Applying phosphate oxygen isotopes (δ18OP) to identify sediment phosphorus (P) sources and its recycling is still challenging due to poor understanding in δ18OP variations of sediment P pools and their driving mechanisms. Here, we analyzed the δ18OP in inorganic P (Pi) pools of sediment cores and varied P sources from Lake Dianchi and Lake Erhai in the Yunnan-Guizhou Plateau, Southwest China. The δ18OP values of sediment detrital Pi (Det-Pi, nonbioavailable P) were consistent with those of watershed soils (within ∼0.4-0.6‰), indicating that the δ18OP of sediment Det-Pi inherits the δ18OP of soil Det-Pi. The δ18OP values of aluminum-bound Pi (Al-Pi) and authigenic Pi (Auth-Pi) in sediment were close to or within the δ18OP equilibrium (δ18OP-eq) ranges, implying oxygen isotopic exchange equilibrium between phosphate and ambient water prior to the formation of sediment Al-Pi and Auth-Pi. However, the δ18OP of iron oxide-bound Pi (Fe-Pi) in sediment was lighter (∼3‰) than δ18OP-eq, retaining the negative isotopic signal of organic P (Po) remineralization. Furthermore, 31P NMR and metagenomic analysis indicated that microbial-mediated Po mineralization and Pi recycling are the driving factors for δ18OP changes in sediment Fe-Pi, Al-Pi, and Auth-Pi. These integrated insights deepen our understanding of the biogeochemical cycling for sedimentary P.
Jin et al. (Mon,) studied this question.
Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context: