Dass S B, Dosoretz C G, Reddy C A, Grethlein H E
Department of Microbiology and Public Health, Michigan State University, East Lansing 48824, USA.
Arch Microbiol. 1995 Apr;163(4):254-8. doi: 10.1007/BF00393377.
When subjected to nitrogen limitation, the wood-degrading fungus Phanerochaete chrysosporium produces two groups of secondary metabolic, extracellular isoenzymes that depolymerize lignin in wood: lignin peroxidases and manganese peroxidases. We have shown earlier the turnover in activity of the lignin peroxidases to be due in part to extracellular proteolytic activity. This paper reports the electrophoretic characterization of two sets of acidic extracellular proteases produced by submerged cultures of P. chrysosporium. The protease activity seen on day 2 of incubation, during primary growth when nitrogen levels are not known to be limiting, consisted of at least six proteolytic bands ranging in size from 82 to 22 kDa. The activity of this primary protease was strongly reduced in the presence of SDS. Following the day 2, when nitrogen levels are known to become limiting and cultures become ligninolytic, the main protease activity (secondary protease) consisted of a major proteolytic band of 76 kDa and a minor band of 25 kDa. The major and minor secondary protease activities were inhibited by phenylmethyl-sulfonyl fluoride and pepstatin A, respectively. When cultures were grown in the presence of excess nitrogen (non-ligninolytic condition), the primary protease remained the principal protease throughout the culture period. These results identify and characterize a specific proteolytic activity associated with conditions that promote lignin degradation.
当受到氮限制时,木材降解真菌黄孢原毛平革菌会产生两组次生代谢的细胞外同工酶,它们能使木材中的木质素解聚:木质素过氧化物酶和锰过氧化物酶。我们之前已经表明,木质素过氧化物酶活性的周转部分归因于细胞外蛋白水解活性。本文报道了黄孢原毛平革菌深层培养产生的两组酸性细胞外蛋白酶的电泳特征。在培养第2天,即初级生长阶段(此时已知氮水平并非限制因素)观察到的蛋白酶活性,由至少六条蛋白水解带组成,其大小范围从82 kDa到22 kDa。在SDS存在的情况下,这种初级蛋白酶的活性会大幅降低。在第2天之后,当已知氮水平成为限制因素且培养物开始木质素分解时,主要的蛋白酶活性(次级蛋白酶)由一条76 kDa的主要蛋白水解带和一条25 kDa的次要带组成。主要和次要的次级蛋白酶活性分别被苯甲基磺酰氟和胃蛋白酶抑制剂A抑制。当培养物在过量氮存在的情况下生长(非木质素分解条件)时,初级蛋白酶在整个培养期间仍然是主要的蛋白酶。这些结果鉴定并表征了一种与促进木质素降解的条件相关的特定蛋白水解活性。