Article(id=1304388170779488379, tenantId=1146029695717560320, journalId=1302319053441957962, issueId=1304388108988997783, articleNumber=null, orderNo=null, doi=10.7501/j.issn.0253-2670.2026.12.007, pmid=null, cstr=null, oa=null, hot=0, price=null, onlineType=0, articleFormat=0, articleType=null, articleTypeStr=null, receivedDate=1766505600000, receivedDateStr=2025-12-24, revisedDate=null, revisedDateStr=null, acceptedDate=null, acceptedDateStr=null, onlineDate=1788919974274, onlineDateStr=2026-09-09, pubDate=null, pubDateStr=null, doiRegisterDate=null, doiRegisterDateStr=null, onlineIssueDate=1788919974274, onlineIssueDateStr=2026-09-09, onlineJustAcceptDate=null, onlineJustAcceptDateStr=null, onlineFirstDate=null, onlineFirstDateStr=null, sourceXml=null, magXml=null, createTime=1788919974274, creator=13701087609, updateTime=1788919974274, updator=13701087609, issue=Issue{id=1304388108988997783, tenantId=1146029695717560320, journalId=1302319053441957962, year='2026', volume='57', issue='12', pageStart='4509', pageEnd='4948', issueExtLink='null', onlineDate='null', pubDate='1782576000000', pubDateStr='2026-06-28', beforeIssueId=null, nextIssueId=null, price=null, status=1, issueComplete=1, articleOrder=1, issueType=-1, specialIssue=null, createTime=1788919959542, creator='13701087609', updateTime=1788923461082, updator='13701087609', preIssue=null, nextIssue=null, articleTotal=null, ext={EN=IssueExt(id=1304402795579330582, tenantId=1146029695717560320, journalId=1302319053441957962, issueId=1304388108988997783, language=EN, specialIssueTitle=, coverIllustrator=null, specialIssueEditor=, specialIssueAbout=), CN=IssueExt(id=1304402795579330583, tenantId=1146029695717560320, journalId=1302319053441957962, issueId=1304388108988997783, language=CN, specialIssueTitle=, coverIllustrator=null, specialIssueEditor=, specialIssueAbout=)}, issueFiles=null, downloadFileDto=null}, startPage=4582, endPage=4593, ext={EN=ArticleExt(id=1304388171089866878, articleId=1304388170779488379, tenantId=1146029695717560320, journalId=1302319053441957962, language=EN, title=Preparation and intestinal absorption mechanism of paeoniflorin-glycyrrhiza protein self-assembled nanoparticles, columnId=null, journalTitle=Chinese Traditional and Herbal Drugs, columnName=null, runingTitle=null, highlight=null, articleAbstract=Objective To prepare paeoniflorin-glycyrrhiza protein self-assembled nanoparticles (Pae-GP/SAN) with good bioavailability and investigate its intestinal absorption mechanism. Methods In this study, glycyrrhiza protein (GP) was used as the carrier to prepare Pae-GP/SAN by ultrasonic dispersion method. The formulation and preparation process were optimized using average particle size, polydispersity index (PDI), encapsulation efficiency, and drug loading as evaluation indicators, and the prepared nanoparticles were characterized. A rat in situ single-pass intestinal perfusion model was established to investigate and compare the intestinal absorption behaviors of paeoniflorin solution (Pae/Sol), paeoniflorin-glycyrrhiza protein physical mixture (Pae-GP/PM), and Pae-GP/SAN. Additionally, an aggregation-caused quenching (ACQ) fluorescent probe was used to observe the intestinal absorption of GP/SAN by confocal laser scanning microscopy (CLSM), aiming to initially clarify its penetration-enhancing mechanism. Results The optimized Pae-GP/SAN had an average particle size of (178.2 ± 6.3) nm, a PDI of 0.152 1 ± 0.011 2, a ζ potential of (−14.91 ± 1.13) mV, an encapsulation efficiency of (36.45 ± 2.32)%, and a drug loading of (21.70 ± 1.30)%, with a uniform spherical micromorphology. Intestinal perfusion experiments indicated that the absorption efficiency of Pae-GP/SAN in the ileum was superior to that in the jejunum (P < 0.05, 0.01). The formation of nanoparticles significantly promoted the absorption of paeoniflorin. Moreover, the absorption parameters of high mass concentration Pae-GP/SAN were significantly higher than those of low mass concentration Pae-GP/SAN (P < 0.001), while mass concentration had no significant effect on the absorption of Pae/Sol and Pae-GP/PM. Transporter inhibitor intervention experiments showed that indomethacin and reserpine had no significant effect on the absorption of the three formulations. Verapamil significantly increased the absorption of Pae/Sol and Pae-GP/PM (P < 0.01, 0.001) but had no significant effect on Pae-GP/SAN. CLSM observations confirmed that GP/SAN can be absorbed by the intestine in the form of intact nanoparticles. Conclusion Pae-GP/SAN can be endocytosed and absorbed by the intestine as intact nanoparticles, effectively evading the barrier effect of P-gp efflux protein, thereby significantly improving the oral bioavailability of Pae., authors=DU Chaoying, WEI Xinling, ZHANG Nianzhan, HUANG Dongmei, MIN Hongyan, SHEN Baode, SHEN Chengying, authorsList=DU Chaoying, WEI Xinling, ZHANG Nianzhan, HUANG Dongmei, MIN Hongyan, SHEN Baode, SHEN Chengying, authorCompany=null, correspAuthors=null, authorNote=null, correspAuthorsNote=null, copyrightStatement=null, copyrightOwner=null, extLink=null, articleAbsUrl=null, sourceXml=null, magXml=null, pdfUrl=null, pdf=null, pdfFileSize=null, pdfExtLink=null, richHtmlUrl=null, mobilePdfUrl=null, reviewReport=null, pdfFirstPage=null, abstractGraph=null, abstractGraphContent=null, abstractVideo=null, citation=null, cebUrl=null, magXmlContent=null, mapNumber=null, fund=null), CN=ArticleExt(id=1304388170993397884, articleId=1304388170779488379, tenantId=1146029695717560320, journalId=1302319053441957962, language=CN, title=芍药苷-甘草蛋白自组装纳米粒的制备及其肠吸收机制研究, columnId=1304140189132149234, journalTitle=中草药, columnName=药剂与工艺, runingTitle=null, highlight=null, articleAbstract=目的 制备一种生物利用度良好的芍药苷-甘草蛋白自组装纳米粒(paeoniflorin-glycyrrhiza protein self-assembled nanoparticles,Pae-GP/SAN)并考察其肠吸收机制。方法 以甘草蛋白为载体,采用超声分散法制备Pae-GP/SAN,以平均粒径、多分散系数(polydispersity index,PDI)、包封率、载药量为评价指标优化处方和制备工艺,并对制备的纳米粒进行表征。建立大鼠在体单向肠灌流模型,考察并对比芍药苷溶液(Pae/Sol)、芍药苷-甘草蛋白物理混合物(Pae-GP/PM)以及Pae-GP/SAN的肠吸收行为,并应用水淬灭ACQ(aggregation-caused quenching)荧光探针,通过激光扫描共聚焦显微镜(confocal laser scanning microscope,CLSM)观察GP/SAN的肠吸收情况,初步阐明其促渗机制。结果 优化后Pae-GP/SAN粒径为(178.2±6.3)nm,PDI为0.152 1±0.011 2,ζ电位为(−14.91±1.13)mV,包封率为(36.45±2.32)%,载药量为(21.70±1.30)%,微观形态呈均一球状。肠灌流实验表明,Pae-GP/SAN在回肠中的吸收效率优于空肠(P<0.05、0.01);纳米粒的形成可显著促进芍药苷的吸收,且高质量浓度Pae-GP/SAN的吸收参数显著高于低质量浓度(P<0.001),而质量浓度对Pae/Sol与Pae-GP/PM的吸收无显著影响;转运蛋白抑制剂干预实验显示,吲哚美辛和利血平对3种制剂的吸收均无显著影响;维拉帕米可显著提高Pae/Sol和Pae-GP/PM的吸收(P<0.01、0.001),而对Pae-GP/SAN无显著影响。CLSM观察证实GP/SAN能够以完整纳米粒形式被肠道吸收。结论 Pae-GP/SAN可通过完整纳米粒形式被肠道内吞吸收,有效规避P-gp外排蛋白的屏障作用,进而显著提升芍药苷的口服生物利用度。, authors=杜超颖1, 魏欣玲1,2, 张年战1,2, 黄冬梅3, 闵红燕4, 申宝德2, 沈成英1, authorsList=杜超颖, 魏欣玲, 张年战, 黄冬梅, 闵红燕, 申宝德, 沈成英, authorCompany=1 江西省人民医院(南昌医学院第一附属医院)药学部,江西南昌 330006;
2 江西中医药大学 现代中药制剂教育部重点实验室,江西 南昌 330004;
3 南昌大学药学院,江西 南昌 330006;
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严爱娟, 黄琴伟, 杨颖欣, 等. 壳聚糖季铵盐对白芍总苷口服生物利用度及肠道吸收的影响[J]. 中药材, 2025, 48(2): 443-448.
Zhou Y X, Gong X H, Zhang H, et al. A review on the pharmacokinetics of paeoniflorin and its anti-inflammatory and immunomodulatory effects [J]. Biomed Pharmacother, 2020, 130: 110505.
Yang C, Yang S S, Fang S M, et al. PLGA nanoparticles enhanced cardio-protection of scutellarin and paeoniflorin against isoproterenol-induced myocardial ischemia in rats [J]. Int J Pharm, 2023, 648: 123567.
Wang D Y, Yang F, Shang W, et al. Paeoniflorin-loaded pH-sensitive liposomes alleviate synovial inflammation by altering macrophage polarity via STAT signaling [J]. Int Immunopharmacol, 2021, 101: 108310.
Liu J R, Chen S Q, Zhang Z J, et al. The oxidized hyaluronic acid hydrogels containing paeoniflorin microspheres regulates the polarization of M1/M2 macrophages to promote wound healing [J]. Int J Biol Macromol, 2024, 282: 137107.
高翠霞, 黄玲玲, 曹雯媗. 芍药和甘草配伍的研究进展[J]. 中医研究, 2023, 36(8): 92-95.
沈成英, 朱君君, 戴博, 等. 芍药甘草汤自组装纳米粒的形成及其对白芍主要成分释放和吸收的影响[J]. 中国中药杂志, 2021, 46(9): 2190-2196.
黄菊, 朱禹, 肖航, 等. 中药自组装纳米策略在肿瘤治疗中应用的研究进展[J]. 中国实验方剂学杂志, 2023, 29(24): 185-193.
沈成英, 胡菲, 朱君君, 等. 中药自组装纳米粒的形成及应用研究进展[J]. 中国中药杂志, 2021, 46(19): 4875-4880.
卢凯, 苏贝贝, 魏闪闪, 等. 中药自组装的研究策略、影响因素及应用前景[J]. 药物评价研究, 2026, 49(3): 1071-1081.
袁海龙, 朱煜文. 中药制剂研究新方向: 改良自组装纳米粒的构建及应用[J]. 中国中药杂志, 2025, 50(13): 3569-3573.
郭琴. 基于蛋白自组装探讨芍药—甘草药对配伍的物质基础[D]. 北京: 中国中医科学院, 2022.
Zhou J W, Zhang J, Gao G Z, et al. Boiling licorice produces self-assembled protein nanoparticles: A novel source of bioactive nanomaterials [J]. J Agric Food Chem, 2019, 67(33): 9354-9361.
Wang H Q, Song B B, Zhou J W, et al. Fabrication and characterization of curcumin-loaded nanoparticles using licorice protein isolate from Radix Glycyrrhizae [J]. Int J Biol Macromol, 2024, 255: 128235.
Hu H, Wu J H, Li-Chan E C Y, et al. Effects of ultrasound on structural and physical properties of soy protein isolate (SPI) dispersions [J]. Food Hydrocoll, 2013, 30(2): 647-655.
Jiang L Z, Wang J, Li Y, et al. Effects of ultrasound on the structure and physical properties of black bean protein isolates [J]. Food Res Int, 2014, 62: 595-601.
Gul O, Saricaoglu F T, Besir A, et al. Effect of ultrasound treatment on the properties of nano-emulsion films obtained from hazelnut meal protein and clove essential oil [J]. Ultrason Sonochem, 2018, 41: 466-474.
Shen C Y, Wei X L, Du C Y, et al. Comparative evaluation of nano-assemblies from Shaoyao Gancao Decoction on paeoniflorin bioavailability [J]. Int J Nanomed, 2025, 20: 14313-14328.
Zakeri-Milani P, Valizadeh H, Tajerzadeh H, et al. Predicting human intestinal permeability using single-pass intestinal perfusion in rat [J]. J Pharm Pharm Sci, 2007, 10(3): 368-379.
Reboldi A, Cyster J G. Peyer’s patches: Organizing B-cell responses at the intestinal frontier [J]. Immunol Rev, 2016, 271(1): 230-245.
Elz A S, Trevaskis N L, Porter C J H, et al. Smart design approaches for orally administered lipophilic prodrugs to promote lymphatic transport [J]. J Control Release, 2022, 341: 676-701.
Taheri A, Bremmell K E, Joyce P, et al. Battle of the milky way: Lymphatic targeted drug delivery for pathogen eradication [J]. J Control Release, 2023, 363: 507-524.
何宇臻, 王辉, 方家豪, 等. ABC转运蛋白家族介导的中药-化药相互作用研究进展[J]. 药学学报, 2021, 56(7): 1778-1788.
Shen C Y, Yang Y Q, Shen B D, et al. Self-discriminating fluorescent hybrid nanocrystals: Efficient and accurate tracking of translocation via oral delivery [J]. Nanoscale, 2018, 10(1): 436-450.
Shen B D, Shen C Y, Zhu W F, et al. The contribution of absorption of integral nanocrystals to enhancement of oral bioavailability of quercetin [J]. Acta Pharm Sin B, 2021, 11(4): 978-988.)
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芍药苷-甘草蛋白自组装纳米粒的制备及其肠吸收机制研究
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中草药 |药剂与工艺 2026 , 57 (12) : 4582 -4593
芍药苷-甘草蛋白自组装纳米粒的制备及其肠吸收机制研究
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杜超颖1, 魏欣玲1,2, 张年战1,2, 黄冬梅3, 闵红燕4, 申宝德2, 沈成英1
作者信息
    1 江西省人民医院(南昌医学院第一附属医院)药学部,江西南昌 330006;
    2 江西中医药大学 现代中药制剂教育部重点实验室,江西 南昌 330004;
    3 南昌大学药学院,江西 南昌 330006;
    4 南昌医学院药学院,江西 南昌 330052
通讯作者:
申宝德
作者简介:
杜超颖: 杜超颖,药师,研究方向为药物新剂型。E-mail:18841430338@163.com
Preparation and intestinal absorption mechanism of paeoniflorin-glycyrrhiza protein self-assembled nanoparticles
  • DU Chaoying, WEI Xinling, ZHANG Nianzhan, HUANG Dongmei, MIN Hongyan, SHEN Baode, SHEN Chengying
  • Affiliations
    doi: 10.7501/j.issn.0253-2670.2026.12.007
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    目的 制备一种生物利用度良好的芍药苷-甘草蛋白自组装纳米粒(paeoniflorin-glycyrrhiza protein self-assembled nanoparticles,Pae-GP/SAN)并考察其肠吸收机制。方法 以甘草蛋白为载体,采用超声分散法制备Pae-GP/SAN,以平均粒径、多分散系数(polydispersity index,PDI)、包封率、载药量为评价指标优化处方和制备工艺,并对制备的纳米粒进行表征。建立大鼠在体单向肠灌流模型,考察并对比芍药苷溶液(Pae/Sol)、芍药苷-甘草蛋白物理混合物(Pae-GP/PM)以及Pae-GP/SAN的肠吸收行为,并应用水淬灭ACQ(aggregation-caused quenching)荧光探针,通过激光扫描共聚焦显微镜(confocal laser scanning microscope,CLSM)观察GP/SAN的肠吸收情况,初步阐明其促渗机制。结果 优化后Pae-GP/SAN粒径为(178.2±6.3)nm,PDI为0.152 1±0.011 2,ζ电位为(−14.91±1.13)mV,包封率为(36.45±2.32)%,载药量为(21.70±1.30)%,微观形态呈均一球状。肠灌流实验表明,Pae-GP/SAN在回肠中的吸收效率优于空肠(P<0.05、0.01);纳米粒的形成可显著促进芍药苷的吸收,且高质量浓度Pae-GP/SAN的吸收参数显著高于低质量浓度(P<0.001),而质量浓度对Pae/Sol与Pae-GP/PM的吸收无显著影响;转运蛋白抑制剂干预实验显示,吲哚美辛和利血平对3种制剂的吸收均无显著影响;维拉帕米可显著提高Pae/Sol和Pae-GP/PM的吸收(P<0.01、0.001),而对Pae-GP/SAN无显著影响。CLSM观察证实GP/SAN能够以完整纳米粒形式被肠道吸收。结论 Pae-GP/SAN可通过完整纳米粒形式被肠道内吞吸收,有效规避P-gp外排蛋白的屏障作用,进而显著提升芍药苷的口服生物利用度。
    芍药苷  /  甘草蛋白  /  中药自组装纳米粒  /  肠灌流  /  肠吸收
    Objective To prepare paeoniflorin-glycyrrhiza protein self-assembled nanoparticles (Pae-GP/SAN) with good bioavailability and investigate its intestinal absorption mechanism. Methods In this study, glycyrrhiza protein (GP) was used as the carrier to prepare Pae-GP/SAN by ultrasonic dispersion method. The formulation and preparation process were optimized using average particle size, polydispersity index (PDI), encapsulation efficiency, and drug loading as evaluation indicators, and the prepared nanoparticles were characterized. A rat in situ single-pass intestinal perfusion model was established to investigate and compare the intestinal absorption behaviors of paeoniflorin solution (Pae/Sol), paeoniflorin-glycyrrhiza protein physical mixture (Pae-GP/PM), and Pae-GP/SAN. Additionally, an aggregation-caused quenching (ACQ) fluorescent probe was used to observe the intestinal absorption of GP/SAN by confocal laser scanning microscopy (CLSM), aiming to initially clarify its penetration-enhancing mechanism. Results The optimized Pae-GP/SAN had an average particle size of (178.2 ± 6.3) nm, a PDI of 0.152 1 ± 0.011 2, a ζ potential of (−14.91 ± 1.13) mV, an encapsulation efficiency of (36.45 ± 2.32)%, and a drug loading of (21.70 ± 1.30)%, with a uniform spherical micromorphology. Intestinal perfusion experiments indicated that the absorption efficiency of Pae-GP/SAN in the ileum was superior to that in the jejunum (P < 0.05, 0.01). The formation of nanoparticles significantly promoted the absorption of paeoniflorin. Moreover, the absorption parameters of high mass concentration Pae-GP/SAN were significantly higher than those of low mass concentration Pae-GP/SAN (P < 0.001), while mass concentration had no significant effect on the absorption of Pae/Sol and Pae-GP/PM. Transporter inhibitor intervention experiments showed that indomethacin and reserpine had no significant effect on the absorption of the three formulations. Verapamil significantly increased the absorption of Pae/Sol and Pae-GP/PM (P < 0.01, 0.001) but had no significant effect on Pae-GP/SAN. CLSM observations confirmed that GP/SAN can be absorbed by the intestine in the form of intact nanoparticles. Conclusion Pae-GP/SAN can be endocytosed and absorbed by the intestine as intact nanoparticles, effectively evading the barrier effect of P-gp efflux protein, thereby significantly improving the oral bioavailability of Pae.
    paeoniflorin  /  glycyrrhiza protein  /  traditional Chinese medicine self-assembled nanoparticles  /  intestinal perfusion  /  intestinal absorption
    杜超颖, 魏欣玲, 张年战, 黄冬梅, 闵红燕, 申宝德, 沈成英. 芍药苷-甘草蛋白自组装纳米粒的制备及其肠吸收机制研究. 中草药, 2026 , 57 (12) : 4582 -4593 . DOI: 10.7501/j.issn.0253-2670.2026.12.007
    DU Chaoying, WEI Xinling, ZHANG Nianzhan, HUANG Dongmei, MIN Hongyan, SHEN Baode, SHEN Chengying. Preparation and intestinal absorption mechanism of paeoniflorin-glycyrrhiza protein self-assembled nanoparticles[J]. Chinese Traditional and Herbal Drugs, 2026 , 57 (12) : 4582 -4593 . DOI: 10.7501/j.issn.0253-2670.2026.12.007

      江西省教育厅科学技术研究项目 (GJJ2403609); 国家自然科学基金项目 (82260848); 江西省自然科学基金项目 (20232BAB216139)

    参考文献 引证文献
    排序方式:
    耿飞飞, 曲彤, 李宁, 等. 青风藤-白芍药对不同配伍比例化学成分与抗炎活性变化规律研究[J]. 中草药, 2025, 56(1): 98-107.
    Zhou Y, Liu X, Gao Y H, et al. Paeoniflorin affects hepatocellular carcinoma progression by inhibiting Wnt/β-catenin pathway through downregulation of 5-HT1D [J]. Curr Pharm Biotechnol, 2021, 22(9): 1246-1253.
    严爱娟, 黄琴伟, 杨颖欣, 等. 壳聚糖季铵盐对白芍总苷口服生物利用度及肠道吸收的影响[J]. 中药材, 2025, 48(2): 443-448.
    Zhou Y X, Gong X H, Zhang H, et al. A review on the pharmacokinetics of paeoniflorin and its anti-inflammatory and immunomodulatory effects [J]. Biomed Pharmacother, 2020, 130: 110505.
    Yang C, Yang S S, Fang S M, et al. PLGA nanoparticles enhanced cardio-protection of scutellarin and paeoniflorin against isoproterenol-induced myocardial ischemia in rats [J]. Int J Pharm, 2023, 648: 123567.
    Wang D Y, Yang F, Shang W, et al. Paeoniflorin-loaded pH-sensitive liposomes alleviate synovial inflammation by altering macrophage polarity via STAT signaling [J]. Int Immunopharmacol, 2021, 101: 108310.
    Liu J R, Chen S Q, Zhang Z J, et al. The oxidized hyaluronic acid hydrogels containing paeoniflorin microspheres regulates the polarization of M1/M2 macrophages to promote wound healing [J]. Int J Biol Macromol, 2024, 282: 137107.
    高翠霞, 黄玲玲, 曹雯媗. 芍药和甘草配伍的研究进展[J]. 中医研究, 2023, 36(8): 92-95.
    沈成英, 朱君君, 戴博, 等. 芍药甘草汤自组装纳米粒的形成及其对白芍主要成分释放和吸收的影响[J]. 中国中药杂志, 2021, 46(9): 2190-2196.
    黄菊, 朱禹, 肖航, 等. 中药自组装纳米策略在肿瘤治疗中应用的研究进展[J]. 中国实验方剂学杂志, 2023, 29(24): 185-193.
    沈成英, 胡菲, 朱君君, 等. 中药自组装纳米粒的形成及应用研究进展[J]. 中国中药杂志, 2021, 46(19): 4875-4880.
    卢凯, 苏贝贝, 魏闪闪, 等. 中药自组装的研究策略、影响因素及应用前景[J]. 药物评价研究, 2026, 49(3): 1071-1081.
    袁海龙, 朱煜文. 中药制剂研究新方向: 改良自组装纳米粒的构建及应用[J]. 中国中药杂志, 2025, 50(13): 3569-3573.
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    Zhou J W, Zhang J, Gao G Z, et al. Boiling licorice produces self-assembled protein nanoparticles: A novel source of bioactive nanomaterials [J]. J Agric Food Chem, 2019, 67(33): 9354-9361.
    Wang H Q, Song B B, Zhou J W, et al. Fabrication and characterization of curcumin-loaded nanoparticles using licorice protein isolate from Radix Glycyrrhizae [J]. Int J Biol Macromol, 2024, 255: 128235.
    Hu H, Wu J H, Li-Chan E C Y, et al. Effects of ultrasound on structural and physical properties of soy protein isolate (SPI) dispersions [J]. Food Hydrocoll, 2013, 30(2): 647-655.
    Jiang L Z, Wang J, Li Y, et al. Effects of ultrasound on the structure and physical properties of black bean protein isolates [J]. Food Res Int, 2014, 62: 595-601.
    Gul O, Saricaoglu F T, Besir A, et al. Effect of ultrasound treatment on the properties of nano-emulsion films obtained from hazelnut meal protein and clove essential oil [J]. Ultrason Sonochem, 2018, 41: 466-474.
    Shen C Y, Wei X L, Du C Y, et al. Comparative evaluation of nano-assemblies from Shaoyao Gancao Decoction on paeoniflorin bioavailability [J]. Int J Nanomed, 2025, 20: 14313-14328.
    Zakeri-Milani P, Valizadeh H, Tajerzadeh H, et al. Predicting human intestinal permeability using single-pass intestinal perfusion in rat [J]. J Pharm Pharm Sci, 2007, 10(3): 368-379.
    Reboldi A, Cyster J G. Peyer’s patches: Organizing B-cell responses at the intestinal frontier [J]. Immunol Rev, 2016, 271(1): 230-245.
    Elz A S, Trevaskis N L, Porter C J H, et al. Smart design approaches for orally administered lipophilic prodrugs to promote lymphatic transport [J]. J Control Release, 2022, 341: 676-701.
    Taheri A, Bremmell K E, Joyce P, et al. Battle of the milky way: Lymphatic targeted drug delivery for pathogen eradication [J]. J Control Release, 2023, 363: 507-524.
    何宇臻, 王辉, 方家豪, 等. ABC转运蛋白家族介导的中药-化药相互作用研究进展[J]. 药学学报, 2021, 56(7): 1778-1788.
    Shen C Y, Yang Y Q, Shen B D, et al. Self-discriminating fluorescent hybrid nanocrystals: Efficient and accurate tracking of translocation via oral delivery [J]. Nanoscale, 2018, 10(1): 436-450.
    Shen B D, Shen C Y, Zhu W F, et al. The contribution of absorption of integral nanocrystals to enhancement of oral bioavailability of quercetin [J]. Acta Pharm Sin B, 2021, 11(4): 978-988.
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    doi: 10.7501/j.issn.0253-2670.2026.12.007
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    鹅膏菌科Amanitaceae 2 11 5.26 鹅膏菌属 Amanita 10 4.78
    小菇科 Mycenaceae 2 12 5.74 丝盖伞属 Inocybe 5 2.39
    多孔菌科 Polyporaceae 8 14 6.70 蜡蘑属 Laccaria 5 2.39
    红菇科 Russulaceae 3 23 11.00 小皮伞属 Marasmius 6 2.87
    小菇属 Mycena 11 5.26
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