[1] 杨玲, 梁思琪, 潘佳明, 等. 濒危植物百山祖冷杉和资源冷杉的物种划分及其遗传资源的保护[J]. 植物生态学报, 2023, 47(12): 1629−1645.

YANG Ling, LIANG Siqi, PAN Jiaming, et al. Species delimitation and genetic conservation of the endangered firs Abies beshanzuensis and A. ziyuanensis[J]. Chinese Journal of Plant Ecology, 2023, 47(12): 1629−1645. DOI: 10.17521/cjpe.2022.0295.
[2] 陈德良, 陶月良, 吴友贵, 等. 遮荫对百山祖冷杉光合特性和叶绿素荧光参数的影响[J]. 核农学报, 2016, 30(10): 2056−2064.

CHEN Deliang, TAO Yueliang, WU Yougui, et al. Effect of shade on the photosynthetic characteristics and chlorophyll fluorescence parameters of Abies beshanzuensis M. H. Wu[J]. Journal of Nuclear Agricultural Sciences, 2016, 30(10): 2056−2064. DOI: 10.11869/j.issn.100-8551.2016.10.2056.
[3] CHEN Haowei, JIANG Chunxiao, LI Jiyang, et al. Beshanzoides A-D, unprecedented cycloheptanone-containing polyketides from Penicillium commune P-4-1, an endophytic fungus of the endangered conifer Abies beshanzuensis[J]. RSC Advances, 2021, 11(63): 39781−39789. DOI: 10.1039/D1RA08377E.
[4] 哀建国, 邱英雄, 余久华, 等. 百山祖冷杉的ISSR分析优化和遗传多样性初步研究[J]. 浙江大学学报(农业与生命科学版), 2005, 31(3): 277−282.

AI Jianguo, QIU Yingxiong, YU Jiuhua, et al. Optimization of inter simple sequence repeats (ISSR) analysis as applied to preliminary study of genetic variation in Abies beshanzuensis M. H. Wu[J]. Journal of Zhejiang University (Agriculture & Life Sciences), 2005, 31(3): 277−282. DOI: 10.3321/j.issn:1008-9209.2005.03.009.
[5] 哀建国. 百山祖冷杉濒危机制与保护对策研究[D]. 杭州: 浙江大学, 2005.

AI Jianguo. Studies on the Endangerment Mechanism and Conservation Strategies for Abies beshanzuensis[D]. Hangzhou: Zhejiang University, 2005.
[6] GUO Yi, WANG Quanjiu, ZHAO Xue, et al. Field irrigation using magnetized brackish water affects the growth and water consumption of Haloxylon ammodendron seedlings in an arid area[J]. Frontiers in Plant Science, 2022, 13: 929021. DOI: 10.3389/fpls.2022.929021.
[7] WANG Wenyue, HUA Jinguo, ZHANG Zhen, et al. Effects of phosphorus supply levels on the growth and nutrient utilization of Pinus massoniana lamb hybrid saplings[J]. Frontiers in Plant Science, 2025, 16: 1606643. DOI: 10.3389/fpls.2025.1606643.
[8] ZHENG Yueping, NITIN M, WANG Lanlan, et al. Early detection of squash silverleaf and chemical control of Bemisia tabaciusing imidacloprid[J]. International Journal of Pest Management, 2013, 59(1): 10−19. DOI: 10.1080/09670874.2012.738837.
[9] QI Zixuan, YE Yuchen, SUN Lian, et al. Development of an indicator system for solar-induced chlorophyll fluorescence monitoring to enhance early warning of flash drought[J]. Agricultural Water Management, 2025, 312: 109397. DOI: 10.1016/j.agwat.2025.109397.
[10] 庞振. 百山祖冷杉苗木对不同海拔高度和高温胁迫的生理响应及转录组分析[D]. 杭州: 浙江理工大学, 2023.

PANG Zhen. Physiological Response and Transcriptome Analysis of Abies beshanzunesis M. H. Wu Seedlings to Different Altitudes and High Temperature Stress[D]. Hangzhou: Zhejiang Sci-Tech University, 2023.
[11] YANG Haolin, WANG Lin, ZHANG Xiaolei, et al. Exploring optimal soil moisture for seedling tomatoes using thermal infrared imaging and chlorophyll fluorescence techniques[J]. Scientia Horticulturae, 2025, 339: 113846. DOI: 10.1016/j.scienta.2024.113846.
[12] GONG Jiru, ZHANG Zihe, ZHANG Chunlai, et al. Ecophysiological responses of three tree species to a high-altitude environment in the Southeastern Tibetan Plateau[J]. Forests, 2018, 9(2): 48. DOI: 10.3390/f9020048.
[13] 靳百慧, 孙婷, 潘磊, 等. 海拔变化对元阳梯田水稻叶片结构及叶绿素荧光特征的影响[J]. 分子植物育种, 2019, 17(22): 7467−7475.

JIN Baihui, SUN Ting, PAN Lei, et al. Effects of elevation changes on chlorophyll fluorescence characteristics of different rice varieties in Yuanyang Terraces[J]. Molecular Plant Breeding, 2019, 17(22): 7467−7475. DOI: 10.13271/j.mpb.017.007467.
[14] LIU Yuanhuan, LIU Fangli, LONG Bo, et al. Chlorophyll fluorescence characteristics and rapid light response curves of Alpine Rhododendron species across elevation gradients[J]. Horticultural Science and Technology, 2019, 37(4): 463−472. DOI: 10.7235/hort.20190047.
[15] 郭源上, 何明珠, 韩国君, 等. 宁夏干旱区石灰岩矿山废弃地土壤改良及修复植物优选[J]. 植物资源与环境学报, 2024, 33(6): 44−55.

GUO Yuanshang, HE Mingzhu, HAN Guojun, et al. Soil amelioration and restorative plant optimization for wasteland of limestone mine sites in arid region of Ningxia[J]. Journal of Plant Resources and Environment, 2024, 33(6): 44−55. DOI: 10.3969/j.issn.1674-7895.2024.06.05.
[16] 张牡丹, 冯媛, 石珍珍, 等. 干旱和低温胁迫下细胞外ATP对当归幼苗叶绿素含量及其荧光特性的调节[J]. 中国中药杂志, 2019, 44(7): 1305−1313.

ZHANG Mudan, FENG Yuan, SHI Zhengzheng, et al. Regulation of extracellular ATP on chlorophyll content and fluorescence characteristics of Angelica sinensis seedlings under drought and low temperature stress[J]. China Journal of Chinese Materia Medica, 2019, 44(7): 1305−1313. DOI: 10.19540/j.cnki.cjcmm.20190319.101.
[17] MONTANARO G, CARLOMAGNO A, GIORIO P, et al. Are leaf chlorophyll fluorescence and Dark Green stressor-specific fingerprints in grapevine under drought or salt stress? A reanalysis study[J]. Plant Stress, 2025, 17: 100948. DOI: 10.1016/j.stress.2025.100948.
[18] 邓施琴, 美朵卓嘎, 张欢, 等. 遮光对两种兰科植物叶绿素荧光参数的影响[J]. 北方园艺, 2024(22): 38−47.

DENG Shiqin, Meiduozhuoga, ZHANG Huan, et al. Effects of shading on chlorophyll fluorescence parameters of two Orchidaceae species[J]. Northern Horticulture, 2024(22): 38−47. DOI: 10.11937/bfyy.20242317.
[19] 姜霞, 周炳煌, 袁丛军, 等. 马尾松林下3种药用植物光合和叶绿素荧光特征[J]. 贵州林业科技, 2024, 52(4): 38−44.

JIANG Xia, ZHOU Binghuang, YUAN Congjun, et al. Photosynthesis and chlorophyll fluorescence of three medicinal plants under Pinus massoniana Lamb[J]. Guizhou Forestry Science and Technology, 2024, 52(4): 38−44. DOI: 10.16709/j.cnki.gzlykj.2024.04.001.
[20] LI Jiaqi, QIAO Zhensheng, ZONG Dan, et al. Effects of different light qualities on the growth characteristics of Populus trinervis[J]. Phyton, 2024, 93(5): 1043−1056. DOI: 10.32604/phyton.2024.050637.
[21] HUANG D, WU L, CHEN J R, et al. Morphological plasticity, photosynthesis and chlorophyll fluorescence of Athyrium pachyphlebium at different shade levels[J]. Photosynthetica, 2011, 49(4): 611−618. DOI: 10.1007/s11099-011-0076-1.
[22] 刘建锋, 杨文娟, 江泽平, 等. 遮荫对濒危植物崖柏光合作用和叶绿素荧光参数的影响[J]. 生态学报, 2011, 31(20): 5999−6004.

LIU Jianfeng, YANG Wenjuan, JIANG Zeping, et al. Effects of shading on photosynthetic characteristics and chlorophyll fluorescence parameters in leaves of the endangered plant Thuja sutchuenensis[J]. Acta Ecologica Sinica, 2011, 31(20): 5999−6004. DOI: 10.20103/j.stxb.2011.20.016.
[23] CHAI Shengfeng, TANG Jianmin, MALLIK A, et al. Eco-physiological basis of shade adaptation of Camellia nitidissima, a rare and endangered forest understory plant of Southeast Asia[J]. BMC Ecology, 2018, 18: 5. DOI: 10.1186/s12898-018-0159-y.
[24] 陈超, 金则新, 袁梦, 等. 不同光照强度下濒危植物景宁木兰幼苗光合特性的季节变化[J]. 浙江农林大学学报, 2022, 39(5): 950−959.

CHEN Chao, JIN Zexin, YUAN Meng, et al. Seasonal changes of photosynthetic characteristics of seedlings of Magnolia sinostellata under different light intensities[J]. Journal of Zhejiang A&F University, 2022, 39(5): 950−959. DOI: 10.11833/j.issn.2095-0756.20210814.
[25] LIU Bin, WANG Tingjin, LIU Lingjuan, et al. MYB6/bHLH13-AbSUS2 involved in sugar metabolism regulates root hair initiation of Abies beshanzuensis[J]. New Phytologist, 2023, 240(6): 2386-2403. DOI:10.1111/nph.19301.
[26] ZHAO Likang, LI Tao, CHEN Xiaorong, et al. Resistance mechanism of Abies beshanzuensis under heat stress was elucidated through the integration of physiological and transcriptomic analyses[J]. BMC Plant Biololy, 2025, 25(1): 621−635. DOI: 10.1186/s12870-025-06641-4.
[27] 沈宗根, 陈翠琴, 王岚岚, 等. 3种石斛光合作用和叶绿素荧光特性的比较研究[J]. 西北植物学报, 2010, 30(10): 2067−2073.

SHEN Zonggen, CHEN Cuiqin, WANG Lanlan, et al. Photosynthesis and chlorophyll fluorescence characteristics of three Dendrobium species[J]. Acta Botanica Boreali-Occidentalia Sinica, 2010, 30(10): 2067−2073.
[28] HE Zhilong, ZHANG Ying, XUN Chengfeng, et al. Drought resistance evaluation of Camellia oleifera var. ‘Xianglin 210’ grafted onto different rootstocks[J]. Plants, 2025, 14(16): 2568. DOI: 10.3390/plants14162568.
[29] RASOOL A, MANSOOR S, BHAT K M, et al. Mechanisms underlying graft union formation and rootstock scion interaction in horticultural plants[J]. Frontiers in Plant Science, 2020, 11: 590847. DOI: 10.3389/fpls.2020.590847.
[30] LI Hao, AHAMMED G J, ZHOU Guona, et al. Unraveling main limiting sites of photosynthesis under below- and above-ground heat stress in cucumber and the alleviatory role of Luffa rootstock[J]. Frontiers in Plant Science, 2016, 7: 746. DOI: 10.3389/fpls.2016.00746.
[31] DOGAN M, BOLAT I, TURAN M, et al. Differential rootstock-mediated regulation of physiological and hormonal responses enhances apricot resilience to combined drought and heat stress[J]. Physiologia Plantarum, 2025, 177(4): e70423. DOI: 10.1111/ppl.70423.
[32] 王飞, 刘世增, 李得禄. 不同龄沙地云杉光合荧光生理特征的比较[J]. 中国农学通报, 2016, 32(28): 7−10.

WANG Fei, LIU Shizeng, LI Delu. Photosynthetic and fluorescence physiological characteristics of different aged Picea mongolica[J]. Chinese Agricultural Science Bulletin, 2016, 32(28): 7−10.
[33] XIONG B, QIU X, HUANG S J, et al. Comparative analysis of leaf photosynthetic characteristics and fruit sugar content in trees of Citrus cultivar ‘Huangguogan’ of different ages[J]. Photosynthetica, 2020, 58(4): 902−910. DOI: 10.32615/ps.2020.042.
[34] ZHANG Shuqing, YU Wanwen, LU Zhiguo, et al. Hibiscus hamabo rootstock-grafting improves photosynthetic capacity of Hibiscus syriacus under salt stress[J]. Forests, 2023, 14(6): 1226. DOI:10.3390/f14061226.
[35] ĎURKOVIČ J, ČAŇOVÁ I, PRIWITZER T, et al. Field assessment of photosynthetic characteristics in micropropagated and grafted wych elm (Ulmus glabra Huds. ) trees[J]. Plant Cell, Tissue and Organ Culture (PCTOC), 2010, 101(2): 221−228. DOI: 10.1007/s11240-010-9680-1.
[36] BROETTO F, DUARTE HM, LÜTTGE U. Responses of chlorophyll fluorescence parameters of the facultative halophyte and C3-CAM intermediate species Mesembryanthemum crystallinum to salinity and high irradiance stress[J]. Journal of Plant Physiology, 2007, 164(7): 904−912. DOI: 10.1016/j.jplph.2006.04.010.
[37] MAO Haotian, PANG Xuan, LI Teng, et al. Chlorophyllbis essential for the growth, photoprotection, and photosystem I assembly in wheat[J]. The Plant Journal, 2025, 123(4): e70442. DOI: 10.1111/tpj.70442.
[38] 李晓笑, 陶翠, 王清春, 等. 中国亚热带地区4种极危冷杉属植物的地理分布特征及其与气候的关系[J]. 植物生态学报, 2012, 36(11): 1154−1164.

LI Xiaoxiao, TAO Cui, WANG Qingchun, et al. Characteristics of geographic distribution of four critically endangered species of Abies in subtropical China and its relationship with climate[J]. Chinese Journal of Plant Ecology, 2012, 36(11): 1154−1164. DOI: 10.3724/sp.j.1258.2012.01154.