海藻酸锶杂化(无机/有机)纳米颗粒作为一种新的有前途的骨再生纳米系统:体外优化和体内评估。

IF 2.5 4区 医学 Q2 PHARMACOLOGY & PHARMACY
Nouran M Atia, Hebatallah S Barakat, Heba A Hazzah, Rania G Ali, Ossama Y Abdallah
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引用次数: 0

摘要

锶(Sr)是一种寻骨元素,其特点是具有刺激骨生长和防止骨吸收的双重功能。另一方面,海藻酸盐具有不同于其他天然多糖的物理化学特性,因为它们具有包裹蛋白质和药物的能力。本研究旨在制备新型无机/有机海藻酸锶(Sr-Alg)杂化纳米颗粒,作为骨再生的靶配体。采用简单沉淀法制备了这些杂化纳米颗粒,并对不同的配方变量进行了研究。优化后的配方粒径为133.80±2.40 nm, zeta电位为-31.5±1.45 mV。此外,采用FTIR和x射线衍射对所选配方进行表征,以确认杂化结构的形成。选定的配方进行了体内研究,并与海藻酸钙纳米颗粒进行了比较。含锶制剂显著改善小鼠体内Ca/P, Ca + Sr/P分别达到1.799±0.01和1.89±0.01。体内毒性研究也基于生化分析和肝脏和肾脏组织的组织学检查进行了评估,并证实在治疗组中表现出非显著的肾毒性或肝毒性作用。因此,Sr-Alg可以被认为是一种有前景的骨再生靶向配体,具有更高的安全性和有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Strontium alginate hybrid (inorganic/organic) nanoparticles as a novel promising nanosystem for bone regeneration: in-vitro optimization and in-vivo assessment.

Strontium (Sr) is a bone-seeking element characterized by its dual function of stimulating bone growth and preventing bone resorption. On the other hand, alginates (Alg) have distinct physicochemical characteristics from other natural polysaccharides because of their ability to encapsulate proteins and drugs. This work aimed to prepare novel hybrid inorganic/organic strontium alginate (Sr-Alg) nanoparticles for use as a targeting ligand in bone regeneration. These hybrid nanoparticles were prepared by a simple precipitation technique and different formulation variables were studied. The optimized formulation showed the most promising particle size (133.80 ± 2.40 nm) and zeta potential (-31.5 ± 1.45 mV). Moreover, the selected formulation was subjected to characterization using FTIR and X-ray diffraction to confirm the formation of the hybrid structure. The selected formulation was subjected to an in vivo study and compared with calcium alginate nanoparticles. Mice treated with Sr-containing formulation showed significant improvement in Ca/P and Ca + Sr/P ratios reached 1.799 ± 0.01 and 1.89 ± 0.01, respectively. An in vivo toxicity study was also assessed based on biochemical assays and histological examination of liver and kidney tissues and confirmed that non-significant nephrotoxic or hepatotoxic effects were demonstrated in the treated groups. Therefore, Sr-Alg could be considered a promising targeted ligand for bone regeneration with enhanced safety and efficacy.

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来源期刊
CiteScore
5.90
自引率
2.90%
发文量
82
审稿时长
1 months
期刊介绍: Pharmaceutical Development & Technology publishes research on the design, development, manufacture, and evaluation of conventional and novel drug delivery systems, emphasizing practical solutions and applications to theoretical and research-based problems. The journal aims to publish significant, innovative and original research to advance the frontiers of pharmaceutical development and technology. Through original articles, reviews (where prior discussion with the EIC is encouraged), short reports, book reviews and technical notes, Pharmaceutical Development & Technology covers aspects such as: -Preformulation and pharmaceutical formulation studies -Pharmaceutical materials selection and characterization -Pharmaceutical process development, engineering, scale-up and industrialisation, and process validation -QbD in the form a risk assessment and DoE driven approaches -Design of dosage forms and drug delivery systems -Emerging pharmaceutical formulation and drug delivery technologies with a focus on personalised therapies -Drug delivery systems research and quality improvement -Pharmaceutical regulatory affairs This journal will not consider for publication manuscripts focusing purely on clinical evaluations, botanicals, or animal models.
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