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Updated: Aug 21, 2026

Intramuscular Transplantation of Human Pluripotent Stem Cell-derived Pancreatic Endocrine Cells in Mice
Published on: April 10, 2026
Pancreatic insulinomas in multiple endocrine neoplasia, type I knockout mice can develop in the absence of chromosome
Peter C Scacheri1, Alyssa L Kennedy, Koei Chin
1National Human Genome Research Institute, National Institutes of Health, Bethesda, Maryland 20892-2152, USA.
Abstract:
Multiple endocrine neoplasia, type I (MEN1) is an inherited cancer syndrome characterized by tumors arising primarily in endocrine tissues. The responsible gene acts as a tumor suppressor, and tumors in affected heterozygous individuals occur after inactivation of the wild-type allele. Previous studies have shown that Men1 knockout mice develop multiple pancreatic insulinomas, but this occurs many months after loss of both copies of the Men1 gene. These studies imply that loss of Men1 is not alone sufficient for tumor formation and that additional somatic genetic changes are most likely essential for tumorigenesis. The usual expectation is that such mutations would arise either by a chromosomal instability or microsatellite instability mechanism. In a study of more then a dozen such tumors, using the techniques of array-based comparative genomic hybridization, fluorescent in situ hybridization, loss of heterozygosity analysis using multiple microsatellite markers across the genome, and real time PCR to assess DNA copy number, it appears that many of these full-blown clonal adenomas remain remarkably euploid. Furthermore, the loss of the wild-type Men1 allele in heterozygous Men1 mice occurs by loss and reduplication of the entire mutant-bearing chromosome. Thus, the somatic genetic changes that are postulated to lead to tumorigenesis in a mouse model of MEN1 must be unusually subtle, occurring at either the nucleotide level or through epigenetic mechanisms.
Insights
Multiple endocrine neoplasia type I (MEN1) involves inherited tumors. In Men1 mice, tumor development requires subtle genetic changes beyond Men1 gene inactivation, possibly at the nucleotide or epigenetic level.
Area of Science:
- Endocrinology
- Oncology
- Genetics
Background:
- Multiple endocrine neoplasia type I (MEN1) is an inherited cancer syndrome.
- The MEN1 gene functions as a tumor suppressor; tumor formation requires inactivation of the wild-type allele.
- Men1 knockout mice develop pancreatic insulinomas, but only after a significant delay, suggesting additional genetic events are necessary.
Purpose of the Study:
- To investigate the genetic mechanisms driving tumorigenesis in a mouse model of MEN1.
- To determine if chromosomal or microsatellite instability contributes to tumor formation in MEN1.
Main Methods:
- Array-based comparative genomic hybridization (aCGH)
- Fluorescent in situ hybridization (FISH)
- Loss of heterozygosity (LOH) analysis using microsatellite markers
- Real-time PCR for DNA copy number assessment
Main Results:
- Many MEN1-associated adenomas in mice were found to be remarkably euploid, lacking major chromosomal abnormalities.
- Loss of the wild-type Men1 allele occurred via loss and reduplication of the entire mutant-bearing chromosome.
- These findings challenge the expectation of chromosomal or microsatellite instability as the primary drivers.
Conclusions:
- Tumorigenesis in this MEN1 mouse model likely involves subtle genetic alterations, such as nucleotide-level mutations or epigenetic changes, rather than gross chromosomal instability.
- Further research is needed to elucidate these specific subtle genetic or epigenetic mechanisms contributing to MEN1 tumorigenesis.

