Related Experiment Video
Updated: Sep 28, 2025

Preparation of rAAV9 to Overexpress or Knockdown Genes in Mouse Hearts
Published on: December 17, 2016
Acute systemic knockdown of Atg7 is lethal and causes pancreatic destruction in shRNA transgenic mice
Laura Mainz1,2, Mohamed A F E Sarhan1,2, Sabine Roth1
1Institute of Pathology, Julius-Maximilians-University of Würzburg, Würzburg, Germany.
Abstract:
The notion that macroautophagy/autophagy is a potentially attractive therapeutic target for a variety of diseases, including cancer, largely stems from pre-clinical mouse studies. Most of these examine the effects of irreversible and organ confined autophagy deletion using site specific Cre-loxP recombination of the essential autophagy regulating genes Atg7 or Atg5. Model systems with the ability to impair autophagy systemically and reversibly at all disease stages would allow a more realistic approach to evaluate the consequences of authophagy inhibition as a therapeutic concept and its potential side effects. Here, we present shRNA transgenic mice that via doxycycline (DOX) regulable expression of a highly efficient miR30-E-based shRNA enabled knockdown of Atg7 simultaneously in the majority of organs, with the brain and spleen being noteable exceptions. Induced animals deteriorated rapidly and experienced profound destruction of the exocrine pancreas, severe hypoglycemia and depletion of hepatic glycogen storages. Cessation of DOX application restored apparent health, glucose homeostasis and pancreatic integrity. In a similar Atg5 knockdown model we neither observed loss of pancreatic integrity nor diminished survival after DOX treatment, but identified histological changes consistent with steatohepatitis and hepatic fibrosis in the recovery period after termination of DOX. Regulable Atg7-shRNA mice are valuable tools that will enable further studies on the role of autophagy impairment at various disease stages and thereby help to evaluate the consequences of acute autophagy inhibition as a therapeutic concept.Abbreviations: ACTB: actin, beta; AMY: amylase complex; ATG4B: autophagy related 4B, cysteine peptidase; ATG5: autophagy related 5; ATG7: autophagy related 7; Cag: CMV early enhancer/chicken ACTB promoter; Col1a1: collagen, type I, alpha 1; Cre: cre recombinase; DOX: doxycycline; GCG: glucagon; GFP: green fluorescent protein; INS: insulin; LC3: microtubule-associated protein 1 light chain 3; miR30-E: optimized microRNA backbone; NAFLD: non-alcoholic fatty liver disease; NASH: non-alcoholic steatohepatitis; PNLIP: pancreatic lipase; rtTA: reverse tetracycline transactivator protein; SQSTM1/p62: sequestome 1; TRE: tetracycline responsive element.
Insights
Reversible systemic knockdown of autophagy genes Atg7 and Atg5 in mice reveals critical roles in pancreas and liver function. This research aids in evaluating autophagy inhibition as a therapeutic strategy for diseases like cancer.
Area of Science:
- Molecular Biology
- Cellular Biology
- Genetics
Background:
- Macroautophagy/autophagy is a therapeutic target for diseases like cancer, based on preclinical mouse studies.
- Current models use irreversible, organ-confined autophagy deletion, limiting evaluation of systemic and reversible inhibition.
- Need exists for models allowing systemic and reversible autophagy impairment to assess therapeutic potential and side effects.
Purpose of the Study:
- To develop and utilize novel shRNA transgenic mouse models for inducible, systemic knockdown of autophagy genes Atg7 and Atg5.
- To evaluate the consequences of reversible autophagy inhibition at various disease stages.
- To assess the potential side effects of autophagy inhibition as a therapeutic concept.
Main Methods:
- Generation of doxycycline (DOX)-regulable shRNA transgenic mice for Atg7 and Atg5 knockdown.
- Systemic induction of knockdown via DOX administration.
- Assessment of physiological, histological, and survival outcomes following knockdown and recovery.
Main Results:
- Atg7 knockdown led to rapid deterioration, pancreatic destruction, hypoglycemia, and depleted hepatic glycogen.
- Cessation of DOX in Atg7 knockdown mice restored health, glucose homeostasis, and pancreatic integrity.
- Atg5 knockdown showed no pancreatic damage or survival loss but caused steatohepatitis and fibrosis during recovery.
Conclusions:
- Regulable Atg7-shRNA mice are valuable tools for studying autophagy impairment in various disease contexts.
- These models enable realistic evaluation of acute autophagy inhibition's consequences and therapeutic potential.
- Distinct phenotypes observed in Atg7 and Atg5 knockdown models highlight differential roles in organ homeostasis.
More Related Videos
05:48Removal of an Internal Translational Start Site from mRNA While Retaining Expression of the Full-Length Protein
Published on: March 16, 2022
03:58Generation of Brown Fat-Specific Knockout Mice Using a Combined Cre-LoxP, CRISPR-Cas9, and Adeno-Associated Virus Single-Guide RNA System
Published on: March 24, 2023