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Tavakoli, C.

Publications and source records attributed to Tavakoli, C..

2 recordsLinked to original sources

A novel injectable radiopaque hydrogel with potent properties for multicolor CT imaging in the context of brain and cartilage regenerative therapy

Cell therapy is promising to treat many conditions, including neurological and osteoarticular diseases. Encapsulation of cells within hydrogels facilitates cell delivery and can improve therapeutic effects. However, much work remains to be done to align treatment strategies with specific diseases. The development of imaging tools that enable monitoring cells and hydrogel independently is key to achieving this goal. Our objective herein is to longitudinally study an iodine-labeled hydrogel, incorporating gold-labeled stem cells, by bicolor CT imaging after in vivo injection in rodent brains or knees. To this aim, an injectable self-healing hyaluronic acid (HA) hydrogel with long-persistent radiopacity was formed by the covalent grafting of a clinical contrast agent on HA. The labeling conditions were tuned to achieve sufficient X-ray signal and to maintain the mechanical and self-healing properties as well as injectability of the original HA scaffold. The efficient delivery of both cells and hydrogel at the targeted sites was demonstrated by synchrotron K-edge subtraction-CT. The iodine labeling enabled to monitor the hydrogel biodistribution in vivo up to 3 days post-administration, which represents a technological first in the field of molecular CT imaging agents. This tool may foster the translation of combined cell-hydrogel therapies into the clinics.

bioengineering↗

Human fetal virtual histology with X-ray phase contrast imaging

Human fetal analysis is of fundamental importance in understanding normal and pathological development. Congenital malformations and prenatal deaths are commonly linked to alterations of organs formation during embryonic and fetal life. Normal and pathological developments are not completely understood yet, because access to human fetal samples is difficult and exploratory means are scarce. Here we show the first X-ray phase contrast images of post mortem human fetuses performed at the tissue scale. Imaging was performed on both an entire sample and isolated organs at higher resolution. X-ray phase contrast imaging is based on the detection of refraction of a high energy X-ray beam after sample exposure. We were able to produce a tomographic imaging of human fetal tissues at the beginning of their second trimester at resolutions of 23 {micro}m, 6 {micro}m and 3 {micro}m with high contrast on soft tissues. Our results demonstrate how X-ray phase contrast imaging is a promising technique for human development analysis as it gives high-contrast and high-resolution results for soft and hard tissues. We assume this technique to be a reference in the future of human development studies as it is conservative for rare and precious human specimens.

developmental biology↗