Kündgen Madeleine, Jogler Christian, Kallscheuer Nicolai
Department of Microbial Interactions, Institute for Microbiology, Friedrich Schiller University, 07743, Jena, Germany.
Cluster of Excellence Balance of the Microverse, Friedrich Schiller University, 07745, Jena, Germany.
Appl Microbiol Biotechnol. 2025 May 15;109(1):123. doi: 10.1007/s00253-025-13514-1.
The phylum Planctomycetota is changing our understanding of bacterial metabolism, driving critical biogeochemical processes through the transformation of complex polymeric substrates into valuable bioactive compounds. Sophisticated methods for cultivation, genome sequencing and genetic strain engineering developed in the last two decades have stimulated detailed studies on cell propagation, metabolic capabilities and potential applications of phylum members beyond the mere isolation and characterization of novel taxa. This review synthesizes recent advances in understanding the Planctomycetota physiology with a focus on the degradation of phototroph-derived polysaccharides, anaerobic ammonium oxidation (anammox) and biosynthesis of secondary metabolites. New data especially collected over the last 5 years justifies more intensive research of the yet uncharacterized pathways of substrate uptake and utilization, as well as genome mining-assisted bioprospection to exploit the phylum's chemical repertoire. KEY POINTS: • Planctomycetes can degrade high-molecular-weight sugars produced by algae • Anaerobic ammonium oxidation (anammox) is used in technical applications • The first secondary metabolites were discovered in the last 5 years.
浮霉菌门正在改变我们对细菌代谢的理解,通过将复杂的聚合底物转化为有价值的生物活性化合物,推动关键的生物地球化学过程。过去二十年中开发的先进培养方法、基因组测序和基因菌株工程技术,激发了对该门成员细胞繁殖、代谢能力及潜在应用的详细研究,而不仅仅是对新分类单元的分离和表征。本综述综合了对浮霉菌门生理学理解的最新进展,重点关注光养生物衍生多糖的降解、厌氧氨氧化(anammox)和次级代谢产物的生物合成。特别是过去5年收集的新数据,证明有必要对尚未表征的底物摄取和利用途径以及基因组挖掘辅助的生物勘探进行更深入的研究,以开发该门的化学资源。要点:•浮霉菌可降解藻类产生的高分子量糖类•厌氧氨氧化(anammox)用于技术应用•过去5年发现了首批次级代谢产物。