Department of Microbiology and Immunology, University of Michigan Medical School, Ann Arbor, MI, USA.
Department of Microbial Pathogenesis, School of Dentistry, University of Maryland, Baltimore, MD, USA.
Mol Microbiol. 2020 Jan;113(1):153-172. doi: 10.1111/mmi.14407. Epub 2019 Nov 19.
Acinetobacter baumannii infects a wide range of anatomic sites including the respiratory tract and bloodstream. Despite its clinical importance, little is known about the molecular basis of A. baumannii pathogenesis. We previously identified the UDP-N-acetyl-d-galactosaminuronic acid (UDP-GalNAcA) biosynthesis genes, gna-gne2, as being critical for survival in vivo. Herein, we demonstrate that Gna-Gne2 are part of a complex network connecting in vivo fitness, cell envelope homeostasis and resistance to antibiotics. The ∆gna-gne2 mutant exhibits a severe fitness defect during bloodstream infection. Capsule production is abolished in the mutant strain, which is concomitant with its inability to survive in human serum. In addition, the ∆gna-gne2 mutant was more susceptible to vancomycin and unable to grow on MacConkey plates, indicating an alteration in cell envelope integrity. Analysis of lipid A by mass spectrometry showed that the hexa- and hepta-acylated species were affected in the gna-gne2 mutant. Finally, the ∆gna-gne2 mutant was more susceptible to several classes of antibiotics. Together, this study demonstrates the importance of UDP-GalNAcA in the pathobiology of A. baumannii. By interrupting its biosynthesis, we showed that this molecule plays a critical role in capsule biosynthesis and maintaining the cell envelope homeostasis.
鲍曼不动杆菌感染广泛的解剖部位,包括呼吸道和血液。尽管它具有临床重要性,但对鲍曼不动杆菌发病机制的分子基础知之甚少。我们之前确定了 UDP-N-乙酰-d-半乳糖胺酸(UDP-GalNAcA)生物合成基因 gna-gne2,是其在体内生存的关键。在此,我们证明 Gna-Gne2 是连接体内适应性、细胞包膜稳态和抗生素耐药性的复杂网络的一部分。△gna-gne2 突变体在血流感染期间表现出严重的适应性缺陷。在突变株中,荚膜产生被废除,同时其无法在人血清中存活。此外,△gna-gne2 突变体对万古霉素更敏感,无法在 MacConkey 平板上生长,表明细胞包膜完整性发生改变。通过质谱分析脂质 A 表明,gna-gne2 突变体中六酰和七酰物种受到影响。最后,△gna-gne2 突变体对几类抗生素更敏感。总之,这项研究表明 UDP-GalNAcA 在鲍曼不动杆菌的病理生物学中的重要性。通过中断其生物合成,我们表明该分子在荚膜生物合成和维持细胞包膜稳态中起着关键作用。