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Biology subjects

Hancock, K.

Publications and source records attributed to Hancock, K..

2 recordsLinked to original sources

Consideration of a liquid mutation accumulation experiment to measure mutation rates by successive serial dilution.

The mutation-accumulation (MA) experiment is a fixture of evolutionary biology, though it is laborious to perform. MA experiments typically take between months and years to acquire sufficient mutations to measure DNA mutation rates and mutation spectra. MA experiments for many organisms rely on colony formation on agar plates and repetitive streaking, an environment which at first glance appears somewhat contrived, a poor imitation of real environmental living conditions. We propose that a fully liquid-phase mutation-accumulation experiment may at times more accurately reflect the environment of an organism. We note also that whereas automation of streaking plates is a daunting prospect, automation of liquid handling and serial dilution is already commonplace. In principle, this type of MA experiment can be automated so as to reduce the human capital requirements of measuring mutation rates. We demonstrate that a liquid MA recapitulates the mutation rate estimated for MMR- E. coli in liquid LB culture vs. plate LB culture. We detect a modified mutation spectrum with a transition skew of 4:1 of A:T[->]G:C vs G:C[->]A:T mutations, highlighting the potential role of tautomerization as a DNA mutation mechanism. We also find that using a plate reader to measure OD600 as a proxy for cell growth to be incapable of measuring carrying capacity for MA lines burdened with many mutations.

microbiology↗

Cortical contributions to the perception of loudness and hyperacusis

Sound perception is closely linked to the spatiotemporal patterning of neural activity in the auditory cortex (ACtx). Inhibitory interneurons sculpt the patterns of excitatory ACtx pyramidal neuron activity, and thus play a central role in sculpting the perception of sound. Reduced inhibition from parvalbumin-expressing (PV) inhibitory interneurons and the associated increased gain of sound-evoked pyramidal neuron spike rates are well-established consequences of aging and sensorineural hearing loss. Here, we reasoned that changes in PV-mediated inhibition would directly impact the perception of loudness. We hypothesized that ACtx PV activity could function as a perceptual volume knob, where reduced or elevated PV activity would increase or decrease the perceived loudness of sound, respectively. To test these hypotheses, we developed a two-alternative forced-choice loudness classification task for head-fixed mice and demonstrated that noise-induced sensorineural hearing loss directly caused a [~]10 dB loudness hyperacusis that begins hours after noise-induced sensorineural hearing loss and persists for at least several weeks. Conversely, sounds were perceived as [~]10 dB softer during optogenetic activation of ACtx PV neurons without having any effect on the overall detectability of sound. These data suggest that ACtx PV neurons can bi-directionally control the perceived loudness of sound, presumably via the strength of their inhibition onto local pyramidal neurons. Further, these data identify cortical PV neurons as a target for hyperacusis therapies and demonstrate a direct link between acquired sensorineural hearing loss and loudness hyperacusis.

neuroscience↗