Showing posts with label 3D Printing. Show all posts
Showing posts with label 3D Printing. Show all posts

06 July, 2016

Breakthrough in safe drug delivery

Sheffield engineers make major breakthrough in developing silk ‘micro-rockets’ that can be used safely in biological environments.

By using an innovative 3D inkjet printing method, researchers from Chemical and Biological Engineering at the University of Sheffield have taken the biggest step yet in producing microscopic silk swimming devices that are biodegradable and harmless to a biological system.

Details can be found from The University of Sheffield website.

30 June, 2016

3D printing enables the smalles complex micro-objectives

The femtosecond laser, with pulse durations smaller than 100 femtoseconds, is being focused in a microscope into liquid photoresist which rests on a glass substrate or an optical fiber. Two photons of the red laser beam with a wavelength of 785 nm are being absorbed simultaneously in the focus and expose the photoresist. This crosslinks the polymer and hardens it. The laser beam is directed with a scanner or by moving the substrate over the substrate. After exposure, the unexposed photoresist is washed away with a solvent. Only the hardened transparent polymer remains and forms the optical element.



Using this method, optical free form surfaces can be created with sub-micrometer accuracy. The precision of the 3D laser writing allows not only for construction of common spherical lenses, but also the more ideal surfaces such as paraboloids or aspheres of higher order are possible. Particularly optical lens systems with two or more lenses can be realized for the first time with this method. This opens the door to aberration correction and microoptical imaging systems with unprecedented quality.

Full story and contact information can be found from University of Stuttgart website.

19 May, 2016

Johnson & Johnson and HP to Enhance 3D Printing Technologies

Johnson & Johnson announced a collaboration between Johnson & Johnson Services, Inc. and a subsidiary of HP Inc. The collaboration is focused on using 3D printing technologies to create better health care outcomes at reduced costs. Working together, the companies plan to combine their scientific, clinical, material science and technological expertise, and deep insights to develop products and solutions which can be manufactured quickly and customized to the needs of an individual patient or consumer.

In the near-term, the collaboration will focus on personalization of instrumentation and software for patient-specific healthcare devices. It is anticipated that 3D printing technology will lead to innovation in areas such as orthopaedics, eye health and consumer products, among others.

“The intersection of technology and health care is spurring innovation that will have a profound impact on patients and consumers all over the world,” said Sandra Peterson, Group Worldwide Chairman, Johnson & Johnson. “Combined with advances in data mining and software, 3D printing could enable distributed manufacturing models and patient-specific products, therapies and solutions that deliver better outcomes, better economics and improved global accessibility. This collaboration with HP Inc. exemplifies our commitment to harnessing new technology to improve outcomes and reduce costs across the health continuum.”

“Advances in 3D printing technology have the potential to break historical paradigms of health care delivery in ways that are not feasible in traditional manufacturing processes,” said Stephen Nigro, president of HP’s 3D printing business. “Together with Johnson & Johnson we have the potential to create opportunities and innovations in health care to improve patients’ lives that neither company could develop alone.”

A press release can be found from J & J website following this link.

06 May, 2016

3-D Printed Bone with blend of natural and man-made materials works best

To make a good framework for filling in missing bone, mix at least 30 percent pulverized natural bone with some special man-made plastic and create the needed shape with a 3-D printer. That’s the recipe for success reported by researchers at The Johns Hopkins University in a paper published April 18 online in ACS Biomaterials Science & Engineering.

Each year, the Johns Hopkins scientists say, birth defects, trauma or surgery leave an estimated 200,000 people in need of replacement bones in the head or face. Historically, the best treatment required surgeons to remove part of a patient’s fibula (a leg bone that doesn’t bear much weight), cut it into the general shape needed and implant it in the right location. But, according to Warren Grayson, Ph.D., associate professor of biomedical engineering at the Johns Hopkins University School of Medicine and the report’s senior author, the procedure not only creates leg trauma but also falls short because the relatively straight fibula can’t be shaped to fit the subtle curves of the face very well.

That has led investigators to 3-D printing, or so-called additive manufacturing, which creates three-dimensional objects from a digital computer file by piling on successive, ultrathin layers of materials. The process excels at making extremely precise structures — including anatomically accurate ones — from plastic, but “cells placed on plastic scaffolds need some instructional cues to become bone cells,” says Grayson. “The ideal scaffold is another piece of bone, but natural bones can’t usually be reshaped very precisely.”

In their experiments, Grayson and his team set out to make a composite material that would combine the strength and printability of plastic with the biological “information” contained in natural bone.

They began with polycaprolactone, or PCL, a biodegradable polyester used in making polyurethane that has been approved by the FDA for other clinical uses. “PCL melts at 80 to 100 degrees Celsius (176 to 212 Fahrenheit) — a lot lower than most plastics — so it’s a good one to mix with biological materials that can be damaged at higher temperatures,” says Ethan Nyberg, a graduate student on Grayson’s team.

PCL is also quite strong, but the team knew from previous studies that it doesn’t support the formation of new bone well. So they mixed it with increasing amounts of “bone powder,” made by pulverizing the porous bone inside cow knees after stripping it of cells.

“Bone powder contains structural proteins native to the body plus pro-bone growth factors that help immature stem cells mature into bone cells,” says Grayson. “It also adds roughness to the PCL, which helps the cells grip and reinforces the message of the growth factors.”

The first test for the composite materials was printability, Grayson says. Five, 30 and 70 percent bone powder blends performed well, but 85 percent bone powder had too little PCL “glue” to maintain clear lattice shapes and was dropped from future experiments. “It was like a chocolate chip cookie with too many chocolate chips,” says Nyberg.

To find out whether the scaffolds encourage bone formation, the researchers added human fat-derived stem cells taken during a liposuction procedure to scaffolds immersed in a nutritional broth lacking pro-bone ingredients.

After three weeks, cells grown on 70 percent bone powder scaffolds showed gene activity hundreds of times higher in three genes indicative of bone formation, compared to cells grown on pure PCL scaffolds. Cells on 30 percent bone powder scaffolds showed large but less impressive increases in the same genes.

After the scientists added the key ingredient beta-glycerophosphate to the cells’ broth to enable their enzymes to deposit calcium, the primary mineral in bone, the cells on 30 percent scaffolds produced about 30 percent more calcium per cell, while those on 70 percent scaffolds produced more than twice as much calcium per cell, compared to those on pure PCL scaffolds.

Finally, the team tested their scaffolds in mice with relatively large holes in their skull bones made experimentally. Without intervention, the bone wounds were too large to heal. Mice that got scaffold implants laden with stem cells had new bone growth within the hole over the 12 weeks of the experiment. And CT scans showed that at least 50 percent more bone grew in scaffolds containing 30 or 70 percent bone powder, compared to those with pure PCL.

“In the broth experiments, the 70 percent scaffold encouraged bone formation much better than the 30 percent scaffold,” says Grayson, “but the 30 percent scaffold is stronger. Since there wasn’t a difference between the two scaffolds in healing the mouse skulls, we are investigating further to figure out which blend is best overall.”

Although the use of “decellularized” cow bone has been FDA-approved for clinical use, in future studies, the researchers say, they hope to test bone powder made from human bone since it is more widely used clinically. They also want to experiment with the designs of the scaffolds’ interior to make it less geometric and more natural. And they plan to test additives that encourage new blood vessels to infiltrate the scaffolds, which will be necessary for thicker bone implants to survive.

Other authors of the report include Ben Hung, Bilal Naved, Miguel Dias, Christina Holmes, Jennifer Elisseeff and Amir Dorafshar of the Johns Hopkins University School of Medicine.

A press release can be found from Johns Hopkins University School of medicine webwite.

13 April, 2016

German 3D Printing Technology for Building Complex Multi-Material Medical Devices

The researchers from Fraunhofer Institute for Ceramic Technologies and Systems (IKTS) in Dresden are focusing on suspension-based additive manufacturing methods and combinations of them with other manufacturing techniques to create not only microreactors, but also bone implants, dentures, and surgical tools.

This German 3D printing technology offers solution for creating medical components in almost every conceivable design using additive manufacturing methods.“We have no limitations in terms of type or color of material for the target components. This allows us to process ceramics, glass, plastic, or even metal using thermoplastic 3D printing. One more advantage is that several different materials can be produced at the same time,” says Dr. Tassilo Moritz from Fraunhofer IKTS’s “Materials and Processes” business division. In the lab, the scientists have already successfully made components out of high-performance ceramics and hard metals. Now they are looking for partners to put their technology to real-world use.

One area in which the multi-material approach is important is surgery: endoscopes frequently employ an instrument to first cut open tissue, and then quickly close the blood vessels back up again using electric current. To prevent electricity from shocking the patient, the instrument needs not only high-grade steel but also insulated ceramic components. ”Ceramic substances are often well-suited for medical devices and components. Ceramics are sturdy and can be cleaned thoroughly,” explains Moritz.

The press release can be found from IKTS Website by clicking this link.