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Genomic blueprint enables early intervention in cyanobacterial risk management

  • Jiawen Wang
  • , Ying Chen
  • , Tianyi Chen
  • , Hetong Cai
  • , Qian Chen
  • , Weiling Sun
  • , Jinren Ni
  • Peking University
  • Ministry of Ecology and Environment

Research output: Contribution to journalArticlepeer-review

Abstract

While existing early-warning systems struggle to achieve cross-species cyanobacterial risk prediction with the required synchronicity and accuracy in aquatic ecosystems, our study pioneers a genome architecture-driven monitoring paradigm through decoding 317 cyanobacterial metagenome-assembled genomes from the world's largest phosphorus-limiting water transfer system, the Middle Route of the South-to-North Water Diversion Canal (MR-SNWDC). We found an evolutionary blueprint where genome minimization (<3 Mbp) confers ecological dominance under phosphorus scarcity. These streamlined genomes showed predominance and remarkable seasonal dynamics and demonstrated metabolic specialization in phosphorus turnover, light harvesting, and carbon fixation compared to larger genomes. Importantly, we identified a 3 Mbp genomic threshold distinguishing low-risk cyanobacterial consortia from their toxin-producing counterparts. This genome-proxy system enables preemptive risk mitigation by predicting toxic transitions through genome size tracking, fundamentally advancing algal management from reactive monitoring to proactive regulation in water transfer networks.

Original languageEnglish
Pages (from-to)4263-4275
Number of pages13
JournalScience Bulletin
Volume70
Issue number24
DOIs
StatePublished - 30 Dec 2025

Keywords

  • Cyanobacteria
  • Early warning
  • Genome size threshold
  • Phosphorus limitation

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