
Chinese Journal of Applied Ecology ›› 2026, Vol. 37 ›› Issue (4): 1329-1341.doi: 10.13287/j.1001-9332.202604.003
• Reviews • Previous Articles Next Articles
GUI Qing1,2,3, MA Changle1,2,3*, WANG Lijuan1,2,3
Received:2025-12-20
Revised:2026-02-27
Online:2026-04-18
Published:2026-05-29
GUI Qing, MA Changle, WANG Lijuan. Research progress on the synthesis, emission, and ecological functions of floral volatile organic compounds[J]. Chinese Journal of Applied Ecology, 2026, 37(4): 1329-1341.
Add to citation manager EndNote|Ris|BibTeX
URL: https://www.cjae.net/EN/10.13287/j.1001-9332.202604.003
| [1] Ollerton J, Winfree R, Tarrant S. How many flowering plants are pollinated by animals?Oikos, 2011, 120: 321-326 [2] 王芳, 范燕萍. 观赏植物花香性状形成及调控机制研究进展. (2026-01-15) [2026-01-29]. 园艺学报. https: //doi. org/10. 16420/j. issn. 0513-353x. 2025-0815 [3] 王振华, 赵晖, 李金甫, 等. 植物源挥发物对昆虫信息素的增效作用及其增效机制. 应用生态学报, 2008, 19(11): 2533-2537 [4] Jette TK, Roger E, Jonathan G. Diversity and distribution of floral scent. Botanical Review, 2006, 72: 1-120 [5] Adebesin F, Widhalm JR, Boachon B, et al. Emission of volatile organic compounds from petunia flowers is facilitated by an ABC transporter. Science, 2017, 356: 1386-1388 [6] Liao P, Maoz I, Shih ML, et al. Emission of floral volatiles is facilitated by cell-wall non-specific lipid transfer proteins. Nature Communications, 2023, 14: 330 [7] 陈芝飞, 蔡莉莉, 郝辉, 等. 香气活力值在食品关键香气成分表征中的应用研究进展. 食品科学, 2018, 39(19): 329-335 [8] 陈艺荃, 林榕燕, 孔兰, 等. 山茶花花香成分鉴定及相关基因的转录组分析. 核农学报, 2024, 38(12): 2281-2293 [9] 温福丽, 蒋晓锋, 贾俊杰, 等. 基于GC-MS结合气味活性值分析四川地区不同品种桂花的风味特征. (2024-08-28)[2026-01-29]. 食品与发酵工业. https: //doi. org/10. 13995/j. cnki. 11-1802/ts. 040368 [10] Cai KY, Ban ZJ, Xu HW, et al. Analysis of floral scent component of three iris species at different stages. Horticulturae, 2024, 10: 153 [11] Li XY, Wu JK, Wang HJ, et al. Evaluation and comparison of pear flower aroma characteristics of seven cultivars. Horticulturae, 2022, 8: 352 [12] 裴诗纯, 童莹, 袁黎娜, 等. 五种乔灌木鲜花挥发物成分与香气特征分析. 天然产物研究与开发, 2025, 37(1): 74-84 [13] 李晓颍, 武军凯, 王海静, 等. ‘飞黄’玉兰花发育期各轮花被片挥发性成分分析. 园艺学报, 2019, 46(10): 2009-2020 [14] Yong YB, Yuan JL, Jin XL, et al. Analysis of aroma volatiles from Michelia crassipes flower and its changes in different flower organs during flowering. Horticulturae, 2023, 9: 442 [15] Bergman ME, Kortbeek RWJ, Gutensohn M, et al. Plant terpenoid biosynthetic network and its multiple layers of regulation. Progress in Lipid Research, 2024, 95: 101287 [16] 薛永常, 王贺贤, 赵娣, 等. 植物萜类化合物生物合成及其功能研究进展. 植物研究, 2025, 45(4): 479-490 [17] 张甜甜, 郑炳松, 袁虎威, 等. 植物挥发性有机物合成与代谢途径及其释放与感知调控机制的研究进展. 天然产物研究与开发, 2023, 35(6): 1068-1080 [18] 喻雪, 皮梦婷, 彭富华, 等. 单萜类化合物生物合成途径的研究进展. 中国中药杂志, 2025, 50(19): 5340-5352 [19] 李德森, 陈月桂, 郭凯, 等. 二倍半萜类天然产物的生物合成研究进展. 药学学报, 2022, 57(4): 931-942 [20] Jia Q, Brown R, Köllner TG, et al. Origin and early evolution of the plant terpene synthase family. Procee-dings of the National Academy of Sciences of the United States of America, 2022, 119: e2100361119 [21] Magnard JL, Roccia A, Caissard JC, et al. Biosynthesis of monoterpene scent compounds in roses. Science, 2015, 349: 81-83 [22] Conart C, Saclier N, Foucher F, et al. Duplication and specialization of NUDX1 in Rosaceae led to geraniol production in rose petals. Molecular Biology and Evolution, 2022, 39: msac002 [23] Shang JZ, Feng DD, Liu H, et al. Evolution of the biosynthetic pathways of terpene scent compounds in roses. Current Biology, 2024, 34: 3550-3563 [24] Sun PL, Dégut C, Réty S, et al. Functional diversification in the Nudix hydrolase gene family drives sesquiterpene biosynthesis in Rosa×wichurana. Plant Journal, 2020, 104: 185-199 [25] Lv MW, Zhang L, Wang YZ, et al. Floral volatile benzenoids/phenylpropanoids: Biosynthetic pathway, regulation and ecological value. Horticulture Research, 2024, 11: uhae220 [26] 谯正林, 胡慧贞, 鄢波, 等. 花香挥发性苯/苯丙素类化合物的生物合成及基因调控研究进展. 园艺学报, 2021, 48(9): 1815-1826 [27] Adebesin F, Widhalm JR, Lynch JH, et al. A peroxisomal thioesterase plays auxiliary roles in plant β-oxidative benzoic acid metabolism. The Plant Journal, 2018, 93: 905-916 [28] 李凯薇, 庄以彬, 唐俊, 等. 植物苯丙素类天然产物生物合成研究进展. 中国科学: 生命科学, 2025, 55(4): 647-660 [29] Kapteyn J, Qualley AV, Xie ZZ, et al. Evolution of cinnamate/p-coumarate carboxyl methyltransferases and their role in the biosynthesis of methylcinnamate. Plant Cell, 2007, 19: 3212-3229 [30] Klempien A, Kaminaga Y, Qualley A, et al. Contribution of CoA ligases to benzenoid biosynthesis in petunia flowers. Plant Cell, 2012, 24: 2015-2030 [31] Mostafa S, Wang Y, Zeng W, et al. Floral scents and fruit aromas: Functions, compositions, biosynthesis, and regulation. Frontiers in Plant Science, 2022, 13: 860157 [32] Liavonchanka A, Feussner I. Lipoxygenases: Occurrence, functions and catalysis. Journal of Plant Physiology, 2006, 163: 348-357 [33] Espino-Díaz M, Sepúlveda DR, González-Aguilar G, et al. Biochemistry of apple aroma: A review. Food Journal of Chemical Technology & Biotechnology, 2016, 54: 375-397 [34] 金蕾, 张大生, 刘卓星, 等. 植物花香产生的代谢途径和分子机制研究进展. 江苏农业科学, 2020, 48(23): 51-59 [35] 孟芹, 杨超. 植物挥发性化合物在植物与病原物互作中的作用. 植物病理学报, 2025, 55(4): 745-755 [36] Wu JY, Cui SM, Liu JS, et al. The recent advances of glucosinolates and their metabolites: Metabolism, physio-logical functions and potential application strategies. Critical Reviews in Food Science and Nutrition, 2023, 63: 4217-4234 [37] Yin XC, Yang HC, Ding KY, et al. PfERF106, a novel key transcription factor regulating the biosynthesis of floral terpenoids in Primula forbesii Franch. BMC Plant Biology, 2024, 24: 851 [38] Li XH, Liu L, Chu J, et al. Functional characterization of terpene synthases SmTPS1 involved in floral scent formation in Salvia miltiorrhiza. Phytochemistry, 2024, 221: 114045 [39] 赵瑞晶, 曹桦, 廖勤昌, 等. 石斛属花香物质的合成及相关基因调控研究进展. 中国农业科技导报, 2024, 26(11): 32-42 [40] Shor E, Ravid J, Sharon E, et al. SCARECROW-like GRAS protein PES positively regulates petunia floral scent production. Plant Physiology, 2023, 192: 409-425 [41] Shor E, Vainstein A. Petunia PHYTOCHROME INTERACTING FACTOR 4/5 transcriptionally activates key regulators of floral scent. Plant Molecular Biology, 2024, 114: 66 [42] Lu HY, Luo ZS, Li D, et al. FaMYB11 promotes the accumulation of volatile esters by regulating FaLOX5 during strawberry (Fragaria × ananassa) ripening. Postharvest Biology and Technology, 2021, 178: 111560 [43] Yan X, Ding WJ, Wu XY, et al. Insights into the MYB-related transcription factors involved in regulating floral aroma synthesis in sweet osmanthus. Frontiers in Plant Science, 2022, 13: 765213 [44] Fenske MP, Hewett Hazelton KD, Hempton AK, et al. Circadian clock gene late elongated hypocotyl directly regulates the timing of floral scent emission in Petunia. Proceedings of the National Academy of Sciences of the United States of America, 2015, 112: 9775-9780 [45] Yon F, Joo Y, Cort L, et al. Silencing Nicotiana attenuata LHY and ZTL alters circadian rhythms in flowers. New Phytologist, 2015, 209: 1058-1066 [46] Krug C, Cordeiro GD, Schäffler I, et al. Nocturnal bee pollinators are attracted to guarana flowers by their scents. Frontiers in Plant Science, 2018, 9: 1072 [47] Barman M, Mitra A. Floral maturation and changing air temperatures influence scent volatiles biosynthesis and emission in Jasminum auriculatum Vahl. Environmental and Experimental Botany, 2021, 181: 104296 [48] Feng HH, Wang XY, Luo Y, et al. Floral scent emission is the highest at the second night of anthesis in Loni-cera japonica (Caprifoliaceae). Journal of Systematics and Evolution, 2022, 61: 530-537 [49] Chuang YC, Lee MC, Chang YL, et al. Diurnal regulation of the floral scent emission by light and circadian rhythm in the Phalaenopsis orchids. Botanical Studies, 2017, 58: 50 [50] Dudareva N. Biochemical and molecular genetic aspects of floral scents. Plant Physiology, 2000, 122: 627-633 [51] Kessler D, Diezel C, Clark DG, et al. Petunia flowers solve the defence/apparency dilemma of pollinator attraction by deploying complex floral blends. Ecology Letters, 2013, 16: 299-306 [52] Wang F, Liu L, Yu RC, et al. Function of floral fragrance-related microRNAs and their targets in Hedychium coronarium. BMC Genomics, 2025, 26: 430 [53] 徐瑾. 菊花香气成分及其挥发的细胞学基础研究. 硕士论文. 泰安: 山东农业大学, 2012 [54] Bergougnoux V, Caissard JC, Jullien F, et al. Both the adaxial and abaxial epidermal layers of the rose petal emit volatile scent compounds. Planta, 2007, 226: 853-866 [55] Huang JQ, Wen JQ, Wu F, et al. Comparative transcriptomic analysis of loquat floral fragrance and hormone synthesis regulation across developmental stages in petals and stamens. Frontiers in Plant Science, 2025, 6: 1574771 [56] 杨姝婷. 梅花花香挥发的部位差异分析及ABCG基因的表达研究. 硕士论文. 太原: 山西农业大学, 2021 [57] Piechulla B, Effmert U, Rohrbeck D, et al. Localization of the synthesis and emission of scent compounds within the flower. Biology of Floral Scent, 2006: 105-124 [58] Wiemer AP, Moré M, Benitez-Vieyra S, et al. A simple floral fragrance and unusual osmophore structure in Cyclopogon elatus (Orchidaceae). Plant Biology, 2009, 11: 506-514 [59] Zenchyzen B, Schmidt SA, Carey S, et al. Chemical, morphological, and genetic characterization of the floral scent and scent-releasing structures of Gynandropsis gynandra (Cleomaceae, Brassicales). Plant Biology, 2025, 27: 710-724 [60] Wang ZL, Yuan YX, Dong R, et al. Salicylic acid regulates biosynthesis of floral fragrance (E)-β-farnesene via NPR3-WRKY1 module in chrysanthemum. Molecular Horticulture, 2025, 5: 52 [61] Ke YG, Farhat A, Zhou YW, et al. Genome-wide ana-lysis and characterization of the Aux/IAA family genes related to floral scent formation in Hedychium coronarium. International Journal of Molecular Science, 2019, 20: 3235 [62] Abbas F, Zhou YW, He JJ, et al. Metabolite and transcriptome profiling analysis revealed that melatonin positively regulates floral scent production in Hedychium coronarium. Frontiers in Plant Science, 2021, 12: 808899 [63] 杨云尧, 张永春, 陈敏敏, 等. 百合花香物质合成与调控机制研究进展. 植物遗传资源学报, 2024, 25(5): 718-726 [64] 陈宇慧, 倪迪安, 张世杰, 等. 不同香型萱草花瓣芳樟醇释放规律及基因表达分析. 植物生理学报, 2025, 61(1): 71-82 [65] Hu ZH, Li TJ, Zheng J, et al. Ca2+signal contributing to the synthesis and emission of monoterpenes regulated by light intensity in Lilium ‘siberia’. Plant Physiology Biochemistry, 2015, 91: 1-9 [66] 孔玉来, 石森堡, 宋晓惠, 等. 金鱼草花中光照强度和MeJA介导的AmbHLHs表达对花香成分的影响. 西南农业学报, 2025, 38(7): 1404-1424 [67] Han JN, Li T, Wang XL, et al. AmMYB24 regulates floral terpenoid biosynthesis induced by blue light in snapdragon flowers. Frontiers in Plant Science, 2022, 13: 885168 [68] 郭海丽, 李际红, 李琴, 等. 流苏树花形态及花香成分的时空动态变化. 林业科学, 2021, 57(10): 81-92 [69] Burkle LA, Runyon JB. Drought and leaf herbivory influence floral volatiles and pollinator attraction. Global Change Biology, 2016, 22: 1644-1654 [70] Glenny WR, Runyon JB, Burkle LA. Drought and increased CO2 alter floral visual and olfactory traits with context-dependent effects on pollinator visitation. New Phytologist, 2018, 220: 785-798 [71] Campbell DR, Sosenski P, Raguso RA. Phenotypic plasticity of floral volatiles in response to increasing drought stress. Annals of Botany, 2019, 123: 601-610 [72] Rering CC, Franco JG, Yeater KM, et al. Drought stress alters floral volatiles and reduces floral rewards, pollinator activity, and seed set in a global plant. Ecosphere, 2020, 11: eo3254 [73] Höfer RJ, Ayasse M, Kuppler J. Water deficit, nitrogen availability, and their combination differently affect floral scent emission in three Brassicaceae species. Journal of Chemical Ecology, 2022, 48: 882-899 [74] Martel C, Cairampoma L, Stauffer FW, et al. Telipogon peruvianus (Orchidaceae) flowers elicit premating behaviour in Eudejeania (Tachinidae) males for pollination. PLoS One, 2016, 11(11): e0165896 [75] Stensmyr MC, Urru I, Collu I, et al. Pollination: Rotting smell of dead-horse arum florets. Nature, 2002, 420: 625-626 [76] Henske J, Saleh NW, Chouvenc T, et al. Function of environment-derived male perfumes in orchid bees. Current Biology, 2023, 33: 2075-2080 [77] Karlsson MF, Proffit M, Birgersson G. Host-plant location by the Guatemalan potato moth Tecia solanivora is assisted by floral volatiles. Chemoecology, 2017, 27: 187-198 [78] 冯臣成, 李迅东, 毛佳, 等. 香蕉花蕾苞片挥发物对西花蓟马的驱避作用. 应用生态学报, 2025, 36(4): 1244-1250 [79] Xu SQ, Kreitzer C, McGale E, et al. Allelic differences of clustered terpene synthases contribute to correlated intraspecific variation of floral and herbivory-induced volatiles in a wild tobacco. New Phytologist, 2020, 228: 1083-1096 [80] Farré-Armengol G, Filella I, Llusià J, et al. β-Ocimene, a key floral and foliar volatile involved in multiple interactions between plants and other organisms. Molecules, 2017, 22: 1148 [81] Rodríguez-Flores MS, Diéguez-Antón A, Seijo-Coello MC, et al. Flora volatile profiles of plants visited by Vespa velutina: A preliminary assessment in the interaction of plant-insect. Journal of Plant Research, 2025, 138: 807-823 [82] Lahondère C, Vinauger C, Okubo RP, et al. The olfactory basis of orchid pollination by mosquitoes. Procee-dings of the National Academy of Sciences of the United States of America, 2020, 117: 708-716 [83] Yue YC, Wang L, Yu RC, et al. Coordinated and high-level expression of biosynthetic pathway genes is responsible for the production of a major floral scent compound methyl benzoate in Hedychium coronarium. Frontiers in Plant Science, 2021, 12: 650582 [84] Karlsson MF, Proffit M, Birgersson G. Host-plant location by the Guatemalan potato moth Tecia solanivora is assisted by floral volatiles. Chemoecology, 2017, 27: 187-198 [85] Guo H, Lackus ND, Köllner TG, et al. Evolution of a novel and adaptive floral scent in wild tobacco. Molecular Biology Evolution, 2020, 37: 1090-1099 [86] Cao Y, Wang J, Germinara GS, et al. Behavioral responses of Thrips hawaiiensis (Thysanoptera: Thripidae) to volatile compounds identified from Gardenia jasminoides Ellis (Gentianales: Rubiaceae). Insects, 2020, 11: 408 [87] Bohman B, Weinstein AM, Phillips RD, et al. 2-(Tetrahydrofuran-2-yl)acetic acid and ester derivatives as long-range pollinator attractants in the sexually deceptive orchid Cryptostylis ovata. Journal of Natural Products, 2019, 82: 1107-1113 [88] Heiduk A, Brake I, Shuttleworth A, et al. ‘Bleeding’ flowers of Ceropegia gerrardii (Apocynaceae-Asclepiadoideae) mimic wounded insects to attract kleptoparasitic fly pollinators. New Phytologist, 2023, 239: 1490-1504 [89] Sasidharan R, Junker RR, Eilers EJ, et al. Floral volatiles evoke partially similar responses in both florivores and pollinators and are correlated with non-volatile reward chemicals. Annals of Botany, 2023, 132: 1-14 [90] Knudsen JT, TollstenL. Trends in floral scent chemistry in pollination syndromes: Floral scent composition in moth-pollinated taxa. Botanical Journal of the Linnean Society, 2010, 113: 263-284 [91] Rachersberger M, Cordeiro GD, Schäffler I, et al. Honey-bee pollinators use visual and floral scent cues to find apple (Malus domestica) flowers. Journal of Agriculture and Food Chemistry, 2019, 67: 13221-13227 [92] Zenchyzen B, Schmidt SA, Carey S, et al. Chemical, morphological, and genetic characterization of the floral scent and scent-releasing structures of Gynandropsis gynandra (Cleomaceae, Brassicales). Plant Biology 2025, 27: 710-724 [93] Amrad A, Moser M, Mandel T, et al. Gain and loss of floral scent production through changes in structural genes during pollinator-mediated speciation. Current Biology, 2016, 26: 3303-3312 [94] Darragh K, Kay KM, Ramírez SR. The convergent evolution of hummingbird pollination results in repeated floral scent loss through gene downregulation. Molecular Biology and Evolution, 2025, 42: msaf027 [95] Zeng G, Barrett SCH, Yuan S, et al. Evolutionary breakdown of distyly to homostyly is accompanied by reductions of floral scent in Primula oreodoxa. Journal of Systematics & Evolution, 2023, 61: 518-529 [96] 张月白, 娄永根. 植物与植食性昆虫化学互作研究进展. 应用生态学报, 2020, 31(7): 2151-2160 [97] Heil M, Bueno JCS. Within-plant signaling by volatiles leads to induction and priming of an indirect plant defense in nature. Proceedings of the National Academy of Sciences of the United States of America, 2007, 104: 5467-5472 [98] Liu GH, Fu JY, Wang LY, et al. Diverse O-methyltransferases catalyze the biosynthesis of floral benzenoids that repel aphids from the flowers of waterlily Nymphaea prolifera. Horticulture Research, 2023, 10: uhad237 [99] Galen C, Kaczorowski R, Todd SL, et al. Dosage-dependent impacts of a floral volatile compound on pollinators, larcenists, and the potential for floral evolution in the alpine skypilot Polemonium viscosum. American Naturalist, 2011, 177: 258-272 [100] Knauer AC, Bakhtiari M, Schiestl FP. Crab spiders impact floral-signal evolution indirectly through removal of florivores. Nature Communications, 2018, 9: 1367 [101] Paul I, Manna S, Bera R, et al. Floral scents, specialized metabolites and stress-response activities in Heritiera fomes and Bruguiera gymnorrhiza from Sundarban mangrove ecosystem. Journal of Plant Research, 2024, 137: 463-484 [102] Horiuchi J, Badri DV, Kimball BA, et al. The floral volatile, methyl benzoate, from snapdragon (Antirrhinum majus) triggers phytotoxic effects in Arabidopsis thaliana. Planta, 2007, 226: 1-10 [103] 焦鹏华, 牛健植, 苗禹博, 等. 2001—2020年全球植被对极端气候的响应. 应用生态学报, 2024, 35(11): 2992-3004 [104] 方运霆, 刘冬伟, 段伊行, 等. 气候变暖对森林生态系统碳汇功能的影响: 机制、方法和主要进展. 生态学杂志, 2024, 43(9): 2551-2565 [105] Yu H, Infante DM, Cooper AR, et al. Evaluating species richness, turnover, and range shifts under climate change for fluvial fishes in Northeastern and Midwestern USA. Ecological Processes, 2025, 14: 43 [106] Peuelas J, Staudt M. BVOCs and global change. Trends in Plant Science, 2010, 15: 133-144 [107] Pinto DM, Himanen SJ, Nissinen A, et al. Host location behaviour of Cotesia plutellae Kurdjumov (Hymenoptera: Braconidae) in ambient and moderately elevated ozone in filed conditions. Environmental Pollution, 2008, 156: 227-231 [108] Chan JK, Parasurama S, Atlas R, et al. Olfaction in the Anthropocene: NO3 negatively affects floral scent and nocturnal pollination. Science, 2024, 383: 607-611 [109] Yuan JS, Himanen SJ, Holopainen JK, et al. Smelling global climate change: Mitigation of function for plant volatile organic compounds. Trends in Ecology & Evolution, 2009, 24: 323-331 |
| [1] | DU Xiaofang, WANG Zhiyun, LI Yingbin, XU Zhenxin, YU Enping, JIANG Siwei, LIANG Wenju, LI Qi. Application and prospects of soil micro-food web in soil health assessment and regulation [J]. Chinese Journal of Applied Ecology, 2026, 37(4): 1342-1352. |
| [2] | LEI Demin, SONG Jinming, ZHONG Guorong, LI Xuegang, LIU Shanshan, YUAN Huamao. Changes of oceanic dissolved inorganic carbon and the regulation of ocean carbon sink [J]. Chinese Journal of Applied Ecology, 2026, 37(3): 945-954. |
| [3] | YU Xuanzi, LI Jiulin, CHU Jinlong. Trade-offs and synergies of ecosystem services in Anhui Province, China based on functional zone identification [J]. Chinese Journal of Applied Ecology, 2025, 36(6): 1616-1626. |
| [4] | GUO Huan, LI Chunyue, KOU Zhaoyang, GAO Chuanyu, ZHANG Le, LI Yifan, DANG Tinghui. Effects of potassium and trace elements on soil ecological functions and health status in Loess Plateau dryland farmland [J]. Chinese Journal of Applied Ecology, 2025, 36(4): 984-994. |
| [5] | LIU Ruowen, ZHAI Junjie, WANG Xing. Research progress on earthworms and soil health. [J]. Chinese Journal of Applied Ecology, 2025, 36(2): 637-646. |
| [6] | ZHANG Weixin, SHEN Zhifeng, ZHAO Cancan, MA Zihe, YANG An, SHAO Yuanhu, ZHAO Jie, FU Shenglei. Status and perspective of soil fauna eco-geography in China [J]. Chinese Journal of Applied Ecology, 2024, 35(5): 1435-1446. |
| [7] | MENG Xinyu, WU Yuanxiang. Supply-demand bundles and ecological function management of urban ecosystem services: Taking central urban area of Qiqihar as an example [J]. Chinese Journal of Applied Ecology, 2023, 34(12): 3393-3403. |
| [8] | ZHANG Guan-hua, YI Liang, DING Wen-feng, WANG Yi-ran, NIU Jun, LI Jian-ming, SUN Bao-yang. Effects of moss biocrust on soil water infiltration in the Three Gorges Reservoir Area, China [J]. Chinese Journal of Applied Ecology, 2022, 33(7): 1835-1842. |
| [9] | GUO Ya-ya, CAO Jia-min, CHE Zhao-bi, YANG Han-jun, HUANG Xing-yu, LU Wei-hua. Effects of dung beetles on decomposition of cattle dung in spring and autumn in a Seriphi-dium-dominated desert, China. [J]. Chinese Journal of Applied Ecology, 2021, 32(5): 1854-1862. |
| [10] | WANG Rong, ZHAO Xue-yan, LIU Jiang-hua, WANG Xiao-qi, LAN Hai-xia, XUE Bing. Dependence of farmers’ livelihoods on environmental resource in key ecological function area: A case study of Gannan Plateau, China [J]. Chinese Journal of Applied Ecology, 2020, 31(2): 554-562. |
| [11] | HAN Guang-xuan, NIU Zhen-guo, LUAN Zhao-qing, WANG Guang-mei, ZHANG Li-wen, GUAN Bo. Construction of healthy wetland ecosphere in estuarine delta: Theory and method. [J]. Chinese Journal of Applied Ecology, 2018, 29(8): 2787-2796. |
| [12] | LI Hui-lei, PENG Jian, HU Yi-na, WU Wen-huan. Ecological function zoning in Inner Mongolia Autonomous Region based on ecosystem service bundles [J]. Chinese Journal of Applied Ecology, 2017, 28(8): 2657-2666. |
| [13] | GUO Shu-hai, WU Bo. A process of aquatic ecological function regionalization: The dual tree framework and conceptual model [J]. Chinese Journal of Applied Ecology, 2017, 28(12): 4051-4056. |
| [14] | HUANG Lin1, CAO Wei1, WU Dan2, GONG Guo-li3, ZHAO Guo-song1. Assessment on the changing conditions of ecosystems in key ecological function zones in China. [J]. Chinese Journal of Applied Ecology, 2015, 26(9): 2758-2766. |
| [15] | WANG Bo1, LIN Xin-da1, DU Yong-jun2. Biosynthesis and endocrine regulation of sex pheromones in moth. [J]. Chinese Journal of Applied Ecology, 2015, 26(10): 3235-3250. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||