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其前肽对成熟真菌丝氨酸蛋白酶和金属蛋白酶的特异性抑制作用。

Specific inhibition of mature fungal serine proteinases and metalloproteinases by their propeptides.

作者信息

Markaryan A, Lee J D, Sirakova T D, Kolattukudy P E

机构信息

Neurobiotechnology Center, The Ohio State University, Columbus 43210, USA.

出版信息

J Bacteriol. 1996 Apr;178(8):2211-5. doi: 10.1128/jb.178.8.2211-2215.1996.

Abstract

The function of the long propeptides of fungal proteinases is not known. Aspergillus fumigatus produces a 33-kDa serine proteinase of the subtilisin family and a 42-kDa metalloproteinase of the thermolysin family. These extracellular enzymes are synthesized as preproenzymes containing large amino-terminal propeptides. Recombinant propeptides were produced in Escherichia coli as soluble fusion proteins with glutathione S-transferase or thioredoxin and purified by affinity chromatography. A. fumigatus serine proteinase propeptide competitively inhibited serine proteinase, with a Ki of 5.3 x 10(-6) M, whereas a homologous serine proteinase from A. flavus was less strongly inhibited and subtilisin was not inhibited. Binding of metalloproteinase propeptide from A. fumigatus to the mature metalloenzyme was demonstrated. This propeptide strongly inhibited its mature enzyme, with a Ki of 3 x 10(-9) M, whereas thermolysin and a metalloproteinase from A. flavus were not inhibited by this propeptide. Enzymatically inactive metalloproteinase propeptide complex could be completely activated by trypsin treatment. These results demonstrate that the propeptides of the fungal proteinases bind specifically and inhibit the respective mature enzymes, probably reflecting a biological role of keeping these extracellular enzymes inactive until secretion.

摘要

真菌蛋白酶长前肽的功能尚不清楚。烟曲霉产生一种枯草杆菌蛋白酶家族的33 kDa丝氨酸蛋白酶和一种嗜热菌蛋白酶家族的42 kDa金属蛋白酶。这些细胞外酶作为含有大的氨基末端前肽的前体酶进行合成。重组前肽在大肠杆菌中作为与谷胱甘肽S-转移酶或硫氧还蛋白的可溶性融合蛋白产生,并通过亲和层析纯化。烟曲霉丝氨酸蛋白酶前肽竞争性抑制丝氨酸蛋白酶,Ki为5.3×10(-6)M,而来自黄曲霉的同源丝氨酸蛋白酶抑制作用较弱,枯草杆菌蛋白酶未受抑制。已证实烟曲霉金属蛋白酶前肽与成熟金属酶结合。该前肽强烈抑制其成熟酶,Ki为3×10(-9)M,而嗜热菌蛋白酶和来自黄曲霉的金属蛋白酶不受该前肽抑制。无酶活性的金属蛋白酶前肽复合物可通过胰蛋白酶处理完全激活。这些结果表明,真菌蛋白酶的前肽特异性结合并抑制各自的成熟酶,这可能反映了在分泌前保持这些细胞外酶无活性的生物学作用。

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