MAP1LC3B overexpression protects against Hermansky-Pudlak syndrome type-1-induced defective autophagy in vitro

Author:

Ahuja Saket12,Knudsen Lars345,Chillappagari Shashi126,Henneke Ingrid12,Ruppert Clemens127,Korfei Martina12,Gochuico Bernadette R.8,Bellusci Saverio127,Seeger Werner1279,Ochs Matthias345,Guenther Andreas127910,Mahavadi Poornima12

Affiliation:

1. Department of Internal Medicine, Justus-Liebig University, Giessen, Germany;

2. Universities of Giessen and Marburg Lung Center (UGMLC), Member of the German Centre for Lung Research (DZL), Giessen, Germany;

3. Institute of Functional and Applied Anatomy, Hannover Medical School, Hannover, Germany;

4. Biomedical Research in End-Stage and Obstructive Lung Disease Hannover (BREATH), Member of the German Center for Lung Research (DZL), Hannover, Germany;

5. REBIRTH Cluster of Excellence, Hannover, Germany;

6. Department of Pediatrics, Justus-Liebig-University, Giessen, Germany;

7. Excellence Cluster Cardiopulmonary System (ECCPS), Giessen, Germany;

8. Medical Genetics Branch, National Human Genome Research Institute, National Institutes of Health, Bethesda, Maryland;

9. Member European IPF Registry/Biobank; and

10. Lung Clinic Waldhof-Elgershausen, Greifenstein, Germany

Abstract

Hermansky-Pudlak syndrome (HPS) is a rare autosomal recessive disorder, and some patients with HPS develop pulmonary fibrosis, known as HPS-associated interstitial pneumonia (HPSIP). We have previously reported that HPSIP is associated with severe surfactant accumulation, lysosomal stress, and alveolar epithelial cell type II (AECII) apoptosis. Here, we hypothesized that defective autophagy might result in excessive lysosomal stress in HPSIP. Key autophagy proteins, including LC3B lipidation and p62, were increased in HPS1/2 mice lungs. Electron microscopy demonstrated a preferable binding of LC3B to the interior of lamellar bodies in the AECII of HPS1/2 mice, whereas in wild-type mice it was present on the limiting membrane in addition to the interior of the lamellar bodies. Similar observations were noted in human HPS1 lung sections. In vitro knockdown of HPS1 revealed increased LC3B lipidation and p62 accumulation, associated with an increase in proapoptotic caspases. Overexpression of LC3B decreased the HPS1 knockdown-induced p62 accumulation, whereas rapamycin treatment did not show the same effect. We conclude that loss of HPS1 protein results in impaired autophagy that is restored by exogenous LC3B and that defective autophagy might therefore play a critical role in the development and progression of HPSIP.

Funder

Excellence Cluster Cardio-Pulmonary System

Intramural Research Program of the National Human Genome Research Institute,NIH

Publisher

American Physiological Society

Subject

Cell Biology,Physiology (medical),Pulmonary and Respiratory Medicine,Physiology

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