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Meehan, S.

Publications and source records attributed to Meehan, S..

2 recordsLinked to original sources

Constructed Synchronized Multimodal Signalling in Great Bowerbirds

Great bowerbird males build bowers for attracting females for mating. Bowers consist of a thatched twig tunnel (avenue) which opens onto two flat courts covered with objects. Male displays on a court are seen by a female from within the avenue. She sees and hears displays through the avenue entrance but can only see the males head and objects in his bill as it passes repeatedly across the entrance. We investigated bower acoustic properties by playing standard sounds from multiple court positions and recorded the resulting sounds at the females typical avenue head position within the avenue. Bower geometry significantly affects both his acoustic and visual display components and physically synchronizes them as he repeatedly moves in and out of the females view. Consequently, complex neural circuitry is unnecessary for linking sound to vision. Experimentally removing bower objects shows that objects significantly increase higher frequencies, hence bandwidth and loudness received inside the avenue. Great Bowerbird bowers produce a synchronized multimodal signal to females which may increase male attractiveness more than if a single sensory mode were used. This multimodal signal is unusual in that it is constructed rather than being part of the body and synchronized as a result of physics rather than neurons. Summary StatementBowerbird bower geometry jointly effects both visual and auditory signal components and synchronizes them without the need for additional neural circuitry.

animal behavior and cognition↗

Formation of amyloid loops in brain tissues is controlled by the flexibility of protofibril chains

Neurodegenerative diseases, such as Alzheimers Disease (AD), are associated with protein misfolding and aggregation into amyloid fibrils. Increasing evidence suggests that soluble, low molecular weight aggregates play a key role in disease-associated toxicity. Within these aggregates, protofibrillar loop-like structures have been observed for a variety of amyloid systems and their presence in brain tissues is associated with high levels of neuropathology. However, their mechanism of formation and relationship with mature fibrils has largely remained challenging to elucidate. Here, we use atomic force microscopy and statistical theory of biopolymers to characterise amyloid ring structures derived from the brains of AD patients. We analyse the bending fluctuations of protofibrils and show that the process of loop formation is governed by the mechanical properties of their chains. We conclude that ex vivo protofibril chains possess greater flexibility than that imparted by hydrogen-bonded networks characteristic of mature amyloid fibrils, such that they are able to form end-to-end connections. Furthermore, we show that these findings can be extended to several amyloid systems, giving a general framework relating the mechanical properties of assemblies and the conditions in which they can form loop structures. These results explain the diversity in the structures formed from protein aggregation and sheds light on the links between early forms of flexible ring-forming aggregates and their role in disease.

molecular biology↗