Outlive
LongevityResearchHub

Xenohormesis demystified: Consuming heat-acclimated algae improves heat tolerance and longevity of Daphnia.

TL;DR

The xenohormesis hypothesis states that consuming stress-exposed food organisms can increase the consumer's tolerance to similar stresses. We tested this hypothesis using the freshwater model herbivore Daphnia magna feeding on the microalga Nannochloropsis limnetica grown at either 25 ℃ (heat stressed), 20 ℃ (presumed optimum) or 12 ℃ (cold stress). Daphnia maintained at either 20 ℃ or 28 ℃ and consuming heat-stressed algae had a significantly higher short-term heat tolerance. Furthermore, Daphn

Credibility Assessment Preliminary — 38/100
Study Design
Rigor of the research methodology
5/20
Sample Size
Whether the study was sufficiently powered
7/20
Peer Review
Review status and journal reputation
10/20
Replication
Has this finding been independently reproduced?
6/20
Transparency
Funding disclosure and data availability
10/20
Overall
Sum of all five dimensions
38/100

The xenohormesis hypothesis states that consuming stress-exposed food organisms can increase the consumer's tolerance to similar stresses. We tested this hypothesis using the freshwater model herbivore Daphnia magna feeding on the microalga Nannochloropsis limnetica grown at either 25 ℃ (heat stressed), 20 ℃ (presumed optimum) or 12 ℃ (cold stress). Daphnia maintained at either 20 ℃ or 28 ℃ and consuming heat-stressed algae had a significantly higher short-term heat tolerance. Furthermore, Daphnia kept at either 12 ℃ or 28 ℃ (but not at 20 ℃) achieved a significantly higher lifespan when feeding on heat-stressed algae compared to Daphnia feeding on non-stressed or cold-stressed algae, with fecundity being higher on cold-stressed food. This was accompanied by higher antioxidant capacity in Daphnia fed heat-stressed algae, but no differences in lipid peroxidation were observed. Fatty acid analysis revealed that Daphnia fed heat-stressed algae contained significantly lower levels of the essential polyunsaturated fatty acid (PUFA) eicosapentaenoic acid (EPA), which is thought to be particularly susceptible to lipid peroxidation, than their counterparts feeding on algae grown at 20 ℃. We conclude that the lower EPA level in Daphnia fed heat-stressed algae has caused the higher heat tolerance in Daphnia by altering PUFA-mediated membrane properties, i.e., increasing membrane rigidity. Our findings suggests that the consumption of heat-stressed algae can provide heat tolerance and lifespan benefits in zooplankton, but at the cost of reduced fecundity. Further studies are needed to better understand the influence of heat waves on trophic interaction at the phytoplankton-zooplankton interface.

View Original Source

0 Comments