[1]

National Pharmacopoeia Committee. 2020. 中国药典 [Pharmacopoeia of the People's Republic of China] (in Chinese). Beijing: China Medical Science Press. pp. 140 https://ydz.chp.org.cn/#/item?bookId=1&entryId=207

[2]

Tu P, He Y, Lou Z. 1994. 肉苁蓉的本草考证 [Herbalogical studies on Herba Cistanches]. 中国中药杂志 [China Journal of Chinese Materia Medica] 19:3−5+61 (in Chinese)

[3]

Wang F, Zhuo B, Wang S, Lou J, Zhang Y, et al. 2021. Atriplex canescens: a new host for Cistanche deserticola. Heliyon 7:e07368

doi: 10.1016/j.heliyon.2021.e07368
[4]

Beckie HJ, Francis A. 2009. The biology of Canadian weeds. 65. Salsola tragus L. (updated). Canadian Journal of Plant Science 89:775−89

doi: 10.4141/cjps08181
[5]

Zhu GL, Sergei LM, Steven EC. 2003. Flora of China, Vol. 15. Beijing: Science Press. pp. 411 https://www.iplant.cn/info/Salsola?t=foc

[6]

Spring JF. 2017. Diversity and management of Russian-thistle (Salsola tragus L.) in the dryland cropping systems of the inland Pacific Northwest. Thesis. Washington State University, USA. pp. 1−25

[7]

Bruckart W, Cavin C, Vajna L, Schwarczinger I, Ryan FJ. 2004. Differential susceptibility of Russian thistle accessions to Colletotrichum gloeosporioides. Biological Control 30:306−11

doi: 10.1016/j.biocontrol.2003.12.001
[8]

Temuer B, Tian Y, Bao L. 2023. 鄂托克旗草地植物资源 [Grassland plant resources in Etuoke Banner]. Chifeng, China: Inner Mongolia Science and Technology Press. pp. 77 (in Chinese)

[9]

Huang LQ, Li MH, A GL, Zhang CH. 2021. 阴山中蒙药资源图志 [Atlas of Chinese and Mongolian Medicinal Resources in Yinshan]. Volume 1. Fuzhou: Fujian Science and Technology Press. pp. 313 (in Chinese)

[10]

Miao J, Zhang K, Liu J, Liu X. 2015. 半干旱区人工封育草地植被生态位研究 [Niche characteristics of plants in artificial fencing field of Yanchi County in semi-arid area]. 水土保持研究 [Research of Soil and Water Conservation] 22:342−47 (in Chinese)

doi: 10.13869/j.cnki.rswc.2015.04.063
[11]

Zhang YW, Han WK, Na R, Tian WS, Cui YJ. 2023. 肉苁蓉及一种常见地方习用品的生药学研究 [Pharmacognosy study of Herba Cistanches and a common local byproduct]. 时珍国医国药 [Lishizhen Medicine and Materia Research] 34:1652−56 (in Chinese)

[12]

Hebert PDN, Cywinska A, Ball SL, de Waard JR. 2003. Biological identifications through DNA barcodes. Proceedings of the Royal Society of London Series B: Biological Sciences 270:313−21

doi: 10.1098/rspb.2002.2218
[13]

Yu J, Wu X, Liu C, Newmaster S, Ragupathy S, et al. 2021. Progress in the use of DNA barcodes in the identification and classification of medicinal plants. Ecotoxicology and Environmental Safety 208:111691

doi: 10.1016/j.ecoenv.2020.111691
[14]

Techen N, Parveen I, Pan Z, Khan IA. 2014. DNA barcoding of medicinal plant material for identification. Current Opinion in Biotechnology 25:103−10

doi: 10.1016/j.copbio.2013.09.010
[15]

Grazina L, Amaral JS, Mafra I. 2020. Botanical origin authentication of dietary supplements by DNA-based approaches. Comprehensive Reviews in Food Science and Food Safety 19:1080−109

doi: 10.1111/1541-4337.12551
[16]

Hollingsworth PM, Li DZ, van der Bank M, Twyford AD. 2016. Telling plant species apart with DNA: from barcodes to genomes. Philosophical Transactions of the Royal Society B: Biological Sciences 371:20150338

doi: 10.1098/rstb.2015.0338
[17]

Cahyaningsih R, Compton LJ, Rahayu S, Magos Brehm J, Maxted N. 2022. DNA barcoding medicinal plant species from Indonesia. Plants 11:1375

doi: 10.3390/plants11101375
[18]

Cowan RS, Fay MF. 2012. Challenges in the DNA barcoding of plant material. In Plant DNA Fingerprinting and Barcoding: Methods and Protocols, eds. Sucher NJ, Hennell JR, Carles MC. Totowa, NJ: Humana Press. pp. 23−33 doi: 10.1007/978-1-61779-609-8_3

[19]

Roy S, Tyagi A, Shukla V, Kumar A, Singh UM, et al. 2010. Universal plant DNA barcode loci may not work in complex groups: a case study with Indian Berberis species. PLoS One 5:e13674

doi: 10.1371/journal.pone.0013674
[20]

Reddy V, Mehandi S, Janeja H, Saxena K, Prakash S. 2022. Concept on plant DNA barcodes and their application in identification of plants. Biological Forum 14:360−68

[21]

Ahmed F, Zaman MK. 2022. A critical review on the challenges and advances in DNA barcoding for plant identification. Current Trends in Pharmaceutical Research 9:115−39

[22]

Hu Q, Wang X, Ji C, Yang M, Huang Q, et al. 2023. 且末县气候变化特征及其对棉花发育期和产量的影响 [Characteristics of climate change and its effects on cotton growth period and yield in Qiemo]. 中国农学通报 [Chinese Agricultural Science Bulletin] 39:79−85 (in Chinese)

[23]

An Q. 2023. 四翅滨藜-肉苁蓉培育技术及品质评价研究 [Study on cultivation technology and quality evaluation of Atriplex canescens - Cistanche deserticola]. Thesis. Gansu Agricultural University, China. pp. 12−20 (in Chinese)

[24]

Wang J. 2020. 盐生肉苁蓉和沙苁蓉的质量比较研究 [Comparative study of Cistanche salsa and Cistanche sinensis]. Thesis. Inner Mongolia Medical University, China. pp. 9−12 (in Chinese)

[25]

Feng J, Guo Y, Jiang K, Zhu W. 2022. 一测多评法测定不同寄主肉苁蓉中 4 种苯乙醇苷类含量 [Comparison of phenylethanoid glycosides in Herba Cistanches with different hosts: based on quantitative analysis of multiple components by single marker]. 世界中医药 [World Chinese Medicine] 17:1879−1882,1889 (in Chinese)

doi: 10.3969/j.issn.1673-7202.2022.13.013
[26]

Wang X, Xiao B, Zhang Z, He Y, Cao L, et al. 2017. 不同采收期肉苁蓉中松果菊苷、毛蕊花糖苷、半乳糖醇、甜菜碱及可溶性多糖量的测定及其道地性研究 [Study on five efficacy components, geoherbalism of Cistanche deserticola from genuine producing area in different collecting seasons]. 中草药 [Chinese Traditional and Herbal Drugs] 48:3841−46 (in Chinese)

doi: 10.7501/j.issn.0253-2670.2017.18.027
[27]

An Q, Guo Y, An F, Ma T, Jia C. 2023. 寄主和产地对肉苁蓉活性成分及抗氧化能力的影响研究 [Effect of different hosts and producing areas on the active ingredients and antioxidant capacity of Cistanche deserticola]. 时珍国医国药 [Lishizhen Medicine and Materia Medica Research] 34:2236−39 (in Chinese)

[28]

Zhao J, Shi Z, Wang S, Jia C, Jiang Y, et al. 2023. 四翅滨藜寄生的荒漠肉苁蓉质量分析 [Quality analysis of Cistanche deserticola parasitized on Atriplex canescens]. 中药材 [Journal of Chinese Medicinal Materials] 46:2512−18 (in Chinese)

doi: 10.13863/j.issn1001-4454.2023.10.023
[29]

Zhao F, Guo Y, Gao P, Chen J, Zhang W. 2024. 基于UPLC-QQQ-MS/MS测定不同产地2种寄主肉苁蓉 10 种苯乙醇苷成分 [Determination of 10 phenylethanol glycosides in Cistanche deserticola from different origins and 2 species of host plants based on UPLC-QQQ-MS/MS]. 亚热带植物科学 [Subtropical Plant Science] 53:399−407 (in Chinese)

doi: 10.3969/j.issn.1009-7791.2024.05.002
[30]

Tu P, Wang B, Deyama T, Zhang Z, Lou Z. 1997. 肉苁蓉类生药中苯乙醇甙类成分的RP-HPLC分析 [Analysis of phenylethanoid glycosides of Herba Cistanches by RP-HPLC]. 药学学报 [Acta Pharmaceutica Sinica] 32:294−300 (in Chinese)

doi: 10.16438/j.0513-4870.1997.04.011
[31]

Toderich KN, Shuyskaya E, Taha FK, Ismail S, Gismatullina LG, et al. 2012. Adaptive fruit structural mechanisms of Asiatic Salsola species and its germplasm conservation and utilization. Journal of Arid Land Studies 22:73−76

[32]

Winter K. 1981. C4 plants of high biomass in arid regions of asia-occurrence of C4 photosynthesis in Chenopodiaceae and Polygonaceae from the Middle East and USSR. Oecologia 48:100−6

doi: 10.1007/BF00346994
[33]

Kumar K, Hacham Y, Amir R. 2022. The effect of 10 crop plants that served as hosts on the primary metabolic profile of the parasitic plant Phelipanche aegyptiaca. Metabolites 12:1195

doi: 10.3390/metabo12121195
[34]

Torres P, Saldaña C, Ortega R, González C. 2019. Determination of reducing power and phytochemical profile of the Chilean mistletoe 'Quintral' (Tristerix corymbosus (L.) Kuijt) hosted in 'Maqui' (Aristotelia chilensis), 'Huayun' (Rhaphitamnus spinosus) and 'Poplar' (Populus nigra). Journal of the Chilean Chemical Society 64:4645−50

doi: 10.4067/S0717-97072019000404645