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April 27, 2026Ecotoxicology and Environmental Safety1 citationsOpen Access

Transcriptomic reprogramming underlies perfluorobutanoic acid (PFBA)-induced hormesis in the fall armyworm, Spodoptera frugiperda

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EOEguono W. OmagamreSBSunday Z. BalaFRFariba Rostami

Key Points

  • This research aims to understand how perfluorobutanoic acid (PFBA) affects the growth and development of fall armyworms through dose-dependent gene expression changes.
  • Investigated effects of PFBA across a dose range (0.001–10 µg/g) on growth, feeding, and gene expression in Spodoptera frugiperda.
  • Conducted transcriptomic analyses to elucidate the underlying molecular mechanisms of dose-dependent responses.
  • PFBA exposure induced biphasic growth responses; low-dose (0.001–10 µg/g) stimulated growth while high-dose inhibited it.
  • Low-dose enhanced feeding and accelerated developmental milestones; high-dose activated stress-related transcriptional programs.
  • Distinct transcriptional programs were linked to low and high dose exposures, indicating reprogrammed hormonal and metabolic pathways.

Abstract

Short-chain perfluoroalkyl substances (PFAS), such as perfluorobutanoic acid (PFBA), are increasingly detected in agricultural soils, irrigation water, and crop tissues, yet their biological effects at low, environmentally relevant concentrations remain poorly understood. Here, we investigated the dose-dependent effects of PFBA on growth, feeding, development, and gene expression in the fall armyworm ( Spodoptera frugiperda ). Across a broad concentration range, PFBA elicited a biphasic response characterized by low-dose stimulation and high-dose inhibition of larval growth. PFBA exposure across low concentrations (0.001–10 µg/g) enhanced early feeding and accelerated growth, leading to earlier attainment of developmental milestones, including reduced time to pupation and adult emergence. In contrast, higher concentrations suppressed growth. Transcriptomic analyses revealed that these contrasting phenotypes were underpinned by distinct, dose- and time-dependent transcriptional programs. Low-dose exposure induced a coordinated progression from early activation of structural and contractile pathways to enrichment of developmental and morphogenetic processes, consistent with accelerated maturation. In contrast, high-dose exposure triggered stress-associated transcriptional states, including activation of detoxification, oxidative stress, and neuronal signaling pathways, alongside suppression of endocrine and metabolic regulators. Together, these findings demonstrate that PFBA-induced hormesis reflects structured reprogramming of growth and developmental pathways rather than simple metabolic stimulation. By linking dose-resolved phenotypic responses with global transcriptomic organization, this study provides mechanistic insight into how short-chain PFAS can act as both modulators of biological performance and toxic stressors. Given the increasing prevalence of PFBA in agricultural systems, these results highlight the importance of incorporating non-monotonic dose–response relationships into ecological risk assessment and evaluating how PFAS exposure may influence pest dynamics in agroecosystems. • PFBA induces biphasic response in fall armyworm development. • PFBA reprograms growth and developmental timing in fall armyworm. • Low-dose PFBA accelerates growth and developmental progression. • High-dose PFBA disrupts endocrine signaling and suppresses growth. • Distinct transcriptomic programs underlie dose-dependent responses.

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Cite This Study

Omagamre et al. (2026) studied this question.

synapsesocial.com/papers/69eefd15fede9185760d3e2bhttps://doi.org/10.1016/j.ecoenv.2026.120176
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