H3K4me1 Modification Functions in Caste Differentiation in Honey Bees
Overview
Chemistry
Molecular Biology
Affiliations
Honey bees are important species for the study of epigenetics. Female honey bee larvae with the same genotype can develop into phenotypically distinct organisms (sterile workers and fertile queens) depending on conditions such as diet. Previous studies have shown that DNA methylation and histone modification can establish distinct gene expression patterns, leading to caste differentiation. It is unclear whether the histone methylation modification H3K4me1 can also impact caste differentiation. In this study, we analyzed genome-wide H3K4me1 modifications in both queen and worker larvae and found that H3K4me1 marks are more abundant in worker larvae than in queen larvae at both the second and fourth instars, and many genes associated with caste differentiation are differentially methylated. Notably, caste-specific H3K4me1 in promoter regions can direct worker development. Thus, our results suggest that H3K4me1 modification may act as an important regulatory factor in the establishment and maintenance of caste-specific transcriptional programs in honey bees; however, the potential influence of other epigenetic modifications cannot be excluded.
The eusocial non-code: Unveiling the impact of noncoding RNAs on Hymenoptera eusocial evolution.
Lebedev E, Smutin D, Timkin P, Kotelnikov D, Taldaev A, Panushev N Noncoding RNA Res. 2024; 11:48-59.
PMID: 39736856 PMC: 11683303. DOI: 10.1016/j.ncrna.2024.10.007.
Alghamdi A, Alattal Y Insects. 2024; 15(1).
PMID: 38249039 PMC: 10816215. DOI: 10.3390/insects15010033.
Epigenetics Mechanisms of Honeybees: Secrets of Royal Jelly.
Alhosin M Epigenet Insights. 2023; 16:25168657231213717.
PMID: 38033464 PMC: 10687967. DOI: 10.1177/25168657231213717.