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. In all cases, there was a lack of a fibrous capsule formation around the bioresorbable polymer over time. Also, during the performed study, conclusions were made on osteogenesis intensity depending on the initial state of bone tissue.
Skip Nav Destination
,
,
,
,
,
,
,
,
Article navigation
28 September 2017
PHYSICS OF CANCER: INTERDISCIPLINARY PROBLEMS AND CLINICAL APPLICATIONS: Proceedings of the International Conference on Physics of Cancer: Interdisciplinary Problems and Clinical Applications (PC IPCA’17)
23–26 May 2017
Tomsk, Russia
Research Article|
September 28 2017
The fabrication of bioresorbable implants for bone defects replacement using computer tomogram and 3D printing Available to Purchase
P. G. Kuznetsov;
P. G. Kuznetsov
1
Tomsk Polytechnic University
, Tomsk 634050 Russia
Search for other works by this author on:
S. I. Tverdokhlebov;
S. I. Tverdokhlebov
a)
1
Tomsk Polytechnic University
, Tomsk 634050 Russia
Search for other works by this author on:
S. I. Goreninskii;
S. I. Goreninskii
1
Tomsk Polytechnic University
, Tomsk 634050 Russia
Search for other works by this author on:
E. N. Bolbasov;
E. N. Bolbasov
1
Tomsk Polytechnic University
, Tomsk 634050 Russia
Search for other works by this author on:
A. V. Popkov;
A. V. Popkov
2
Russian Ilizarov Scientific Center for Restorative Traumatology and Orthopaedics
, Kurgan 640014 Russia
Search for other works by this author on:
D. E. Kulbakin;
D. E. Kulbakin
3
Cancer Research Institute, Tomsk National Research Medical Centre of the Russian Academy of Science
, Tomsk, 634028 Russia
Search for other works by this author on:
E. G. Grigoryev;
E. G. Grigoryev
3
Cancer Research Institute, Tomsk National Research Medical Centre of the Russian Academy of Science
, Tomsk, 634028 Russia
Search for other works by this author on:
N. V. Cherdyntseva;
N. V. Cherdyntseva
3
Cancer Research Institute, Tomsk National Research Medical Centre of the Russian Academy of Science
, Tomsk, 634028 Russia
Search for other works by this author on:
E. L. Choinzonov
E. L. Choinzonov
1
Tomsk Polytechnic University
, Tomsk 634050 Russia
3
Cancer Research Institute, Tomsk National Research Medical Centre of the Russian Academy of Science
, Tomsk, 634028 Russia
Search for other works by this author on:
P. G. Kuznetsov
1
S. I. Tverdokhlebov
1,a)
S. I. Goreninskii
1
E. N. Bolbasov
1
A. V. Popkov
2
D. E. Kulbakin
3
E. G. Grigoryev
3
N. V. Cherdyntseva
3
E. L. Choinzonov
1,3
1
Tomsk Polytechnic University
, Tomsk 634050 Russia
2
Russian Ilizarov Scientific Center for Restorative Traumatology and Orthopaedics
, Kurgan 640014 Russia
3
Cancer Research Institute, Tomsk National Research Medical Centre of the Russian Academy of Science
, Tomsk, 634028 Russia
a)
Corresponding author: [email protected]
AIP Conf. Proc. 1882, 020040 (2017)
Citation
P. G. Kuznetsov, S. I. Tverdokhlebov, S. I. Goreninskii, E. N. Bolbasov, A. V. Popkov, D. E. Kulbakin, E. G. Grigoryev, N. V. Cherdyntseva, E. L. Choinzonov; The fabrication of bioresorbable implants for bone defects replacement using computer tomogram and 3D printing. AIP Conf. Proc. 28 September 2017; 1882 (1): 020040. https://doi.org/10.1063/1.5001619
Download citation file:
Pay-Per-View Access
$40.00
Sign In
You could not be signed in. Please check your credentials and make sure you have an active account and try again.
65
Views
Citing articles via
The implementation of reflective assessment using Gibbs’ reflective cycle in assessing students’ writing skill
Lala Nurlatifah, Pupung Purnawarman, et al.
Effect of coupling agent type on the self-cleaning and anti-reflective behaviour of advance nanocoating for PV panels application
Taha Tareq Mohammed, Hadia Kadhim Judran, et al.
Classification data mining with Laplacian Smoothing on Naïve Bayes method
Ananda P. Noto, Dewi R. S. Saputro
Related Content
A review on additive manufacturing in bioresorbable stent manufacture
AIP Conf. Proc. (July 2021)
Processing system of jaws tomograms for pathology identification and surgical guide modeling
AIP Conf. Proc. (November 2015)
Bioresorbable Ca-phosphate-polymer/metal and Fe-Ag nanocomposites for macro-porous scaffolds with tunable degradation and drug release
AIP Conf. Proc. (November 2016)
Bioresorbable composites based on hybrid phosphate-silicate coatings on Mg0.8Ca alloy
AIP Conf. Proc. (December 2020)
Biodegradable composite material for bone reconstruction: Medical and biological research
AIP Conf. Proc. (December 2020)