代谢途径
铜绿假单胞菌
焊剂(冶金)
代谢物
生物
通量平衡分析
无氧运动
微生物学
微生物代谢
细菌
厌氧菌
碳通量
代谢网络
新陈代谢
生物化学
柠檬酸循环
糖酵解
代谢组学
嘌呤
代谢通量分析
厌氧糖酵解
代谢工程
机制(生物学)
嗜热菌
化学
代谢中间体
细胞代谢
嘌呤代谢
NAD+激酶
线粒体
共代谢
恒化器
突变体
细胞生物学
作者
Richard D. Horak,Nanqing Zhou,Korbinian O. Thalhammer,John D. Crounse,Ludmilla Aristilde,Dianne K. Newman
出处
期刊:PubMed
[National Institutes of Health]
日期:2026-02-26
摘要
Across diverse contexts, bacteria experience loss of electron acceptors due to fluctuating environmental conditions, leading to growth-arrest and reductive stress. Yet, microbial metabolism has been primarily studied with cells growing under nutrient-replete conditions. To study how cells preserve metabolic flux under reductively stressed growth-arrest, we explored how the opportunistic pathogen Pseudomonas aeruginosa remodels its metabolism under such conditions. During anaerobic survival on glucose, P. aeruginosa utilizes the upper Embden-Meyerhoff-Parnas pathway and pentose-phosphate pathway to generate metabolite precursors for a previously undescribed phosphoketolase (herein termed xfp) used to produce acetyl-P and indirectly ATP via subsequent acetate formation. This re-routing bypasses P. aeruginosa's canonical glucose-catabolizing Entner-Doudoroff pathway (EDP), allowing for metabolic flux without exacerbating reductive stress. Moreover, anaerobic survival on diverse carbon sources triggers purine degradation and metabolite accumulation, requiring xfp to maintain metabolic balance and viability. Thus, our data suggest that phosphoketolases may play an additional role in ribonucleotide balance. This study expands our understanding of P. aeruginosa's anaerobic survival strategies and serves as a reminder that large gaps remain in our understanding of growth arrest physiology even in well-studied model organisms, highlighting the potential for basic discovery in the realm of non-growth metabolism.
科研通智能强力驱动
Strongly Powered by AbleSci AI