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相关概念视频

Site-Targeted Drug Delivery Systems: Polymeric Carriers01:24

Site-Targeted Drug Delivery Systems: Polymeric Carriers

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Polymeric carriers enhance targeted drug delivery by increasing efficacy while minimizing off-target effects. These carriers comprise a biodegradable polymeric backbone integrated with functional elements that enable targeting, improve physicochemical properties, and regulate drug release.Targeting MechanismsThe targeting ability of polymeric carriers is mediated by a homing device, which is a molecular recognition component designed to selectively bind to specific tissues or cells. Monoclonal...
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Parenteral Drug Delivery Systems: Injectables, Implants, and Infusion Devices01:28

Parenteral Drug Delivery Systems: Injectables, Implants, and Infusion Devices

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Parenteral drug delivery systems play a crucial role in modern therapeutics by enabling the direct administration of drugs into the systemic circulation, bypassing the gastrointestinal tract. These systems are particularly valuable for poorly absorbed oral medications that are unstable in the digestive environment or require rapid onset or sustained therapeutic levels. Delivery is achieved through intravenous, intramuscular, or subcutaneous routes, each selected based on the drug's properties...
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Transdermal Drug Delivery Systems01:18

Transdermal Drug Delivery Systems

94
Transdermal drug delivery systems (TDDS) enable the controlled release of drugs across the skin into systemic circulation. They are particularly advantageous for drugs with short half-lives or narrow therapeutic indices, as they maintain consistent plasma concentrations and reduce the risk of subtherapeutic or toxic levels.TDDS are categorized into monolithic, reservoir, and mixed systems. Monolithic systems embed the drug in a polymer matrix, where diffusion governs release. Reservoir systems...
94
Modified-Release Drug Delivery Systems: Site-Targeted01:24

Modified-Release Drug Delivery Systems: Site-Targeted

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Site-targeted drug delivery systems enhance therapeutic efficacy while minimizing systemic toxicity and treatment costs. Unlike conventional methods, these systems ensure precise drug delivery, improving bioavailability and reducing side effects. Targeted drug delivery is classified into three levels. First-order targeting directs drugs to the capillary beds of specific organs or tissues. Second-order targets specific cell types, such as tumor cells, using receptor-mediated interactions.
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Modified-Release Drug Delivery Systems: Bioavailability01:30

Modified-Release Drug Delivery Systems: Bioavailability

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Modified-release (MR) dosage forms are designed to extend drug release over time, thereby maintaining stable plasma concentrations and reducing dosing frequency. However, their bioavailability is typically below 100% due to incomplete drug release and presystemic metabolism, and limitations in drug permeability across the gastrointestinal epithelium, all of which can restrict the fraction of the drug reaching systemic circulation. Consequently, studying the in vivo bioavailability of MR...
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Modified-Release Drug Delivery Systems: Rate-Programmed II01:19

Modified-Release Drug Delivery Systems: Rate-Programmed II

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Rate-programmed drug delivery systems release drugs in a controlled manner to maintain therapeutic levels. Three main designs include reservoir, matrix, and hybrid systems.Reservoir systems consist of a drug core enclosed within a membrane that controls drug release. In non-swelling reservoir systems, polymers like ethyl cellulose or polymethacrylates are used. These do not hydrate in aqueous media and control release through membrane thickness, porosity, or insolubility. This type includes...
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从分子到吸收:一种多尺度的框架,用于皮下生物输送.

Mario de Lucio1, Vivek Sree1, Galen Shi1

  • 1Eli Lilly and Company, Indianapolis, IN, USA.

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概括

单克隆抗体 (mAbs) 的皮下注射面临着由于合药物,设备和组织相互作用的挑战. 药物-设备-容器-组织框架揭示了交叉接口动态作为优化交付的关键.

关键词:
自动注射器自动注射器计算建模计算建模淋巴吸收是指淋巴的吸收.单克隆抗体是一种单克隆抗体.皮下注射 皮下注射 皮下注射

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科学领域:

  • 生物制药配方和输送科学.
  • 生物材料和药物输送工程.
  • 药理动力学和药物吸收.

背景情况:

  • 皮下注射 (SC) 首选用于自我注射的单克隆抗体 (mAbs).
  • 由于跨尺度的复杂相互作用,一致的生物利用性具有挑战性.
  • 优化单个组件只能带来有限的改进.

研究的目的:

  • 引入药物-设备-容器-组织 (DDCT) 框架,以实现统一的多尺度分析.
  • 追踪mAbs从储存到注射到淋巴吸收的过程.
  • 确定优化SC交付的关键瓶.

主要方法:

  • 综合分子动力学模拟的发现.
  • 采用风湿学测量和高速成像.
  • 采用孔机械建模来进行组织反应分析.

主要成果:

  • 抗体自我关联影响粘度,扩散,可注射性和组织运输.
  • 设备的启动可能会导致不稳定性 (滑动,洞化,剪切);存在缓解策略.
  • 注射参数和组织异质性极大地影响输送可靠性和吸收动力学.

结论:

  • DDCT框架强调跨界面交互是主要的瓶.
  • 这一框架使下一代自动注射器和配方的合理设计成为可能.
  • 基于这些多尺度原则,可以开发预测计算工具.