The present work demonstrates the possibility of production of personalized implants from bioresorbable polymers designed for replacement of bone defects. The stages of creating a personalized implant are described, which include the obtaining of 3D model from a computer tomogram, development of the model with respect to shape of bone fitment bore using Autodesk Meshmixer software, and 3D printing process from bioresorbable polymers. The results of bioresorbable polymer scaffolds implantation in pre-clinical tests on laboratory animals are shown. The biological properties of new bioresorbable polymers based on poly(lactic acid) were studied during their subcutaneous, intramuscular, bone and intraosseous implantation in laboratory animals. I...
Abstract Background The primary objective of Tissue engineering is a regeneration or replacement of ...
This research introduced a new poly-ether-ether-ketone calcium hydroxyapatite (PEEK-cHAp) composite ...
International audienceThe reconstruction of large bone defects (12 cm3) remains a challenge for clin...
At the Freiburger Materialforschungszentrum we have developed a new process (3DBioplotting TM) that...
The aim of the investigation was to develop a technology of manufacturing bone implants based on a h...
This study investigates the design, workflow and manufacture of highly porous, resorbable additively...
Reconstructive surgery aims to restore tissue defects by replacing them with similar autologous tiss...
3D-printed composite scaffolds have emerged as an alternative to deal with existing limitations when...
The file attached to this record is the author's final peer reviewed version. The Publisher's final ...
There is growing need for synthetic tissue replacement materials designed in a way that mimic comple...
Nowadays, the number of performed bone augmentation surgeries in various fields of medicine is growi...
Hard tissues, such as bone and teeth, are natural composites of collagen nanofibers that are reinfor...
Using bioresorbable materials implants can be manufactured which dissolve in the human body and are...
Abstract Background The primary objective of Tissue engineering is a regeneration or replacement of ...
This research introduced a new poly-ether-ether-ketone calcium hydroxyapatite (PEEK-cHAp) composite ...
International audienceThe reconstruction of large bone defects (12 cm3) remains a challenge for clin...
At the Freiburger Materialforschungszentrum we have developed a new process (3DBioplotting TM) that...
The aim of the investigation was to develop a technology of manufacturing bone implants based on a h...
This study investigates the design, workflow and manufacture of highly porous, resorbable additively...
Reconstructive surgery aims to restore tissue defects by replacing them with similar autologous tiss...
3D-printed composite scaffolds have emerged as an alternative to deal with existing limitations when...
The file attached to this record is the author's final peer reviewed version. The Publisher's final ...
There is growing need for synthetic tissue replacement materials designed in a way that mimic comple...
Nowadays, the number of performed bone augmentation surgeries in various fields of medicine is growi...
Hard tissues, such as bone and teeth, are natural composites of collagen nanofibers that are reinfor...
Using bioresorbable materials implants can be manufactured which dissolve in the human body and are...
Abstract Background The primary objective of Tissue engineering is a regeneration or replacement of ...
This research introduced a new poly-ether-ether-ketone calcium hydroxyapatite (PEEK-cHAp) composite ...
International audienceThe reconstruction of large bone defects (12 cm3) remains a challenge for clin...