Microneedle (MN) arrays are minimally-invasive devices used to penetrate the skin’s outermost layer, the stratum corneum, the principal barrier to topically-applied drugs. They are widely used in a range of applications including cosmetics and pharmaceuticals. Their use involves a simple, cheap, safe, and effective technique requiring minimal training. Microneedles were originally used as a collagen induction therapy for facial scars and skin rejuvenation, and still are, but are also now widely used in the form of patches as a transdermal delivery system for therapeutic drugs and vaccines.
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Tuesday, 2 November 2021
Tuesday, 26 October 2021
Texture Analysis in Research: Incorporation of Insects as Ingredients in the Bakery Industry
Back in December 2019, Roberts Bakery in Norwich were the first UK bakery to launch a loaf of bread containing cricket flour. The uptake from other bakeries has been slow in the UK; customers will take some convincing before they overcome their trepidation to eat insects. However, it is likely that insects will become a regular part of our diets in years to come.
Insects such as crickets provide a protein source with a high feed-conversion efficiency rate (an animal's capacity to convert feed into increased body mass). They also require much less water than traditional protein sources such as poultry or cattle. Health benefits of insect consumption include their high antioxidant power and chitinous fibre content, as well as the upside of a higher protein content in whichever food they are added to. The challenge lies in introducing insect protein into the Western diet. This has to begin with ingredient replacement in existing foods, one example of which is bakery products, as these act to familiarise consumers with insect-based food.
Tuesday, 19 October 2021
Food Texture: Design by 3D printing
The food industry is experiencing a paradigm shift. People’s growing awareness of the food that they consume and the drive for new customized sensory experiences is pushing for the development of new technologies that can satisfy these new consumers’ standards. One of these novel technologies, 3D Printing, has been around for a while, however, only in 2007 was it applied for the first time in the production of food structures.
This technology has attracted a lot of attention for its versatility and potential application in various production sectors, such as aerospace, electronics, architecture, and medicine but it is becoming more apparent that in the food production sector this technology has the potential to be used to create personalised food products, enabling the creation of food products with specific design characteristics, flavours and colours, geometric structures, textures, and nutritional profiles.
Tuesday, 12 October 2021
Enhancing Textures: An Introduction to the Hydrocolloid Universe
With names like Ultra-Tex 3, Methocel F50, and agar agar, hydrocolloids sound like they’re meant for science fiction novels, not our pantries. However, these seemingly mysterious white powders are incredibly valuable in food development and can provide fun new textural experiences. Derived from natural sources (like seaweed, tapioca, and plant matter), hydrocolloids have been used for centuries to thicken foods and enhance textures. From spherification to stabilisation, hydrocolloids can help you make fancy foams, delicious gummy candies, and intriguing fluid gels.
Tuesday, 5 October 2021
Confectionery: Texture Geekery
What makes chewy candies so appealing? Texture is a huge part of it. That’s why a lot of professional chefs love making candy—manipulating texture is what chefs do. Professional confectioners, too, are masters of texture, and they’re seriously well schooled in the ingredients that go into our favourite confections.
For every piece of chewy candy, there are a few key elements that dictate texture: Soluble solids control the firmness of a certain product. Gums control the “bite” (supple, snappy, or brittle, for example). And fat and air soften the texture in a way that soluble solids alone cannot. Candies like Starburst, for example, seem hard at first but then yield to your bite. It’s the high concentration of soluble solids that makes them hard; incorporating air and fat, meanwhile, makes the texture soft enough to chew.
Tuesday, 28 September 2021
Novel Physical Testing Methods using the Texture Analyser
Our probes and fixtures range has developed due to the need for new ways to hold/support and test samples in ways that haven’t been previously available for traditional texture analysis test methods. For example, instead of using the Texture Analyser in an up and down mode you could support the instrument on its side and measure friction in a horizontal plane. This could be for the measurement of frictional properties of packaging or to assess the grating potential of cheese.
Tuesday, 21 September 2021
Adhesion Testing for Texture Analysis & Materials Testing
What is an adhesion test?
Adhesion is the force that resists the separation of two bodies in contact. An adhesion test measures the adhesive characteristics of a product by measuring the forces to separate the product from the test surface which it comes into contact with. Adhesiveness ('Stickiness') is most commonly measured with a cylinder probe, which is pressed (application of compression), onto the surface of the sample after which the force to pull the probe off it is measured. The higher the force to separate these surfaces, the more adhesive is the product. The distance the probe needs to be pulled away from the product before the two surfaces are separated will also indicate its viscoelastic behaviour, and depending upon the product, its ‘tailing’ or ‘stringiness’ characteristic.
Tuesday, 14 September 2021
Cutting/Shearing Testing for Texture Analysis and Materials Testing
What is a cutting/shearing test?
In general, any texture analysis test that involves the use of a type of blade to perform the test, is performing a cutting or shearing action on the sample. A number of empirical fixtures feature a single blade or a number of blades which cut/shear through the sample, under specified conditions. The maximum force required and/or the work necessary to achieve this (i.e. the area under the curve) is taken as an index of firmness, toughness or fibrousness of the sample. Whilst empirical or imitative, shearing tests are very popular, particularly for the assessment of food texture and in particular the measurement of ‘bite force’.








