Aug 2026· Frontiers in Plant Science· Vol 17· 0 citations· 112 references
Medicine
Abstract
Okra, an economically important vegetable in tropical and subtropical regions, faces severe yield constraints due to sap-sucking pests, particularly jassids (Amrasca spp.). These insects cause hopper burn, leaf curling, and chlorosis, leading to estimated yield losses of 30-100% under severe infestation. Farmers’ heavy reliance on chemical control to manage these insects poses environmental, economic, and health risks, underscoring the need for host-plant resistance as a sustainable component of integrated pest management. Successful breeding for jassid resistance requires in-depth knowledge of its underlying mechanisms. This review synthesizes current knowledge on jassid resistance in okra, focusing on morphological (trichome density, leaf thickness), biochemical (phenolics, defensive enzymes), and physiological traits that confer antixenosis and antibiosis, as well as the largely untapped potential of wild Abelmoschus species as reservoirs of novel and durable resistance alleles. We examine advances in genomics, including QTL mapping, genome-wide association studies, and transcriptomics, as tools for dissecting complex resistance mechanisms in okra’s polyploid genome. We further discuss biotechnological and precision breeding strategies such as genomic selection, gene editing, and speed breeding, as avenues to accelerate the development of jassid-resistant cultivars. We conclude by proposing a multi-trait ideotype that integrates morphological, biochemical, and genetic resistance while maintaining high yield and product quality and is supported by an integrated breeding framework that combines conventional and genomic approaches. Key research priorities include discovering new sources of resistance, functionally validating resistance loci, and integrating high-throughput phenotyping with genomic selection to enhance breeding precision and efficiency in okra improvement programs.
Okra (Abelmoschus esculentus L. Moench) is an important vegetable crop cultivated widely in tropical and subtropical regions, with India contributing the largest share of global production. Among the major arthropod pests affecting okra, the two-spotted spider mite, Tetranychus urticae Koch, causes serious economic losses by reducing plant growth, fruit quality, and marketable yield. Effective management of this pest requires an integrated strategy that combines host plant resistance, biological control, cultural practices, judicious use of acaricides, and timely advisory support to farmers. This review critically examines published research on the biology, host range, damage potential, resistance mechanisms, and management approaches for T. urticae in okra. Particular emphasis is placed on integrated pest management (IPM), the role of agricultural extension services, digital advisory systems, and precision agriculture technologies in promoting sustainable mite management. The review also identifies existing research gaps, including the need for standardized resistance-screening methods, economic threshold levels, resistance monitoring, and climate-resilient management strategies. Strengthening collaboration among researchers, extension agencies, and farming communities will be essential for improving the adoption of scientifically validated practices and ensuring sustainable okra production under changing climatic conditions. The findings presented in this review may assist researchers, extension professionals, and policymakers in designing sustainable mite-management programmes suitable for diverse agro-ecological conditions.
S. Singh, Kaushal Kumar Pandey, Vishal Yadav et al.· International Journal of Env...· 0 citations
Chilli (Capsicum annuum L.) is an economically important spice and vegetable crop cultivated extensively in tropical and subtropical regions of the world. However, its productivity is severely constrained by several insect and mite pests, among which the broad mite, Polyphagotarsonemus latus (Banks), is a major pest causing leaf curling, stunted growth, flower drop and substantial yield losses. Developing resistant cultivars offers an eco-friendly and sustainable approach for broad mite management. Therefore, field investigations were conducted during kharif 2023 and 2024 to evaluate sixteen chilli genotypes, including the susceptible check Byadgi Dabbi, for resistance against broad mite infestation. The study aimed to assess genotypic variability and identify resistant sources for future breeding programmes. During 2023, mean mite infestation was 2.96 mites per leaf, ranging from 2.30–4.02 mites per leaf. Higher populations were recorded on Sadabahar, Rasgulla and Byadgi Kaddi, whereas Phule Jyoti and Phule Mukta exhibited lower infestation levels. Mite incidence commenced at 45 days after transplanting (DAT), reached its peak at 120 DAT and declined thereafter. In 2024, infestation ranged from 1.98–3.78 mites per leaf, with maximum incidence observed at 90 DAT. Sadabahar remained highly susceptible, while Phule Jyoti, RHRCH 8-2 and Phule Mukta consistently recorded lower mite populations. The pooled mean infestation was 2.79 mites per leaf (2.14–3.90). Based on resistance categorisation, 2 genotypes were identified as resistant, 8 as moderately resistant, 3 as moderately susceptible and 3 as susceptible, indicating substantial genetic variability and providing valuable sources for resistance breeding and integrated pest management programmes in chilli.
S. Sonawane, U. Hole, S. Aghav et al.· Plant Science Today· 0 citations
Diamondback moth (DBM,
Plutella xylostella
L.) is one of the most damaging pests of cruciferous crops, causing significant economic losses in multiple agri-food production systems globally. The high reproductive potential of DBM, rapid adaptability to diverse ecological zones, and resistance to several synthetic insecticides destabilize their integrated pest management (IPM) efforts. Here, we critically synthesize the current knowledge on DBM research across key IPM thematic areas, including biocontrol, insecticide use, phytochemistry interactions, insect-associated microbiomes and insecticide resistance, as well as the impact of climate alterations. This review has emphasized the importance of evidence based on insecticide applications, which have encouraged the development of resistance and are not sustainable for use in insect population management. However, the availability of other options for biocontrol agents, such as parasitoids, predators, entomopathogens, and host-plant resistance, has also been significant and sustainable for the management of DBM population. Apart from this, the effects of climate fluctuation have increased the spread of DBM population, which has also necessitated the use of adaptive strategies for its management, such as advanced pest surveillance systems, genome editing, and climate resilient cropping systems for breeding resistance to the pest. Despite significant technological advancements, key research gaps remain, including a limited understanding of DBM interactions with phytopathogens, as well as the socio-economic and policy-related barriers that hinder the adoption of IPM. Hence, future goal for DBM control would be implementing robust, sustainable, eco-friendly, and technology-driven approaches to reduce the development of resistance to conventional insecticides and achieving maximum control effects. Future approaches should focus on multidisciplinary collaboration, farmer awareness, and policy support to improve sustainable DBM management. In conclusion, our review provides practical information for improving IPM strategies against DBM populations, ensuring food security, and developing long-term resilience of plant production systems under increasing ecological and climate change pressures.
Abdul A. Jalloh, T. Dunn, Rajesh N Udavant et al.· Frontiers in Agronomy· 0 citations
Bambara groundnut (Vigna subterranea (L.) Verdc.), a hardy legume renowned for its exceptional drought tolerance and high nutritional value, faces significant challenges from pathogenic viral diseases despite its resilience. Predominantly from the Potyviridae, Geminiviridae, and Secoviridae families, these plant-infecting viruses cause mosaic symptoms and stunted growth in Bambara groundnut, resulting in substantial yield losses and reduced seed quality. Although this crop offers great promise for food security, research on the epidemiology and management of these viral infections remains notably limited. This review provides an overview of viruses known to infect Bambara groundnut, covering their biology, symptomatology, transmission pathways, detection methods, potential threats, and current control strategies. Urgent research into and the development of virus-resistant cultivars are essential to ensure the sustainable production of this underutilized crop.
Prince-Charles Kulekey, Ç. Ulubaş Serçe· Turkish Journal of Agricultu...· 0 citations
ABSTRACT Lima bean (Phaseolus lunatus L.) is an important socioeconomic legume in northeastern Brazil, particularly among small- and medium-scale farmers. Despite its nutritional value and role in food security, crop yield is often compromised by diseases such as anthracnose. This study aimed to evaluate six groups of lima bean populations at the fifth generation (F5), derived from crosses between genotypes conserved in the P. lunatus Active Germplasm Bank at the Universidade Federal do Piauí, which differed in morphological traits and levels of anthracnose resistance. Populations were grown under field conditions and evaluated for agromorphological and phytopathological traits, including yield, seed morphology, and disease resistance. Statistical analyses were performed using restricted maximum likelihood/best linear unbiased prediction and likelihood ratio test methods with the aid of SELEGEN, R, and Genes software. Among the populations, significant phenotypic variability was observed. Population P6 was notable for its earliness, a desirable trait that contributes to disease escape; P2 and P4 showed white seed coats and commercially attractive seeds, whereas P4, P5, and P6 exhibited superior performance in pod, seed, and anthracnose resistance traits. The presence of BGP-UFPI 832 genotype in the most promising crosses suggests its potential to transmit favorable alleles. These results indicate that populations P4, P5, and P6 are potential candidates for breeding programs focused on developing higher-yielding, locally adapted, and anthracnose-resistant cultivars.
Kathully Karolaine Brito Torres, M. V. de Brito, João Vitor Morais Sousa et al.· Bragantia· 0 citations
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