Nature's Other Bt Weapon: Vegetative Insecticidal Proteins (Vips) for Smarter Crop Protection
Nikhil Ramrao Mohite *
Department of Biotechnology, College of Agriculture, University of Agricultural Sciences, Dharwad, Karnataka, India and ICAR- Indian Institute of Pulses Research, RRS, UAS campus, Dharwad, Karnataka, India.
Bagewadi Basavaraj
Department of Biotechnology, College of Agriculture, University of Agricultural Sciences, Dharwad, Karnataka, India.
M. H. Kodandaram
ICAR- Indian Institute of Pulses Research, RRS, UAS campus, Dharwad, Karnataka, India.
*Author to whom correspondence should be addressed.
Abstract
Crystalline (Cry) δ-endotoxins from Bacillus thuringiensis (Bt) have supported microbial and transgenic insect control for decades, but field-evolved resistance and natural tolerance in important pests have increased interest in complementary insecticidal proteins. Vegetative insecticidal proteins (Vips), secreted during the vegetative growth of Bt and related bacilli, comprise four major families with distinct target spectra and modes of action. Vip1–Vip2 proteins function as binary toxins active principally against selected Coleoptera and Hemiptera, whereas Vip3 proteins target Lepidoptera; the Vpb4 family includes a coleopteran-active member effective against western corn rootworm. Vip3 proteins are structurally distinct from Cry proteins and generally do not share their midgut binding sites, supporting their use in pyramided crop-protection strategies. This review synthesises the discovery, distribution, nomenclature, structural organisation, activation, receptor interactions, pore formation, endocytosis, apoptosis, insecticidal spectrum, protein engineering, transgenic deployment, safety, and resistance biology of Vip proteins. Particular emphasis is placed on recent structural studies describing the tetrameric architecture and proteolytic activation of Vip3, together with emerging evidence on resistance mechanisms involving altered toxin processing, reduced binding, transcriptional regulation, and chitin-synthesis pathways. The evidence reviewed indicates that Vip proteins provide a complementary component of Bt-based pest management, while their long-term value will depend on careful resistance monitoring, appropriate gene-pyramiding strategies, and continued investigation of their molecular mechanisms.
Keywords: Bacillus thuringiensis, vegetative insecticidal protein, Vip3A, mode of action, insect resistance management