The evaluation of biogenic silica in brackish and freshwater strains reveals links between phylogeny and silica accumulation in picocyanobacteria

微咸水 浮游植物 联合球菌 硅藻 蓝藻 生物硅 生物 环境化学 生态学 藻类 化学 细菌 盐度 古生物学 营养物
作者
Anabella Aguilera,Daniel Lundin,Evangelia Charalampous,Yelena Churakova,Christian Tellgren‐Roth,Sylwia Śliwińska‐Wilczewska,Daniel J. Conley,Hanna Farnelid,Jarone Pinhassi
出处
期刊:Applied and Environmental Microbiology [American Society for Microbiology]
卷期号:91 (4): e0252724-e0252724 被引量:4
标识
DOI:10.1128/aem.02527-24
摘要

clade, whereas their freshwater counterparts formed a distinct sister group, suggesting a link between phylogeny and silicification. Rapid culture growth caused increased pH and led to dSi precipitation, influencing apparent dSi uptake; this was mitigated by pH control through bubbling. This phenomenon has significant implications for natural systems affected by phytoplankton blooms. In such environments, pH-induced silicon precipitation may reduce dSi availability impacting Si-dependent populations like diatoms. Our findings suggest brackish picocyanobacteria could significantly influence the Si cycle through at least two mechanisms: cellular Si accumulation and biologically induced changes in dSi concentrations.IMPORTANCEThis work provides the first evidence of biogenic silica accumulation in brackish picocyanobacteria and uncovers a link between phylogeny and biosilicification patterns. Our findings demonstrate that picocyanobacterial growth induces pH-dependent silica precipitation, which could lead to overestimations of cellular Si quotas by up to 85%. This process may drive substantial silica precipitation in highly productive freshwater and coastal marine systems, with potential effects on silica cycling and the population dynamics of Si-dependent phytoplankton. The extent of biosilicification in modern picocyanobacteria offers insights into the rock record, shedding light on the evolutionary and ecological dynamics that influence sedimentary processes and the preservation of biosilicification signatures in geological formations. Overall, this research adds to the significant impact that microorganisms lacking an obligate silica requirement may have on silica dynamics.
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