|
[1]EPSTEIN E,NORLYN J D,RUSH D W,et al.Saline culture of crops:A genetic approach[J]. Science,1980,210(4468):399⁃404.
[2]王巍琦,杨磊,程志博,等.干旱区不同类型盐碱地土壤微生物碳源代谢活性研究[J]. 干旱区资源与环境,2019,33(6):158⁃166.
WANG W Q,YANG L,CHENG Z B,et al. Study on soil microbial biomass carbon source metabolism in different types of sodic saline⁃alkali soil in arid area[J]. Journal of Arid Land Resources and Environment,2019,33(6):158⁃166.
[3]YANG C W,CHONG J N,LI C Y,et al. Osmotic adjustment and ion balance traits of an alkali resistant halophyte Kochia sieversiana during adaptation to salt and alkali conditions[J].Plant and Soil,2007,294(1):263⁃276.
[4]WANG Y K,ZHOU Y M,LIU K Y,et al.Transcriptome⁃based comparative analysis of transcription factors in response to NaCl,NaOH,and Na2CO3 stresses in roots of autotetraploid rice(Oryza sativa L.)[J].Agronomy,2023,13(4):959.
[5]YU J,ZHU C S,XUAN W,et al. Genome⁃wide association studies identify OsWRKY53 as a key regulator of salt tolerance in rice[J]. Nature Communications,2023,14(1):3550.
[6]周根友,汪娟,赵祥强. 大田评价水稻耐盐碱性的农艺性状指标研究[J].华北农学报,2017,32(S1):102⁃107.
ZHOU G Y,WANG J,ZHAO X Q. Field indexes of agronomic traits for salinity tolerance evaluation in rice[J].Acta Agriculturae Boreali⁃Sinica,2017,32(S1):102⁃107.
[7]AMANULLAH M M,NATARAJAN S,VANATHI D,et al. Lowland rice in coastal saline soils:A review[J].Agricultural Reviews,2007,28(4):245⁃253.
[8]XU Z K,SHAO T Y,LÜ Z X,et al. The mechanisms of improving coastal saline soils by planting rice[J].Science of the Total Environment,2020,703:135529.
[9]赵海新,黄晓群,陈书强,等. 碱环境下不同水稻品种微观结构响应解析[J].东北农业大学学报,2020,51(11):11⁃22.
ZHAO H X,HUANG X Q,CHEN S Q,et al. Response analysis of microstructure of different rice varieties under alkali stress[J]. Journal of Northeast Agricultural University,2020,51(11):11⁃22.
[10]赵怀玉,林鸿宣. 植物响应盐碱胁迫的分子机制[J]. 土壤与作物,2020,9(2):103⁃113.
ZHAO H Y,LIN H X. Molecular mechanism of plants in responses to salt and alkali stress[J].Soils and Crops,2020,9(2):103⁃113.
[11]ZHAO H,LI Z X,WANG Y Y,et al. Cellulose synthase⁃like protein OsCSLD4 plays an important role in the response of rice to salt stress by mediating abscisic acid biosynthesis to regulate osmotic stress tolerance[J].Plant Biotechnology Journal,2022,20 (3):468⁃484.
[12]LIU Z J,HU Y Z,DU A P,et al. Cell wall matrix polysaccharides contribute to salt⁃alkali tolerance in rice[J]. International Journal of Molecular Sciences,2022,23(23):15019.
[13]YANG Y Q,WU Y J,MA L,et al. The Ca2+ sensor SCaBP3/CBL7 modulates plasma membrane H+⁃ATPase activity and promotes alkali tolerance in Arabidopsis[J]. The Plant Cell,2019,31(6) :1367⁃1384.
[14]ZHANG H L,YU F F,XIE P,et al.A Gγ protein regulates alkaline sensitivity in crops[J].Science,2023,379(6638):eade8416.
[15]MAO H L,SUN S Y,YAO J L,et al.Linking differential domain functions of the GS3 protein to natural variation of grain size in rice[J].Proceedings of the National Academy of Sciences of the United States of America,2010,107(45):19579⁃19584.
[16]FAN C C,XING Y Z,MAO H L,et al. GS3,a major QTL for grain length and weight and minor QTL for grain width and thickness in rice,encodes a putative transmembrane protein[J].Theoretical and Applied Genetics,2006,112(6):1164⁃1171.
[17]LIU Q,HAN R X,WU K,et al. G⁃protein βγ subunits determine grain size through interaction with MADS⁃domain transcription factors in rice[J]. Nature Communications,2018,9(1):852.
[18]FAN C C,YU S B,WANG C R,et al. A causal C⁃A mutation in the second exon of GS3 highly associated with rice grain length and validated as a functional marker[J].Theoretical and Applied Genetics,2009,118(3):465⁃472.
[19]SUN S Y,WANG L,MAO H L,et al. A G⁃protein pathway determines grain size in rice[J]. Nature Communications,2018,9(1):851.
[20]SUN S Y,CHENG J L,ZHANG Y W,et al. Novel repetitive elements in plant⁃specific tails of Gγ proteins as the functional unit in G⁃protein signalling in crops[J].The Plant Cell,2025,37(5):koaf052.
[21]XU N,QIU Y C,CUI X,et al. Enhancing grain shape,thermotolerance,and alkaline tolerance via Gγ protein
manipulation in rice[J]. Theoretical and Applied Genetics,2024,137(7):154.
[22]TAKANO⁃KAI N, JIANG H, KUBO T, et al.Evolutionary history of GS3,a gene conferring grain length in rice[J]. Genetics,2009,182(4):1323⁃1334.
[23]GUO S Q,CHEN Y X,JU Y L,et al. Fine⁃tuning gibberellin improves rice alkali⁃thermal tolerance and yield[J]. Nature,2025,639(8053):162⁃171.
[24]孔维儒,宋佳伟,段凯蓉,等. 盐碱胁迫对粳稻种质资源穗部形态建成的影响[J]. 植物遗传资源学报,2025,26(1):90⁃107.
KONG W R,SONG J W,DUAN K R,et al. Effects of saline⁃alkaline stress on the morphogenesis of panicle of japonica rice germplasm[J]. Journal of Plant Genetic Resources,2025,26(1):90⁃107.
[25]裔传灯,王德荣,蒋伟,等. 水稻粒宽基因GS5的功能标记开发和单倍型鉴定[J]. 中国水稻科学,2016,30 (5):487⁃492.
YI C D,WANG D R,JIANG W,et al. Development of functional markers and identification of haplotypes for rice grain width gene GS5[J].Chinese Journal of Rice Science,2016,30(5):487⁃492.
[26]张彬涛,刘聪聪,郭明亮,等. 水稻OsDR8基因的稻瘟病抗性评价及优异单倍型鉴定[J].中国水稻科学,2025,39(3):343⁃351.
ZHANG B T,LIU C C,GUO M L,et al. Evaluation of blast resistance and identification of superior haplotype of OsDR8 in rice[J]. Chinese Journal of Rice Science,2025,39(3):343⁃351.
[27]XU J,XUE Q,LUO L,et al. Genetic dissection of grain weight and its related traits in rice(Oryza sativa L.)[J]. Chinese Journal of Rice Science,2002,16(1):6.
[28]LUO Y,ZHU Z,CHEN N,et al. Grain types and related quality characteristics of rice in China[J].Chinese Journal of Rice Science,2004,18(2):135.
[29]BERAL A,RINCENT R,LE GOUIS J,et al. Wheat individual grain⁃size variance originates from crop development and from specific genetic determinism[J]. PLoS One,2020,15(3):e0230689.
[30]AGATHOKLEOUS E,FREI M,KNOPF O M,et al.Adapting crop production to climate change and air pollution at different scales[J]. Nature Food,2023,4 (10):854⁃865.
[31]YU X Q,XIE W,MA L,et al. Kunpeng,birth of giant⁃grain rice germplasm[J/OL].Science Bulletin,2025[2025⁃04⁃28]. https://doi.org/10.1016/j.scib.2025.04.030.
[32]YAN S,ZOU G H,LI S J,et al. Seed size is determined by the combinations of the genes controlling different seed characteristics in rice[J].Theoretical and Applied Genetics,2011,123(7):1173⁃1181.
[33]YI X H,ZHANG Z J,ZENG S Y,et al. Introgression of qPE9‑1 allele,conferring the panicle erectness,leads to the decrease of grain yield per plant in japonica rice (Oryza sativa L.)[J]. Journal of Genetics and Genomics,2011,38(5):217⁃223.
[34] LIU L,ZHOU Y,MAO F,et al. Fine⁃tuning of the grain size by alternative splicing of GS3 in rice[J]. Rice,2022,15(1):4.
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