Merck
CN
  • Role of the rttA gene in morphogenesis, stress response, and virulence in the human pathogenic fungus Penicillium marneffei.

Role of the rttA gene in morphogenesis, stress response, and virulence in the human pathogenic fungus Penicillium marneffei.

Medical mycology (2014-12-21)
Sumanun Suwunnakorn, Chester R Cooper, Aksarakorn Kummasook, Monsicha Pongpom, Pramote Vanittanakom, Nongnuch Vanittanakom
摘要

Penicillium marneffei is a human pathogenic fungus and the only thermally dimorphic species of the genus. At 25°C, P. marneffei grows as a mycelium that produces conidia in chains. However, when incubated at 37°C or following infection of host tissue, the fungus develops as a fission yeast. Previously, a mutant (strain I133) defective in morphogenesis was generated via Agrobacterium-mediated transformation. Specifically, the rtt109 gene (subsequently designated rttA) in this mutant was interrupted by T-DNA insertion. We characterized strain I133 and the possible roles of the mutated rttA gene in altered P. marneffei phenotypes. At 25°C, the rttA mutant produces fewer conidia than the wild type and a complemented mutant strain, as well as slower rates of conidial germination; however, strain I133 continued to grow as a yeast in 37°C-incubated cultures. Furthermore, whereas the wild type exhibited increased expression of rttA at 37°C in response to the DNA-damaging agent methyl methane sulfonate, strain I133 was hypersensitive to this and other genotoxic agents. Under similar conditions, the rttA mutant exhibited decreased expression of genes associated with carbohydrate metabolism and oxidative stress. Importantly, when compared with the wild-type and the complemented strain, I133 was significantly less virulent in a Galleria infection model when the larvae were incubated at 37°C. Moreover, the mutant exhibited inappropriate phase transition in vivo. In conclusion, the rttA gene plays important roles in morphogenesis, carbohydrate metabolism, stress response, and pathogenesis in P. marneffei, suggesting that this gene may be a potential target for the development of antifungal compounds.

材料
货号
品牌
产品描述

Sigma-Aldrich
D -(+)-葡萄糖, ≥99.5% (GC)
Sigma-Aldrich
D -(+)-葡萄糖, powder, BioReagent, suitable for cell culture, suitable for insect cell culture, suitable for plant cell culture, ≥99.5%
Supelco
葡萄糖, Pharmaceutical Secondary Standard; Certified Reference Material
Sigma-Aldrich
葡萄糖, 97.5-102.0% anhydrous basis, meets EP, BP, JP, USP testing specifications
Sigma-Aldrich
D -(+)-葡萄糖, ACS reagent
Sigma-Aldrich
D -(+)-葡萄糖, ≥99.5% (GC), BioXtra
Sigma-Aldrich
乙醇胺, ≥98%
Sigma-Aldrich
乙醇胺, ACS reagent, ≥99.0%
Sigma-Aldrich
乙醇胺, ≥99%
USP
右旋糖, United States Pharmacopeia (USP) Reference Standard
Sigma-Aldrich
乙醇胺, purified by redistillation, ≥99.5%
Sigma-Aldrich
D -(+)-葡萄糖, BioUltra, anhydrous, ≥99.5% (sum of enantiomers, HPLC)
Supelco
D -(+)-葡萄糖, analytical standard
Sigma-Aldrich
乙醇胺, liquid, BioReagent, suitable for cell culture, ≥98%
Sigma-Aldrich
D -(+)-葡萄糖, suitable for mouse embryo cell culture, ≥99.5% (GC)
Sigma-Aldrich
3-叔丁基-4-羟基苯甲醚, ≥98% (sum of isomers, GC), ≤10% 2-BHA basis (GC)
Supelco
3-叔丁基-4-羟基苯甲醚, Pharmaceutical Secondary Standard; Certified Reference Material
Sigma-Aldrich
D -(+)-葡萄糖, Hybri-Max, powder, BioReagent, suitable for hybridoma
Supelco
乙醇胺, analytical standard
Sigma-Aldrich
乙醇胺, puriss. p.a., ACS reagent, ≥99.0% (GC/NT)
Supelco
桃叶珊瑚苷, analytical standard
Sigma-Aldrich
D -(+)-葡萄糖, tested according to Ph. Eur.
Sigma-Aldrich
D-葡萄糖-12C6, 16O6, 99.9 atom % 16O, 99.9 atom % 12C
Sigma-Aldrich
3-(Benzyldimethylammonio)propanesulfonate, BioXtra, ≥99.0% (HPCE)
桃叶珊瑚苷, primary reference standard
三乙醇胺杂质A, European Pharmacopoeia (EP) Reference Standard
Sigma-Aldrich
D -(+)-葡萄糖, Vetec, reagent grade, ≥99.5% (HPLC)