Gene Pyramiding Strategies for Sink Size and Source Capacity for High-Yield Japonica Rice Breeding.

IF 4.8 1区 农林科学 Q1 AGRONOMY
Rice Pub Date : 2025-02-13 DOI:10.1186/s12284-025-00756-w
Tadamasa Ueda, Yojiro Taniguchi, Shunsuke Adachi, Matthew Shenton, Kiyosumi Hori, Junichi Tanaka
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引用次数: 0

Abstract

In Japan, high-yielding indica rice cultivars such as 'Habataki', 'Takanari', and 'Hokuriku 193' have been bred, and many genes related to the high-yield traits have been isolated from these and other indica cultivars. Many such genes are expected to be effective in increasing the yield of japonica rice, including those that increase sink size. It has been expected that high-yielding japonica rice could be bred by introducing sink-size genes into the genetic background of japonica cultivars such as 'Koshihikari', which show strong cold tolerance, have good taste characteristics, and fetch a high price. However, the corresponding near-isogenic lines did not necessarily produce high yields when tested in the field. In this review, we summarize information on the major high-yield-related rice genes and discuss pyramiding strategies to further increase the yield of japonica rice. In parallel with increasing sink size, source capacity needs to be increased by increasing photosynthetic rate per unit leaf area (single leaf photosynthesis), improving canopy structure, and increasing translocation capacity during the ripening stage. To implement these strategies, innovative breeding methodologies that efficiently produce the combinations of desired alleles are required.

高产粳稻库大小和源容量的基因金字塔策略。
在日本,已经培育出了高产籼稻品种,如“Habataki”、“Takanari”和“北陆193”,并从这些和其他籼稻品种中分离出了许多与高产性状相关的基因。许多这样的基因有望有效地提高粳稻的产量,包括那些增加库大小的基因。人们一直期望通过在“越光”(Koshihikari)等耐寒性强、口感好、价格高的粳稻品种的遗传背景中引入槽型基因,培育出高产粳稻。然而,在田间试验时,相应的近等基因系不一定能产生高产量。本文综述了水稻高产相关主要基因的研究进展,并对进一步提高粳稻产量的金字塔化策略进行了探讨。在增加汇大小的同时,还需要通过提高单位叶面积光合速率(单叶光合作用)、改善冠层结构和增加成熟期转运能力来增加源容量。为了实施这些策略,需要创新的育种方法,有效地产生所需等位基因的组合。
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来源期刊
Rice
Rice AGRONOMY-
CiteScore
10.10
自引率
3.60%
发文量
60
审稿时长
>12 weeks
期刊介绍: Rice aims to fill a glaring void in basic and applied plant science journal publishing. This journal is the world''s only high-quality serial publication for reporting current advances in rice genetics, structural and functional genomics, comparative genomics, molecular biology and physiology, molecular breeding and comparative biology. Rice welcomes review articles and original papers in all of the aforementioned areas and serves as the primary source of newly published information for researchers and students in rice and related research.
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