Unique photosynthetic strategies employed by closely related Breviolum minutum strains under rapid short-term cumulative heat stress

Author:

Deore Pranali1ORCID,Tsang Min Ching Sarah Jane1ORCID,Nitschke Matthew R23ORCID,Rudd David4ORCID,Brumley Douglas R5ORCID,Hinde Elizabeth6ORCID,Blackall Linda L1ORCID,van Oppen Madeleine J H12ORCID

Affiliation:

1. School of BioSciences, The University of Melbourne , Parkville 3010, Victoria , Australia

2. Australian Institute of Marine Science , Townsville 4810, Queensland , Australia

3. School of Biological Sciences, Victoria University of Wellington , Wellington 6102 , New Zealand

4. Drug Delivery, Disposition and Dynamics, Monash Institute of Pharmaceutical Sciences, Monash University , Parkville, VIC 3052 , Australia

5. School of Mathematics and Statistics, The University of Melbourne , Parkville 3010, Victoria , Australia

6. School of Physics, The University of Melbourne , Parkville 3010, Victoria , Australia

Abstract

Abstract The thermal tolerance of symbiodiniacean photo-endosymbionts largely underpins the thermal bleaching resilience of their cnidarian hosts such as corals and the coral model Exaiptasia diaphana. While variation in thermal tolerance between species is well documented, variation between conspecific strains is understudied. We compared the thermal tolerance of three closely related strains of Breviolum minutum represented by two internal transcribed spacer region 2 profiles (one strain B1–B1o–B1g–B1p and the other two strains B1–B1a–B1b–B1g) and differences in photochemical and non-photochemical quenching, de-epoxidation state of photopigments, and accumulation of reactive oxygen species under rapid short-term cumulative temperature stress (26–40 °C). We found that B. minutum strains employ distinct photoprotective strategies, resulting in different upper thermal tolerances. We provide evidence for previously unknown interdependencies between thermal tolerance traits and photoprotective mechanisms that include a delicate balancing of excitation energy and its dissipation through fast relaxing and state transition components of non-photochemical quenching. The more thermally tolerant B. minutum strain (B1–B1o–B1g–B1p) exhibited an enhanced de-epoxidation that is strongly linked to the thylakoid membrane melting point and possibly membrane rigidification minimizing oxidative damage. This study provides an in-depth understanding of photoprotective mechanisms underpinning thermal tolerance in closely related strains of B. minutum.

Funder

University of Melbourne

Gordon & Betty Moore Foundation

Australian Research Council Laureate Fellowship and Marsden Fast Start from the Royal Society Te Apārangi

Publisher

Oxford University Press (OUP)

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