Related Experiment Video
Updated: Jul 28, 2025

Author Spotlight: A Selective Luciferase-Based Assay for Monitoring ATG4B 27 Activity in Cells
Published on: June 30, 2023
HSF4 Transcriptionally Activates Autophagy by Regulating ATG9a During Lens Terminal Differentiation
Jing Zhang1, Ning Jiang1, Chunxiao Du1,2
1Joint National Laboratory for Antibody Drug Engineering, The First Affiliated Hospital, School of Medicine, Henan University, Kaifeng, China.
Purpose:
HSF4 mutations are responsible for congenital cataract formation. Dysfunction of HSF4 leads to defects in lens terminal differentiation. We aimed to study the mechanism of how HSF4 promotes organelle degradation during lens differentiation.
Methods:
HSF4del42 mutant mice that developed congenital cataracts were employed. The organelle degradation and autophagic function in lens fibers were detected by immunofluorescence and Immunoblotting. Transcriptome analysis was performed to investigate the differentially expressed genes in HSF4del42 lenses, whereas luciferase report assay and ChIP assay were used to confirm the directly transcriptional regulation of ATG9a by HSF4.
Results:
HSF4del42 mice displayed delayed organelle clearance and impaired autophagic degradation function in lens fibers. Activation of autophagy by rapamycin ameliorated the defects in organelle clearance in HSF4del42 lenses ex vivo and in vivo. Depletion of HSF4 attenuated autophagic flux by disrupting autophagosome biogenesis and maturation in lens epithelial cells. HSF4 directly transcriptionally activated the core autophagy protein ATG9a. Instead of the canonical ATG9a isoform, the ATG9a-X2 isoform was predominantly expressed in the lens and alleviated autophagic defects in HSF4 KO lens epithelial cells. The ATG9a-X2 protein displayed a short half-life, and rapamycin treatment restored its levels in HSF4 KO lens epithelial cells and HSF4del42 lenses.
Conclusions:
Our findings demonstrate that HSF4 facilitates organelle degradation probably by transcriptionally activating autophagy during lens terminal differentiation. We first report the involvement of HSF4 in autophagy and the tissue specific splicing of ATG9a. Our study indicates that autophagy activation is a possible therapeutic strategy for HSF4-related congenital cataracts.
Insights
Heat shock factor 4 (HSF4) mutations cause congenital cataracts by impairing lens cell differentiation. HSF4 promotes organelle clearance via autophagy, and activating autophagy may treat HSF4-related cataracts.
Area of Science:
- Cell Biology
- Ophthalmology
- Genetics
Background:
- Mutations in Heat shock factor 4 (HSF4) are a primary cause of congenital cataracts.
- HSF4 dysfunction disrupts lens terminal differentiation, leading to visual impairment.
- The precise mechanism by which HSF4 regulates cellular processes in lens development remains unclear.
Purpose of the Study:
- To elucidate the role of HSF4 in promoting organelle degradation during lens terminal differentiation.
- To investigate the molecular mechanisms underlying HSF4-mediated autophagy in the lens.
- To explore potential therapeutic strategies for HSF4-related congenital cataracts.
Main Methods:
- Utilized HSF4del42 mutant mice exhibiting congenital cataracts.
- Assessed organelle degradation and autophagic function using immunofluorescence and immunoblotting.
- Performed transcriptome analysis, luciferase reporter assays, and ChIP assays to identify HSF4 targets.
Main Results:
- HSF4del42 mice showed delayed organelle clearance and impaired autophagy in lens fibers.
- Rapamycin treatment improved organelle clearance in HSF4del42 lenses both ex vivo and in vivo.
- HSF4 directly activates ATG9a transcription, with the ATG9a-X2 isoform playing a key role in alleviating autophagic defects.
Conclusions:
- HSF4 promotes lens differentiation by transcriptionally activating autophagy, specifically the ATG9a isoform.
- This study reveals HSF4's involvement in autophagy and tissue-specific splicing of ATG9a.
- Autophagy activation presents a promising therapeutic avenue for congenital cataracts linked to HSF4 mutations.
Related Concept Videos
Autophagy
An autophagic pathway consists of a series of signaling events activated in response to diverse stress and physiological conditions such as food deprivation,...
Autophagic Cell Death
Autophagy and Apoptosis
Autophagy can activate apoptosis. In normal conditions, the autophagy activating protein Beclin-1 and...
Delivery Pathways to the Lysosome
Endocytosis
In endocytosis, the cell membrane takes up macromolecules and particles from the surrounding medium. Clathrin-mediated...

