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新型隐球菌中的肌醇合成与分解代谢。

Inositol synthesis and catabolism in Cryptococcus neoformans.

作者信息

Molina Y, Ramos S E, Douglass T, Klig L S

机构信息

Department of Biological Sciences, California State University, Long Beach, CA 90840, USA.

出版信息

Yeast. 1999 Nov;15(15):1657-67. doi: 10.1002/(SICI)1097-0061(199911)15:15<1657::AID-YEA493>3.0.CO;2-3.

Abstract

Cryptococcus neoformans is an opportunistic fungal pathogen that synthesizes and catabolizes inositol. This study demonstrates inositol synthesis from glucose-6-phosphate via inositol-1-phosphate synthase and catabolism to glucuronic acid via inositol oxygenase in this organism. These inositol synthetic and catabolic pathways are regulated in opposition; repressing conditions for one are inducing conditions for the other. An inositol-requiring strain was generated by UV mutagenesis. Without inositol, this mutant strain undergoes 'inositol-less' death, during which time the phosphatidylinositol composition of the membranes decreases without alteration of the proportion of other phospholipids. The mutation on this strain results in no detectable inositol synthetic activity but normal (wild-type) inositol catabolic activity. This inositol-requiring mutant strain reverted at a high frequency. Classical genetic experiments revealed that the majority of the reverting mutations are at second sites. Interestingly, the revertants exhibited unusual morphological phenotypes when deprived of inositol, while provision of inositol restored wild-type morphology. Inositol metabolism is clearly important for growth and development of C. neoformans and may be involved in this organism's mechanism for survival as both a saprophyte in soil and a parasite in humans.

摘要

新型隐球菌是一种能合成和分解代谢肌醇的机会性真菌病原体。本研究证明了该生物体中肌醇从6-磷酸葡萄糖经肌醇-1-磷酸合酶合成,以及经肌醇加氧酶分解代谢为葡萄糖醛酸的过程。这些肌醇合成和分解代谢途径呈反向调节;一种途径的抑制条件是另一种途径的诱导条件。通过紫外线诱变产生了一株需要肌醇的菌株。在没有肌醇的情况下,该突变菌株会经历“无肌醇”死亡,在此期间,膜的磷脂酰肌醇组成减少,而其他磷脂的比例不变。该菌株的突变导致无法检测到肌醇合成活性,但肌醇分解代谢活性正常(野生型)。这种需要肌醇的突变菌株高频回复突变。经典遗传学实验表明,大多数回复突变发生在第二位点。有趣的是,当缺乏肌醇时,回复子表现出异常的形态表型,而提供肌醇则恢复野生型形态。肌醇代谢显然对新型隐球菌的生长和发育很重要,并且可能参与了该生物体作为土壤腐生菌和人类寄生虫的生存机制。

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