柚皮苷在骨组织再生领域的应用潜力

被引:10
作者
张敏
张晓明
刘童斌
机构
[1] 滨州医学院附属医院口腔修复科
关键词
柚皮苷; 骨缺损; 骨诱导; 骨质疏松症; 骨再生; 破骨细胞; 血管; 骨组织工程;
D O I
暂无
中图分类号
R318.08 [生物材料学];
学科分类号
100103 [病原生物学];
摘要
背景:骨组织再生是目前治疗大面积骨缺损的重要研究方向。柚皮苷(Naringin)作为一种天然黄酮类化合物,具有诱导成骨的潜力,引起骨组织再生领域研究者的广泛关注。目的:回顾柚皮苷促进骨再生的主要相关作用、安全有效性及在骨组织工程中的应用进展,为大面积骨缺损的临床治疗提供理论研究依据。方法:第一作者检索2002-2021年期间收录在PubMed数据库、万方数据库及中国知网(CNKI)中国期刊全文数据库关于柚皮苷诱导成骨的文章。英文检索词为“naringin;bone defects;osteoinductive;osteoporosis;bone regeneration;osteoclasts;blood vessel;bone tissue engineering”,中文检索词为“柚皮苷;骨缺损;骨诱导;骨质疏松症;骨再生;破骨细胞;血管;骨组织工程”。共选取55篇文献进行综述。结果与结论:柚皮苷在抗骨质疏松症、促进骨的生成、抑制破骨细胞生成及促进血管生成方面通过发挥雌激素样作用或参与骨形态发生蛋白(BMP)、Wnt/β-catenin、PI3K/Akt及VEGF/VEGFR-2等不同信号通路的调节表现出良好的诱导骨组织生成的潜力,而且具备安全稳定、易提取、成本低等特性,因此柚皮苷是一种非常有潜力的天然骨诱导小分子药物。近年来,柚皮苷与骨组织工程技术结合后改善了药物初始突释的问题,提高了药物的生物利用度。但是,未来仍需更多的实验研究更全面系统的诱导成骨机制,充分利用好骨组织工程技术,深入验证柚皮苷最合适的控释载体及局部应用效果,使柚皮苷早日能成熟、稳定、有效地应用于骨缺损的临床治疗中。
引用
收藏
页码:787 / 792
页数:6
相关论文
共 43 条
[1]
Naringin Improves Osteoblast Mineralization and Bone Healing and Strength through Regulating Estrogen Receptor Alpha-Dependent Alkaline Phosphatase Gene Expression [J].
Wu, Gong-Jhe ;
Chen, Kung-Yen ;
Yang, Jr-Di ;
Liu, Shing-Hwa ;
Chen, Ruei-Ming .
JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 2021, 69 (44) :13020-13033
[2]
Berberine for bone regeneration: Therapeutic potential and molecular mechanisms [J].
Zhang, Yuhan ;
Ma, Jinlong ;
Zhang, Weifen .
JOURNAL OF ETHNOPHARMACOLOGY, 2021, 277
[3]
Naringin-inlaid silk fibroin/hydroxyapatite scaffold enhances human umbilical cord-derived mesenchymal stem cell-based bone regeneration [J].
Zhao, Zhi-Hu ;
Ma, Xin-Long ;
Zhao, Bin ;
Tian, Peng ;
Ma, Jian-Xiong ;
Kang, Jia-Yu ;
Zhang, Yang ;
Guo, Yue ;
Sun, Lei .
CELL PROLIFERATION, 2021, 54 (07)
[4]
Fertility and early embryonic development toxicity assessment of naringin in Sprague-Dawley rats [J].
Wang, Yonggang ;
Wu, Hao ;
Chen, Pan ;
Su, Weiwei ;
Peng, Wei ;
Li, Peibo .
REGULATORY TOXICOLOGY AND PHARMACOLOGY, 2021, 123
[5]
Protective effects of naringin on glucocorticoid-induced osteoporosis through regulating the PI3K/Akt/mTOR signaling pathway [J].
Ge, Xingtao ;
Zhou, Gang .
AMERICAN JOURNAL OF TRANSLATIONAL RESEARCH, 2021, 13 (06) :6330-6341
[6]
New Perspectives in the Pharmacological Potential of Naringin in Medicine [J].
Angelica Rivoira, Maria ;
Rodriguez, Valeria ;
Talamoni, German ;
Tolosa de Talamoni, Nori .
CURRENT MEDICINAL CHEMISTRY, 2021, 28 (10) :1987-2007
[7]
Ultrasound-assisted aqueous two-phase extraction of synephrine; naringin; and neohesperidin from Citrus aurantium L. fruitlets..[J].Yan Yang;Zhou Hui;Wu Chuanhai;Feng Xiaoye;Han Chenggang;Chen Hao;Liu Yan;Li Yanfang.Preparative biochemistry & biotechnology.2020, 8
[8]
Re-appraising the potential of naringin for natural; novel orthopedic biotherapies.[J].Yu Kristin E.;Alder Kareme D.;Morris Montana T.;Munger Alana M.;Lee Inkyu;Cahill Sean V.;Kwon Hyuk Kwon;Back JungHo;Lee Francis Y..Therapeutic Advances in Musculoskeletal Disease.2020,
[9]
Osteocyte-Related Cytokines Regulate Osteoclast Formation and Bone Resorption [J].
Kitaura, Hideki ;
Marahleh, Aseel ;
Ohori, Fumitoshi ;
Noguchi, Takahiro ;
Shen, Wei-Ren ;
Qi, Jiawei ;
Nara, Yasuhiko ;
Pramusita, Adya ;
Kinjo, Ria ;
Mizoguchi, Itaru .
INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2020, 21 (14)
[10]
Electrosprayed naringin-loaded microsphere/SAIB hybrid depots enhance bone formation in a mouse calvarial defect model [J].
Yang, Xue ;
Almassri, Huthayfa N. S. ;
Zhang, Qiongyue ;
Ma, Yihui ;
Zhang, Dan ;
Chen, Mingsheng ;
Wu, Xiaohong .
DRUG DELIVERY, 2019, 26 (01) :137-146