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MicroRNAs reshape the immunity of insects in response to bacterial infection
Muhammad Nadeem Abbas1,2, Saima Kausar1,2, Bibi Asma1,2
1State Key Laboratory of Resource Insects, Southwest University, Chongqing, China.
Abstract:
The interaction between bacteria and insects can significantly impact a wide range of different areas because bacteria and insects are widely distributed around the globe. The bacterial-insect interactions have the potential to directly affect human health since insects are vectors for disease transmission, and their interactions can also have economic consequences. In addition, they have been linked to high mortality rates in economically important insects, resulting in substantial economic losses. MicroRNAs (miRNAs) are types of non-coding RNAs involved in regulating gene expression post-transcriptionally. The length of miRNAs ranges from 19 to 22 nucleotides. MiRNAs, in addition to their ability to exhibit dynamic expression patterns, have a diverse range of targets. This enables them to govern various physiological activities in insects, like innate immune responses. Increasing evidence suggests that miRNAs have a crucial biological role in bacterial infection by influencing immune responses and other mechanisms for resistance. This review focuses on some of the most recent and exciting discoveries made in recent years, including the correlation between the dysregulation of miRNA expression in the context of bacterial infection and the progression of the infection. Furthermore, it describes how they profoundly impact the immune responses of the host by targeting the Toll, IMD, and JNK signaling pathways. It also emphasizes the biological function of miRNAs in regulating immune responses in insects. Finally, it also discusses current knowledge gaps about the function of miRNAs in insect immunity, in addition to areas that require more research in the future.
Insights
MicroRNAs (miRNAs) are key regulators of insect immunity against bacterial infections. This review highlights how miRNA dysregulation impacts infection progression and host defense mechanisms, particularly Toll, IMD, and JNK pathways.
Area of Science:
- Microbiology
- Genetics
- Immunology
Background:
- Bacterial-insect interactions are globally significant, affecting human health and economies.
- Insects act as disease vectors, and their interactions with bacteria can lead to significant economic losses.
- MicroRNAs (miRNAs) are small non-coding RNAs regulating gene expression and physiological processes in insects, including immunity.
Purpose of the Study:
- To review recent discoveries on the role of miRNAs in insect immune responses to bacterial infections.
- To explore the correlation between miRNA expression dysregulation and bacterial infection progression.
- To emphasize the impact of miRNAs on host immune pathways like Toll, IMD, and JNK.
Main Methods:
- This review synthesizes recent research findings.
- It analyzes studies investigating miRNA expression patterns during bacterial infections.
- It examines the functional roles of miRNAs in insect immunity.
Main Results:
- miRNA dysregulation is linked to bacterial infection progression in insects.
- miRNAs significantly influence insect innate immune responses.
- Targeting of Toll, IMD, and JNK signaling pathways by miRNAs is crucial for immune regulation.
Conclusions:
- miRNAs play a vital role in insect immunity against bacterial pathogens.
- Further research is needed to fully understand miRNA functions and their therapeutic potential in insect immunity.
- Identifying knowledge gaps in miRNA-mediated insect immunity is essential for future studies.
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