» Articles » PMID: 18245324

Adaptive Evolution of the Insulin Two-gene System in Mouse

Overview
Journal Genetics
Specialty Genetics
Date 2008 Feb 5
PMID 18245324
Citations 30
Authors
Affiliations
Soon will be listed here.
Abstract

Insulin genes in mouse and rat compose a two-gene system in which Ins1 was retroposed from the partially processed mRNA of Ins2. When Ins1 originated and how it was retained in genomes still remain interesting problems. In this study, we used genomic approaches to detect insulin gene copy number variation in rodent species and investigated evolutionary forces acting on both Ins1 and Ins2. We characterized the phylogenetic distribution of the new insulin gene (Ins1) by Southern analyses and confirmed by sequencing insulin genes in the rodent genomes. The results demonstrate that Ins1 originated right before the mouse-rat split ( approximately 20 MYA), and both Ins1 and Ins2 are under strong functional constraints in these murine species. Interestingly, by examining a range of nucleotide polymorphisms, we detected positive selection acting on both Ins2 and Ins1 gene regions in the Mus musculus domesticus populations. Furthermore, three amino acid sites were also identified as having evolved under positive selection in two insulin peptides: two are in the signal peptide and one is in the C-peptide. Our data suggest an adaptive divergence in the mouse insulin two-gene system, which may result from the response to environmental change caused by the rise of agricultural civilization, as proposed by the thrifty-genotype hypothesis.

Citing Articles

Loss of glucose-stimulated β-cell Nr4a1 expression impairs insulin secretion and glucose homeostasis.

Herring J, Crabtree J, Hill J, Tessem J Am J Physiol Cell Physiol. 2024; 327(4):C1111-C1124.

PMID: 39219449 PMC: 11482045. DOI: 10.1152/ajpcell.00315.2024.


The structure of the TH/INS locus and the parental allele expressed are not conserved between mammals.

Newman T, Ishihara T, Shaw G, Renfree M Heredity (Edinb). 2024; 133(1):21-32.

PMID: 38834866 PMC: 11222543. DOI: 10.1038/s41437-024-00689-y.


The Expression of Insulin in the Central Nervous System: What Have We Learned So Far?.

Dakic T, Jevdjovic T, Lakic I, Ruzicic A, Jasnic N, Djurasevic S Int J Mol Sci. 2023; 24(7).

PMID: 37047558 PMC: 10095302. DOI: 10.3390/ijms24076586.


PCSK9 Contributes to the Cholesterol, Glucose, and Insulin2 Homeostasis in Seminiferous Tubules and Maintenance of Immunotolerance in Testis.

Pelletier R, Layeghkhavidaki H, Seidah N, Prat A, Vitale M Front Cell Dev Biol. 2022; 10:889972.

PMID: 35586340 PMC: 9108277. DOI: 10.3389/fcell.2022.889972.


Mechanistic Investigation of GHS-R Mediated Glucose-Stimulated Insulin Secretion in Pancreatic Islets.

Pradhan G, Lee J, Wu C, Wang H, Lin L, Donti T Biomolecules. 2022; 12(3).

PMID: 35327599 PMC: 8945998. DOI: 10.3390/biom12030407.


References
1.
Yang Z, Nielsen R . Codon-substitution models for detecting molecular adaptation at individual sites along specific lineages. Mol Biol Evol. 2002; 19(6):908-17. DOI: 10.1093/oxfordjournals.molbev.a004148. View

2.
Soares M, Schon E, Henderson A, Karathanasis S, Cate R, Zeitlin S . RNA-mediated gene duplication: the rat preproinsulin I gene is a functional retroposon. Mol Cell Biol. 1985; 5(8):2090-103. PMC: 366927. DOI: 10.1128/mcb.5.8.2090-2103.1985. View

3.
Di Rienzo A, Hudson R . An evolutionary framework for common diseases: the ancestral-susceptibility model. Trends Genet. 2005; 21(11):596-601. DOI: 10.1016/j.tig.2005.08.007. View

4.
Force A, Lynch M, Pickett F, Amores A, Yan Y, Postlethwait J . Preservation of duplicate genes by complementary, degenerative mutations. Genetics. 1999; 151(4):1531-45. PMC: 1460548. DOI: 10.1093/genetics/151.4.1531. View

5.
Nakayama M, Abiru N, Moriyama H, Babaya N, Liu E, Miao D . Prime role for an insulin epitope in the development of type 1 diabetes in NOD mice. Nature. 2005; 435(7039):220-3. PMC: 1364531. DOI: 10.1038/nature03523. View