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Sibling chimerism among microglia in marmosets
Ricardo C H Del Rosario1,2, Fenna M Krienen1,2, Qiangge Zhang2,3
1Department of Genetics, Harvard Medical School, Boston, United States.
Elife
|August 14, 2026
Summary
Marmoset chimerism, common in these primates, involves sibling cells contributing only to blood-derived tissues like microglia. This finding clarifies the cellular origins of chimerism and its impact on brain research.
Area of Science:
- Comparative genomics
- Developmental biology
- Neuroscience
Background:
- Chimerism is rare in mammals but common in marmosets due to shared placental circulation in fraternal twins.
- Previous observations of Y-chromosome DNA in female marmoset organs suggested organ chimerism, but the cell types involved were unknown.
Purpose of the Study:
- To determine if marmoset organ chimerism involves blood-derived cells or other cell types.
- To investigate the cellular basis of chimerism in marmoset tissues, including the brain.
Main Methods:
- Single-cell RNA sequencing (scRNA-seq) was used to analyze tissues from marmosets.
- Transcribed single-nucleotide polymorphisms (SNPs) identified sibling-derived cells within various tissue types.
Main Results:
- Sibling-derived chimerism in all analyzed tissues originated exclusively from hematopoietic cells (myeloid and lymphoid lineages).
- In the brain, chimerism was observed in microglia and macrophages, but not in neurons, glia, or ependymal cells.
- Microglial chimerism varied significantly across brain regions, with gene expression more influenced by local context than genetic origin.
Conclusions:
- Marmoset chimerism is driven by hematopoietic stem cells, affecting specific immune cell populations in tissues.
- This study clarifies the cellular contribution to chimerism, essential for understanding microglial biology and brain phenotypes.
- Naturally occurring chimerism in marmosets offers a unique model for studying gene, mutation, and brain context effects on microglia.