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Animal models of multiple endocrine neoplasia
Tobias Wiedemann1, Natalia S Pellegata1
1Institute of Pathology, Helmholtz Zentrum München-German Research Center for Environmental Health, Ingolstaedter Landstrasse 1, 85764 Neuherberg, Germany.
Abstract:
Multiple endocrine neoplasia (MEN) syndromes are autosomal dominant diseases with high penetrance characterized by proliferative lesions (usually hyperplasia or adenoma) arising in at least two endocrine tissues. Four different MEN syndromes have been so far identified: MEN type 1 (MEN1), MEN2A (also referred to as MEN2), MEN2B (or MEN3) and MEN4, which have slightly varying tumor spectra and are caused by mutations in different genes. MEN1 associates with loss-of-function mutations in the MEN1 gene encoding the tumor suppressor menin. The MEN2A and MEN2B syndromes are due to activating mutations in the proto-oncogene RET (Rearranged in Transfection) and are characterized by different phenotypic features of the affected patients. MEN4 was the most recent addition to the family of the MEN syndromes. It was discovered less than 10 years ago thanks to studies of a rat strain that spontaneously develops multiple endocrine tumors (named MENX). These studies identified an inactivating mutation in the Cdkn1b gene, encoding the putative tumor suppressor p27, as the causative mutation of the rat syndrome. Subsequently, germline mutations in the human ortholog CDKN1B were also found in a subset of patients with a MEN-like phenotype and this led to the identification of MEN4. Small animal models have been instrumental in understanding important biochemical, physiological and pathological processes of cancer onset and spread in intact living organisms. Moreover, they have provided us with insight into gene function(s) and molecular mechanisms of disease progression. We here review the currently available animal models of MEN syndromes and their impact on the elucidation of the pathophysiology of these diseases, with a special focus on the rat MENX syndrome that we have been characterizing.
Insights
Multiple endocrine neoplasia (MEN) syndromes involve tumors in multiple endocrine glands. Animal models, like the rat MENX syndrome, are crucial for understanding MEN pathophysiology and genetic causes.
Area of Science:
- Endocrinology
- Genetics
- Oncology
Background:
- Multiple endocrine neoplasia (MEN) syndromes are inherited disorders characterized by tumors in at least two endocrine glands.
- Four types of MEN syndromes (MEN1, MEN2A, MEN2B, MEN4) are known, each linked to distinct genetic mutations and tumor profiles.
- MEN4, a recently identified syndrome, involves mutations in the CDKN1B gene, encoding the tumor suppressor p27.
Purpose of the Study:
- To review existing animal models for MEN syndromes.
- To highlight the impact of these models on understanding MEN pathophysiology.
- To focus on the characterization of the rat MENX syndrome.
Main Methods:
- Review of literature on MEN syndromes and animal models.
- Characterization of the rat MENX syndrome model.
- Analysis of genetic mutations (MEN1, RET, CDKN1B) associated with MEN syndromes.
Main Results:
- Animal models have been vital for elucidating cancer development and progression mechanisms.
- The rat MENX syndrome, caused by a Cdkn1b mutation, serves as a valuable model for MEN4.
- Studies of animal models provide insights into gene function and disease pathology.
Conclusions:
- Small animal models are indispensable tools for studying complex diseases like MEN syndromes.
- The rat MENX model significantly contributes to understanding the genetic basis and progression of MEN4.
- Continued research using animal models will advance the diagnosis and treatment of MEN syndromes.
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