Homologous laminar organization of the mouse and human subiculum
Michael S. Bienkowski, Farshid Sepehrband, Nyoman D. Kurniawan, Jim Stanis, Laura Korobkova, Neda Khanjani, Houri Hintiryan, Carol A. Miller, Hong‐Wei Dong
Abstract
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Michael S. Bienkowski, Farshid Sepehrband, Nyoman D. Kurniawan, Jim Stanis, Laura Korobkova, Neda Khanjani, Houri Hintiryan, Carol A. Miller, Hong‐Wei Dong
Abstract
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Summary The subiculum is the major output structure of the hippocampal formation and one of the brain regions most affected by Alzheimer’s disease. Our previous work revealed a hidden laminar architecture within the mouse subiculum. However, the rotation of the hippocampal longitudinal axis across species makes it unclear how the laminar organization is represented in human subiculum. Using in situ hybridization data from the Allen Human Brain Atlas, we demonstrate that the human subiculum also contains complementary laminar gene expression patterns similar to the mouse. In addition, we provide evidence that the molecular domain boundaries in human subiculum correspond to microstructural differences observed in high resolution MRI and fiber density imaging. Finally, we show both similarities and differences in the gene expression profile of subiculum pyramidal cells within homologous lamina. Overall, we present a new 3D model of the anatomical organization of human subiculum and its evolution from the mouse.
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Summary The subiculum is the major output structure of the hippocampal formation and one of the brain regions most affected by Alzheimer’s disease. Our previous work revealed a hidden laminar architecture within the mouse subiculum. However, the rotation of the hippocampal longitudinal axis across species makes it unclear how the laminar organization is represented in human subiculum. Using in situ hybridization data from the Allen Human Brain Atlas, we demonstrate that the human subiculum also contains complementary laminar gene expression patterns similar to the mouse. In addition, we provide evidence that the molecular domain boundaries in human subiculum correspond to microstructural differences observed in high resolution MRI and fiber density imaging. Finally, we show both similarities and differences in the gene expression profile of subiculum pyramidal cells within homologous lamina. Overall, we present a new 3D model of the anatomical organization of human subiculum and its evolution from the mouse.
Key concepts: Subiculum, Laminar organization, Hippocampal formation, Neuroscience, Human brain, Laminar flow, Hippocampus, Biology