[1] VERMA D K, SRIVASTAV P P.Isolation, modification, and characterization of rice starch with emphasis on functional properties and industrial application:A review[J]. Critical reviews in food science and nutrition, 2022, 62(24):6577-6604. [2] 陈启霞. 糖尿病饮食中的升糖指数:管理血糖的关键[J].福建医药杂志,2025,47(3):96-97. [3] JENKINS D J A,CHIAVAROLI L,MIRRAHIMI A,et al. Glycemic index versus wheat fiber on arterial wall damage in diabetes:A randomized controlled trial[J]. Diabetes care,2022,45(12):2862-2870. [4] ZHOU H J,WANG L J,LIU G F,et al.Critical roles of soluble starch synthase SS Ⅲ a and granule-bound starch synthase Waxy in synthesizing resistant starch in rice[J]. Proceedings of the national academy of sciences of the United States of America,2016,113(45):12844-12849. [5] YOU H, LIANG C, ZHANG O L, et al.Variation of resistant starch content in different processing types and their starch granules properties in rice[J]. Carbohydrate polymers, 2022, 276:118742. [6] CAI Y, ZHANG W W, FU Y S, et al.Du13 encodes a C2H2 zinc-finger protein that regulates Wxb pre-mRNA splicing and microRNA biogenesis in rice endosperm[J]. Plant biotechnology journal, 2022, 20(7):1387-1401. [7] 罗曦,黄锦峰,朱永生,等.水稻功米3号高抗性淀粉性状的遗传分析[J].农业生物技术学报,2014,22(1):10-16. [8] GAO Z Y, ZENG D L, CUI X, et al.Map-based cloning of the ALK gene, which controls the gelatinization temperature of rice[J]. Science in China series C:Life sciences, 2003, 46(6):661-668. [9] MIURA S, CROFTS N, SAITO Y, et al.Starch synthase IIa-deficient mutant rice line produces endosperm starch with lower gelatinization temperature than Japonica rice cultivars[J]. Frontiers in plant science, 2018, 9:645. [10] HUANG L C, XIAO Y, ZHAO W, et al.Creating high-resistant starch rice by simultaneous editing of SS3a and SS3b[J]. Plant biotechnology journal, 2024, 22(4):787-789. [11] WANG A Q, JING Y H, CHENG Q, et al.Loss of function of SS Ⅲ a and SS Ⅲ b coordinately confers high RS content in cooked rice[J]. Proceedings of the national academy of sciences of the United States of America, 2023, 120(19):e2220622120. [12] YANG R F, SUN C L, BAI J J, et al.A putative gene sbe3-rs for resistant starch mutated from SBE3 for starch branching enzyme in rice (Oryza sativa L.)[J]. PLoS one, 2012, 7(8):e43026. [13] BAYSAL C, HE W S, DRAPAL M, et al.Inactivation of rice starch branching enzyme Ⅱb triggers broad and unexpected changes in metabolism by transcriptional reprogramming[J]. Proceedings of the national academy of sciences of the United States of America, 2020, 117(42):26503-26512. [14] CHEN Y L, LUO L L, XU F F, et al.Carbohydrate repartitioning in the rice starch branching enzyme Ⅱ b mutant stimulates higher resistant starch content and lower seed weight revealed by multiomics analysis[J]. Journal of agricultural and food chemistry, 2022, 70(31):9802-9816. [15] 罗嘉锐,竺正航,郝晴文,等.利用单片段代换系鉴定水稻抗性淀粉相关基因[J].华南农业大学学报,2023,44(5):708-717. [16] TSUIKI K, FUJISAWA H, ITOH A, et al.Alterations of starch structure lead to increased resistant starch of steamed rice:Identification of high resistant starch rice lines[J]. Journal of cereal science, 2016, 68:88-92. [17] 沈伟桥,舒小丽,张琳琳,等.加工型功能早籼稻新品种“浙辐201”的选育与特性[J].核农学报,2006,20(4):312-314. [18] 杨树明,曾亚文,王江民,等.粳型水稻高钙新品系功米1号的选育与营养评价[J].西南农业学报,2008,21(6):1515-1518. [19] 雷国方,杨树明,曾亚文,等.粳型水稻高钙富锌新品系功米2号选育及栽培技术[J].农业科技通讯,2010(1):138-139. [20] 伍平,马伟.云南选育出世界首个可降血糖稻米[N].云南科技报,2014-07-08(001). [21] 朱辉明,白建江,王慧,等.高抗性淀粉粳稻新品系稻米淀粉特性[J].中国农学通报,2010,26(14):108-112. [22] 杨瑞芳,朴钟泽,万常照,等.高抗性淀粉水稻新品种优糖稻2号的选育及其特征特性[J].中国稻米,2020,26(1):94-95,99. [23] 杨瑞芳,白建江,万常照,等.高抗性淀粉含量粳稻新品种‘优糖稻3号'的选育[J].上海农业学报,2022,38(2):6-9. [24] 汪彤.我省首个稻米联盟打造功能稻米低糖护肾产品今年将上市[N].湖北日报,2023-02-24(1). [25] 徐慧,闻杰,段盛林,等.“建康1号”低GI大米对2型糖尿病患者血糖水平的影响[J].上海医药,2023,44(7):41-45. [26] 蒋彦婕,杨杰,王芳权,等.低血糖生成指数水稻南粳丝苗的选育及应用[J].江苏农业科学,2022,50(18):299-302. [27] 杨雪丽,欧旭华,付澳秋,等.高抗性淀粉水稻的遗传育种研究进展[J].广东农业科学,2025,52(1):135-145. [28] 吴殿星, 舒小丽,张宁.适宜糖尿病食用高抗性淀粉水稻种质创制、机理特性及产业开发[EB/OL].(2021-10-09)[2026-01-14].https://kns.cnki.net/kcms2/article/abstract?v=1EB3pfwoRP4eLlIdscRGdnwc20ImY3W91qNsI2gm2GdSndnOscIzRiQoazRoxuMEW6ICp_eMICnqEhXDirZibcM3uSRlbJ8loW2SrmQfnNx6oPTu9mY-6yNrGN7M0pYw-Aj_i7aXWVjshi-47I_SUPnS1fXgf-4kDm0_auNdv63AJ5b2DaIVw==&uniplatform=NZKPT&language=CHS. [29] 张宁,孙健,熊海铮,等.高抗性淀粉含量糖尿病专用粳稻的选育及其特征特性[J].中国稻米,2011,17(6):63-65. [30] 陈云芬. 云南功能稻米育种关键技术体系研究获突破[J].农村实用技术,2010(8):16. [31] 低GI(血糖生成指数)杂交稻米新品种“清优308”[J].福建稻麦科技,2023,41(3):72. [32] 高抗性淀粉水稻品种适口性改良[J].南方农业,2025,19(23):2. [33] 田娟娟,刘思彤,李继明.国内外低GI水稻研发和商业化进展[J].黑龙江粮食,2026(1):23-25. [34] 胡继银,杨耀松.低升糖指数杂交水稻粤泰优马来的选育及应用[J].杂交水稻,2019,34(6):23-25,43. [35] 黄伟英. 健糖米淀粉结构表征及调节血糖功效的研究[D].广州:仲恺农业工程学院,2024. [36] 杨朝柱,李春寿,舒小丽,等.富含抗性淀粉水稻突变体的淀粉特性[J].中国水稻科学,2005(6):516-520. [37] OUYANG J,ZHU Z C,GUAN Y S,et al.Novel wx gene functional markers for high-resistant starch rice breeding[J]. Genes, 2026, 17(1):89-89. [38] BUTARDO V M, FITZGERALD M A, BIRD A R, et al.Impact of down-regulation of starch branching enzyme Ⅱ b in rice by artificial microRNA-and hairpin RNA-mediated RNA silencing[J]. Journal of experimental botany, 2011, 62(14):4927-4941. [39] MATSUMOTO K, MAEKAWA M, NAKAYA M, et al.Wx/ae double-mutant brown rice prevents the rise in plasma lipid and glucose levels in mice[J]. Bioscience, biotechnology, and biochemistry, 2012, 76(11):2112-2117. [40] 焦桂爱,唐绍清,罗炬,等.高直链淀粉突变体Goamy2的淀粉糊化特性及淀粉结构分析[J].中国水稻科学,2010,24(1):81-86. [41] 焦桂爱,唐绍清,罗炬,等.水稻抗性淀粉突变体抗性淀粉结构的比较研究[J].中国水稻科学,2006,20(6):645-648. [42] BADONI S, PASION-UY E A, KOR S, et al. Multiomics of a rice population identifies genes and genomic regions that bestow low glycemic index and high protein content[J]. Proceedings of the national academy of sciences of the United States of America, 2024, 121(36):e2410598121. |