Javascript must be enabled to continue!
In Vivo Imaging of Glycol Chitosan‐Based Nanogel Biodistribution
View through CrossRef
The preclinical development of nanomedicines raises several challenges and requires a comprehensive characterization. Among them is the evaluation of the biodistribution following systemic administration. In previous work, the biocompatibility and in vitro targeting ability of a glycol chitosan (GC) based nanogel have been validated. In the present study, its biodistribution in the mice is assessed, using near‐infrared (NIR) fluorescence imaging as a tool to track the nanogel over time, after intravenous administration. Rapid whole body biodistribution of both Cy5.5 labeled GC nanogel and free polymer is found at early times. It remains widespreadly distributed in the body at least up to 6 h postinjection and its concentration then decreases drastically after 24 h. Nanogel blood circulation half‐life lies around 2 h with the free linear GC polymer presenting lower blood clearance rate. After 24 h, the blood NIR fluorescence intensity associated with both samples decreases to insignificant values. NIR imaging of the organs shows that the nanogel had a body clearance time of ≈48 h, because at this time point a weak signal of NIR fluorescence is observed only in the kidneys. Hereupon it can be concluded that the engineered GC nanogel has a fairly long blood circulation time, suitable for biomedical applications, namely, drug delivery, simultaneously allowing efficient and quick body clearance.
image
Title: In Vivo Imaging of Glycol Chitosan‐Based Nanogel Biodistribution
Description:
The preclinical development of nanomedicines raises several challenges and requires a comprehensive characterization.
Among them is the evaluation of the biodistribution following systemic administration.
In previous work, the biocompatibility and in vitro targeting ability of a glycol chitosan (GC) based nanogel have been validated.
In the present study, its biodistribution in the mice is assessed, using near‐infrared (NIR) fluorescence imaging as a tool to track the nanogel over time, after intravenous administration.
Rapid whole body biodistribution of both Cy5.
5 labeled GC nanogel and free polymer is found at early times.
It remains widespreadly distributed in the body at least up to 6 h postinjection and its concentration then decreases drastically after 24 h.
Nanogel blood circulation half‐life lies around 2 h with the free linear GC polymer presenting lower blood clearance rate.
After 24 h, the blood NIR fluorescence intensity associated with both samples decreases to insignificant values.
NIR imaging of the organs shows that the nanogel had a body clearance time of ≈48 h, because at this time point a weak signal of NIR fluorescence is observed only in the kidneys.
Hereupon it can be concluded that the engineered GC nanogel has a fairly long blood circulation time, suitable for biomedical applications, namely, drug delivery, simultaneously allowing efficient and quick body clearance.
image.
Related Results
Synthesis and Investigation into Apatite-forming Ability of Hydroxyapatite/Chitosan-based Scaffold
Synthesis and Investigation into Apatite-forming Ability of Hydroxyapatite/Chitosan-based Scaffold
In this study, porous scaffolds were fabricated using inorganic material-hydroxyapatite and chitosan for bone-tissue engineering. The combination of hydroxyapatite and chitosan may...
Aktivitas Antibakteri Nanogel Asam Salisilat
Aktivitas Antibakteri Nanogel Asam Salisilat
Abstract. Acne vulgaris is a common skin disorder, particularly among adolescents, with Cutibacterium acnes being one of its primary bacterial triggers. While salicylic acid has be...
Final Report on the Safety Assessment of Propylene Glycol (PG) Dicaprylate, PG Dicaprylate/Dicaprate, PG Dicocoate, PG Dipelargonate, PG Isostearate, PG Laurate, PG Myristate, PG Oleate, PG Oleate SE, PG Dioleate, PG Dicaprate, PG Diisostearate, and PG Di
Final Report on the Safety Assessment of Propylene Glycol (PG) Dicaprylate, PG Dicaprylate/Dicaprate, PG Dicocoate, PG Dipelargonate, PG Isostearate, PG Laurate, PG Myristate, PG Oleate, PG Oleate SE, PG Dioleate, PG Dicaprate, PG Diisostearate, and PG Di
The Propylene Glycol Dicaprylate family of ingredients includes several esters and diesters of Propylene Glycol and fatty acids. These ingredients are used in cosmetic formulations...
Formulasi dan Karakterisasi Nanogel Ekstrak Etanol Daun Katuk (Breynia androgyna L.)
Formulasi dan Karakterisasi Nanogel Ekstrak Etanol Daun Katuk (Breynia androgyna L.)
Abstract. Katuk leaf is a medicinal plant in Southeast Asia, including Indonesia. Nanogels are gels with small particle sizes and large surface areas that can increase the penetrat...
Drought resistance and protein changes induced by chitosan in rice Oryza sativa L.
Drought resistance and protein changes induced by chitosan in rice Oryza sativa L.
This research aims to determine the appropriate chitosan types and concentrations for drought resistant induction in rice based on the hypothesized that the antioxidant system shou...
Final Report on the Safety Assessment of PEG-25 Propylene Glycol Stearate, PEG-75 Propylene Glycol Stearate, PEG-120 Propylene Glycol Stearate, PEG-10 Propylene Glycol, PEG-8 Propylene Glycol Cocoate, and PEG-55 Propylene Glycol Oleate
Final Report on the Safety Assessment of PEG-25 Propylene Glycol Stearate, PEG-75 Propylene Glycol Stearate, PEG-120 Propylene Glycol Stearate, PEG-10 Propylene Glycol, PEG-8 Propylene Glycol Cocoate, and PEG-55 Propylene Glycol Oleate
The ingredients considered in this safety assessment are polyethylene glycol ethers of either propylene glycol itself, propylene glycol stearate, propylene glycol oleate, or propyl...
Analysis Glycol Losses On Gas Dehydration UnitPT X Field Z
Analysis Glycol Losses On Gas Dehydration UnitPT X Field Z
The dehydration process gas is a process of separation of gas from the water content by mixing an absorbent for example glycol, in PT X field Z process of dehydration of gas using ...
BIODEGRADATION OF CHITOSAN MEMBRANE SCALES OF HARUAN FISH (Channa striata)-HYDROXYAPATITE IN ARTIFICIAL SALIVA SOLUTION
BIODEGRADATION OF CHITOSAN MEMBRANE SCALES OF HARUAN FISH (Channa striata)-HYDROXYAPATITE IN ARTIFICIAL SALIVA SOLUTION
Background: Membrane materials for surgical procedures using Guided Tissue Regeneration (GTR) are Polytetrafluoroethylene (PTFE) and collagen, but have the disadvantage of requirin...

