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Biology subjects

Gartner, M.

Publications and source records attributed to Gartner, M..

2 recordsLinked to original sources

No evidence that urbanisation encourages wild red foxes (Vulpes vulpes) to exploit unfamiliar food-related objects when first discovered

Urbanisation is the fastest form of landscape transformation on the planet, but researchers understanding of the relationships between urbanisation and animal adaptability is still in its infancy. In terms of foraging, bold and innovative behaviours are proposed to help urban animals access, utilise, and exploit novel anthropogenic food sources. Red foxes (Vulpes vulpes) are one of the best known and widespread urban-dwelling species. However, despite frequent stories, images, and videos portraying them as "pests" due to their exploitation of food-related objects (e.g., raiding the contents of outdoor bins), it is unknown whether they are bolder and more innovative in terms of their likelihood of exploiting these resources compared to rural populations. In the current study, we gave novel food-related objects to foxes from 104 locations (one object per location) across a large urban-rural gradient. To access the food, foxes had to use behaviours necessary for exploiting many food-related objects in the real world (e.g., biting, pushing, pulling, or lifting human-made materials). Despite all foxes acknowledging the objects, foxes from 31 locations touched them, while foxes from 12 locations gained access to the food inside. A principal component analysis of urban and other landscape variables (e.g., road, greenspace, and human population density) revealed that urbanisation was significantly and positively related to the likelihood of foxes touching, but not exploiting, the objects. Thus, while urban foxes may be bolder than rural populations in terms of their willingness to physically touch novel food-related objects, our findings are inconsistent with the notion that they are more innovative and pose a general nuisance to people by exploiting these anthropogenic resources. HighlightsO_LIThe impact of urbanisation on animal adaptability remains unclear C_LIO_LIBold and innovative behaviour may help some urban species thrive C_LIO_LIWe studied wild red foxes responses to novel food-related objects C_LIO_LIUrban foxes were bolder, but not more innovative, than rural foxes C_LIO_LIUrbanisation may favour bolder, not more innovative, fox behaviour C_LI

animal behavior and cognition↗

Engineered Riboswitch Nano-carriers as a Possible Disease-Modifying Treatment for Metabolic Disorders

Both DNA- and RNA-based nanotechnologies are remarkably useful for in vitro molecular-scale device engineering and are applied in a vast array of applications. However, while the function of nucleic acid nanostructures is robust under in vitro settings, their implementation in real-world conditions requires overcoming their inherent degradation sensitivity and subsequent loss of function. Viruses are minimalistic yet sophisticated supramolecular assemblies, able to protect their nucleic acid content in inhospitable biological environments. Inspired by this natural ability, we engineered RNA-virus-like particles (VLPs) nanocarriers (NCs). We showed that the VLPs can serve as an excellent protective shell against nuclease-mediated degradation. We then harnessed biological recognition elements and demonstrated how engineered riboswitch NCs can act as a possible disease-modifying treatment for genetic metabolic disorders. The functional riboswitch is capable of selectively and specifically binding metabolites and preventing their self-assembly process and its downstream effects. When applying the riboswitch nano-carriers to an in vivo yeast model of adenine accumulation and self-assembly, significant inhibition of the sensitivity to adenine feeding was observed. In addition, using an amyloid-specific dye, we proved the riboswitch nano-carriers ability to reduce the level of intracellular amyloid-like cytotoxic structures. The potential of this RNA therapeutic technology does not stop at metabolic disorders, as it can be easily fine-tuned to be applied to other conditions and diseases.

bioengineering↗