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Miyoshi, H.

Publications and source records attributed to Miyoshi, H..

2 recordsLinked to original sources

A Germinal Center-Associated Microenvironmental Signature Reflects Malignant Phenotype and Outcome of Diffuse Large B-cell Lymphoma

Diffuse large B-cell lymphoma (DLBCL) is the most common B-cell malignancy with varying prognosis after the gold standard rituximab, cyclophosphamide, doxorubicin, vincristine, and prednisone (R-CHOP). Several prognostic models have been established by focusing primarily on characteristics of lymphoma cells themselves including cell-of-origin, genomic alterations, and gene/protein expressions. However, the prognostic impact of lymphoma microenvironment and its association with characteristics of lymphoma cells are not fully understood. Using highly-sensitive transcriptome profiling of untreated DLBCL tissues, we here assess the clinical impact of lymphoma microenvironment on the clinical outcomes and pathophysiological, molecular signatures in DLBCL. The presence of normal germinal center (GC)-microenvironmental cells, including follicular T cells, macrophage/dendritic cells, and stromal cells, in lymphoma tissue indicates a positive therapeutic response. Our prognostic model, based on quantitation of transcripts from distinct GC-microenvironmental cell markers, clearly identified patients with graded prognosis independently of existing prognostic models. We observed increased incidences of genomic alterations and aberrant gene expression associated with poor prognosis in DLBCL tissues lacking GC-microenvironmental cells relative to those containing these cells. These data suggest that the loss of GC-associated microenvironmental signature dictates clinical outcomes of DLBCL patients reflecting the accumulation of \"unfavorable\" molecular signatures.

cancer biology

Elasticity and Topography-Controlled Collagen Hydrogels Mimicking Native Cellular Milieus

Accumulating evidence demonstrates that the elasticity and topography of a cell culture substrate influence cell behavior, in addition to its chemical composition. However, cellular responses to in vivo extracellular matrix (ECM), a hydrogel of proteins (mainly collagen) with various elasticity and a nanometer-to micrometer-scale topography, remain to be elucidated owing to a lack of substrate that provides such complex cues. This study introduces novel collagen hydrogels that can combine, for the first time, elastic, topographic, and compositional cues that recapitulate native ECM. A simple and reagent-free method based on radiation crosslinking alters ECM-derived collagen solutions into hydrogels with a well-defined and tunable elastic modulus covering the broad range of soft tissues (1-236 kPa) and microtopographies while ensuring intrinsic biological functionality of collagen. These collagen hydrogels enabled investigating cell responses to soft topographic cues such as those encountered in vivo, revealing that topography overrides the elasticity and structurally constrains cell morphology by controlling actin cytoskeleton organization. The collagen hydrogels not only reduce in vivo and in vitro behavioral disparity of cells by mimicking native ECM but also facilitate the design of artificial ECM to control cell function and fate in tissue engineering and regenerative medicine.

bioengineering