PofoliaShared via Pofolia

Animals· 2026Q1

Integrated Assessment of Pollen Substitute Diets in Honey Bees Based on Transcriptional Responses, Immune-Derived Predicted Biological Age, and Survival

Hyunjee Kim, Olga Frunze, Sang‐Mi Han, Soon‐Ok Woo et al.

Short summary

Diet2(M), a specific pollen substitute formulation, supported higher honey bee survival (18-day assay) and exhibited a younger predicted biological age compared to Diet1(S) and Diet3(O), despite similar consumption, indicating diet composition is key for bee health.

AI-generated from the title and abstract; the full text is not read.

Key points

  • Diet2(M) pollen substitute showed a baseline transcriptional profile similar to beebread and a lower predicted biological age than Diet1(S) and Diet3(O).
  • Diet2(M) supported higher honey bee survival over 18 days compared to Diet1(S), despite similar apparent consumption among substitute diets.
  • Significant diet × heat interactions were observed for 10 out of 12 genes examined, indicating diet influences response to acute heat.
  • Pollen substitute composition, not just apparent consumption, significantly shapes honey bee physiology and survival.

AI-generated from the title and abstract; the full text is not read.

Abstract

Heat events and nutritional stress threaten honey bee health, but how pollen substitute formulation shapes responses to acute heat remains unclear. Newly emerged Apis mellifera workers received three pollen substitute diets or two beebread-based reference diets for five days before exposure to 45 °C for 4 h. Expression of 12 genes related to nutrition, endocrine regulation, immunity, oxidative defense, and cellular stress was examined using mixed-effects and multivariate analyses. Immune-derived predicted biological age was estimated before and after heat exposure. Apparent consumption and survival were evaluated in an independent 18-day feeding assay without heat. Significant diet × heat interactions occurred for 10 genes, whereas tor and dome showed no significant interactions. At baseline, Diet2(M) exhibited a transcriptional profile similar to the control and a lower predicted biological age than Diet1(S) and Diet3(O). Diet2(M) also supported higher survival than Diet1(S), despite similar apparent consumption among substitute diets. These findings indicate that pollen substitute composition, rather than apparent consumption alone, can shape physiology and survival. Diet2(M) is therefore a priority candidate for colony-level evaluation, although improved heat tolerance was not demonstrated. These findings may guide the development of supplemental feeds supporting honey bee health under climate-related pollen scarcity and heat risk.

The authors' abstract, as published at the source. Animals, 2026 · DOI ↗

TakeawaysPremium
Ask the paperFree account

Continue with a free account

Ask the paper: 3 free questions a day about this paper; save it, get its citation, new summaries every day for your field. Takeaways are Premium.

Continue free on the web

Sign in with Google or Apple; no card needed. You come back to this paper.

On your phone:

Field: Insect Science

Insect ScienceAgricultural and Biological Sciences