Alternative splicing produces two endoglucanases with one or two carbohydrate-binding modules in Mucor circinelloides

被引:26
作者
Baba, Y [1 ]
Shimonaka, A [1 ]
Koga, J [1 ]
Kubota, H [1 ]
Kono, T [1 ]
机构
[1] Meiji Seika Kaisha Ltd, Food & Hlth R&D Labs, Sakado, Saitama 3500289, Japan
关键词
D O I
10.1128/JB.187.9.3045-3051.2005
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
We previously cloned three endoglucanase genes, rce1, rce2, and rce3, that were isolated from Rhizopus oryzae as the first cellulase genes from a member of the subdivision Zygomycota. In this study, two cDNAs homologous to the reel gene, designated the mce1 and mce2 cDNAs, were cloned from Mucor cireinelloides, a member of the subdivision Zygomycota. The mce1 cDNA encoded an endoglucanase (family 45 glycoside hydrolase) having one carbohydrate-binding module (CBM), designated MCE1, and the mce2 cDNA encoded the same endoglucanase having two tandem repeated CBMs, designated MCE2. The two cDNAs contained the same sequences but with a 147-bp insertion. The corresponding genomic mce gene consisted of four exons. The mce1 cDNA was created from exons 1, 3, and 4, and the mce2 cDNA was created from exons 1, 2, 3, and 4. These results indicate that the mce1 and mce2 cDNAs were created from one genomic mce gene by alternative splicing. MCE1 and MCE2, purified to apparent homogeneity from the culture supernatant of M. circinelloides, had molecular masses of 43 and 47 kDa, respectively. The carboxymethyl cellulase specific activity of MCE2 was almost the same as that of MCE1, whereas the Avicelase specific activity of MCE2 was two times higher than that of MCE1. Furthermore, MCE2, whose two tandem CBMs might be more effective for degradation of crystalline cellulose than one CBM, was secreted only at an early culture stage when crystalline cellulose was abundant.
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页码:3045 / 3051
页数:7
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