Bacterial ribonucleoprotein bodies maintain an acidic pH environment as a mechanism of enzyme regulation

Abstract Phase separated biomolecular condensates create subcellular niches, yet their role in client regulation remains unclear. Here, we demonstrate that Bacterial Ribonucleoprotein bodies (BR-bodies) are acidic. Using ratiometric fluorescent probes in vivo , we find BR-bodies exhibit a dense-phase pH of ∼5.1, significantly lower than the near-neutral cytoplasm. Single-molecule localization microscopy and fluorescence lifetime imaging reveals that Caulobacter crescentus BR-bodies have spatially variable and acidic nanoscale RNase E clusters. These results question the notion of homogeneous condensates, suggesting that BR-bodies exhibit structural and biochemical diversity, which may facilitate RNA processing under stress. In vitro , pH gradients observed with C-SNARF-4F and RNase E CTD-pHluorin2 deteriorate with increasing buffer concentrations. Notably, the acidic microenvironment within BR-bodies enhances PNPase activity, highlighting the significance of condensate pH regulation. These findings suggest that pH modulation is intrinsic to condensates, directly influencing biochemical reactions and offering a new strategy for designing pH-sensitive drugs to target enzymes within condensates.

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Publication Details

Journal
Nature Communications
Published
2026-08-26
DOI
https://doi.org/10.1038/s41467-026-76859-9
Primary Topic
RNA modifications and cancer
Type
article
Field-Weighted Citation Impact
0.00

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Bacterial ribonucleoprotein bodies maintain an acidic pH environment as a mechanism of enzyme regulation

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Bacterial ribonucleoprotein bodies maintain an acidic pH environment as a mechanism of enzyme regulation

Jared M. Schrader, R. Cho, W. Seth Childers, Saumya Saurabh, Jill E. Millstone, Kaveendya S. Mallikaarachchi, Wade E. Schnorr, Kulathungage H. Dilrangi, Moeka Sasazawa, Kathryn G. Dzurik, Shelby L. Millheim, Hadi Yassine
article en

Abstract

Abstract Phase separated biomolecular condensates create subcellular niches, yet their role in client regulation remains unclear. Here, we demonstrate that Bacterial Ribonucleoprotein bodies (BR-bodies) are acidic. Using ratiometric fluorescent probes in vivo , we find BR-bodies exhibit a dense-phase pH of ∼5.1, significantly lower than the near-neutral cytoplasm. Single-molecule localization microscopy and fluorescence lifetime imaging reveals that Caulobacter crescentus BR-bodies have spatially variable and acidic nanoscale RNase E clusters. These results question the notion of homogeneous condensates, suggesting that BR-bodies exhibit structural and biochemical diversity, which may facilitate RNA processing under stress. In vitro , pH gradients observed with C-SNARF-4F and RNase E CTD-pHluorin2 deteriorate with increasing buffer concentrations. Notably, the acidic microenvironment within BR-bodies enhances PNPase activity, highlighting the significance of condensate pH regulation. These findings suggest that pH modulation is intrinsic to condensates, directly influencing biochemical reactions and offering a new strategy for designing pH-sensitive drugs to target enzymes within condensates.

Nature Communications
University of Pittsburgh (US), Indiana University Bloomington (US), New York University (US)
National Institutes of Health
Openalex Percentile: Top 100%
RNA modifications and cancer
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