Decoding the dynamic formation of bolus: A multimodal fusion and simulation framework for texture perception-regulated oral processing.

Journal: Food research international (Ottawa, Ont.)
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Abstract

This study systematically analyzed the dynamic mechanisms through which food texture regulates bolus formation by integrating food and bolus properties, dynamic sensory perception, and multimodal physiological monitoring. A fermented biscuit model with a distinct hardness gradient (10.24-202.82 N) was established. Time-intensity and temporal dominance of sensations analyses revealed that the perception of soft biscuits began with "soft," while that of hard biscuits started with "crumbly/hard." All samples progressed through a "sticky/pasty" dominant phase in later stages, eventually tending toward a "spongy" sensation. Bolus analysis indicated that soft biscuits relied on a high-porosity structure for rapid saliva penetration but exhibited weaker cohesion, whereas hard biscuits formed a dense bolus through continuous mechanical breakdown and efficient binding with saliva. As hardness increased, biting force rose, salivary pH and mucin concentrations increased, peripheral physiological signals suggested a higher autonomic nervous load, and electroencephalography showed enhanced activation in sensorimotor and prefrontal networks. The innovatively proposed Multimodal Masticatory Dynamic Fusion and Analysis Model (MDFAM) enabled automatic three-stage division of the chewing process, revealing that increasing hardness prolonged the initial breakdown phase (S1) from 2.9 s to 6.8 s and shortened the pre-swallowing phase (S3) from 7.0 s to 1.6 s. Furthermore, a coupled dynamic simulation system was developed, which used decoded physiological signals to drive three-dimensional physical simulations, achieving for the first time the dynamic visualization of the entire process from bolus dispersion and mixing to aggregation. This completed an end-to-end modeling pipeline from multimodal perception to physical simulation.

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