Ocean acidification modulates material flux linked with coral calcification and photosynthesis

D David A. Armstrong C Conall McNicholl K Keisha D. Bahr

Abstract

Abstract Coral reefs are essential for the foundation of marine ecosystems. However, ocean acidification (OA), driven by rising atmospheric carbon dioxide (CO 2 ) threatens coral growth and biological homeostasis. This study examines two Hawaiian coral species— Montipora capitata and Pocillopora acuta to elevated pCO 2 simulating OA. Utilizing pH and O 2 microsensors under controlled light and dark conditions, this work characterized interspecific concentration boundary layer (CBL) traits and quantified material fluxes under ambient and elevated pCO 2 . The results of this study revealed that under increased pCO 2 , P. acuta showed a significant reduction in dark proton efflux, followed by an increase in light O 2 flux, suggesting reduced calcification and enhanced photosynthesis. In contrast, M. capitata did not show any robust evidence of changes in either flux parameters under similar increased pCO 2 conditions. Statistical analyses using linear models revealed several significant interactions among species, treatment, and light conditions, identifying physical, chemical, and biological drivers of species responses to increased pCO 2 . This study also presents several conceptual models that correlate the CBL dynamics measured here with calcification and metabolic processes, thereby justifying our findings. We indicate that elevated pCO 2 exacerbates microchemical gradients in the CBL and may threaten calcification in vulnerable species such as P. acuta , while highlighting the resistance of M. capitata . Therefore, this study advances our understanding of how interspecific microenvironmental processes could influence coral responses to changing ocean chemistry.

Article Details

Volume / Issue Vol. 16, Issue 1
Published December 12, 2025
ISSN 2045-2322
Publisher Nature Portfolio

Journal Info

Scientific Reports

Nature Portfolio

ISSN: 2045-2322 Open Access Life Sciences

Authors (3)

D

David A. Armstrong

C

Conall McNicholl

K

Keisha D. Bahr