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4. Selective and comparative genome architecture of Asian cultivated rice (Oryza sativa L.) attributed to domestication and modern breeding

5. Large-scale genomic and transcriptomic profiles of rice hybrids reveal a core mechanism underlying heterosis

9. Natural variation in Tiller Number 1 affects its interaction with TIF1 to regulate tillering in rice

13. Additional file 4 of Large-scale genomic and transcriptomic profiles of rice hybrids reveal a core mechanism underlying heterosis

14. Additional file 3 of Large-scale genomic and transcriptomic profiles of rice hybrids reveal a core mechanism underlying heterosis

15. RGN1 controls grain number and shapes panicle architecture in rice

16. Large scale genomic and transcriptomic profiles of rice hybrids revealed a novel universal mechanism underlying yield heterosis

17. Genetic architecture to cause dynamic change in tiller and panicle numbers revealed by genome‐wide association study and transcriptome profile in rice

18. RGN1 controls grain number and shapes panicle architecture in rice.

19. Natural Variation OsCd1V449 Contributes to Reducing Cadmium Accumulation in Rice Grain

20. Identifying natural genotypes of grain number per panicle in rice (Oryza sativa L.) by association mapping

21. Loci and natural alleles underlying robust roots and adaptive domestication of upland ecotype rice in aerobic conditions

22. Genetic Basis Underlying Correlations Among Growth Duration and Yield Traits Revealed by GWAS in Rice (Oryza sativa L.)

23. Genetic Architecture and Candidate Genes for Deep-Sowing Tolerance in Rice Revealed by Non-syn GWAS

24. Natural Variation OsCd1V449 Contributes to Reducing Cadmium Accumulation in Rice Grain

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