Related Experiment Video
Updated: Oct 1, 2026

Isolation, Culture, and Imaging of Human Fetal Pancreatic Cell Clusters
Published on: May 18, 2014
The insulin-3 gene: lack of a genetic basis for human cryptorchidism
Linda A Baker1, Serge Nef, Michael T Nguyen
1John W. Duckett, M. D. Laboratory in Pediatric Urology, Department of Urology and Center for Developmental Biology, University of Texas Southwestern Medical Center at Dallas, Dallas, TX, USA.
Purpose:
The etiology of cryptorchidism appears to be multifactorial and related to hormonal and mechanical factors. Recently, the insulin-3 gene (INSL3) was noted to have a role in mouse gubernacular development and testicular descent. Knockout male mice for the INSL3 gene show isolated bilateral cryptorchidism. This phenotype suggests that INSL3 may have a role in the development of human cryptorchidism. Using single strand conformational polymorphism analysis we detected mutations of the INSL3 gene in boys with cryptorchidism.
Materials And Methods:
Genomic DNA from 118 boys with cryptorchidism and 48 normal controls were obtained from 3 institutions. Using polymerase chain reaction with INSL3 sequence specific primers DNA fragments were analyzed using single strand conformational polymorphism reactions. Samples with band shifts were re-amplified and sequenced to detect mutations.
Results:
A single base substitution (G greater than A) causing an amino acid change (missense mutation) was identified in 27 of 118 cryptorchid (23%) samples and 12 of 48 normal (25%) samples. Two other base substitutions did not produce alterations in the amino acid sequence (silent mutations).
Conclusions:
Although a common polymorphism was detected in the INSL3 gene, no specific mutations were detected in a large population of individuals with cryptorchidism. Therefore, mutations in the coding region of the INSL3 gene are not a common cause of human cryptorchidism.
Related Concept Videos
Genomic Imprinting and Inheritance
The expression of some genes depends on which parent passed the gene to the offspring, through a phenomenon known as...
Type I Diabetes I: Introduction
Type II Diabetes I: Introduction
Type I Diabetes III: Clinical Manifestations
X and Y Chromosomes
The germline cells such as egg and sperm cells carry only half the number of chromosomes, i.e., 22 autosomes and one sex chromosome. All eggs have an X chromosome, while sperm cells can carry an X or...
Type I Diabetes II: Pathophysiology
