CN107164318 |
Method for building hollow vascularized heart based on 3D biological printing technology and hollow vascularized heart. The invention outlines a 3D printing method for creating a hollow vascularized heart using reverse modeling, im-porting data, and driving nozzles according to a predesigned CAD model. The ink used includes hydrogel, platelet- -rich plasma, human umbilical vein endothelial cells, and SD rat primary cardiomyocytes. |
CN109806441 |
3D Printing Equipment for Printing Artificial Heart and Bionic Construction Method of Artificial Heart The invention outlines a 3D printing equipment for creating an artificial heart and a bionic construction method, which involves scanning hospital images, pathologic analysis, model layering treatment, importing slice data, 3D printing, and creating an organ culture environment. |
CN110310364 |
Heart 3D printing system and printing method thereof The invention outlines a heart 3D printing system that utilizes a computer, ultrasonic diagnostic apparatus, CT, MRI, and 3D biological printer to create three-dimensional graphs on the heart, improving imaging precision and reducing errors. It also enables independent 3D printing of blood vessels, improving blood pumping and synchronous con-traction of biological cells. |
CN110654028B |
Three-dimensional object data layering processing method and 3D printing equipment The application provides a layered processing method, a 3D printing method, a 3D printing device, a computer device, and a computer-readable storage medium for three-dimensional object data. It displays color appearance attributes, identifies objects with different parts, arranges models, performs layered processing, sets over-solidified attributes, and over-solidifies on slices in subsequent printing. The application also uses different exposure strategies to obtain three-dimensional objects with identifiable assembly or configuration information in one-time printing, simplifying the production process and reducing costs. |
CN111785146A |
3D Printed silica gel heart model The invention offers a heart model that includes all venous circulatory systems and a completely right heart system. It is anatomical three-dimensional, simulating real blood flow and heart pulsation simulations. This allows clini-cians to achieve the same patient experience during pacemaker electrode lead implantation and biventricular pacing electrode lead implantation operations. |
CN114716694 |
Hydrogel capable of promoting vascularization, resisting calcification and realizing 3D printing of heart valve The invention relates to a hydrogel for 3D printing heart valves, which promotes vascularization and prevents calcification. The hydrogel is made from an amino-containing polymer material modified with L-arginine, oxidized sodium hyaluronate, polyethylene glycol diacrylate, and a conductive chemical. |
CN218420138 |
Mitral valve ring device prepared through transoesophageal three-dimensional echocardiography 3D printing measurement. The utility model features a 3D printed mitral valve ring device with a supporting ring, deformation groove, silica gel middle layer, and adjusting mechanisms. A biocompatible flannelette layer is sewn on the outer side. The device allows fine adjustment of the supporting ring’s caliber, and its uniformly distributed inner surface ensures easy folding and efficient use. |
US10842379B2 |
Multi-modality image fusion for 3D printing of organ morphology and physiology A method for multi-modality fusion for 3D printing of a patient-specific organ model is proposed. This involves fused medical images of a target organ from various imaging modalities. A holistic mesh model of the target organ is generated by segmenting the target organ in the fused images. A spatially varying physiological parameter is estima-ted from the fused images and mapped to the holistic mesh model. The 3D printed model includes a representation of the estimated parameter, which can be represented using spatially material properties, color, or texture. |
US20200316254 |
Three-dimensional bioprinting of cardiac patch with anisotropic and perfusable architecture A cardiac patch for treating mammalian hearts is created using a dual 3D bioprinting technique, using stereoli-thography for anisotropic constructs and extrusion printing for perfusion vessels. The patch provides nutrient and oxygen-containing media for cell growth within the vessels, allowing for larger patches for treating cardiac damage in both small and large mammalian hearts. |
WO2018200753 |
Biocompatible Conductive Inks Based on Cellulse Nanofibrils For 3D Printing of Conductive Biomedical Devices The invention describes a 3D-printed biomaterial made from a hydrogel containing gelatin, alginate, and cells. It explains that this biomaterial can be used to treat damaged blood vessels and test vasoactive drugs by creating blood vessels using 3D printer technology. |
WO2023184597 |
Simulated Heart, Heart Simulation Device, And Heart Simulation Method A simulated heart is a device that replicates the heart’s structure, consisting of an upper, middle, and lower part con-nected in sequence. It is divided into separate parts for 3D printing and simulation, replicating the actual heart structure and performing simulations based on patient clinical characteristics, making it feasible for research and clinic use. |
| WO2019200042 |
Engineered Platform To Generate 3d Cardiac Tissues
Describes a system, device, methods, and compositions for generating 3-dimensional cardiac tissues, maturing them, and maintaining their viability in culture.
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WO2024026023 |
Double Networked 3d-Printed Biomaterials The text describes a 3D-printed biomaterial made from a hydrogel containing gelatin, alginate, and cells. It explains that this biomaterial can be used to treat damaged blood vessels and test vasoactive drugs by creating blood vessels using 3D printer technology. |