Knock-in mouse models for studying somatostatin and cholecystokinin expressing cells

Marta Balog1, Allison Anderson2, Channabasavaiah B Gurumurthy3

  • 1Munroe-Meyer Institute for Genetics and Rehabilitation, University of Nebraska Medical Center Omaha, NE, USA; Department of Medical Biology and Genetics, Faculty of Medicine, University of Osijek, Osijek, Croatia.

Abstract

Insights

New knock-in mouse models for somatostatin (SST) and cholecystokinin (CCK) were created using Easi-CRISPR. These models accurately report SST and CCK expression, aiding research into these peptide hormones.

Area of Science:

  • Neuroscience
  • Endocrinology
  • Genetics

Background:

  • Somatostatin (SST) and cholecystokinin (CCK) are crucial peptide hormones involved in regulating the endocrine system, cell proliferation, and neurotransmission.
  • Studying the specific cell types expressing SST and CCK is vital for understanding their complex roles.

Purpose of the Study:

  • To generate novel knock-in mouse models for studying somatostatin (SST) and cholecystokinin (CCK) expressing cells.
  • To validate the utility of these models in both developing and adult brain tissues.

Main Methods:

  • Utilized the Easi-CRISPR system for precise gene editing.
  • Generated two knock-in mouse strains, C57BL/6-Sstem1(P2A-iCre-T2A-mCherry)Mirn and C57BL/6-Cckem1(iCre-T2A-mCherry-P2A)Mirn.
  • Inserted Cre recombinase and fluorescent tags (mCherry) into the SST and CCK loci.

Main Results:

  • Successfully generated knock-in mice with Cre recombinase targeted to SST and CCK expressing cells.
  • Validated appropriate expression patterns of SST and CCK in both developing and adult brain tissues.
  • Confirmed active fluorescent tagging in both mouse lines, indicating successful knock-in and expression.

Conclusions:

  • The generated SST and CCK knock-in mouse models serve as valuable tools for in vitro and in vivo research.
  • These models allow for the study of SST and CCK biology without interfering with native gene expression.
  • They can be used as reporter lines or Cre driver models for conditional gene deletion studies across various tissues and lifespan stages.