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Updated: Aug 28, 2026

Semi-Automated Isolation of the Stromal Vascular Fraction from Murine White Adipose Tissue Using a Tissue Dissociator
Published on: May 19, 2023
Aberrant alternative splicing memorized in adipose tissue macrophages impedes efferocytosis during postobesity weight
Takuro Miyazaki1,2,3, Akira Shiraishi4, Yuki Sugiura5,6
1Department of Pharmaceutical Sciences, Division of Biological Chemistry, SHOWA Medical University Graduate School of Pharmacy, Shinagawa-ku, Tokyo, 142-8555, Japan.
Abstract:
Obesity imprints an epigenetic memory in adipose tissue macrophages (ATMs), allowing proinflammatory traits to persist after weight loss. However, mechanisms by which ATMs sustain efferocytosis and influence adipose tissue mass remain unclear. Here, we demonstrate that aberrant messenger RNA splicing, caused by dysfunction of the CWC22/exon junction complex, limits efferocytosis in macrophages during postobesity weight loss. Multiomics and gene-targeting approaches revealed that 51.9% of the obesity-induced differentially spliced genes in ATMs remained altered after weight loss, identifying persistent splicing alterations as a prominent component of obesity memory, with one-quarter of these changes dependent on CWC22. Scarb1 exon skipping increased scavenger receptor class B type II (SR-BII) expression, promoting the formation of SR-BI/SR-BII heterodimers that were subsequently targeted for endoplasmic reticulum-associated degradation. This reduced surface SR-BI in macrophages, suppressed efferocytosis and inosine release from dead cells, and impaired inosine-induced lipolysis in white adipose tissue. Restoring Scarb1 splicing with an antisense oligonucleotide rescued SR-BI expression, efferocytosis, inosine availability, and fat loss in Cwc22-deficient mice. Immunohistochemical analysis of human adipose tissue specimens revealed predominant nuclear localization of CWC22 in ATMs from lean individuals, whereas this nuclear localization was markedly diminished in ATMs from obese individuals. These findings reveal that aberrant alternative splicing in macrophages underlies resistance to postobesity weight loss and suggest that splicing-targeted therapies may counteract obesity memory.
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