[每周文献更新] 2012.01.17-2012.02.05(02.01更新)

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A mutation in the rice chalcone isomerase gene causes the golden hull and internode 1 phenotype
苯基丙乙烯酮异构酶基因突变导致水稻金黄色谷壳和节间的表型
Planta, 2012-01-27,  DOI: 10.1007/s00425-012-1598-x
本主题由 管理员 RiceR 于 2012-2-1 14:02:26 执行 设置高亮 操作
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光敏雄性不育基因的克隆,很重要的工作,特别是,这是一个非编码RNA的调控,更是说明了遗传调控的复杂性和多样性。

A long noncoding RNA regulates photoperiod-sensitive male sterility, an essential component of hybrid rice

DO 10.1073/pnas.1121374109

UL http://www.pnas.org/content/early/2012/01/27/1121374109.abstract

Hybrid rice has greatly contributed to the global increase of rice productivity. A major component that facilitated the development of hybrids was a mutant showing photoperiod-sensitive male sterility (PSMS) with its fertility regulated by day length. Transcriptome studies have shown that large portions of the eukaryotic genomic sequences are transcribed to long noncoding RNAs (lncRNAs). However, the potential roles for only a few lncRNAs have been brought to light at present. Thus, great efforts have to be invested to understand the biological functions of lncRNAs. Here we show that a lncRNA of 1,236 bases in length, referred to as long-day–specific male-fertility–associated RNA (LDMAR), regulates PSMS in rice. We found that sufficient amount of the LDMAR transcript is required for normal pollen development of plants grown under long-day conditions. A spontaneous mutation causing a single nucleotide polymorphism (SNP) between the wild-type and mutant altered the secondary structure of LDMAR. This change brought about increased methylation in the putative promoter region of LDMAR, which reduced the transcription of LDMAR specifically under long-day conditions, resulting in premature programmed cell death (PCD) in developing anthers, thus causing PSMS. Thus, a lncRNA could directly exert a major effect on a trait like a structure gene, and a SNP could alter the function of a lncRNA similar to amino acid substitution in structural genes. Molecular elucidating of PSMS has important implications for understanding molecular mechanisms of photoperiod regulation of many biological processes and also for developing male sterile germplasms for hybrid crop breeding.
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非常好,谢谢!
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顶……
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pms3发的有点低吧,这么好的一个研究为啥没发NG!
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The YABBY Gene TONGARI-BOUSHI1 Is Involved in Lateral Organ Development and Maintenance of Meristem Organization in the Rice Spikelet

Published online before print January 2012, doi:[url= http:/​/​dx.​doi.​org/​10.​1105/​tpc.​111.​094797] http:/​/​dx.​doi.​org/​10.​1105/​tpc.​111.​094797[/url]
The Plant Cell January 2012 tpc.111.094797

The meristem initiates lateral organs in a regular manner, and proper communication between the meristem and the lateral organs ensures the normal development of plants. Here, we show that mutation of the rice (Oryza sativa) gene TONGARI-BOUSHI1 (TOB1) results in pleiotropic phenotypes in spikelets, such as the formation of a cone-shaped organ instead of the lemma or palea, the development of two florets in a spikelet, or premature termination of the floret meristem, in addition to reduced growth of the lemma or palea and elongation of the awn. These phenotypes seem to result from not only failure in growth of the lateral organs, but also defects in maintenance and organization of the meristem. For example, the cone-shaped organ develops as a ring-like primordium from an initial stage, suggesting that regulation of organ initiation in the meristem may be compromised. TOB1 encodes a YABBY protein, which is closely related to FILAMENTOUS FLOWER in Arabidopsis thaliana, and is expressed in the lateral organ primordia without any patterns of polarization. No TOB1 expression is detected in the meristem, so TOB1 may act non–cell autonomously to maintain proper meristem organization and is therefore likely to play an important role in rice spikelet development.
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