Related Experiment Video
Updated: Oct 24, 2025

Physiological Characterization of the Coral Holobiont Using a New Micro-Respirometry Tool
Published on: April 28, 2023
Coral microbiome manipulation elicits metabolic and genetic restructuring to mitigate heat stress and evade mortality
Erika P Santoro1, Ricardo M Borges2, Josh L Espinoza3,4
1Institute of Microbiology, Federal University of Rio de Janeiro (UFRJ), Rio de Janeiro, Brazil.
Abstract:
Beneficial microorganisms for corals (BMCs) ameliorate environmental stress, but whether they can prevent mortality and the underlying host response mechanisms remains elusive. Here, we conducted omics analyses on the coral Mussismilia hispida exposed to bleaching conditions in a long-term mesocosm experiment and inoculated with a selected BMC consortium or a saline solution placebo. All corals were affected by heat stress, but the observed "post-heat stress disorder" was mitigated by BMCs, signified by patterns of dimethylsulfoniopropionate degradation, lipid maintenance, and coral host transcriptional reprogramming of cellular restructuration, repair, stress protection, and immune genes, concomitant with a 40% survival rate increase and stable photosynthetic performance by the endosymbiotic algae. This study provides insights into the responses that underlie probiotic host manipulation. We demonstrate that BMCs trigger a dynamic microbiome restructuring process that instigates genetic and metabolic alterations in the coral host that eventually mitigate coral bleaching and mortality.
More Related Videos
09:49Prospecting Microbial Strains for Bioremediation and Probiotics Development for Metaorganism Research and Preservation
Published on: October 31, 2019
09:01Author Spotlight: Separation of Coral Host Tissues and Algal Symbionts and Analyzing Their Metabolites
Published on: October 13, 2023
Related Concept Videos
Responses to Salt Stress
Responses to Heat and Cold Stress
Other Stress Responses in Bacteria
Factors Influencing Microbial Growth: Temperature
Physical Methods for Controlling Microbial Growth: Temperature
Adaptations that Reduce Water Loss