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Dysregulated mir-76 mediated a protective response to nanopolystyrene by modulating heme homeostasis related molecular signaling in nematode Caenorhabditis elegans

Ecotoxicology and Environmental Safety 2021 42 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 40 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Huanliang Liu, Huanliang Liu, Huanliang Liu, Yingyue Zhao, Huanliang Liu, Huanliang Liu, Huanliang Liu, Huanliang Liu, Yingyue Zhao, Yingyue Zhao, Huanliang Liu, Huanliang Liu, Huanliang Liu, Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Qi Rui, Qi Rui, Qi Rui, Qi Rui, Kun Bi, Kun Bi, Yingyue Zhao, Yingyue Zhao, Yingyue Zhao, Yingyue Zhao, Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Qi Rui, Kun Bi, Dayong Wang Dayong Wang Qi Rui, Qi Rui, Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Huanliang Liu, Dayong Wang Huanliang Liu, Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Dayong Wang Huanliang Liu, Dayong Wang Dayong Wang Huanliang Liu, Dayong Wang Dayong Wang Dayong Wang Huanliang Liu, Dayong Wang Dayong Wang Dayong Wang

Summary

Researchers discovered that in the tiny roundworm C. elegans, a neuronal microRNA called mir-76 controls toxicity from nanopolystyrene (a type of nanoplastic) by regulating a globin protein that manages iron-containing heme molecules in cells. This molecular pathway — connecting nanoplastic exposure to heme homeostasis and oxygen-sensing signals — reveals a previously unknown mechanism by which nanoplastics disrupt biological processes at the cellular level.

The underlying mechanisms of microRNAs (miRNAs) in regulating nanoplastic toxicity are still largely unclear in organisms. In nanopolystyrene (NPS) exposed Caenorhabditis elegans, the expression of mir-76 (a neuronal miRNA) was significantly decreased, and the mir-76 mutant was resistant to the toxicity of NPS. The aim of this study was to determine the molecular basis of mir-76 in controlling NPS toxicity in nematodes. The mir-76 mutation increased expression of glb-10 encoding a globin protein in NPS (1 μg/L) exposed nematodes. Exposure to NPS (1-100 μg/L) increased the glb-10 expression, and the glb-10(RNAi) worm was susceptible to NPS toxicity in inducing reactive oxygen species (ROS) production and in decreasing locomotion behavior. Using ROS production and locomotion behavior as endpoints, mutation of glb-10 inhibited resistance of mir-76 mutant to NPS toxicity, and neuronal overexpression of mir-76 inhibited the resistance to NPS toxicity in nematodes overexpressing neuronal glb-10 containing 3' untranslated region (3'UTR). Thus, GLB-10 functioned as a target of mir-76 in the neurons to regulate the NPS toxicity. Moreover, a signaling cascade of HRG-7-HRG-5 required for the control of heme homeostasis was identified to function downstream of neuronal GLB-10 to regulate the NPS toxicity. In this signaling cascade, the neuronal HRG-7 regulated the NPS toxicity by antagonizing function of intestinal HRG-5. Furthermore, in the intestine, HRG-5 controlled NPS toxicity by inhibiting functions of hypoxia-inducible transcriptional factor HIF-1 and transcriptional factor ELT-2. Our results highlight the crucial function of heme homeostasis related signaling in regulating the NPS toxicity in organisms.

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