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Biology subjects

Filipescu, C.

Publications and source records attributed to Filipescu, C..

2 recordsLinked to original sources

Human primary auditory cortex and insula encode perceptual decisions, not stimulus features

The traditional view of perceptual decision-making assumes a largely feedforward cortical hierarchy, in which sensory regions encode stimulus features that are progressively integrated with top-down signals in higher order associative areas to guide decisions. However, recent work has cast doubt on whether stimulus-and decision-related signals actually follow such a predicted spatiotemporal organization, especially in naturalistic situations where sensory cues are subtle and decisions more strongly driven by internal strategies. Leveraging the unique spatiotemporal precision of human intracerebral recordings, we map here how stimulus and decision variables are represented along the auditory cortical hierarchy as patients engage in a social voice decision task with realistic, low-salience cues. Contrary to feedforward predictions, we found no clear spatial or temporal gradient separating stimulus- and decision-related effects; rather, decision effects emerged early during stimulus exposure and, strikingly, flowed back all the way to the most primary regions of the superior temporal gyrus. In addition, the direction of these early and primary decision signals closely reflected the variability in patients specific decision criteria. Taken together, these results strongly challenge the traditional feedforward model, supporting a view in which the activity of early auditory regions does not reflect subtle stimulus categories but is instead dynamically configured by task-dependent priors and response strategies. Significant StatementThis work studies an ecological social-cognitive decision task based on subtle but natural vocal cues. Contrary to expectations, it shows that early and primary auditory activity in human intracerebral recordings does not reflect stimulus categories but instead patients decisions and decision criteria. These results are significant because they provide rare human intracerebral evidence that sensory regions are not static repositories of stimulus representations but rather dynamic, task-dependent filters that are configured by priors and decision criteria.

neuroscience↗

Understanding wood decay diseases in western redcedar through development of ITS-sequencing and qPCR assays

Root and butt rot diseases cause high rates of wood decay in living stands of western redcedar (WRC; Thuja plicata Donn), one of the most valuable forest species in western North America. However, WRC susceptibility and the virulence of wood-decay-causing fungal pathogens are understudied, presenting a high risk for the WRC forest industry. To evaluate susceptibility of WRC to root and butt rot diseases and decay incidence, four pathogenic fungi, including Armillaria ostoyae, Coniferiporia weirii, Heterobasidion occidentale, and Perenniporia subacida, were used to inoculate WRC seedlings using two artificial methods. Next-generation sequencing (NGS) of internal transcribed spacer (ITS) region of the nuclear ribosomal DNA (rDNA) and quantitative polymerase chain reaction (qPCR) assays were developed to evaluate successful infection through detection of targeted pathogens inside the WRC tissues while development of disease was assessed by visual observation of wood decay. Disease incidence rates ranged from 20% to 60% while infection rates ranged from 80% to 100%, validating the effectiveness of the inoculation protocols. The qPCR assays designed with species-specific primers were validated for quantification of absolute abundance of C. weirii inside WRC host tissues with high sensitivity and specificity. These newly developed qPCR assays provide rapid, cost-effective, and accurate tools to detect early infection and latent infection in asymptomatic trees, with wide potential applications for surveillance of C. weirii-caused wood decay disease in greenhouse and field studies, as well as for screening of disease resistance in WRC breeding.

pathology↗