基因编码。Sc-SP-1 的等电点为 8.7,分子量为 27.3 kDa,对 N-琥珀酰-Ala-Ala-Pro-Phe-pNA 的催化效率为 22.2×10(4) s(-1) m(-1),被糜蛋白酶抑制剂(IC 0.07)和 PMSF(IC 0.73)抑制。根据序列和生化分析,Sc-SP-1 属于糜蛋白酶家族。只有线虫的寄生阶段表达 sc-sp-1。这些位于中肠腔中的线虫,准备侵入昆虫血腔,表达水平高于已经在血腔中的线虫。此外,寄生线虫比其他组织更快地感知昆虫围食膜和血淋巴,从而启动 sc-sp-1 的表达。在体外,Sc-SP-1 能够与昆虫中肠上皮结合,并导致细胞从基膜上脱落。在体外,Sc-SP-1 在人工膜模型(Matrigel)上形成孔,而用 PMSF 处理的 Sc-SP-1 则不会,很可能是因为它水解基质糖蛋白。这些发现强调了 S. carpocapsae 的侵袭过程,这是寄生的关键步骤,从而为提高线虫的毒力以用于生物防治开辟了新的前景。

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4
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7
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