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Discovering Polyphosphate and Polyhydroxyalkanoate-Accumulating Organisms Across Ecosystems: Phenotype-Targeted
Yuan Yan1, Mathew Baldwin1, Jangho Lee1,2
1School of Civil and Environmental Engineering, Cornell University, Ithaca, New York 14850, United States.
Abstract:
Intracellular biopolymers serve versatile functions, allowing microbes to adapt to fluctuating environmental conditions. The metabolic interdependence of dual biopolymers polyphosphate (polyP) and polyhydroxyalkanoates (PHA) is a defining feature of polyphosphate-accumulating organisms (PAOs), the key agents enabling enhanced biological phosphorus removal (EBPR). Beyond EBPR, PAOs accumulating both polyP and PHA (PHA-PAOs) in natural environments remain unexplored due to limited detection tools, despite hypothesized roles in nutrient cycling. This study presents a novel phenotype-targeted approach integrating triple-stained fluorescence-activated cell sorting with 16S rRNA gene sequencing (TriFlow-Seq) to detect, quantify, and phylogenetically characterize PHA-PAOs, validated by fluorescence imaging and single-cell Raman spectroscopy. TriFlow-Seq of EBPR samples confirmed known PAOs, including Candidatus Phosphoribacter, Tetrasphaera, and Ca. Accumulibacter, and revealed new candidate PHA-PAOs within the Rhodobacteraceae family. In maize rhizosphere, TriFlow-Seq led to the discovery of diverse PHA-PAOs, Pseudomonas, Halomonas, and Nannocystis. These genera participate in plant-growth-promoting functions including phosphate solubilization and phytohormone production, yet their simultaneous polyP and PHA accumulation has never been reported. Our findings revealed high PHA-PAO prevalence and distinct phylogenetic patterns associated with different maize genotypes, suggesting an overlooked role of biopolymer costorage in rhizosphere dynamics. This study establishes a pioneering approach to investigating PHA-PAO identities and roles across ecosystems.
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