Maize terpene synthase 8 ( Zm TPS8) produces a blend of sesquiterpenes and contributes to defense against pests and pathogens

Maize (Zea mays) produces terpenoid-based chemical defenses through a large family of terpene synthases, but the contributions of individual enzymes to specific compounds and stress resistance remain difficult to predict. Maize terpene synthase 8 (ZmTPS8) produces multiple sesquiterpenes in heterologous systems, but its in planta function remains unknown. We integrated a metabolite genome-wide association study (mGWAS), CRISPR/Cas9 generated tps8 loss-of-function mutants, metabolite profiling, and biotic stress assays to define ZmTPS8's role in terpene synthesis and biotic stress responses. The mGWAS identified ZmTPS8 as the primary locus associated with herbivore-induced emission of the sesquiterpene volatile germacrene D. Consistently, ZmTPS8 expression was induced by foliar and root herbivory, and tps8 mutants exhibited reduced emission of germacrene D, α-copaene, and δ-cadinene during Spodoptera frugiperda feeding. Loss of ZmTPS8 increased S. frugiperda larval growth but did not affect the belowground herbivore Diabrotica virgifera virgifera. ZmTPS8 also contributed to resistance against sugarcane mosaic virus, and the fungal pathogen Fusarium verticillioides, affecting terpenoid profiles, global metabolism, and fungal toxin production, but had no impact on Cochliobolus heterostrophus or Pythium spp. susceptibility. Together, these results demonstrate that ZmTPS8 contributes to maize defense in a threat-dependent manner, shaping volatile emissions and defense outcomes.

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Publication Details

Journal
Journal of Experimental Botany
Published
2026-09-04
DOI
https://doi.org/10.1093/jxb/erag438
Primary Topic
Plant biochemistry and biosynthesis
Type
article
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article

Maize terpene synthase 8 ( Zm TPS8) produces a blend of sesquiterpenes and contributes to defense against pests and pathogens

Charles T. Hunter, Kaylee Tran, Dalton C. Ludwick, Jennifer R. Wilson et al.
Journal of Experimental Botany
Plant biochemistry and biosynthesis
article

Maize terpene synthase 8 ( Zm TPS8) produces a blend of sesquiterpenes and contributes to defense against pests and pathogens

Charles T. Hunter, Kaylee Tran, Dalton C. Ludwick, Jennifer R. Wilson, Anna K. Block, Ethan Tucker, Alyssa M. Koehler, Qi Mu, Gilles J. Basset, Jorrel Mendoza, Erik W. Ohlson, Hoang V. Tang, Hui Liu, Ariel Sorg, Qin-Bao Li, Erin Wright, Kristen Willie, Marcio F R Resende, Nadia Mourad, Joseph Romano
article en

Abstract

Maize (Zea mays) produces terpenoid-based chemical defenses through a large family of terpene synthases, but the contributions of individual enzymes to specific compounds and stress resistance remain difficult to predict. Maize terpene synthase 8 (ZmTPS8) produces multiple sesquiterpenes in heterologous systems, but its in planta function remains unknown. We integrated a metabolite genome-wide association study (mGWAS), CRISPR/Cas9 generated tps8 loss-of-function mutants, metabolite profiling, and biotic stress assays to define ZmTPS8's role in terpene synthesis and biotic stress responses. The mGWAS identified ZmTPS8 as the primary locus associated with herbivore-induced emission of the sesquiterpene volatile germacrene D. Consistently, ZmTPS8 expression was induced by foliar and root herbivory, and tps8 mutants exhibited reduced emission of germacrene D, α-copaene, and δ-cadinene during Spodoptera frugiperda feeding. Loss of ZmTPS8 increased S. frugiperda larval growth but did not affect the belowground herbivore Diabrotica virgifera virgifera. ZmTPS8 also contributed to resistance against sugarcane mosaic virus, and the fungal pathogen Fusarium verticillioides, affecting terpenoid profiles, global metabolism, and fungal toxin production, but had no impact on Cochliobolus heterostrophus or Pythium spp. susceptibility. Together, these results demonstrate that ZmTPS8 contributes to maize defense in a threat-dependent manner, shaping volatile emissions and defense outcomes.

Journal of Experimental Botany
United States Department of Agriculture (US), University of Florida (US), U.S. Horticultural Research Laboratory (US), University of Delaware (US)
Openalex Percentile: Top 17%
Plant biochemistry and biosynthesis
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