トウモロコシ育種の将来に重大な遺伝的弱点が判明(Illinois study reveals major genetic weakness for future corn breeding)

2026-08-10 イリノイ大学アーバナ・シャンペーン校

米国イリノイ大学アーバナ・シャンペーン校の研究チームは、米国のトウモロコシ育種で主要な親系統となっている「スティッフ・ストーク(SS)」群のうち、中生型系統で収量に関わる遺伝的多様性が著しく低下していることを明らかにした。研究チームは、SSとノン・スティッフ・ストーク(NSS)に属する41の自殖系統を対象に、収量、草丈、絹糸抽出・開花時期などの遺伝的変異を解析。中生型SS系統では収量に関する有意な遺伝的変異がほとんど残っておらず、気候変動や病害など将来の環境変化に対応した高収量品種の開発を妨げる可能性が示された。一方、早生型・晩生型では両群とも十分な変異が残り、中生型でもNSS群には収量に関する変異が確認された。研究チームは、世界各地の遺伝資源を導入して育種集団の遺伝的多様性を意図的に広げる必要があると指摘している。今回の成果は、将来の気候条件に適応したトウモロコシ育種に向け、遺伝資源の保全と多様性拡大の重要性を示すものとなった。

<関連情報>

硬い茎と硬い茎を持たないトウモロコシのヘテロシス群から派生した単交雑ハイブリッドの遺伝的変異構造の解析とゲノム予測モデルの評価 Dissecting genetic variance structure and evaluating genomic prediction models for single-cross hybrids derived from Stiff Stalk and Non-Stiff Stalk maize heterotic groups

Jenifer Camila Godoy dos Santos,Jode Edwards,Elizabeth Lee,Mark A Mikel,Samuel B Fernandes,Candice N Hirsch,Sydney P Berry,Alexander E Lipka,Martin O Bohn
G3 Genes|Genomes|Genetics  Published:03 July 2026
DOI:https://doi.org/10.1093/g3journal/jkag163

Multi-panel line graph showing the cumulative proportion of ordered eigenvalues for the asymptotic correlation matrices of variance components associated with general combining ability (GCA) and specific combining ability (SCA) across five traits (grain yield, plant height, ear height, silking, and anthesis). Dashed curves represent the cumulative contribution of the eigenvalues, while the solid diagonal line represents the expected pattern under complete independence among components. Curves above the diagonal indicate that a relatively small number of eigenvalues explain most of the variation. Results are shown for models fitted with the D and S matrices.

Abstract

The early 20th-century discovery of heterosis and the establishment of heterotic groups transformed maize (Zea mays L.) into a keystone of global agriculture. However, maize breeding faces two significant challenges: the gradual decline of general combining ability (GCA) variance within heterotic groups and the impracticality of testing all possible single crosses in the early stages of a breeding program. Here, we developed genomic best linear unbiased prediction (GBLUP)-based multikernel models, using additive and two alternative nonadditive genomic relationship matrices, to estimate the variance components associated with the general combining ability of Stiff Stalk (SS) and Non-Stiff Stalk (NSS) heterotic groups and the specific combining ability arising from their crosses. We further applied these models to predict the performance of untested single-cross combinations under varying levels of parental information. We showed that the SS and NSS groups retained significant GCA variance across traits in both early- and late-maturity groups. The SS group, in contrast, exhibited no detectable GCA variance in grain yield for the intermediate-flowering subset of hybrids, highlighting a limitation for future genetic improvement. Furthermore, our results showed that GBLUP-based multikernel models effectively identified superior hybrids when parental information was available. In the absence of this information, however, these models underperformed compared to covariance-based approaches. Both nonadditive matrices yielded similar results, indicating that they capture comparable genetic relationship patterns despite their distinct formulations. Overall, this study sheds light on the future use of US maize commercial germplasm and demonstrates how GBLUP-based multikernel models can improve the efficiency of hybrid breeding programs.

1204農業及び蚕糸
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