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Biology subjects

Austin, T. T.

Publications and source records attributed to Austin, T. T..

2 recordsLinked to original sources

Effects of age and noise on tympanal displacement in the Desert Locust.

Insect cuticle is an evolutionary-malleable exoskeleton that has specialised for various functions. Insects that detect the pressure component of sound bear specialised sound-capturing tympani evolved from cuticular thinning. Whilst the outer layer of insect cuticle is composed of non-living chitin, its mechanical properties change during development and aging. Here, we measured the displacements of the tympanum of the desert Locust, Schistocerca gregaria, to understand biomechanical changes as a function of age and noise-exposure. We found that the stiffness of the tympanum decreases within 12 hours of noise-exposure and increases as a function of age, independent of noise-exposure. Noise-induced changes were dynamic with an increased tympanum displacement to sound within 12 hours post noise-exposure. Within 24 hours, however, the tone-evoked displacement of the tympanum decreased below that of control Locusts. After 48 hours, the tone-evoked displacement of the tympanum was not significantly different to Locusts not exposed to noise. Tympanal displacements reduced predictably with age and repeatably noise-exposed Locusts (every three days) did not differ from their non-noise-exposed counterparts. Changes in the biomechanics of the tympanum may explain an age-dependent decrease in auditory detection in tympanal insects.

biophysics↗

Metabolism is correlative not causative for age-related auditory decline in an insect model

Aging is due to a complex decline of multiple biological processes. Some of the causes include oxidative damage, mitochondrial and proteostatic dysfunction, and DNA damage. The result is that as biological systems age their performance deteriorates. This age-related decline is well quantified, and experienced, for human hearing and is presumed to be due to a decrease in the ears metabolism - specifically a decrease in ability to maintain an electrochemical gradient, the endocochlear potential. However, direct measurements of metabolism across a lifespan in an auditory system are lacking. Even if metabolism does decrease with age, the question remains is it a cause of age-related auditory decline or simply correlative? All auditory systems across the animal kingdom share functional principles including ion pumping cells, auditory receptors, spiking auditory nerves and multiple supporting cells. Therefore, we used an insect, the desert locust, Schistocerca gregaria, as a physiologically versatile model to understand how cellular metabolism correlates with age and impacts on age-related auditory decline. We found that although metabolism correlates with age-related auditory decline it is not causative.

neuroscience↗