An expanded apolipoprotein D family provides spider mites with dual-layer protection against dietary oxidative stress

S Si-Yu Wei (Key Laboratory of Entomology and Pest Control Engineering, College of Plant Protection, Southwest University) X Xin An (Key Laboratory of Entomology and Pest Control Engineering, College of Plant Protection, Southwest University) Q Qin-Zhe Sun (College of Plant Protection, Gansu Agricultural University) Q Qun Yang (Department of Molecular Sciences, Uppsala BioCenter, Swedish University of Agricultural Sciences and Linnean Center for Plant Biology) X Xi Han (Key Laboratory of Entomology and Pest Control Engineering, College of Plant Protection, Southwest University) Y Yu-Fei Shi (Key Laboratory of Entomology and Pest Control Engineering, College of Plant Protection, Southwest University) J Jin-Jun Wang (Key Laboratory of Entomology and Pest Control Engineering, College of Plant Protection, Southwest University) J Jinzhi Niu (Key Laboratory of Entomology and Pest Control Engineering, College of Plant Protection, Southwest University)

Abstract

Plant defense has driven the evolution of species-dependent adaptive strategies in many herbivores, but the molecular mechanisms of adaptation in most arthropods remain largely unknown. The two-spotted spider mite ( Tetranychus urticae ) is a generalist herbivore that feeds by sucking the contents of mesophyll cells, a feeding strategy distinct from that of phloem-feeding insects. Here, we show the unexpected differential expression of apolipoprotein D ( ApoD ) genes during feeding when mites are transferred to different host plant species, as well as extreme gene family expansion (64 ApoD paralogs, the largest reported in any organism). We find that ApoD proteins protect mites against reactive oxygen species (ROS) during feeding, and we identify a dual-layer mechanism by which ApoD proteins counteract plant ROS defenses during ingestion and digestion. First, the salivary protein TuApoD2 is secreted during the ingestion of mesophyll cell contents, where it interacts with glycolate oxidase 2 (GOX2) to inhibit H 2 O 2 generation. After ingestion, TuApoD33 in the gut cells also interacts with GOX2 to maintain the inhibition of H 2 O 2 generation. These findings suggest that the evolutionary expansion of the ApoD gene family is a key component of the molecular arms race between herbivorous mites and host plants.

Article Details

Volume / Issue Vol. 123, Issue 31
Published August 04, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (8)

S

Si-Yu Wei

Key Laboratory of Entomology and Pest Control Engineering, College of Plant Protection, Southwest University

X

Xin An

Key Laboratory of Entomology and Pest Control Engineering, College of Plant Protection, Southwest University

Q

Qin-Zhe Sun

College of Plant Protection, Gansu Agricultural University

Q

Qun Yang

Department of Molecular Sciences, Uppsala BioCenter, Swedish University of Agricultural Sciences and Linnean Center for Plant Biology

X

Xi Han

Key Laboratory of Entomology and Pest Control Engineering, College of Plant Protection, Southwest University

Y

Yu-Fei Shi

Key Laboratory of Entomology and Pest Control Engineering, College of Plant Protection, Southwest University

J

Jin-Jun Wang

Key Laboratory of Entomology and Pest Control Engineering, College of Plant Protection, Southwest University

J

Jinzhi Niu

Key Laboratory of Entomology and Pest Control Engineering, College of Plant Protection, Southwest University