Strong Effects of Increased Hydrostatic Pressure on Polysaccharide-Hydrolyzing Enzyme Activities in Coastal Seawater and Sediments

C. Chad Lloyd*, John Paul Balmonte, Ronnie N. Glud, Carol Arnosti

*Corresponding author for this work

Research output: Contribution to journalJournal articleResearchpeer-review

3 Downloads (Pure)

Abstract

Heterotrophic microorganisms are responsible for transforming and respiring a substantial fraction of the organic matter produced by phytoplankton in the surface ocean. Much of this organic matter is composed of polysaccharides, high-molecular weight (HMW) sugars. To initiate degradation of polysaccharides, microorganisms must produce extracellular enzymes of the right structural specificity to hydrolyze these complex structures. To date, most measurements of enzyme activities are made at in situ temperatures, but at atmospheric pressure. However, previous studies have shown that hydrostatic pressure can impact the functionality of enzymes. Since deep sea communities may be seeded by microbes from shallow waters, we aimed to determine if pressure affects the performance of enzymes from coastal waters. To determine the extent to which enzymatic activities of coastal microbial communities are affected by pressure, we quantified the degradation of seven polysaccharides under pressures ranging from 0.1 MPa (atmospheric) to 40 MPa (equivalent to 4,000 m). Enzyme activities of pelagic communities were inhibited with increased pressure, while enzyme activities of benthic microbial communities were more resistant to increased pressure. Addition of HMW organic matter resulted in communities with enzyme activities that were more resistant to increased pressure. However, the freely-dissolved enzymes (<0.2 μm) produced by these communities were strongly inhibited by increased hydrostatic pressure, suggesting that the pressure-resistant enzymes were cell-surface attached. Because pressure inhibition of enzyme activities varied strongly by polysaccharide, we surmise that the structural complexity of a polysaccharide—and therefore the number of distinct enzymes required for hydrolysis—is likely closely associated with pressure inhibition.

Original languageEnglish
Article numbere2024JG008417
JournalJournal of Geophysical Research: Biogeosciences
Volume130
Issue number2
Number of pages11
ISSN2169-8953
DOIs
Publication statusPublished - Feb 2025

Keywords

  • enzyme activities
  • hydrostatic pressure
  • polysaccharide hydrolases

Fingerprint

Dive into the research topics of 'Strong Effects of Increased Hydrostatic Pressure on Polysaccharide-Hydrolyzing Enzyme Activities in Coastal Seawater and Sediments'. Together they form a unique fingerprint.

Cite this