| [1] |
Kulkarni KP, Kim M, Shannon JG, Lee JD. 2016. Identification of quantitative trait loci controlling soybean seed weight in recombinant inbred lines derived from PI 483463 (Glycine soja) × 'Hutcheson' (G. max). |
| [2] |
Liu J, Dou Y, Batistella M, Challies E, Connor T, et al. 2018. Spillover systems in a telecoupled Anthropocene: typology, methods, and governance for global sustainability. |
| [3] |
Bhat JA, Karikari B, Adeboye KA, Ganie SA, Barmukh R, et al. 2022. Identification of superior haplotypes in a diverse natural population for breeding desirable plant height in soybean. |
| [4] |
Grant D, Nelson RT, Cannon SB, Shoemaker RC. 2010. SoyBase, the USDA-ARS soybean genetics and genomics database. |
| [5] |
Contreras-Soto RI, Mora F, de Oliveira MA, Higashi W, Scapim CA, et al. 2017. A genome-wide association study for agronomic traits in soybean using SNP markers and SNP-based haplotype analysis. |
| [6] |
Fang C, Ma Y, Wu S, Liu Z, Wang Z, et al. 2017. Genome-wide association studies dissect the genetic networks underlying agronomical traits in soybean. |
| [7] |
Duan Z, Zhang M, Zhang Z, Liang S, Fan L, et al. 2022. Natural allelic variation of GmST05 controlling seed size and quality in soybean. |
| [8] |
Zhang C, Shao Z, Kong Y, Du H, Li W, et al. 2024. High-quality genome of a modern soybean cultivar and resequencing of 547 accessions provide insights into the role of structural variation. |
| [9] |
Wang Z, Li W, Gao Y, Shao M, Yin K, et al. 2024. Genome-wide association study reveals the genetic basis of cold tolerance in soybean. |
| [10] |
Riaz A, Raza Q, Kumar A, Dean D, Chiwina K, et al. 2023. GWAS and genomic selection for marker-assisted development of sucrose enriched soybean cultivars. |
| [11] |
Yang Y, Zhu X, Cui R, Wang R, Li H, et al. 2021. Identification of soybean phosphorous efficiency QTLs and genes using chlorophyll fluorescence parameters through GWAS and RNA-seq. |
| [12] |
Rao MSS, Bhagsari AS, Mohamed AI. 2002. Fresh green seed yield and seed nutritional traits of vegetable soybean genotypes. |
| [13] |
Fu L, Mao X, Mao X, Wang J. 2022. Evaluation of agricultural sustainable development based on resource use efficiency: empirical evidence from Zhejiang Province, China. |
| [14] |
Zhang H, Huai Y, Zhou WJ, Feng Y, Wang YX. 2023. Current status and future prospects of soybean and oil crop production in Zhejiang Province. |
| [15] |
Zhang J, Song Q, Cregan PB, Nelson RL, Wang X, et al. 2015. Genome-wide association study for flowering time, maturity dates and plant height in early maturing soybean (Glycine max) germplasm. |
| [16] |
Murray MG, Thompson WF. 1980. Rapid isolation of high molecular-weight plant DNA. |
| [17] |
Chen S, Zhou Y, Chen Y, Gu J. 2018. fastp: an ultra-fast all-in-one FASTQ preprocessor. |
| [18] |
McKenna A, Hanna M, Banks E, Sivachenko A, Cibulskis K, et al. 2010. The Genome Analysis Toolkit: a MapReduce framework for analyzing next-generation DNA sequencing data. |
| [19] |
Danecek P, Auton A, Abecasis G, Albers CA, Banks E, et al. 2011. The variant call format and VCFtools. |
| [20] |
Cingolani P. 2022. Variant annotation and functional prediction: SnpEff. |
| [21] |
Falcon S, Gentleman R. 2007. Using GOstats to test gene lists for GO term association. |
| [22] |
Tian T, Liu Y, Yan H, You Q, Yi X, et al. 2017. agriGO v2.0: a GO analysis toolkit for the agricultural community, 2017 update. |
| [23] |
Yu G, Smith DK, Zhu H, Guan Y, Lam TT. 2017. ggtree: an R package for visualization and annotation of phylogenetic trees with their covariates and other associated data. |
| [24] |
Yang J, Lee SH, Goddard ME, Visscher PM. 2011. GCTA: a tool for genome-wide complex trait analysis. |
| [25] |
Zhang C, Dong SS, Xu JY, He WM, Yang TL. 2019. PopLDdecay: a fast and effective tool for linkage disequilibrium decay analysis based on variant call format files. |
| [26] |
Dong SS, He WM, Ji JJ, Zhang C, Guo Y, et al. 2021. LDBlockShow: a fast and convenient tool for visualizing linkage disequilibrium and haplotype blocks based on variant call format files. |
| [27] |
Kang HM, Sul JH, Service SK, Zaitlen NA, Kong SY, et al. 2010. Variance component model to account for sample structure in genome-wide association studies. |
| [28] |
Li MX, Yeung JM, Cherny SS, Sham PC. 2012. Evaluating the effective numbers of independent tests and significant p-value thresholds in commercial genotyping arrays and public imputation reference datasets. |
| [29] |
Yin L, Zhang H, Tang Z, Xu J, Yin D, et al. 2021. rMVP: a memory-efficient, visualization-enhanced, and parallel-accelerated tool for genome-wide association study. |
| [30] |
Price AL, Patterson NJ, Plenge RM, Weinblatt ME, Shadick NA, et al. 2006. Principal components analysis corrects for stratification in genome-wide association studies. |
| [31] |
Yu J, Pressoir G, Briggs WH, Vroh Bi I, Yamasaki M, et al. 2006. A unified mixed-model method for association mapping that accounts for multiple levels of relatedness. |
| [32] |
Liu Y, Zhang Y, Liu X, Shen Y, Tian D, et al. 2023. SoyOmics: a deeply integrated database on soybean multi-omics. |
| [33] |
Yang C, Yan J, Jiang S, Li X, Min H, et al. 2022. Resequencing 250 soybean accessions: new insights into genes associated with agronomic traits and genetic networks. |
| [34] |
Li YH, Qin C, Wang L, Jiao C, Hong H, et al. 2023. Genome-wide signatures of the geographic expansion and breeding of soybean. |
| [35] |
Li C, Li YH, Li Y, Lu H, Hong H, et al. 2020. A domestication-associated gene GmPRR3b regulates the circadian clock and flowering time in soybean. |
| [36] |
Jiang H, Li M, Liang N, Yan H, Wei Y, et al. 2007. Molecular cloning and function analysis of the stay green gene in rice. |
| [37] |
Liu N, Lyu X, Zhang X, Zhang G, Zhang Z, et al. 2024. Reference genome sequence and population genomic analysis of peas provide insights into the genetic basis of Mendelian and other agronomic traits. |
| [38] |
Sato Y, Morita R, Nishimura M, Yamaguchi H, Kusaba M. 2007. Mendel's green Cotyledon gene encodes a positive regulator of the chlorophyll-degrading pathway. |
| [39] |
Song J, Li Z, Liu Z, Guo Y, Qiu LJ. 2017. Next-generation sequencing from bulked-segregant analysis accelerates the simultaneous identification of two qualitative genes in soybean. |
| [40] |
Pan L, He J, Zhao T, Xing G, Wang Y, et al. 2018. Efficient QTL detection of flowering date in a soybean RIL population using the novel restricted two-stage multi-locus GWAS procedure. |
| [41] |
Liu Z, Li H, Fan X, Huang W, Yang J, et al. 2016. Phenotypic characterization and genetic dissection of growth period traits in soybean (Glycine max) using association mapping. |
| [42] |
Xu ZS, Xiong TF, Ni ZY, Chen XP, Chen M, et al. 2009. Isolation and identification of two genes encoding leucine-rich repeat (LRR) proteins differentially responsive to pathogen attack and salt stress in tobacco. |
| [43] |
Lin F, Li S, Wang K, Tian H, Gao J, et al. 2020. A leucine-rich repeat receptor-like kinase, OsSTLK, modulates salt tolerance in rice. |
| [44] |
Yang Z, Wang C, Zhu T, He J, Wang Y, et al. 2025. An LRR-RLK protein modulates drought- and salt-stress responses in maize. |
| [45] |
Yang L, Wu K, Gao P, Liu X, Li G, et al. 2014. GsLRPK, a novel cold-activated leucine-rich repeat receptor-like protein kinase from Glycine soja, is a positive regulator to cold stress tolerance. |
| [46] |
Zhang D, Sun L, Li S, Wang W, Ding Y, et al. 2018. Elevation of soybean seed oil content through selection for seed coat shininess. |
| [47] |
Zhu Z, Wang Y, Liu S, Wang S, Li J, et al. 2025. Genomic atlas of 8,105 accessions reveals stepwise domestication, global dissemination, and improvement trajectories in soybean. |
| [48] |
Luo X, Liu X, Zheng N, Song C, He Y. 2025. Molecular mechanisms of temperature-mediated flowering regulation: from arabidopsis to short-day crops. |