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Biology subjects

Honma, P. S.

Publications and source records attributed to Honma, P. S..

2 recordsLinked to original sources

Decoding hidden goal-directed navigational states and their neuronal representations using a novel labyrinth paradigm and probabilistic modeling framework

Goal-directed navigation involves a sequence of planned actions aimed at achieving long-term goals through reinforcement, but detecting hidden states that support this process and their neuronal substrates remains a fundamental challenge. To address this, we developed a complex labyrinth test that mimics naturalistic foraging and implemented a novel hierarchical probabilistic modeling framework, Cognitive Mapping of Planned Actions with State Spaces (CoMPASS). This framework infers a nested state structure, comprising short-term surveillance-ambulation states (Level 1) and long-term goal-oriented navigational states (Level 2). Using CoMPASS, we show that successful navigation in wild-type mice is marked by increased recruitment of both surveillance and goal-oriented states specifically at decision nodes, revealing how sequential behavioral decisions culminate in long-term goals. In contrast, the humanized AppSAA mouse model of Alzheimers disease (AD) exhibited navigational impairments marked by diminished surveillance during decisions, reduced goal-directed states, and increased navigation stochasticity. Importantly, we show that gamma oscillations in the posterior parietal cortex (PPC), a region involved in spatial navigation planning, encode these CoMPASS behavioral states and their dynamic operating modes linking spatial locations to long-term goals. Our findings provide a novel paradigm for assessing hidden goal-directed navigational states and identify gamma oscillations in the PPC as their neural substrates.

neuroscience↗

APOE4-Aβ synergy drives brain network dysfunction and neuronal lysosomal-ER proteostasis dysregulation in preclinical Alzheimer's disease

Amyloid-{beta} (A{beta}) and APOE4 represent two of the strongest pathological and genetic risk factors for Alzheimers disease (AD), but how these co-pathogens interact during preclinical stages remains undefined. We addressed this question by developing a humanized knock-in model expressing physiological, endogenously regulated human A{beta} and APOE4. Aged AppNLF:APOE4 mice displayed incipient amyloidosis with subtle memory-related changes, consistent with preclinical AD. We found largely distinct, non-overlapping APOE4- and A{beta}-driven functional synaptic, sleep, and behavioral alterations. However, at the transcriptomic level, APOE4xA{beta} had a pronounced detrimental interaction in neuronal populations, whereas glial populations were primarily affected by either genotype. We found APOE4xA{beta} molecular interactions in neuronal populations, including excitatory and inhibitory cells, converged on a core lysosomal-ER proteostasis axis. We propose that APOE4xA{beta} interaction produces an early neuronal pathogenic signature, involving the lysosomal-ER proteostasis axis, preceding functional decline and driving disease progression. APOE4xA{beta}-KI models provide a physiologically relevant platform to study early pathogenesis. HighlightsO_LIEarly synergistic APOE4xA{beta} interaction emerges predominantly at the transcriptomic level in neurons, but not in glial cells. C_LIO_LIAPOE4 and A{beta} drive largely non-overlapping physiological changes in preclinical stages of disease, but converge at the level of network hyperexcitability. C_LIO_LIAPOE4xA{beta} neuronal synergy converges on a conserved lysosomal-ER proteostasis axis. C_LIO_LIHumanized APOE4xA{beta} KI mice provide a physiologically relevant model to dissect early AD pathogenesis in preclinical stages C_LI

neuroscience↗