Marine snow viscosity regulates microbial degradation and the ocean carbon sink

Bacterial degradation of marine snow aggregates is a major component of global carbon cycling. Whether aggregate carbon is released in the upper ocean or is sequestered at depth depends on its sinking speed and degradation rate. However, little is known about the physical constraints of bacterial colonization and degradation of individual aggregates. Using molecular rotors to measure the nanoscale viscosity field of natural aggregates, we show that aggregates are highly structured microhabitats with less-viscous regions that are accessible for colonization and more-viscous regions that correlate to a barrier to bacterial infiltration. By quantifying the viscosity degradation rate, we demonstrate that more viscous aggregates take longer to degrade, sink farther, and contribute more to carbon sequestration, revealing a microscale physical constraint of the global ocean carbon pump.

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Publication Details

Journal
Science
Published
2026-10-08
DOI
https://doi.org/10.1126/science.adx4170
Primary Topic
Marine and coastal ecosystems
Type
article
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article

Marine snow viscosity regulates microbial degradation and the ocean carbon sink

Bryce G. Inman, Stuart Humphries, Farooq Azam
Science
Marine and coastal ecosystems
article

Marine snow viscosity regulates microbial degradation and the ocean carbon sink

Bryce G. Inman, Stuart Humphries, Farooq Azam
article en

Abstract

Bacterial degradation of marine snow aggregates is a major component of global carbon cycling. Whether aggregate carbon is released in the upper ocean or is sequestered at depth depends on its sinking speed and degradation rate. However, little is known about the physical constraints of bacterial colonization and degradation of individual aggregates. Using molecular rotors to measure the nanoscale viscosity field of natural aggregates, we show that aggregates are highly structured microhabitats with less-viscous regions that are accessible for colonization and more-viscous regions that correlate to a barrier to bacterial infiltration. By quantifying the viscosity degradation rate, we demonstrate that more viscous aggregates take longer to degrade, sink farther, and contribute more to carbon sequestration, revealing a microscale physical constraint of the global ocean carbon pump.

ScienceVol. 394(6820)
Scripps Institution of Oceanography (US), University of California San Diego (US), University of Lincoln (GB)
Openalex Percentile: Top 16%
Marine and coastal ecosystems
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Marine snow viscosity regulates microbial degradation and the ocean carbon sink — Bryce G. Inman, Stuart Humphries, et al. · Science (2026) | TGRS Research Map | TGRS