Saturday, March 22, 2014
A New Prototype?
Our current prototype utilizes a plunger that allows the user to apply the needle pad at an evenly distributed pressure of their choice. It may be the case that an alternate application method may be more appropriate. For instance, we received feedback from a classmate who has experience with microneedles that the needles should be injected quickly. If they are injected too slowly, the skin surface can bend, which he surmised would be a bad thing. One potential problem with the skin bending is that there may be a less even distribution of needles across the skin. Or perhaps the allergen would not be injected at the correct depth. Thus, we have considered spring-loaded designs that can "shoot" the needles into the skin. Such a mechanism could be initiated by a click at the top of the applicator or even at the bottom of the applicator as it comes into the surface of the skin. I have some rough sketches that I will post as soon as I can scan them. After further discussion and consideration, we may look to translate the sketches into CAD drawings and look to 3-d print.
Thursday, March 20, 2014
Weekly Update: Return from Spring Break
Over spring break, I had the chance to speak with another friend who really emphasized how much a less painful allergy test would benefit anyone who has to go through the testing. I know we were aiming toward a product to help children with allergy testing, but I think this we have a good chance of marketing this to all people who get allergy tests. She also explained how when she got tested, they first tested her for general categories of allergies to see what group of allergens she was allergic to. After that, they tested her for the specific allergens in that group. Maybe we could design different allergy pads with like 10 or 20 allergens that are in groups. That way, if the person is suspected to have a certain allergy, there can be specific pads for that allergen group. We could also still do an allergy pad with unrelated allergens, then go into the more specific allergen tests. This was just my thought for the week after talking to a patient who recently had the testing done. Obviously once the prototype design is complete and we can figure out the size of the matrix, we will know how many allergens each pad can contain. Only then can we look into this specification for our product.
I have also created a logo for our product. It's a work-in-progress, but does a pretty nice job making the bee look friendly, as opposed to hurtful :)
I have also created a logo for our product. It's a work-in-progress, but does a pretty nice job making the bee look friendly, as opposed to hurtful :)
Changing of our major focus of the project
We talked to Prof. Wong, and she suggested that we should focus on the reducing pain / standardizing the produce, rather than focusing too much on the diagnosis part of the project.
So, we decided to lower the number of allergens being tested by the device. Also, our primary contact told us that for most of the time, doctors already have an idea what type of allergens might be causing the allergic reaction, so they can just choose the specific allergens needed to perform the allergy testing.
Friday, March 7, 2014
Very Useful Paper for Microneedle Choices
This hyperlinked journal article is a review of microneedles for drug and vaccine delivery. I believe we've passed this around before, but I don't think we've featured it on the blog. There are certainly still lessons we can learn from it.
We can channel this primary information into our particular application. It talks about each choice of microneedle geometry, material, and drug delivery type. Some drug delivery devices are better suited for other applications. For example,fully dissolvable poly-saccharide subtrate microneedles are very effective for drug delivery in flu vaccine applications and limits biohazardous waste. However, that application requires a 10 minute set time in which the patch is constantly in contact with the arm. While this is fine for drug delivery, that 10 minutes of patch contact may disrupt the measurable outcome of the scratch test and render the assay useless. Those are the sorts of choices that we can propose and mark of the list. We have spoken in general and sometimes more specific terms about these choices and think we have an idea of what suits our project, but we should give this article rigorous consideration so that we may make the most appropriate choice. Perhaps there are recently developed geometries and subtrates that competitors neglected or weren't priviledge to. We have the advantage that the competitors that have approached this problem had to make final design choices earlier, where current research and manufacturing capacity could now be better suited.
Take a look at the paper! Future posts will have a more comprehensive analysis.
In case you missed the hyperlink: http://drugdelivery.chbe.gatech.edu/Papers/2012/Kim%20Adv%20Drug%20Deliv%20Rev%202012.pdf
We can channel this primary information into our particular application. It talks about each choice of microneedle geometry, material, and drug delivery type. Some drug delivery devices are better suited for other applications. For example,fully dissolvable poly-saccharide subtrate microneedles are very effective for drug delivery in flu vaccine applications and limits biohazardous waste. However, that application requires a 10 minute set time in which the patch is constantly in contact with the arm. While this is fine for drug delivery, that 10 minutes of patch contact may disrupt the measurable outcome of the scratch test and render the assay useless. Those are the sorts of choices that we can propose and mark of the list. We have spoken in general and sometimes more specific terms about these choices and think we have an idea of what suits our project, but we should give this article rigorous consideration so that we may make the most appropriate choice. Perhaps there are recently developed geometries and subtrates that competitors neglected or weren't priviledge to. We have the advantage that the competitors that have approached this problem had to make final design choices earlier, where current research and manufacturing capacity could now be better suited.
Take a look at the paper! Future posts will have a more comprehensive analysis.
In case you missed the hyperlink: http://drugdelivery.chbe.gatech.edu/Papers/2012/Kim%20Adv%20Drug%20Deliv%20Rev%202012.pdf
Thursday, March 6, 2014
Design Review 2 Process and Feedback
After discussing our second design review, which included our prototype and visions for the final product, we came up with some useful feedback and potential issues. One thing we need to consider for the final design is the pressure used to apply the microneedles to the patient; we tried to address this problem by creating an applicator attachment to stabilize the device. We also designed a groove in the device so the plunger can only get pushed down to a certain distance. However, those do not standardize the amount of pressure a doctor uses to physically push the button down. We were also reminded that if we use microneedles, they have to be injected into the patient fast, in order to reduce the risk of the arm/skin bending before insertion. The next part of our design phase would have to focus on these issues and provide a solution that stays true to our original stamp design.
I have found two articles that address the issue with the force applied to microneedles for insertion into the skin. They can be found here and here. Both of these research articles discuss the force thresholds: a minimum force must be applied, but there is also a maximum force they can reach before breaking. This is something to consider if we do not use dissolvable or biodegradable microneedles. These are just some more quantitative angles we have to look at for our design and how we can get it to function properly.
I have found two articles that address the issue with the force applied to microneedles for insertion into the skin. They can be found here and here. Both of these research articles discuss the force thresholds: a minimum force must be applied, but there is also a maximum force they can reach before breaking. This is something to consider if we do not use dissolvable or biodegradable microneedles. These are just some more quantitative angles we have to look at for our design and how we can get it to function properly.
Sequence Drawings
How to set up our device:
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The stabilizer is screwed off to expose the pad holder and the pad is then attached.
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| The stabilizer is then reattached to the rest of the applicator and can be used. |
How to use our device:
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| The area where the allergy test will be done is cleaned. |
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| The applicator is placed on the area and the button on the top is pushed to inject the needles. |
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| The button is then released and the needles will rise off the skin. |
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| The applicator is removed from the skin and a matrix is left on skin to indicate where the needles were inserted. |
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| The stabilizer is once again removed |
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| The used pad is then removed into a biohazard container. |
Tuesday, March 4, 2014
CAD drawing
In the past few weeks, I've been learning SolidWorks and trying to come up with a model for the stamp. This is what I've come up with so far.
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