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Updated: Aug 16, 2025

Examination of Host Phenotypes in Gambusia affinis Following Antibiotic Treatment
Published on: February 22, 2017
Experimental inheritance of antibiotic acquired dysbiosis affects host phenotypes across generations
Vienna Kowallik1, Ashutosh Das2,3, Alexander S Mikheyev1,2
1Okinawa Institute of Science and Technology, Tancha Onna-son, Okinawa, Japan.
Abstract:
Microbiomes can enhance the health, fitness and even evolutionary potential of their hosts. Many organisms propagate favorable microbiomes fully or partially via vertical transmission. In the long term, such co-propagation can lead to the evolution of specialized microbiomes and functional interdependencies with the host. However, microbiomes are vulnerable to environmental stressors, particularly anthropogenic disturbance such as antibiotics, resulting in dysbiosis. In cases where microbiome transmission occurs, a disrupted microbiome may then become a contagious pathology causing harm to the host across generations. We tested this hypothesis using the specialized socially transmitted gut microbiome of honey bees as a model system. By experimentally passaging tetracycline-treated microbiomes across worker 'generations' we found that an environmentally acquired dysbiotic phenotype is heritable. As expected, the antibiotic treatment disrupted the microbiome, eliminating several common and functionally important taxa and strains. When transmitted, the dysbiotic microbiome harmed the host in subsequent generations. Particularly, naïve bees receiving antibiotic-altered microbiomes died at higher rates when challenged with further antibiotic stress. Bees with inherited dysbiotic microbiomes showed alterations in gene expression linked to metabolism and immunity, among other pathways, suggesting effects on host physiology. These results indicate that there is a possibility that sublethal exposure to chemical stressors, such as antibiotics, may cause long-lasting changes to functional host-microbiome relationships, possibly weakening the host's progeny in the face of future ecological challenges. Future studies under natural conditions would be important to examine the extent to which negative microbiome-mediated phenotypes could indeed be heritable and what role this may play in the ongoing loss of biodiversity.
Insights
Antibiotic disruption of honey bee microbiomes can be passed down through generations, harming young bees and altering their physiology. This inherited dysbiosis can weaken bee populations when facing future environmental challenges.
Area of Science:
- Microbiology
- Ecology
- Evolutionary Biology
Background:
- Host-associated microbiomes are crucial for host health and fitness.
- Vertical transmission of microbiomes can lead to host-microbiome co-evolution.
- Environmental stressors like antibiotics can cause microbiome dysbiosis.
Purpose of the Study:
- To investigate if environmentally induced microbiome dysbiosis in honey bees is heritable.
- To determine the impact of inherited dysbiosis on host health and physiology across generations.
Main Methods:
- Experimental transmission of tetracycline-treated honey bee microbiomes across worker generations.
- Assessing bee survival rates under antibiotic stress.
- Analyzing gene expression alterations in bees with inherited dysbiotic microbiomes.
Main Results:
- Antibiotic treatment disrupted the honey bee gut microbiome, reducing key taxa.
- Dysbiotic microbiomes transmitted to subsequent generations harmed naïve bees.
- Inherited dysbiosis led to increased mortality under antibiotic stress and altered host gene expression.
Conclusions:
- Environmentally acquired microbiome dysbiosis can be heritable and detrimental to host health across generations.
- Sublethal chemical exposures may cause lasting changes in host-microbiome relationships.
- Heritable dysbiosis could contribute to host vulnerability and biodiversity loss.
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