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1.江西中医药大学,南昌 330004
2.南昌大学 食品学院,南昌 330031
Received:22 February 2025,
Accepted:14 May 2025,
Published Online:12 May 2025,
Published:20 July 2025
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赵飞艳,朱雯婷,谭琳等.纳米口服结肠靶向给药系统治疗溃疡性结肠炎的研究进展[J].中国实验方剂学杂志,2025,31(14):255-266.
ZHAO Feiyan,ZHU Wenting,TAN Lin,et al.Nano Oral Colon Targeted Drug Delivery System in Treatment of Ulcerative Colitis: A Review[J].Chinese Journal of Experimental Traditional Medical Formulae,2025,31(14):255-266.
赵飞艳,朱雯婷,谭琳等.纳米口服结肠靶向给药系统治疗溃疡性结肠炎的研究进展[J].中国实验方剂学杂志,2025,31(14):255-266. DOI: 10.13422/j.cnki.syfjx.20251661.
ZHAO Feiyan,ZHU Wenting,TAN Lin,et al.Nano Oral Colon Targeted Drug Delivery System in Treatment of Ulcerative Colitis: A Review[J].Chinese Journal of Experimental Traditional Medical Formulae,2025,31(14):255-266. DOI: 10.13422/j.cnki.syfjx.20251661.
溃疡性结肠炎(UC)是一种非特异性肠道炎症性疾病,其发病率的逐年攀升已成为全球公共卫生的挑战。口服给药因其便捷性和提高患者依从性的优势,成为治疗UC的首选途径。然而,实现口服药物在结肠的高效递送仍面临诸多挑战。随着纳米技术和材料科学的发展,结肠靶向给药系统的研究日益受到重视,在提高药物疗效与减少不良反应方面展现出独特优势。基于此,该文拟通过系统综述胃肠道的生理因素与病理微环境,为递送系统克服胃肠道生理屏障提供设计基础,并全面评述基于内源性刺激响应型和主动靶向等机制设计的纳米结肠靶向给药系统,以及四类基于材料特性差异与优势的典型材料在该系统的应用,阐明其如何通过材料特性实现药物的控释和靶向递送,旨在为下一代结肠靶向给药系统的研究与发展提供理论依据和创新思路。
Ulcerative colitis(UC) is a non-specific inflammatory disease of the intestinal tract, and its annually increasing incidence has become a global public health challenge. Oral drug delivery has become the preferred route of treatment for UC due to its convenience and improved patient compliance. However, achieving efficient delivery of oral drugs in the colon still faces many challenges. With the development of nanotechnology and material science, the study of colon targeted drug delivery systems has received increasing attention and demonstrated unique advantages in improving drug efficacy and minimizing adverse effects. Based on this, the paper systematically reviews the physiological factors and pathological microenvironment of the gastrointestinal tract to provide a design basis for the delivery systems to overcome gastrointestinal physiological barriers. And a comprehensive review of nano colon targeted drug delivery systems designed on the basis of endogenous stimulus responsive and active targeting mechanisms is presented. Additionally, four types of typical materials, categorized by their distinct properties and advantages, are introduced for application in these systems, illustrating how their material characteristics enable controlled drug release and targeted delivery. The goal is to provide theoretical basis and innovative insights for the research and development of the next generation colon targeted drug delivery system.
LE BERRE C , HONAP S , PEYRIN-BIROULET L . Ulcerative colitis [J]. Lancet , 2023 , 402 ( 10401 ): 571 - 584 .
KAPLAN G G , NG S C . Understanding and preventing the global increase of inflammatory bowel disease [J]. Gastroenterology , 2017 , 152 ( 2 ): 313 - 321 .
NG S C , SHI H Y , HAMIDI N , et al . Worldwide incidence and prevalence of inflammatory bowel disease in the 21 st century:A systematic review of population-based studies [J]. Lancet , 2017 , 390 ( 10114 ): 2769 - 2778 .
LEE Y , SUGIHARA K , GILLILLAND M G , et al . Hyaluronic acid-bilirubin nanomedicine for targeted modulation of dysregulated intestinal barrier,microbiome and immune responses in colitis [J]. Nat Mater , 2020 , 19 ( 1 ): 118 - 126 .
康欣 , 孙超迪 , 刘建平 , 等 . 基于生物信息学探讨泄浊解毒方调控细胞自噬治疗溃疡性结肠炎的机制 [J]. 中国实验方剂学杂志 , 2025 , 31 ( 1 ): 166 - 173 .
KANG X , SUN C D , LIU J P , et al . Bioinformatics reveals mechanism of Xiezhuo Jiedu precription in treatment of ulcerative colitis by regulating autophagy [J]. Chin J Exp Tradit Med Form , 2025 , 31 ( 1 ): 166 - 173 .
AHADIAN S , FINBLOOM J A , MOFIDFAR M , et al . Micro and nanoscale technologies in oral drug delivery [J]. Adv Drug Deliv Rev , 2020 , 157 : 37 - 62 .
ZHONG D , ZHANG D , CHEN W , et al . Orally deliverable strategy based on microalgal biomass for intestinal disease treatment [J]. Sci Adv , 2021 , 7 ( 48 ): eabi9265 .
CHUNG C H , JUNG W , KEUM H , et al . Nanoparticles derived from the natural antioxidant rosmarinic acid ameliorate acute inflammatory bowel disease [J]. ACS Nano , 2020 , 14 ( 6 ): 6887 - 6896 .
ZEESHAN M , ALI H , KHAN S , et al . Advances in orally-delivered pH-sensitive nanocarrier systems;An optimistic approach for the treatment of inflammatory bowel disease [J]. Int J Pharm , 2019 , 558 : 201 - 214 .
NAEEM M , AWAN U A , SUBHAN F , et al . Advances in colon-targeted nano-drug delivery systems:Challenges and solutions [J]. Arch Pharm Res , 2020 , 43 ( 1 ): 153 - 169 .
COLLNOT E M , ALI H , LEHR C M . Nano- and microparticulate drug carriers for targeting of the inflamed intestinal mucosa [J]. J Control Release , 2012 , 161 ( 2 ): 235 - 246 .
BANERJEE A , QI J , GOGOI R , et al . Role of nanoparticle size,shape and surface chemistry in oral drug delivery [J]. J Control Release , 2016 , 238 : 176 - 185 .
LIU P , GAO C , CHEN H , et al . Receptor-mediated targeted drug delivery systems for treatment of inflammatory bowel disease:Opportunities and emerging strategies [J]. Acta Pharm Sin B , 2021 , 11 ( 9 ): 2798 - 2818 .
HUA S , MARKS E , SCHNEIDER J J , et al . Advances in oral nano-delivery systems for colon targeted drug delivery in inflammatory bowel disease:Selective targeting to diseased versus healthy tissue [J]. Nanomedicine , 2015 , 11 ( 5 ): 1117 - 1132 .
ZHANG M , MERLIN D . Nanoparticle-based oral drug delivery systems targeting the colon for treatment of ulcerative colitis [J]. Inflamm Bowel Dis , 2018 , 24 ( 7 ): 1401 - 1415 .
KELLUM J A , SONG M , LI J . Science review:Extracellular acidosis and the immune response:Clinical and physiologic implications [J]. Crit Care , 2004 , 8 ( 5 ): 331 - 336 .
LIU X , DONG Y , WANG C , et al . Application of chitosan as nano carrier in the treatment of inflammatory bowel disease [J]. Int J Biol Macromol , 2024 , 278 ( Pt 4 ): 134899 .
KOTLA N G , RANA S , SIVARAMAN G , et al . Bioresponsive drug delivery systems in intestinal inflammation:State-of-the-art and future perspectives [J]. Adv Drug Deliv Rev , 2019 , 146 : 248 - 266 .
DOS SANTOS A M , CARVALHO S G , MENEGUIN A B , et al . Oral delivery of micro/nanoparticulate systems based on natural polysaccharides for intestinal diseases therapy:Challenges,advances and future perspectives [J]. J Control Release , 2021 , 334 : 353 - 366 .
CHEN S Q , SONG Y Q , WANG C , et al . Chitosan-modified lipid nanodrug delivery system for the targeted and responsive treatment of ulcerative colitis [J]. Carbohydr Polym , 2020 , 230 : 115613 .
HE L , HE T , FARRAR S , et al . Antioxidants maintain cellular redox homeostasis by elimination of reactive oxygen species [J]. Cell Physiol Biochem , 2017 , 44 ( 2 ): 532 - 553 .
CHEN Q , WANG Q , ZHU J , et al . Reactive oxygen species:Key regulators in vascular health and diseases [J]. Br J Pharmacol , 2018 , 175 ( 8 ): 1279 - 1292 .
NANINI H F , BERNARDAZZI C , CASTRO F , et al . Damage-associated molecular patterns in inflammatory bowel disease:From biomarkers to therapeutic targets [J]. World J Gastroenterol , 2018 , 24 ( 41 ): 4622 - 4634 .
宋悦悦 , 张银凤 , 孙梦 , 等 . 纳米药物递送系统用于炎症性肠病治疗的研究进展 [J]. 中国医学前沿杂志:电子版 , 2024 , 16 ( 10 ): 18 - 25,5 .
SONG Y Y , ZHANG Y F , SUN M , et al . Research advances of nano drug delivery systems for the treatment of inflammatory bowel disease [J]. Chin J Front Med Sci(Elec Ed) , 2024 , 16 ( 10 ): 18 - 25,5 .
KARP S M , KOCH T R . Oxidative stress and antioxidants in inflammatory bowel disease [J]. Dis Mon , 2006 , 52 ( 5 ): 199 - 207 .
邓亚胜 , 习兰花 , 范燕萍 , 等 . 中药调控Nrf2信号通路干预溃疡性结肠炎的研究进展 [J]. 中国实验方剂学杂志 , 2025 , 31 ( 1 ): 321 - 330 .
DENG Y S , XI L H , FAN Y P , et al . Chinese materia medica by regulating Nrf2 signaling pathway in prevention and treatment of ulcerative colitis:A review [J]. Chin J Exp Tradit Med Form , 2025 , 31 ( 1 ): 321 - 330 .
ANTONI L , NUDING S , WEHKAMP J , et al . Intestinal barrier in inflammatory bowel disease [J]. World J Gastroenterol , 2014 , 20 ( 5 ): 1165 - 1179 .
LI X , LU C , YANG Y , et al . Site-specific targeted drug delivery systems for the treatment of inflammatory bowel disease [J]. Biomed Pharmacother , 2020 , 129 : 110486 .
LORI M S , OHADI M , ESTABRAGH M A R , et al . pH-sensitive polymer-based carriers as a useful approach for oral delivery of therapeutic protein:A review [J]. Protein Pept Lett , 2021 , 28 ( 11 ): 1230 - 1237 .
ALI H , WEIGMANN B , NEURATH M F , et al . Budesonide loaded nanoparticles with pH-sensitive coating for improved mucosal targeting in mouse models of inflammatory bowel diseases [J]. J Control Release , 2014 , 183 : 167 - 177 .
OSHI M A , LEE J , NAEEM M , et al . Curcumin nanocrystal/pH-responsive polyelectrolyte multilayer core-shell nanoparticles for inflammation-targeted alleviation of ulcerative colitis [J]. Biomacromolecules , 2020 , 21 ( 9 ): 3571 - 3581 .
AHMAD A , ANSARI M M , MISHRA R K , et al . Enteric-coated gelatin nanoparticles mediated oral delivery of 5-aminosalicylic acid alleviates severity of DSS-induced ulcerative colitis [J]. Mater Sci Eng C Mater Biol Appl , 2021 , 119 : 111582 .
TRIPATHI K , FEUERSTEIN J D . New developments in ulcerative colitis:Latest evidence on management,treatment,and maintenance [J]. Drugs Context , 2019 , 8 : 212572 .
KUCHARZIK T . Living guideline on ulcerative colitis [J]. Chirurg , 2022 , 93 ( 3 ): 261 - 265 .
LIU M , DU H , ZHANG W , et al . Internal stimuli-responsive nanocarriers for drug delivery:Design strategies and applications [J]. Mater Sci Eng C Mater Biol Appl , 2017 , 71 : 1267 - 1280 .
SHAHIWALA A . Cyclodextrin conjugates for colon drug delivery [J]. J Drug Deliv Sci Technol , 2020 , 55 : 101448 .
LI S , JIN M , WU Y , et al . An efficient enzyme-triggered controlled release system for colon-targeted oral delivery to combat dextran sodium sulfate(DSS)-induced colitis in mice [J]. Drug Deliv , 2021 , 28 ( 1 ): 1120 - 1131 .
TAO W , HE Z . ROS-responsive drug delivery systems for biomedical applications [J]. Asian J Pharm Sci , 2018 , 13 ( 2 ): 101 - 112 .
CAO Z , LI D , WANG J , et al . Reactive oxygen species-sensitive polymeric nanocarriers for synergistic cancer therapy [J]. Acta Biomater , 2021 , 130 : 17 - 31 .
YAN X , MENG L , ZHANG X , et al . Reactive oxygen species-responsive nanocarrier ameliorates murine colitis by intervening colonic innate and adaptive immune responses [J]. Mol Ther , 2023 , 31 ( 5 ): 1383 - 1401 .
UWADA J , NAKAZAWA H , MURAMATSU I , et al . Role of muscarinic acetylcholine receptors in intestinal epithelial homeostasis:insights for the treatment of inflammatory bowel disease [J]. Int J Mol Sci , 2023 , 24 ( 7 ): 6508 .
BRANDL K , SUN L , NEPPL C , et al . MyD88 signaling in nonhematopoietic cells protects mice against induced colitis by regulating specific EGF receptor ligands [J]. Proc Natl Acad Sci U S A , 2010 , 107 ( 46 ): 19967 - 19972 .
ZHANG X , GAO X , YI X , et al . Multi-targeting inulin-based nanoparticles with cannabidiol for effective prevention of ulcerative colitis [J]. Mater Today Bio , 2024 , 25 : 100965 .
ZHONG Y , TU Y , MA Q , et al . Curcumin alleviates experimental colitis in mice by suppressing necroptosis of intestinal epithelial cells [J]. Front Pharmacol , 2023 , 14 : 1170637 .
ZHANG H , LI D , LIU L , et al . Cellular composition and differentiation signaling in chicken small intestinal epithelium [J]. Animals , 2019 , 9 ( 11 ): 870 .
ZHANG M , MERLIN D . Nanoparticle-based oral drug delivery systems targeting the colon for treatment of ulcerative colitis [J]. Inflamm Bowel Dis , 2018 , 24 ( 7 ): 1401 - 1415 .
MADNI A , REHMAN S , SULTAN H , et al . Mechanistic approaches of internalization,subcellular trafficking,and cytotoxicity of nanoparticles for targeting the small intestine [J]. AAPS Pharm Sci Tech , 2020 , 22 ( 1 ): 3 .
IVERSEN T G , SKOTLAND T , SANDVIG K . Endocytosis and intracellular transport of nanoparticles:Present knowledge and need for future studies [J]. Nano Today , 2011 , 6 ( 2 ): 176 - 185 .
LECHNER K , ZEESHAN M , NOACK M , et al . Small but powerful:Will nanoparticles be the future state-of-the-art therapy for IBD? [J]. Expert Opin Drug Deliv , 2022 , 19 ( 3 ): 235 - 245 .
ZHUO Z , GUO K , LUO Y , et al . Targeted modulation of intestinal epithelial regeneration and immune response in ulcerative colitis using dual-targeting bilirubin nanoparticles [J]. Theranostics , 2024 , 14 ( 2 ): 528 - 546 .
YANG S J , LI Y X , ZHENG X M , et al . Effects of folate-chicory acid liposome on macrophage polarization and TLR4/NF- κ B signaling pathway in ulcerative colitis mouse [J]. Phytomedicine , 2024 , 128 : 155415 .
SUN Q J , ARIF M , CHI Z , et al . Macrophages-targeting mannosylated nanoparticles based on inulin for the treatment of inflammatory bowel disease(IBD) [J]. Int J Biol Macromol , 2021 , 169 : 206 - 215 .
ZEESHAN M , ALI H , AIN Q U , et al . A holistic QBD approach to design galactose conjugated PLGA polymer and nanoparticles to catch macrophages during intestinal inflammation [J]. Mater Sci Eng C Mater Biol Appl , 2021 , 126 : 112183 .
PU X , YE N , LIN M , et al . β -1,3- D -Glucan based yeast cell wall system loaded emodin with dual-targeting layers for ulcerative colitis treatment [J]. Carbohydr Polym , 2021 , 273 : 118612 .
CHEN R , LIN X , WANG Q , et al . Dual-targeting celecoxib nanoparticles protect intestinal epithelium and regulate macrophage polarization for ulcerative colitis treatment [J]. Chem Eng J , 2023 , 452 : 139445 .
ZHANG J , ZHAO Y , HOU T , et al . Macrophage-based nanotherapeutic strategies in ulcerative colitis [J]. J Control Release , 2020 , 320 : 363 - 380 .
ZHANG Y , WU Y , YAN Y , et al . Dual-targeted nanoparticle-in-microparticle system for ulcerative colitis therapy [J]. Adv Healthc Mater , 2023 , 12 ( 31 ): e2301518 .
YE N , ZHAO P , AYUE S , et al . Folic acid-modified lactoferrin nanoparticles coated with a laminarin layer loaded curcumin with dual-targeting for ulcerative colitis treatment [J]. Int J Biol Macromol , 2023 , 232 : 123229 .
YANG F , SHANG S , QI M , et al . Yeast glucan particles:An express train for oral targeted drug delivery systems [J]. Int J Biol Macromol , 2023 , 253 ( Pt 5 ): 127131 .
TAN C , HUANG M , MCCLEMENTS D J , et al . Yeast cell-derived delivery systems for bioactives [J]. Trends Food Sci Technol , 2021 , 118 : 362 - 373 .
LIU Z , LIU H , CHENG J , et al . Strategies and opportunities of micro/nano delivery systems for targeted therapy of ulcerative colitis:Focus on underlying mechanisms and future perspectives [J]. Chin Chem Lett , 2024 , 35 ( 2 ): 109074 .
FENG X , XIE Q , XU H , et al . Yeast microcapsule mediated natural products delivery for treating ulcerative colitis through anti-inflammatory and regulation of macrophage polarization [J]. ACS Appl Mater Interfaces , 2022 , 14 ( 27 ): 31085 - 31098 .
HAN X , LUO R , QI S , et al . "Dual sensitive supramolecular curcumin nanoparticles" in "advanced yeast particles" mediate macrophage reprogramming,ROS scavenging and inflammation resolution for ulcerative colitis treatment [J]. J Nanobiotechnol , 2023 , 21 ( 1 ): 321 .
SÁNCHEZ-QUINTERO M J , RODRÍGUEZ-DÍAZ C , RODRÍGUEZ-GONZÁLEZ F J , et al . Role of mitochondria in inflammatory bowel diseases:A systematic review [J]. Int J Mol Sci , 2023 , 24 ( 23 ): 17124 .
YANG W , YU T , ZHOU G , et al . Intrinsic STING switches off pathogenetic programs of Th1 cells to inhibit colitis [J]. Cell Mol Gastroenterol Hepatol , 2023 , 15 ( 5 ): 1161 - 1179 .
LIEW S S , QIN X F , ZHOU J , et al . Smart design of nanomaterials for mitochondria-targeted nanotherapeutics [J]. Angew Chem Int Ed Engl , 2021 , 60 ( 5 ): 2232 - 2256 .
CHO H , CHO Y Y , SHIM M S , et al . Mitochondria-targeted drug delivery in cancers [J]. Biochim Biophys Acta Mol Basis Dis , 2020 , 1866 ( 8 ): 165808 .
WU P , YAO S , WANG X , et al . Oral administration of nanoformulated indoximod ameliorates ulcerative colitis by promoting mitochondrial function and mucosal healing [J]. Int J Pharm , 2023 , 637 : 122813 .
CHEN Y , SU W , TIE S , et al . Orally deliverable sequence-targeted astaxanthin nanoparticles for colitis alleviation [J]. Biomaterials , 2023 , 293 : 121976 .
GRZELCZAK M , LIZ-MARZÁN L M , KLAJN R . Stimuli-responsive self-assembly of nanoparticles [J]. Chem Soc Rev , 2019 , 48 ( 5 ): 1342 - 1361 .
QI S , LUO R , HAN X , et al . pH/ROS dual-sensitive natural polysaccharide nanoparticles enhance "one stone four birds" effect of rhein on ulcerative colitis [J]. ACS Appl Mater Interfaces , 2022 , 14 ( 45 ): 50692 - 50709 .
WU A , CHEN C , LU J , et al . Preparation of oral core-shell zein nanoparticles to improve the bioavailability of glycyrrhizic acid for the treatment of ulcerative colitis [J]. Biomacromolecules , 2022 , 23 ( 1 ): 210 - 225 .
WEI W , ZHANG Y , LI R , et al . Oral delivery of pterostilbene by L -arginine-mediated "nano-bomb" carrier for the treatment of ulcerative colitis [J]. Int J Nanomed , 2022 , 17 : 603 - 616 .
WEN Z , KANG L , FU H , et al . Oral delivery of porous starch-loaded bilayer microgels for controlled drug delivery and treatment of ulcerative colitis [J]. Carbohydr Polym , 2023 , 314 : 120887 .
NAEEM M , CAO J , CHOI M , et al . Enhanced therapeutic efficacy of budesonide in experimental colitis with enzyme/pH dual-sensitive polymeric nanoparticles [J]. Int J Nanomed , 2015 , 10 : 4565 - 4580 .
WANG Y , SONG X , CUI R , et al . Dual-sensitive carbohydrate-based nanosystem for targeted drug delivery to potentiate the therapeutic efficacy of ulcerative colitis [J]. Int J Nanomed , 2024 , 19 : 8555 - 8572 .
SUN M , BAN W , LING H , et al . Emerging nanomedicine and prodrug delivery strategies for the treatment of inflammatory bowel disease [J]. Chin Chem Lett , 2022 , 33 ( 10 ): 4449 - 4460 .
ZHAO J , ZHANG B , MAO Q , et al . Discovery of a colon-targeted Azo prodrug of tofacitinib through the establishment of colon-specific delivery systems constructed by 5-ASA-PABA-MAC and 5-ASA-PABA-diamine for the treatment of ulcerative colitis [J]. J Med Chem , 2022 , 65 ( 6 ): 4926 - 4948 .
HAN X , GONG C , YANG Q , et al . Biomimetic nano-drug delivery system:An emerging platform for promoting tumor treatment [J]. Int J Nanomed , 2024 , 19 : 571 - 608 .
SUN T , KWONG C H T , GAO C , et al . Amelioration of ulcerative colitis via inflammatory regulation by macrophage-biomimetic nanomedicine [J]. Theranostics , 2020 , 10 ( 22 ): 10106 - 10119 .
YAN X , SONG J , ZHANG Y , et al . Platelet-inspired nanomedicine targeting activated neutrophils to alleviate ulcerative colitis by free radicals scavenging and controlled neutrophil swarming [J]. Nano Today , 2024 , 54 : 102139 .
MA J X , JIANG L , LIU G . Cell membrane-coated nanoparticles for the treatment of bacterial infection [J]. Wiley Interdiscip Rev Nanomed Nanobiotechnol , 2022 , 14 ( 5 ): e1825 .
LAMPRECHT A , SCHÄFER U , LEHR C M . Size-dependent bioadhesion of micro-and nanoparticulate carriers to the inflamed colonic mucosa [J]. Pharm Res , 2001 , 18 ( 6 ): 788 - 793 .
ALI H , WEIGMANN B , COLLNOT E M , et al . Budesonide loaded PLGA nanoparticles for targeting the inflamed intestinal mucosa—pharmaceutical characterization and fluorescence imaging [J]. Pharm Res , 2016 , 33 ( 5 ): 1085 - 1092 .
MA P , SI X , CHEN Q , et al . Oral drug delivery systems for ulcerative colitis therapy:A comparative study with microparticles and nanoparticles [J]. Curr Cancer Drug Targets , 2019 , 19 ( 4 ): 304 - 311 .
刘德文 , 王锦玉 , 刘晓谦 , 等 . 结肠靶向给药系统的研究现状及展望 [J]. 中国实验方剂学杂志 , 2010 , 16 ( 10 ): 199 - 203 .
LIU D W , WANG J Y , LIU X Q , et al . Research situation and prospect of colon targeted drug delivery system [J]. Chin J Exp Tradit Med Form , 2010 , 16 ( 10 ): 199 - 203 .
LEOPOLD C S . Coated dosage forms for colon-specific drug delivery [J]. Pharm Sci Technol Today , 1999 , 2 ( 5 ): 197 - 204 .
NIE X , WANG B , HU R , et al . Development and evaluation of controlled and simultaneous release of compound Danshen based on a novel colon-specific osmotic pump capsule [J]. AAPS Pharm Sci Tech , 2020 , 21 ( 2 ): 38 .
RAJ P M , RAJ R , KAUL A , et al . Biodistribution and targeting potential assessment of mucoadhesive chitosan nanoparticles designed for ulcerative colitis via scintigraphy [J]. RSC Adv , 2018 , 8 ( 37 ): 20809 - 20821 .
CAI X , WANG X , HE M , et al . Colon-targeted delivery of tacrolimus using pH-responsive polymeric nanoparticles for murine colitis therapy [J]. Int J Pharm , 2021 , 606 : 120836 .
ANWER M K , AHMED M M , ALDAWSARI M F , et al . Eluxadoline loaded solid lipid nanoparticles for improved colon targeting in rat model of ulcerative colitis [J]. Pharmaceuticals(Basel) , 2020 , 13 ( 9 ): 255 .
DIANZANI C , FOGLIETTA F , FERRARA B , et al . Solid lipid nanoparticles delivering anti-inflammatory drugs to treat inflammatory bowel disease:Effects in an in vivo model [J]. World J Gastroenterol , 2017 , 23 ( 23 ): 4200 - 4210 .
ZHANG Y , WANG L , WANG Z D , et al . Surface-anchored microbial enzyme-responsive solid lipid nanoparticles enabling colonic budesonide release for ulcerative colitis treatment [J]. J Nanobiotechnology , 2023 , 21 ( 1 ): 145 .
ZHANG M Z , WANG X Y , HAN M K , et al . Oral administration of ginger-derived nano-lipids loaded with siRNA as a novel approach for efficient siRNA drug delivery to treat ulcerative colitis [J]. Nanomedicine , 2017 , 12 ( 16 ): 1927 - 1943 .
HUANG Y , GUO J , GUI S , Orally targeted galactosylated chitosan poly(lactic-co-glycolic acid)nanoparticles loaded with TNF-α siRNA provide a novel strategy for the experimental treatment of ulcerative colitis [J]. Eur J Pharm Sci , 2018 , 125 : 232 - 243 .
YANG M , ZHANG F , YANG C H , et al . Oral targeted delivery by nanoparticles enhances efficacy of an Hsp90 inhibitor by reducing systemic exposure in murine models of colitis and colitis-associated cancer [J]. J Crohns Colitis , 2020 , 14 ( 1 ): 130 - 141 .
QELLINY M R , ALY U F , ELGARHY O H , et al . Budesonide-loaded Eudragit S100 nanocapsules for the treatment of acetic acid-induced colitis in animal model [J]. AAPS Pharm Sci Tech , 2019 , 20 ( 6 ): 237 .
ASGHARZADEH F , HASHEMZADEH A , YAGHOUBI A , et al . Therapeutic effects of silver nanoparticle containing sulfasalazine on DSS-induced colitis model [J]. Drug Deliv Sci Technol , 2021 , 61 ( 1 ): 102133 .
LI J Q , CHEN H Q , WANG B , et al . ZnO nanoparticles act as supportive therapy in DSS-induced ulcerative colitis in mice by maintaining gut homeostasis and activating Nrf2 signaling [J]. Sci Rep , 2017 , 7 : 43126 .
MIN D K , KIM Y E , KIM M K , et al . Orally administrated inflamed colon-targeted nanotherapeutics for inflammatory bowel disease treatment by oxidative stress level modulation in colitis [J]. ACS Nano , 2023 , 17 ( 8 ): 24404 - 24416 .
XU J , CHU T , YU T , et al . Design of diselenide-bridged hyaluronic acid nano-antioxidant for efficient ROS scavenging to relieve colitis [J]. ACS Nano , 2022 , 6 ( 8 ): 13037 - 13048 .
IDREES H , ZAIDI S , SABIR A , et al . A review of biodegradable natural polymer-based nanoparticles for drug delivery applications [J]. Nanomaterials(Basel) , 2020 , 10 ( 10 ): 1970 .
OSHI M A , NAEEM M , BAE J , et al . Colon-targeted dexamethasone microcrystals with pH-sensitive chitosan/alginate/Eudragit S multilayers for the treatment of inflammatory bowel disease [J]. Carbohydr Polym , 2018 , 198 : 434 - 442 .
CUI M , ZHANG M , LIU K . Colon-targeted drug delivery of polysaccharide-based nanocarriers for synergistic treatment of inflammatory bowel disease:A review [J]. Carbohydr Polym , 2021 , 272 : 118530 .
SWASTHA D , VARSHA N , ARAVIND S , et al . Alginate-based drug carrier systems to target inflammatory bowel disease:A review [J]. Int J Biol Macromol , 2023 , 244 : 125472 .
TONG X Q , PAN W H , SU T , et al . Recent advances in natural polymer-based drug delivery systems [J]. React Funct Polym , 2020 , 148 ( 3 ): 104501 .
YANG C , ZHANG M , MERLIN D . Advances in plant-derived edible nanoparticle-based lipid nano-drug delivery systems as therapeutic nanomedicines [J]. J Mater Chem B , 2018 , 6 ( 9 ): 1312 - 1321 .
SHAH S , DHAWAN V , HOLM R , et al . Liposomes:Advancements and innovation in the manufacturing process [J]. Adv Drug Deliv Rev , 2020 , 154-155 : 102 - 122 .
KIM B , HOSN R R , REMBA T , et al . Optimization of storage conditions for lipid nanoparticle-formulated self-replicating RNA vaccines [J]. J Control Release , 2023 , 353 : 241 - 253 .
KAFETZIS K N , PAPALAMPROU N , MCNULTY E , et al . The effect of cryoprotectants and storage conditions on the transfection efficiency,stability,and safety of lipid-based nanoparticles for mRNA and DNA delivery [J]. Adv Healthc Mater , 2023 , 12 ( 18 ): e2203022 .
LI Q R , LIN L T , ZHANG C , et al . The progression of inorganic nanoparticles and natural products for inflammatory bowel disease [J]. J Nanobiotechnol , 2024 , 22 ( 1 ): 17 .
卢雨涵 , 石亚红 , 龙满美 , 等 . 氧化纳米铈清除活性氧改善DSS诱导的小鼠结肠炎疾病活动度的研究 [J]. 上海交通大学学报:医学版 , 2024 , 44 ( 1 ): 35 - 42 .
LU Y H , SHI Y H , LONG M M , et al . Effect of ceria nanoparticles on activity of DSS-induced colitis in mice by eliminating active oxygen species [J]. Acad J Shanghai Jiaotong Univ:Med Ed , 2024 , 44 ( 1 ): 35 - 42 .
ZHENG B X , WANG L P , YI Y , et al . Design strategies,advances and future perspectives of colon-targeted delivery systems for the treatment of inflammatory bowel disease [J]. Asian J Pharm Sci , 2024 , 19 ( 4 ): 100943 .
MA Y , GAO W H , ZHANG Y J , et al . Biomimetic MOF nanoparticles delivery of C-Dot nanozyme and CRISPR/Cas9 system for site-specific treatment of ulcerative colitis [J]. ACS Appl Mater Interfaces , 2022 , 14 ( 5 ): 6358 - 6369 .
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 .
HUANG J , ZHU Y , XIAO H , et al . Application of self-assembled nano-strategies of traditional Chinese medicine in tumor therapy:A review [J]. Chin J Exp Tradit Med Form , 2023 , 29 ( 24 ): 185 - 193 .
ZHANG B Z , PAN H , CHEN Z , et al . Twin-bioengine self-adaptive micro/nanorobots using enzyme actuation and macrophage relay for gastrointestinal inflammation therapy [J]. Sci Adv , 2023 , 9 ( 8 ): eadc8978 .
SARVESTANI S K , SIGNS S , HU B , et al . Induced organoids derived from patients with ulcerative colitis recapitulate colitic reactivity [J]. Nat Commun , 2021 , 12 ( 1 ): 262 .
LIU X F , ZHOU Z Y , ZHANG Y , et al . Recent progress on the organoids:Techniques,advantages and applications [J]. Biomed Pharmacother , 2025 , 185 : 117942 .
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