Bai X F, Luo L J, Yan W H, Mallikarjuna R K, Zhan W, Xing Y Z. 2010. Genetic dissection of rice grain shape using a recombinant inbred line population derived from two contrasting parents and fine mapping a pleiotropic quantitative trait locus qGL7. BMC Genetics, 11, 16.
Che R H, Tong H N, Shi B H, Liu Y Q, Fang S R, Liu D P, Xiao Y H, Hu B, Liu L C, Wang H R, Zhao M F, Chu C C. 2015. Control of grain size and rice yield by GL2-mediated brassinosteroid responses. Nature Plants, 2, 15195.
Du J H, Fan Y Y, Wang L, Zhuang J Y. 2008. Dissection of QTLs for yield traits by using near isogenic lines derived from residual heterozygous lines in rice. Chinese Journal of Rice Science, 22, 1–7. (in Chinese)
Duan P G, Ni S, Wang J M, Zhang B L, Xu R, Wang Y X, Chen H Q, Zhu X D, Li Y H. 2015. Regulation of OsGRF4 by OsmiR396 controls grain size and yield in rice. Nature Plants, 2, 15203.
Fan C C, Xing Y Z, Mao H L, Lu T T, Han B, Xu C G, Li X H, Zhang Q F. 2006. GS3, a major QTL for grain length and weight and minor QTL for grain width and thickness in rice, encodes a putative transmembrane protein. Theoretical and Applied Genetics, 112, 1164–1171.
Gao Y M, Zhu J, Song Y S, He C X, Shi C H, Xing Y Z. 2004. Analysis of digenic epistatic effects and QE interaction effects QTL controlling grain weight in rice. Journal of Zhejiang University (Science), 5, 371–377.
Ge X J, Xing Y Z, Xu C G, He Y Q. 2005. QTL analysis of cooked rice grain elongation, volume expansion, and water absorption using a recombinant inbred population. Plant Breeding, 124, 121–126.
Hu J, Wang Y X, Fang Y X, Zeng L J, Xu J, Yu H P, Shi Z Y, Pan J J, Zhang D, Kang S J, Zhu L, Dong G J, Guo L B, Zeng D L, Zhang G H, Xie L H, Xiong G S, Li J Y, Qian Q. 2015. A rare allele of GS2 enhances grain size and grain yield in rice. Molecular Plant, 8, 1455–1465.
Ishimaru K, Hirotsu N, Madoka Y, Murakami N, Hara N, Onodera H, Kashiwagi T, Ujiie K, Shimizu B, Onishi A, Miyagawa H, Katoh E. 2013. Loss of function of the IAA-glucose hydrolase gene TGW6 enhances rice grain weight and increases yield. Nature Genetics, 45, 707–711.
Krzywinski M, Altman N. 2013. Power and sample size. Nature Methods, 10, 1139–1140.
Li J X, Yu S B, Xu C G, Tan Y F, Gao Y J, Li X H, Zhang Q. 2000. Analyzing quantitative trait loci for yield using a vegetatively replicated F2 population from a cross between the parents of an elite rice hybrid. Theoretical and Applied Genetics, 101, 248–254.
Li Y B, Fan C C, Xing Y Z, Jiang Y H, Luo L J, Sun L, Shao D, Xu C J, Li X H, Xiao J H, He Y Q, Zhang Q F. 2011. Natural variation in GS5 plays an important role in regulating grain size and yield in rice. Nature Genetics, 43, 1266–1270.
Liu J F, Chen J, Zheng X M, Wu F Q, Lin Q B, Heng Y Q, Tian P, Cheng Z J, Yu X W, Zhou K N, Zhang X, Guo X P, Wang J L, Wang H Y, Wan J M. 2017. GW5 acts in the brassinosteroid signalling pathway to regulate grain width and weight in rice. Nature Plants, 3, 17043.
Mao H L, Sun S Y, Yao J L, Wang C R, Yu S B, Xu C G, Li X H, Zhang Q F. 2010. Linking differential domain functions of the GS3 protein to natural variation of grain size in rice. Proceedings of the National Academy of Sciences of the United States of America, 107, 19579–19584.
McCouch S R. 2008. Gene nomenclature system for rice. Rice, 1, 72–84.
Murray M G, Thompson W F. 1980. Rapid isolation of high molecular weight plant DNA. Nucleic Acids Research, 8, 4321–4325.
Qi P, Lin Y S, Song X J, Shen J B, Huang W, Shan J X, Zhu M Z, Jiang L, Gao J P, Lin H X. 2012. The novel quantitative trait locus GL3.1 controls rice grain size and yield by regulating Cyclin-T1;3. Cell Research, 22, 1666–1680.
Redona E D, Mackill D J. 1998. Quantitative trait locus analysis for rice panicle and grain characteristics. Theoretical and Applied Genetics, 96, 957–963.
Shao G N, Tang S Q, Luo J, Jiao G A, Wei X J, Tang A, Wu J L, Zhuang J Y, Hu P S. 2010. Mapping of qGL7-2, a grain length QTL on chromosome 7 of rice. Journal of Genetics and Genomics, 37, 523–531.
Shao G N, Wei X J, Chen M L, Tang S Q, Luo J, Jiao G A, Xie L H, Hu P S. 2012. Allelic variation for a candidate gene for GS7, responsible for grain shape in rice. Theoretical and Applied Genetics, 125, 1303–1312.
Shomura A, Izawa T, Ebana K, Ebitani T, Kanegae H, Konishi S, Yano M. 2008. Deletion in a gene associated with grain size increased yields during rice domestication. Nature Genetics, 40, 1023–1028.
Si L Z, Chen J Y, Huang X H, Gong H, Luo J H, Hou Q Q, Zhou T Y, Lu T T, Zhu J J, Shangguan Y Y, Chen E W, Gong C X, Zhao Q, Jing Y F, Zhao Y, Li Y, Cui L L, Fan D L, Lu Y Q, Weng Q J, et al. 2016. OsSPL13 controls grain size in cultivated rice. Nature Genetics, 48, 447–456.
Song X J, Huang W, Shi M, Zhu M Z, Lin H X. 2007. A QTL for rice grain width and weight encodes a previously unknown RING-type E3 ubiquitin ligase. Nature Genetics, 39, 623–630.
Song X J, Kuroha T, Ayano M, Furuta T, Nagai K, Komeda N, Segami S, Miura K, Ogawa D, Kamura T, Suzuki T, Higashiyama T, Yamasaki M, Mori H, Inukai Y, Wu J Z, Kitano H, Sakakibara H, Jacobsen S E, Ashikari M. 2015. Rare allele of a previously unidentified histone H4 acetyltransferase enhances grain weight, yield, and plant biomass in rice. Proceedings of the National Academy of Sciences of the United States of America, 112, 76–81.
Tan Y F, Xing Y Z, Li J X, Yu S B, Xu C G, Zhang Q F. 2000. Genetic bases of appearance quality of rice grains in Shanyou 63, an elite rice hybrid. Theoretical and Applied Genetics, 101, 823–829.
Wang S K, Li S, Liu Q, Wu K, Zhang J Q, Wang S S, Wang Y, Chen X B, Zhang Y, Gao C X, Wang F, Huang H X, Fu X D. 2015. The OsSPL16-GW7 regulatory module determines grain shape and simultaneously improves rice yield and grain quality. Nature Genetics, 47, 949–954.
Wang S K, Wu K, Yuan Q B, Liu X Y, Liu Z B, Lin X Y, Zeng R Z, Zhu H T, Dong G J, Qian Q, Zhang G Q, Fu X D. 2012. Control of grain size, shape and quality by OsSPL16 in rice. Nature Genetics, 44, 950–954.
Wang Y X, Xiong G S, Hu J, Jiang L, Yu H, Xu J, Fang Y X, Zeng L J, Xu E B, Xu J, Meng X B, Liu R F, Chen H Q, Jiang Y H, Wang Y H, Zhu X D. 2015. Copy number variation at the GL7 locus contributes to grain size diversity in rice. Nature Genetics, 47, 944–948.
Wang Z, Chen J Y, Zhu Y J, Fan Y Y, Zhuang J Y. 2017. Validation of qGS10, a quantitative trait locus for grain size on the long arm of chromosome 10 in rice (Oryza sativa L.). Journal of Integrative Agriculture, 16, 16–26.
Weng J F, Gu S H, Wan X Y, Gao H, Guo T, Su N, Lei C L, Zhang X, Cheng Z J, Guo X P, Wang J L, Jiang L, Zhai H Q, Wan J M. 2008. Isolation and initial characterization of GW5, a major QTL associated with rice grain width and weight. Cell Research, 18, 1199–1209.
Wu W G, Liu X Y, Wang M H, Meyer R S, Luo X J, Ndjiondjop M N, Tan L B, Zhang J W, Wu J Z, Cai H W, Sun C Q, Wang X K, Wing R A, Zhu Z F. 2017. A single-nucleotide polymorphism causes smaller grain size and loss of seed shattering during African rice domestication. Nature Plants, 3, 17064.
Yu S B, Li J X, Xu C G, Tan Y F, Gao Y J, Li X H, Zhang Q F, Maroof M A S. 1997. Importance of epistasis as the genetic basis of heterosis in an elite rice hybrid. Proceedings of the National Academy of Sciences of the United States of America, 94, 9226–9231.
Zhan X D, Yu P, Lin Z C, Chen D B, Shen X H, Zhang Y X, Fu J L, Chen S H, Cao L Y. 2014. QTL Mapping of heading date and yield related traits in rice using a recombination inbred lines (RILs) population derived from BG1/XLJ. Chinese Journal of Rice Science, 6, 570–580. (in Chinese)
Zhang H W, Fan Y Y, Zhu Y J, Chen J Y, Yu S B, Zhuang J Y. 2016. Dissection of the qTGW1.1 region into two tightly-linked minor QTLs having stable effects for grain weight in rice. BMC Genetics, 17, 98.
Zhang X J, Wang J F, Huang J, Lan H X, Wang C L, Yin C F, Wu Y Y, Tang H J, Qian Q, Li J Y, Zhang H S. 2012. Rare allele of OsPPKL1 associated with grain length causes extra-large grain and a significant yield increase in rice. Proceedings of the National Academy of Sciences of the United States of America, 109, 21534–21539.
Zuo J R, Li J Y. 2014. Molecular genetic dissection of quantitative trait loci regulating rice grain size. Annual Review of Genetics, 48, 99–118.
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