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Hanson, I.

Publications and source records attributed to Hanson, I..

2 recordsLinked to original sources

Action features dominate cortical representation during natural vision

Cortical resources are allocated into systems specialized for processing ecologically relevant features of the world. These features are typically studied in isolation using controlled experimental stimuli, making it difficult to assess the relative importance of different kinds of features that tend to overlap during natural vision. In the current study, we evaluated the relative contributions of action, agent, and scene features in predicting cortical activity while participants viewed a 1-hour nature documentary. We tested four sets of model features: semantic vectors capturing the observed action, agent, and scene features derived from an annotation of the stimulus, as well as low-level visual motion-energy features. We used banded ridge regression to fit vertex-wise encoding models from the combination of all four sets of features. While each set of features predicted neural activity in the expected areas, the action features predicted more widespread activity. A variance partitioning analysis revealed that the action features captured the most unique variance in neural activity across ten times as many cortical vertices as the agent or scene features. Our findings suggest that cortical activity during dynamic, natural vision is dominated by features for understanding the actions of others.

neuroscience↗

TGF-β3 increases the severity of radiation-induced oral mucositis and salivary gland fibrosis in a mouse model

PurposeToxicities from head and neck (H&N) radiotherapy (RT) may affect patient quality of life and can be dose-limiting. Proteins from the transforming growth factor beta (TGF-{beta}) family are key players in the fibrotic response. While TGF-{beta}1 is known to be pro-fibrotic, TGF-{beta}3 has mainly been considered anti-fibrotic. Moreover, TGF-{beta}3 has been shown to act protective against acute toxicities after radio- and chemotherapy. In the present study, we investigated the effect of TGF-{beta}3 treatment during fractionated H&N RT in a mouse model. Materials and methods30 C57BL/6J mice were assigned to three treatment groups. The RT + TGF-{beta}3 group received local fractionated H&N RT with 66 Gy over five days, combined with TGF-{beta}3-injections at 24-hour intervals. Animals in the RT reference group received identical RT without TGF-{beta}3 treatment. The non-irradiated control group was sham-irradiated according to the same RT schedule. In the follow-up period, body weight and symptoms of oral mucositis and lip dermatitis were monitored. Saliva was sampled at five time points. The experiment was terminated 105 days after the first RT fraction. Submandibular and sublingual glands were preserved, sectioned, and stained with Massons trichrome to visualize collagen. ResultsA subset of mice in the RT + TGF-{beta}3 group displayed increased severity of oral mucositis and increased weight loss, resulting in a significant increase in mortality. Collagen content was significantly increased in the submandibular and sublingual glands for the surviving RT + TGF-{beta}3 mice, compared with non-irradiated controls. In the RT reference group, collagen content was significantly increased in the submandibular gland only. Both RT groups displayed lower saliva production after treatment compared to controls. TGF-{beta}3 treatment did not impact saliva production. ConclusionsWhen repeatedly administered during fractionated RT at the current dose, TGF-{beta}3 treatment increased acute H&N radiation toxicities and increased mortality. Furthermore, TGF-{beta}3 treatment may increase the severity of radiation-induced salivary gland fibrosis.

biophysics↗