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Genome assembly of rice stink bug offers new data-informed tool in fight against costly pest

09.16.26 | University of Arkansas System Division of Agriculture

By John Lovett
University of Arkansas Division of Agriculture

FAYETTEVILLE, Ark. — Scientists are getting a leg up on the rice stink bug, one of the most significant threats to rice, a staple food for nearly half of the world’s population and a major crop in Arkansas.

With funding support from the Arkansas Biosciences Institute, researchers with the Arkansas Agricultural Experiment Station, the University of Arkansas Division of Agriculture's research arm, generated the first high-quality, chromosome-scale reference genome for the rice stink bug, Oebalus pugnax , identifying more than 13,000 genes with broad biological and agricultural relevance.

The development created a foundational resource to help scientists better understand how the insect feeds, adapts to host plants and potentially develops resistance to insecticides. The study, published in the Journal of Heredity , provides the most detailed genomic analysis to date of the rice stink bug, which feeds on more than 15 host plant species, including grain sorghum, and has shown resistance to pyrethroid insecticides in some populations.

“This gives us our first chromosome-scale view of the rice stink bug genome,” said Rich Adams, an assistant professor of agricultural statistics for the experiment station and corresponding author of the study. “We were able to assemble much of the nuclear genome, identify more than 13,000 genes and uncover genetic features involved in the insect’s biology and interactions with agricultural systems. It creates a foundation and hypothesis for future studies of rice stink bug biology and management.”

Adams is also a teaching faculty member with department of entomology and plant pathology in the Dale Bumpers College of Agricultural, Food and Life Sciences at the University of Arkansas and the experiment station’s Center for Agricultural Data Analytics .

The genome assembly provided researchers with the first predicted chromosomes and their gene content. It also revealed evidence of roughly 21,000 non-coding RNAs, Adams said. The analysis identified genes with predicted roles in plant digestion, including carbohydrate-active enzymes, and uncovered expansions and contractions in gene families associated with key life history traits and agricultural impact.

Using advanced sequencing technologies, researchers reconstructed the rice stink bug's 826-million-base-pair genome with unprecedented resolution. The work identified gene families associated with feeding, host adaptation and detoxification, as well as genes that may play roles in insecticide resistance.

“This genome provides a foundation for studying genome structure, gene family evolution, plant feeding, host adaptation, detoxification and potential insecticide resistance,” said Allen Szalanski, a professor of entomology and plant pathology for the experiment station and a co-author of the study.

The new research builds on findings from a previous study by Szalanski, Adams and colleagues with UADA and Florida A&M University that examined genetic variation among rice stink bug populations across Arkansas, Mississippi, Florida and Cuba.

In that earlier study, published in Florida Entomologist , researchers analyzed a mitochondrial DNA marker and found high genetic diversity within O. pugnax populations. The results pointed to movement of rice stink bugs among southeastern states and suggested that two invasive Oebalus species found in Florida may have originated in Cuba.

“The first study helped us understand how rice stink bug populations vary genetically and move across regions,” Szalanski said. “This new genome gives us the tools to investigate the biological mechanisms behind those differences and how this pest adapts to rice production systems.”

Adams noted that a genome assembly represents a scientific starting point rather than a final product. As additional data become available, researchers can refine the assembly and use it to test new hypotheses about the evolution, behavior and management of rice stink bugs.

“Knowing more about the genetic basis of these traits can ultimately help researchers develop better monitoring and management strategies for rice producers,” Szalanski said.

Rice stink bugs cost Arkansas rice growers more than $16 million in 2017 alone, with similar costs estimated in 2018 and 2019, the first study noted.

Rokeya Akter, a graduate student in the department of entomology and plant pathology, was the first author of the study published in the Journal of Heredity . Co-authors included Mahamad Sayab Miya, Ph.D., a senior research assistant in the department, and Duane D. McKenna, the William Hill Professor of Biology and founding director of the Center for Biodiversity Research at the University of Memphis.

To learn more about ag and food research in Arkansas, visit aaes.uada.edu . Follow the Arkansas Agricultural Experiment Station on LinkedIn and sign up for our monthly newsletter, the Arkansas Agricultural Research Report . To learn more about the Division of Agriculture, visit uada.edu . To learn about extension programs in Arkansas, contact your local Cooperative Extension Service agent or visit uaex.uada.edu .

The University of Arkansas Division of Agriculture’s mission is to strengthen agriculture, communities, and families by connecting trusted research to the adoption of best practices. Through the Agricultural Experiment Station and the Cooperative Extension Service, the Division of Agriculture conducts research and extension work within the nation’s historic land grant education system.

The Division of Agriculture is one of 22 entities within the University of Arkansas System. It has offices in all 75 counties in Arkansas and faculty on three system campuses.

Pursuant to 7 CFR § 15.3, the University of Arkansas Division of Agriculture offers all its Extension and Research programs and services (including employment) without regard to race, color, sex, national origin, religion, age, disability, marital or veteran status, genetic information, sexual preference, pregnancy or any other legally protected status, and is an equal opportunity institution.

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Media Contact:
John Lovett
U of A Division of Agriculture
Arkansas Agricultural Experiment Station
(479) 763-5929
jlovett@uada.edu

Journal of Heredity

10.1093/jhered/esag053

Data/statistical analysis

Not applicable

Chromosome-scale genome assembly of the rice stink bug (Hemiptera: Oebalus pugnax) illuminates genome structure and gene family evolution in Pentatomidae

1-Jul-2026

Keywords

Article Information

Contact Information

Nick Kordsmeier
University of Arkansas System Division of Agriculture
nkordsme@uark.edu

Source

This article is based on a news release from University of Arkansas System Division of Agriculture. BrightSurf curates and republishes science news from research institutions worldwide; the original release is linked below.

How to Cite This Article

APA:
University of Arkansas System Division of Agriculture. (2026, September 16). Genome assembly of rice stink bug offers new data-informed tool in fight against costly pest. Brightsurf News. https://www.brightsurf.com/news/8Y4GWRYL/genome-assembly-of-rice-stink-bug-offers-new-data-informed-tool-in-fight-against-costly-pest.html
MLA:
"Genome assembly of rice stink bug offers new data-informed tool in fight against costly pest." Brightsurf News, Sep. 16 2026, https://www.brightsurf.com/news/8Y4GWRYL/genome-assembly-of-rice-stink-bug-offers-new-data-informed-tool-in-fight-against-costly-pest.html.