Mutations in <i>AMBRA1</i> aggravate β-thalassemia by impairing autophagy-mediated clearance of free α-globin
Abstract
Abstract Accumulation of free α-globin is a critical factor in the pathogenesis of β-thalassemia. Autophagy plays a crucial role in clearing toxic free α-globin, thereby reducing disease severity. However, the impact of natural mutations in autophagy-related genes (ATGs) on the phenotypic variability of β-thalassemia remains unclear. In this study, we systematically investigated the relationship between variants in ATGs and disease phenotypes in a cohort of 1022 patients with β-thalassemia, identifying 4 missense mutations in the autophagy and beclin 1 regulator 1 (AMBRA1) gene. Disruption of the Ambra1 gene in β-thalassemic mice was found to reduce autophagic clearance of α-globin in red blood cell precursors, exacerbating disease phenotypes. Functional characterization of the AMBRA1 gene and these mutations in patient-derived CD34+ cells, edited human umbilical cord blood–derived erythroid progenitor 2 (HUDEP-2) cells, and engineered HUDEP-2 β-thalassemic cells confirmed that AMBRA1 facilitates the autophagic clearance of free α-globin in human erythroid cells. Functional studies demonstrated that AMBRA1 missense mutants destabilize Unc-51-like kinase 1 protein, inhibit light chain 3 protein lipidation, and subsequently hinder autophagic flux, leading to increased α-globin deposition. Additionally, these mutations were associated with erythrotoxic effects in vitro, including increased intracellular reactive oxygen species levels, higher apoptosis rates, and impaired erythroid differentiation and maturation. This study sheds light on the molecular association between mutations in ATGs and the exacerbation of β-thalassemia, highlighting the potential role of the AMBRA1 gene as a promising diagnostic and therapeutic target for β-hemoglobinopathies.
Article Details
Authors (22)
Yong Long
1Innovation Center for Diagnostics and Treatment of Thalassemia, Nanfang Hospital, Southern Medical University, Guangzhou, China
Qianqian Zhang
Ling Ling
Yuan Zhuang
Department of Chemistry
Xiaolei Wei
Haoyang Huang
Zhanping Lu
6Central Laboratory, Chongqing University Fuling Hospital, Chongqing University, Chongqing, China
Yushan Huang
Xianming Chen
1Innovation Center for Diagnostics and Treatment of Thalassemia, Nanfang Hospital, Southern Medical University, Guangzhou, China
Yuhua Ye
Xiaoqin Feng
Haokun Zhang
10State Key Laboratory of Genetic Engineering, MOE Engineering Research Center of Gene Technology, School of Life Sciences, Fudan University, Shanghai, China
Binbin Huang
Key Laboratory of Synthetic and Biological Colloids, Ministry of Education, School of Chemical and Material Engineering
Yueyan Huang
12Department of Pediatric, Affiliated Hospital of Youjiang Medical University for Nationalities Baise, Baise, China
Yidan Liang
1Innovation Center for Diagnostics and Treatment of Thalassemia, Nanfang Hospital, Southern Medical University, Guangzhou, China
Mingyan Fang
Yukio Nakamura
Bin Lin
School of Optometry, The Hong Kong Polytechnic University
Xinhua Zhang
Daru Lu
Xin Jin
Xiangmin Xu
Department of Anatomy and Neurobiology, University of California, Irvine School of Medicine, Irvine, CA, USA.