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Kindler, C.

Publications and source records attributed to Kindler, C..

3 recordsLinked to original sources

Blindness reshapes mental time travel: From perceptual scenes to conceptual scaffolds

How can humans remember and imagine without vision? Mental time travel, the ability to re-experience past events and envision future ones, is widely assumed to rely on visual imagery and the construction of mental scenes. Blindness provides a critical test of this assumption. Across behavioral interviews, language analyses, and multimodal neuroimaging in congenitally blind, late-blind, and sighted individuals, we show that blind individuals, even those blind from birth, mentally time travel as vividly as sighted people, but construct their inner worlds differently. Sighted participants relied on perceptual detail and activated classic scene-processing regions, whereas blind participants emphasized thoughts and emotions and recruited reorganized occipital cortex. Connectivity analyses revealed strengthened coupling between occipital and medial temporal regions, indicating adaptive reconfiguration of the episodic system. The brain does not require images to imagine: it flexibly builds internal experiences using the representational resources available. Summary ParagraphHow humans reconstruct events that are no longer available to the senses is a fundamental but unresolved question. Remembering the past and imagining the future, known as mental time travel, is a defining feature of human cognition, shaping identity and guiding decisions{superscript 1},{superscript 2}. Prevailing theories assume that such constructions depend on visual imagery, with the minds eye reconstructing events on a visuospatial stage3,. Blindness provides a critical test of this assumption. Across extensive behavioral interviews and multimodal neuroimaging, we find that mental time travel remains phenomenologically intact in blindness, but its scaffolding changes fundamentally. Sighted individuals rely on perceptual detail and activate regions specialized for visual scenes, whereas blind individuals, whether blind from birth or later in life, emphasize thoughts and emotions and reorganize occipital cortex for conceptual strategies,. These contrasting strategies map onto distinct neural signatures, revealing a dissociation between perceptual and conceptual routes to episodic simulation. Together, these findings reveal that the brains capacity to construct internal experience rests on conceptual scaffolding, not perceptual re-creation.

neuroscience↗

A neoantigen-microbead platform for personalized T cell cancer vaccination

Colorectal cancer (CRC) is a leading cause of cancer mortality and is characterized by a high tumor mutational burden, making it responsive to immunotherapy. We developed a bioinformatic and manufacturing pipeline for personalized cancer vaccines and evaluated it in the MC38 colon adenocarcinoma mouse model. Thirty-six high-scoring neoantigens (NAGs) were identified by exome and transcriptome analysis, produced as six purified polypeptides, and coupled to paramagnetic beads. Intralymphatic vaccination of C57BL/6 mice with NAG beads induced robust NAG-specific T cell and antibody responses, resulting in significant inhibition of MC38 tumor growth. Treated tumors displayed increased necrosis and CD8+ T cell infiltration. Compared with soluble peptides, bead-coupled antigens elicited superior protection. Studies in T cell-deficient and antibody-depleted mice confirmed that both CD4+ and CD8+ T cells mediated the antitumor effect. These findings highlight the potential of NAG bead vaccination as an effective immunotherapy for CRC.

cancer biology↗

Elucidating directed neural dynamics of scene construction across memory and imagination

Autobiographical memory (AM) and imagination both rely on the brains ability to construct vivid, coherent mental representations of past or imagined experiences. A central cognitive process underlying these functions is scene construction--the mental generation of spatially organized, imagery-rich representations of environments. Using ultra-high field 7T fMRI combined with Dynamic Causal Modeling (DCM), we examined directed effective connectivity among key nodes of the default mode network: the ventromedial prefrontal cortex (vmPFC), hippocampus, and precuneus during object imagery, single-scene construction, and AM retrieval. Our results revealed distinct patterns of network dynamics depending on task demands. During AM retrieval, effective connectivity was characterized by vmPFC-driven top-down modulation primarily targeting the precuneus, supporting the temporal and self-relevant structuring of episodic memory. In contrast, extended scenario imagination engaged hippocampal bidirectional influences with both vmPFC and precuneus, reflecting the dynamic simulation and integration of unfolding events. Single Scene construction shifted network leadership to the precuneus, which exerted modulatory effects on both vmPFC and hippocampus, consistent with its pivotal role in spatial integration and the generation of coherent mental scenes. Object imagery showed minimal stable connectivity within this network, suggesting limited engagement of the hippocampal-default mode circuit during simpler visual representations. Together, our findings highlight a flexible, task-dependent reorganization of effective connectivity within the vmPFC- hippocampus-precuneus network during the construction of rich mental experiences. Scene construction emerges as a unifying mechanism linking memory and imagination, with the direction and strength of neural interactions adapting according to whether temporal or spatial demands predominate. HighlightsO_LIAutobiographical memory is reflected by vmPFC-driven effective connectivity C_LIO_LIEffective connectivity varies flexibly amongst vmPFC, hippocampus and precuneus C_LIO_LIScene construction emerges as a core process across memory and imagination C_LI

neuroscience↗