
浙江农业科学 ›› 2026, Vol. 67 ›› Issue (6): 1573-1580.DOI: 10.16178/j.issn.0528-9017.20250188
• 综述 • 上一篇
蒋志晗1(
), 姚嘉1, 谷欣悦1, 孙崇波2, 徐沛1, 柯旭波1(
)
收稿日期:2025-03-13
出版日期:2026-06-11
发布日期:2026-06-12
通讯作者:
柯旭波
作者简介:柯旭波,E-mail:kxb0926@cjlu.edu.cn。基金资助:
JIANG Zhihan1(
), YAO Jia1, GU Xinyue1, SUN Chongbo2, XU Pei1, KE Xubo1(
)
Received:2025-03-13
Online:2026-06-11
Published:2026-06-12
Contact:
KE Xubo
摘要:
兰花作为一种具有丰富文化内涵和多重价值的花卉,广泛分布于全球,其育种研究在观赏、经济、药用等领域具有重要意义。本文综述了兰花的生物学特性、种质资源的多样性与分布、传统育种方法及现代生物技术在兰花育种中的应用,探讨了兰花育种的创新策略。通过对兰花的花形、花色、花香等性状分子遗传机制的深入研究,揭示了其遗传与育种潜力,并对未来兰花育种及发展进行展望,将借助智能化、精准化的育种体系与生态友好的理念,推动全球花卉市场的可持续发展。
中图分类号:
蒋志晗, 姚嘉, 谷欣悦, 孙崇波, 徐沛, 柯旭波. 兰花种质资源与育种技术研究进展[J]. 浙江农业科学, 2026, 67(6): 1573-1580.
JIANG Zhihan, YAO Jia, GU Xinyue, SUN Chongbo, XU Pei, KE Xubo. Advances in germplasm resources and breeding of orchid[J]. Journal of Zhejiang Agricultural Sciences, 2026, 67(6): 1573-1580.
| [1] | 李纪红,纪仕勋. 兰花 低调的林中仙葩[J]. 森林与人类,2021(7):100-107. |
| LI J H, JI S X. Orchids:a low-key immortals in the forest[J]. Forest & Humankind,2021(7):100-107. | |
| [2] | 成倩,纳海燕. 兰花的经济价值与文化价值浅析[J]. 天府新论,2007(B12):123-125. |
| CHENG Q, NA H Y. Analysis on the economic value and cultural value of orchids[J]. New Horizons from Tianfu,2007(B12):123-125. | |
| [3] | 贾亚萍,陈玲,张瑾,等. 白玉兰花的代谢物成分及药用价值解析[J]. 植物生理学报,2022,58(10):1995-2005. |
| JIA Y P, CHEN L, ZHANG J,et al. Analysis of metabolomic composition and medicinal value of Magnolia denudata [J]. Plant Physiology Journal,2022,58(10):1995-2005. | |
| [4] | 唐乃庆,钰青. 为了中国兰花的振兴[J]. 中国农村科技,2023(12):16-19. |
| TANG N Q, YU Q. For the revitalization of orchids in China[J]. China Rural Science & Technology,2023(12):16-19. | |
| [5] | 杨前宇,何聪芬,梁立雄,等. 菌根真菌对3种兰花幼苗生长作用研究[J]. 核农学报,2019,33(4):687-695. |
| YANG Q Y, HE C F, LIANG L X,et al. Effect of mycorrhizal fungi on the plantlets growth of three species of orchid[J]. Journal of Nuclear Agricultural Sciences,2019,33(4):687-695. | |
| [6] | YANG S J, SUN M, YANG Q Y,et al. Two strategies by epiphytic orchids for maintaining water balance:thick cuticles in leaves and water storage in pseudobulbs[J]. AoB Plants,2016,8:plw046. |
| [7] | ZHANG S B, YANG Y J, LI J W,et al. Physiological diversity of orchids[J]. Plant Diversity,2018,40(4):196-208. |
| [8] | ZHANG F P, HUANG J L, ZHANG S B. Trait evolution in the slipper orchid Paphiopedilum in China[J]. Plant Signaling & Behavior,2016,11(3):e1149668. |
| [9] | 陈宇勒. 兰苑莳艺·育兰要诀(一):温度[J]. 园林,2005,22(1):34-35. |
| CHEN Y L. Tricks and tips for Chinese orchids cultivation:temperature[J]. Garden,2005,22(1):34-35. | |
| [10] | BALILASHAKI K, DEHGHANIAN Z, GOUGERDCHI V,et al. Progress and prospect of orchid breeding:an overview[M]//Advances in orchid biology,biotechnology and omics. Singapore:Springer Nature Singapore,2023:261-283. |
| [11] | AUNG Y L, MU A T, AUNG M H,et al. An annotated checklist of Myanmar orchid flora[J]. PhytoKeys,2020,138:49-112. |
| [12] | CHASE M W, CAMERON K M, FREUDENSTEIN J V,et al. An updated classification of Orchidaceae[J]. Botanical Journal of the Linnean Society,2015,177(2):151-174. |
| [13] | RASMUSSEN H N, DIXON K W, JERSÁKOVÁ J,et al. Germination and seedling establishment in orchids:a complex of requirements[J]. Annals of Botany,2015,116(3):391-402. |
| [14] | 中国科学院中国植物志编辑委员会. 中国植物志:第六卷,第一分册,蕨类植物门[M]. 北京:科学出版社,1999:300-350. |
| [15] | 刘仲健. 中国兜兰属植物[M]. 北京:科学出版社,2009:30-45. |
| [16] | 李成儒,董钠,李笑平,等. 兰科植物花发育调控MADS-box基因家族研究进展[J]. 园艺学报,2020,47(10):2047-2062. |
| LI C R, DONG N, LI X P,et al. A review of MADS-box genes,the molecular regulatory genes for floral organ development in Orchidaceae[J]. Acta Horticulturae Sinica,2020,47(10):2047-2062. | |
| [17] | CHEN Y Y, LEE P F, HSIAO Y Y,et al. C- and D-class MADS-box genes from Phalaenopsis equestris(Orchidaceae)display functions in gynostemium and ovule development[J]. Plant and Cell Physiology,2012,53(6):1053-1067. |
| [18] | XU Q Y, YANG Z Y, JIA Y P,et al. PeNAC67-PeKAN2-PeSCL23 and B-class MADS-box transcription factors synergistically regulate the specialization process from petal to lip in Phalaenopsis equestris [J]. Molecular Horticulture,2024,4(1):15. |
| [19] | PAN Z J, CHEN Y Y, DU J S,et al. Flower development of Phalaenopsis orchid involves functionally divergent SEPALLATA-like genes[J]. New Phytologist,2014,202(3):1024-1042. |
| [20] | DE PAOLO S, GAUDIO L, ACETO S. Analysis of the TCP genes expressed in the inflorescence of the orchid Orchis italica [J]. Scientific Reports,2015,5:16265. |
| [21] | LIU D K, ZHANG C L, ZHAO X W,et al. Genome-wide analysis of the TCP gene family and their expression pattern in Cymbidium goeringii [J]. Frontiers in Plant Science,2022,13:1068969. |
| [22] | LIN Y F, CHEN Y Y, HSIAO Y Y,et al. Genome-wide identification and characterization of TCP genes involved in ovule development of Phalaenopsis equestris [J]. Journal of Experimental Botany,2016,67(17):5051-5066. |
| [23] | 王艺,陈明堃,欧悦,等. AP2/ERF转录因子调控兰科植物生长发育和非生物胁迫响应的研究进展[J]. 分子植物育种,2022,20(23):7778-7784. |
| WANG Y, CHEN M K, OU Y,et al. Advances in AP2/ERF transcription factors of Orchidaceae in regulating growth and development and abiotic stress response[J]. Molecular Plant Breeding,2022,20(23):7778-7784. | |
| [24] | ZHANG H N, PAN X L, LIU S H,et al. Genome-wide analysis of AP2/ERF transcription factors in pineapple reveals functional divergence during flowering induction mediated by ethylene and floral organ development[J]. Genomics,2021,113(2):474-489. |
| [25] | 王嘉文. 蝴蝶兰MADS和AP2基因家族的全基因组鉴定与分析[D]. 南昌:南昌大学,2022. |
| WANG J W. Genome-wide identification and analysis of MADS and AP2 gene families in Phalaenopsis aphrodite [D]. Nanchang:Nanchang University,2022. | |
| [26] | ZHANG D Y, LAN S R, YIN W L,et al. Genome-wide identification and expression pattern analysis of KNOX gene family in Orchidaceae[J]. Frontiers in Plant Science,2022,13:901089. |
| [27] | 宫子惠,李奥,张英杰,等. 蝴蝶兰成花分子生物学研究进展[J]. 山东农业科学,2019,51(7):161-166. |
| GONG Z H, LI A, ZHANG Y J,et al. Research progress of Phalaenopsis flowering molecular biology[J]. Shandong Agricultural Sciences,2019,51(7):161-166. | |
| [28] | WANG Q Q, LI Y Y, CHEN J T,et al. Genome-wide identification of YABBY genes in three Cymbidium species and expression patterns in C. ensifolium(Orchidaceae)[J]. Frontiers in Plant Science,2022,13:995734. |
| [29] | CHEN Y Y, HSIAO Y Y, CHANG S B,et al. Genome-wide identification of YABBY genes in Orchidaceae and their expression patterns in Phalaenopsis [J]. Genes,2020,11(9):955. |
| [30] | 王冲,宋阳. 基于转录组数据解析大花君子兰花瓣花青素代谢差异[J]. 分子植物育种,2023,21(4):1093-1102. |
| WANG C, SONG Y. Analyze the differences in anthocyanin metabolism based on transcriptome sequencing of petal in Clivia miniata [J]. Molecular Plant Breeding,2023,21(4):1093-1102. | |
| [31] | CUI X Q, DENG J L, HUANG C Y,et al. Transcriptomic analysis of the anthocyanin biosynthetic pathway reveals the molecular mechanism associated with purple color formation in Dendrobium nestor [J]. Life,2021,11(2):113. |
| [32] | WONG D C J, PERKINS J, PEAKALL R. Anthocyanin and flavonol glycoside metabolic pathways underpin floral color mimicry and contrast in a sexually deceptive orchid[J]. Frontiers in Plant Science,2022,13:860997. |
| [33] | LINGGABUWANA A, PUTRI S U, KURNIAWAN F Y,et al. Isolation and characterization of chalcone synthase gene in variegated-flower of Dendrobium ‘Enobi’ and Phalaenopsis hybrid orchids[J]. HAYATI Journal of Biosciences,2023,31(2):382-391. |
| [34] | LIU X J, CHUANG Y N, CHIOU C Y,et al. Methylation effect on chalcone synthase gene expression determines anthocyanin pigmentation in floral tissues of two Oncidium orchid cultivars[J]. Planta,2012,236(2):401-409. |
| [35] | LEWIS D H, WANG L, NGO H M,et al. Control of anthocyanin pigmentation during flower development in Cymbidium orchid[J]. Acta Horticulturae,2015(1104):333-340. |
| [36] | WANG L M, ZHANG J, DONG X Y,et al. Identification and functional analysis of anthocyanin biosynthesis genes in Phalaenopsis hybrids[J]. Biologia Plantarum,2018,62(1):45-54. |
| [37] | 许传俊,黄珺梅,黄雯,等. 不同花色品种蝴蝶兰花色素苷含量分析及相关基因表达研究[J]. 华南师范大学学报(自然科学版),2015,47(3):93-99. |
| XU C J, HUANG J M, HUANG W,et al. Studies on the anthocyanin content and related gene expression in different floral colors cultivars of Phalaenopsis [J]. Journal of South China Normal University(Natural Science Edition),2015,47(3):93-99. | |
| [38] | BERMAN J, SHENG Y M, GÓMEZ GÓMEZ L,et al. Red anthocyanins and yellow carotenoids form the color of orange-flower gentian(Gentiana lutea L.)[J]. PLoS One,2016,11(9):e0162410. |
| [39] | LIU J X, CHIOU C Y, SHEN C H,et al. RNA interference-based gene silencing of phytoene synthase impairs growth,carotenoids,and plastid phenotype in Oncidium hybrid orchid[J]. Springer Plus,2014,3(1):478. |
| [40] | LI Y, SHAN X, GAO R,et al. MYB repressors and MBW activation complex collaborate to fine-tune flower coloration in Freesia hybrida [J]. Communications Biology,2020,3:396. |
| [41] | FU Z Z, WANG L M, SHANG H Q,et al. An R3-MYB gene of Phalaenopsis,MYBx1,represses anthocyanin accumulation[J]. Plant Growth Regulation,2019,88(2):129-138. |
| [42] | YANG K, HOU Y B, WU M,et al. DoMYB5 and DobHLH24,transcription factors involved in regulating anthocyanin accumulation in Dendrobium officinale [J]. International Journal of Molecular Sciences,2023,24(8):7552. |
| [43] | 王文静,吕思佳,汪庆昊,等. 植物花香物质代谢与调控研究进展[J]. 分子植物育种,2021,19(22):7612-7617. |
| WANG W J, LYU S J, WANG Q H,et al. Research advance on the metabolism and regulation of plant floral fragrance[J]. Molecular Plant Breeding,2021,19(22):7612-7617. | |
| [44] | 马迪,肖文芳,李佐,等. 兰科植物花香成分研究进展[J]. 中国农学通报,2023,39(16):52-60. |
| MA D, XIAO W F, LI Z,et al. Research progress on floral scent components of Orchidaceae[J]. Chinese Agricultural Science Bulletin,2023,39(16):52-60. | |
| [45] | 陈艺荃,方能炎,叶秀仙,等. 基于转录组测序的文心兰花香形成分析[J]. 核农学报,2022,36(3):578-588. |
| CHEN Y Q, FANG N Y, YE X X,et al. Analysis of floral scent formation in Oncidium orchid based on transcriptome sequencing[J]. Journal of Nuclear Agricultural Sciences,2022,36(3):578-588. | |
| [46] | BERA P, CHAKRABARTI S, GAIKWAD N K,et al. Developmental variation in floral volatiles composition of a fragrant orchid Zygopetalum maculatum(Kunth)Garay[J]. Natural Product Research,2019,33(3):435-438. |
| [47] | KAUR A, YADAV V G, PAWAR S V,et al. Insights to phenylalanine ammonia lyase(PAL)and secondary metabolism in orchids:an in silico approach[J]. Biochemical Genetics,2024,62(1):413-435. |
| [48] | DONG N Q, LIN H X. Contribution of phenylpropanoid metabolism to plant development and plant-environment interactions[J]. Journal of Integrative Plant Biology,2021,63(1):180-209. |
| [49] | 郑宝强,赵志国,任建武,等. 卡特兰不同花期的香气成分及其变化[J]. 林业科学研究,2014,27(5):651-656. |
| ZHENG B Q, ZHAO Z G, REN J W,et al. Changes of aroma components in Cattleya in different florescence[J]. Forest Research,2014,27(5):651-656. | |
| [50] | 童妍,张燕萍,胡美娟,等. 蝴蝶兰新型杂交品种挥发性成分分析[J]. 广西植物,2023,43(6):1016-1026. |
| TONG Y, ZHANG Y P, HU M J,et al. Volatile component analysis of new hybrid varieties of Phalaenopsis [J]. Guihaia,2023,43(6):1016-1026. | |
| [51] | 张晓莹,赵福康,梅欢,等. 兰花新品种‘西子袅袅’[J]. 园艺学报,2024,51(S1):167-168. |
| ZHANG X Y, ZHAO F K, MEI H,et al. A new cultivar of Cymbidium ‘Xiziniaoniao’[J]. Acta Horticulturae Sinica,2024,51(S1):167-168. | |
| [52] | 赵坤坤,王筠竹,杜建科,等. 兰花新品种‘飞天仙女’[J]. 园艺学报,2024,51(S2):173-174. |
| ZHAO K K, WANG Y Z, DU J K,et al. A new Cymbidium cultivar ‘Flying Fairy’[J]. Acta Horticulturae Sinica,2024,51(S2):173-174. | |
| [53] | 陈建兵,王美娜,王玉,等. 兰花属间杂交新品种‘CNOCC紫玉’[J]. 园艺学报,2023,50(S1):137-138. |
| CHEN J B, WANG M N, WANG Y,et al. A new cultivar of Vandachostylis ‘CNOCC Ziyu’[J]. Acta Horticulturae Sinica,2023,50(S1):137-138. | |
| [54] | 周辉明,莫智龙,陈昌铭,等. 兰花新品种‘沙阳翠蝶’[J]. 园艺学报,2022,49(12):2767-2768. |
| ZHOU H M, MO Z L, CHEN C M,et al. A new Cymbidium cultivar ‘Shayang Cuidie’[J]. Acta Horticulturae Sinica,2022,49(12):2767-2768. | |
| [55] | 罗维宇,宿庆连,曾瑞珍,等. 兰花诱变育种研究进展[J]. 热带作物学报,2023,44(11):2135-2148. |
| LUO W Y, SU Q L, ZENG R Z,et al. Advances in mutagenesis breeding research of orchids[J]. Chinese Journal of Tropical Crops,2023,44(11):2135-2148. | |
| [56] | 李婧嫄. 60Co-γ射线对寒兰根状茎的辐射诱变效应研究[D]. 南昌:南昌大学,2011. |
| LI J Y. Radiation-induced effects on the rhizomes of Cymbidium kanran Makino in-vitro after 60Co-gamma ray radiation[D]. Nanchang:Nanchang University,2011. | |
| [57] | 孙音,郝军,房义福,等. 60Co-γ辐射对兜兰组培苗的诱变效应[J]. 中国农学通报,2022,38(15):45-52. |
| SUN Y, HAO J, FANG Y F,et al. Mutagenic effect of 60Co-γ on tissue culture seedlings of Paphiopedilum [J]. Chinese Agricultural Science Bulletin,2022,38(15):45-52. | |
| [58] | WIDIARSIH S, DWIMAHYANI I. Induced mutation on Indonesian black orchid(Coelogyne pandurata Lindley)in-vitro culture by gamma irradiation[J]. IOP Conference Series:Earth and Environmental Science,2023,1160(1):012001. |
| [59] | WANNAJINDAPORN A, KATIVAT C, TANTASAWAT P A. Mutation induction of Dendrobium ‘Earsakul’ using sodium azide[J]. HortScience,2016,51(11):1363-1370. |
| [60] | 张月盈,李枝林,和凤美,等. 观赏用微型兰花组织培养最佳配方的优化[J]. 北方园艺,2024(13):49-57. |
| ZHANG Y Y, LI Z L, HE F M,et al. Optimization of the best formula for tissue culture of ornamental miniature orchid[J]. Northern Horticulture,2024(13):49-57. | |
| [61] | KUMARA P U, ATAPATTU A G K K M W, HERATH H M I,et al. Low-cost gelling agent in tissue culture technology for the orchid regeneration[J]. Romanian Journal of Horticulture,2022,3(3):53-60. |
| [62] | 孙玲,沈芷若,万志兵,等. 珠兰花组织培养体系建立[J]. 吉林农业科技学院学报,2020,29(1):4-8. |
| SUN L, SHEN Z R, WAN Z B,et al. Establishment of tissue culture system for Chloranthus spicatus(Thunb.)Makino[J]. Journal of Jilin Agricultural Science and Technology College,2020,29(1):4-8. | |
| [63] | 孙崇波,刘玫,谢鸣,等. 大花蕙兰类原球茎薄切片高频诱导体系的建立[J]. 浙江农业学报,2008,20(5):313-317. |
| SUN C B, LIU M, XIE M,et al. Establishment of highly regeneration system in vitro of protocorn-like body thin cell layers of Cymbidium hybridum [J]. Acta Agriculturae Zhejiangensis,2008,20(5):313-317. | |
| [64] | 孙崇波,刘玫,施季森,等. 蕙兰种子无菌萌发及植株再生[J]. 浙江农业学报,2008,20(4):231-235. |
| SUN C B, LIU M, SHI J S,et al. Aseptic germination of Cymbidium faberi seeds and in vitro plant regeneration[J]. Acta Agriculturae Zhejiangensis,2008,20(4):231-235. | |
| [65] | TIWARI P, SHARMA A, BOSE S K,et al. Advances in orchid biology:biotechnological achievements,translational success,and commercial outcomes[J]. Horticulturae,2024,10(2):152. |
| [66] | 冯垒,王义琴,韩欣妤,等. 墨兰PI基因过表达载体构建及功能初步分析[J]. 分子植物育种,2023,21(9):2941-2947. |
| FENG L, WANG Y Q, HAN X Y,et al. Construction of overexpression vector of PI gene in Cymbidium sinense and preliminary analysis of its function[J]. Molecular Plant Breeding,2023,21(9):2941-2947. | |
| [67] | CHEN J, WANG L, LIANG H,et al. Overexpression of DoUGP enhanced biomass and stress tolerance by promoting polysaccharide accumulation in Dendrobium officinale [J]. Frontiers in Plant Science,2020,11:533767. |
| [68] | WANG Y W, LIU L, SONG S Y,et al. DOFT and DOFTIP1 affect reproductive development in the orchid Dendrobium Chao Praya Smile[J]. Journal of Experimental Botany,2017,68(21/22):5759-5772. |
| [69] | 刘换换,何国仁,向林,等. 利用酵母双杂系统筛选与春兰CgSEP1相互作用的蛋白[J]. 基因组学与应用生物学,2019,38(2):687-693. |
| LIU H H, HE G R, XIANG L,et al. Identification of Cymbidium goeringii CgSEP1 interacting proteins by yeast two-hybrid screening[J]. Genomics and Applied Biology,2019,38(2):687-693. | |
| [70] | TONG C G, WU F H, YUAN Y H,et al. High-efficiency CRISPR/Cas-based editing of Phalaenopsis orchid MADS genes[J]. Plant Biotechnology Journal,2020,18(4):889-891. |
| [71] | SEMIARTI E, NOPITASARI S, SETIAWATI Y,et al. Application of CRISPR/Cas9 genome editing system for molecular breeding of orchids[J]. Indonesian Journal of Biotechnology,2020,25(1):61. |
| [72] | SETIAWATI Y, NOPITASARI S, LAWRIE M D,et al. Agrobacterium-mediated transformation facillitates the CRISPR/Cas9 genome editing system in Dendrobium macrophyllum A. Rich orchid[M]// The 6th International Conference on Biological Science ICBS 2019:“Biodiversity as a Cornerstone for Embracing Future Humanity”. New York:AIP Publishing,2020,2260:060016. |
| [73] | 吴林鲜,兰晓天,朱永平,等. 墨兰B类PI基因多靶点CRISPR/Cas9载体构建[J]. 分子植物育种,2018,16(21):7027-7031. |
| WU L X, LAN X T, ZHU Y P,et al. Construction of multi-target CRISPR/Cas9 vector for PI gene in Cymbidium sinense [J]. Molecular Plant Breeding,2018,16(21):7027-7031. | |
| [74] | SUPUTRI N P A E O, PRASOJO I S, PRABOWO L A T,et al. Identification of early flowering mutant gene in Phalaenopsis amabilis (L. ) Blume for sgRNA construction in CRISPR/Cas9 genome editing system[J]. Brazilian Journal of Biology,2023,84:e268133. |
| [75] | LIU Y, DUAN S D, JIA Y,et al. Polyploid induction and karyotype analysis of Dendrobium officinale [J]. Horticulturae,2023,9(3):329. |
| [76] | 李雪娇,李枝林,黄丽萍. 野生碧玉兰多倍体诱导及鉴定[J]. 中国农学通报,2010,26(13):261-266. |
| LI X J, LI Z L, HUANG L P. Induction and identification of polyploids in wild Cymbidium lowianum [J]. Chinese Agricultural Science Bulletin,2010,26(13):261-266. | |
| [77] | 李涵,郑思乡,龙春林. 齿瓣石斛多倍体的诱导初报[J]. 云南植物研究,2005,27(5):552-556. |
| LI H, ZHENG S X, LONG C L. Induction of polyploid of Dendrobium devonianum [J]. Acta Botanica Yunnanica,2005,27(5):552-556. |
| [1] | 俞庆, 董青, 王翔, 徐志彬, 毛俐慧, 曹雪蕊, 邹清成. 我国朱顶红品种选育及组培快繁研究进展[J]. 浙江农业科学, 2026, 67(5): 1269-1274. |
| [2] | 李海申, 徐丽君, 李振丰, 徐建中, 王恒飞, 黄旭梁. 益母草种质资源遗传多样性及其性状、品质分析[J]. 浙江农业科学, 2026, 67(4): 904-915. |
| [3] | 宫福雨, 徐建中, 李振丰, 王志安. 基于主成分及聚类分析的浙麦冬种质资源综合评价[J]. 浙江农业科学, 2026, 67(3): 644-651. |
| [4] | 张志红, 黄凤明, 巫明明, 翟荣荣, 叶靖, 叶胜海. 功能性水稻育种研究进展[J]. 浙江农业科学, 2026, 67(3): 787-793. |
| [5] | 黄秀, 柯甫志, 孙立方, 聂振朋, 崔长江, 王罗云. 优化柑橘杂交坐果率的方法研究[J]. 浙江农业科学, 2026, 67(2): 400-404. |
| [6] | 陈超, 刘庭付, 陈小央, 周大云, 潘逸明, 祝彪, 缪叶旻子. 浙西南地区野菜种质资源调查研究[J]. 浙江农业科学, 2025, 66(4): 1048-1052. |
| [7] | 莫俊杰, 吴相昀, 刘文通, 陈楚润, 高志超. 水稻群体育种分离世代的变异性研究[J]. 浙江农业科学, 2025, 66(4): 805-812. |
| [8] | 王伟, 祁永斌, 王俊敏, 肖长明, 李克宽, 刘超纲, 刘庆龙. 圆粒专用型两系早籼恢复系辐269的选育及应用[J]. 浙江农业科学, 2025, 66(4): 843-847. |
| [9] | 廖闻慧, 邵长生, 龚仲幸, 郑慧俊. 康乃馨等杜鹃品种与映山红杂交一代表型分析[J]. 浙江农业科学, 2025, 66(4): 964-968. |
| [10] | 李玲玲, 邓紫元. 论农民参与种质资源惠益分享的正当性与实现路径[J]. 浙江农业科学, 2025, 66(3): 551-556. |
| [11] | 余扬眉, 李豪杰, 苗苗. 山区中药材产业惠益共享机制研究——以开化县为例[J]. 浙江农业科学, 2025, 66(3): 557-561. |
| [12] | 吴燕君, 洪文英, 朱徐燕, 华永刚, 汪群, 倪进庄, 胡勤勉, 陈瑞. 杭州白黄瓜种质资源病虫侵害风险研究及其防治技术[J]. 浙江农业科学, 2025, 66(3): 681-686. |
| [13] | 王薇薇, 沈峰, 吴永成, 梅燚, 郑佳秋, 祖艳侠, 刘哲, 张丽娜, 冯汝超. 植物耐盐分子机制及分子遗传育种研究进展[J]. 浙江农业科学, 2025, 66(3): 769-775. |
| [14] | 钱涛, 沈卫锋, 金婷, 詹晖, 汪新华, 周阳阳. 开化清水鱼养殖模式现状、病害挑战与可持续发展对策[J]. 浙江农业科学, 2025, 66(12): 2865-2870. |
| [15] | 石丽敏, 吕学高, 朱正梅, 张飞萃, 卢华兵. 不同诱变方式构建的粟米突变体库比较[J]. 浙江农业科学, 2025, 66(11): 2612-2616. |
| 阅读次数 | ||||||
|
全文 |
|
|||||
|
摘要 |
|
|||||