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ARS Home » Plains Area » Fargo, North Dakota » Edward T. Schafer Agricultural Research Center » Cereal Crops Improvement Research » Research » Publications at this Location » Publication #425413

Research Project: Improvement of Disease and Pest Resistance in Barley, Durum, Oat, and Wheat Using Genetics and Genomics

Location: Cereal Crops Improvement Research

Title: Cytonuclear analysis of barley spike traits using a cytoplasm-aware population

Author
item BODENHEIMER, SCHEWACH - Volcani Center (ARO)
item BDOLACH, EYAL - Volcani Center (ARO)
item BE'ERY, AVITAL - Volcani Center (ARO)
item TIWARI, LALIT DEV - Volcani Center (ARO)
item PEREZ ALFARO, RUTH SARAHI - University Of California, Riverside
item Yang, Shengming
item KOENIG, DAN - University Of California, Riverside
item FRIDMAN, EYAL - Volcani Center (ARO)

Submitted to: Genetics
Publication Type: Peer Reviewed Journal
Publication Acceptance Date: 8/11/2025
Publication Date: 8/19/2025
Citation: Bodenheimer, S., Bdolach, E., Be'Ery, A., Tiwari, L., Perez Alfaro, R., Yang, S., Koenig, D., Fridman, E. 2025. Cytonuclear analysis of barley spike traits using a cytoplasm-aware population. Genetics. https://doi.org/10.1093/genetics/iyaf167.
DOI: https://doi.org/10.1093/genetics/iyaf167

Interpretive Summary: Plants have two types of genetic material or genome—nuclear and cytoplasmic—and how they interact (called cytonuclear interactions) can strongly affect how plants grow and adapt to the environment. However, these interactions are not well understood due to the lack of the suitable tools for genetic analysis, particularly in barley. In this study, we established a new barley resource called the Cytonuclear Multi-Parent Population (CMPP), which is derived from multiple crosses between wild barleys and a modern variety. Using this new design, we found that cytoplasm genome contributed to about 5% of the variation in key traits, such as grain weight and grain width. Combining genetic markers and the cytonuclear interactions, we designed a method to predict plant traits with high efficiency and accuracy. Therefore, our study provides a platform allows barley geneticists and breeders to study how cytonuclear interactions affect yield traits and demonstrates the importance of incorporating cytonuclear context in breeding efforts.

Technical Abstract: The interplay between nuclear and cytoplasmic genomes—collectively known as cytonuclear interactions (CNIs)—is increasingly recognized as a key driver of phenotypic variation and adaptive potential across diverse organisms. Yet, leveraging cytoplasmic diversity and fully understanding CNIs' contributions to agriculturally important traits remain major challenges in crop improvement, largely due to the scarcity of tailored genetic resources. In cultivated barley (Hordeum vulgare), limited genetic diversity relative to its wild relatives constrains adaptability to changing environments. While wild germplasm offers a reservoir of valuable alleles, the role of cytoplasmic variation and CNIs in shaping complex traits is still poorly understood. To address this gap, we present the Cytonuclear Multi-Parent Population (CMPP)—a novel interspecific resource comprising 951 BC2DH lines, generated from crosses between ten genetically diverse wild barley accessions (H. vulgare ssp. spontaneum) used as female founders, and the elite cultivar Noga. This design facilitates the concurrent segregation and analysis of nuclear introgressions and distinct wild versus cultivated cytoplasmic backgrounds within ten subfamilies. Phenotyping across multiple environments revealed that up to 5% of variation in key spike and grain trait BLUPs are explained by cytoplasm ('² = 0.05), including Thousand Grain Weight (TGW), Grain Width (GW), and Fruiting Efficiency at Maturity (FEm). Notably, wild cytoplasms influenced trait stability, with the B1K-50-04 cytoplasm increasing TGW stability based on Shukla’s measure. Genome-wide association studies (GWAS) employing Nested Association Mapping (NAM), FASTmrMLM, and MatrixEpistasis (ME) identified 76 marker-trait associations (MTAs). The ME approach specifically uncovered 16 cytonuclear QTL (cnQTL) exhibiting cytoplasm-dependent effects. Furthermore, we developed a genomic prediction (GP) strategy incorporating interactions between significant MTAs and population structure variables (subfamily and cytoplasm). This targeted interaction model ("Peaks + I") achieved cross-validation accuracies comparable to, or even exceeding, models using the full set of 6,679 SNPs, despite utilizing substantially fewer predictors enabling for quicker and more efficient validation runs. The CMPP provides a unique platform for dissecting cytoplasmic effects and CNIs, while our findings demonstrate the importance of incorporating cytonuclear context in genetic mapping and prediction to effectively harness both nuclear and cytoplasmic diversity for crop improvement.