Results 21 to 30 of about 3,520,517 (247)
Scrapbook of the Delaware Art Museum, 1979-1980
1 scrapbook: 152 pagesScrapbook compiled by the Delaware Art Museum for June 1979 through June ...
Delaware Art Museum
core +2 more sources
Scrapbook of the Delaware Art Museum, 1970-1972
1 scrapbook; 171 pagesScrapbook compiled by the Delaware Art Museum for August 1970 through May ...
Delaware Art Museum
core +2 more sources
Matveev Yuri ...
art Editor
doaj +1 more source
Scrapbook of the Delaware Art Museum, 1974-1975
1 scrapbook: 163 pagesScrapbook compiled by the Delaware Art Museum for June 1974 through June ...
Delaware Art Museum
core +2 more sources
V.I. Shumakov (09.11.1931 – 27.01.2008)
V.I. Shumakov (09.11.1931 – 27.01.2008)
art Editorial
doaj +1 more source
In memory of Veniamin Vladimirovich Gorbunov
In memory of Veniamin Vladimirovich ...
art Editorial
doaj +1 more source
Diversity and complexity in neural organoids
Neural organoid research aims to expand genetic diversity on one side and increase tissue complexity on the other. Chimeroids integrate multiple donor genomes within single organoids. Self‐organising multi‐identity organoids, exogenous cell seeding, or enforced assembly of region‐specific organoids contribute to tissue complexity.
Ilaria Chiaradia, Madeline A. Lancaster
wiley +1 more source
Scrapbook of the Delaware Art Museum, 1977-1978
1 scrapbook: 140 pagesScrapbook compiled by the Delaware Art Museum for June 1977 through June ...
Delaware Art Museum
core +2 more sources
An epithelial GPR35 isoform supports tumor‐associated transcriptional and metabolic phenotypes
GPR35 generates two functionally distinct isoforms with previously unresolved roles. GPR35‐short mediates immune‐cell chemotaxis, while GPR35‐long is enriched in colorectal cancer epithelium, where it supports increased metabolism, proliferation, and tumor‐associated transcriptional programs.
Jørgen D. Rønneberg +14 more
wiley +1 more source
Liver organoids: modelling complexity in homeostasis and disease
Studying liver in vitro has been challenging because simple 2D cell cultures fail to capture liver's cellular and architectural complexity. To bridge this gap, scientists increasingly use organoids, 3D liver models which better mimic liver composition and function. This review examines recent advances in liver organoid complexity and realism, discusses
Anna M. Dowbaj, Meritxell Huch
wiley +1 more source

