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Megakaryocyte Culture in 3D Methylcellulose-Based Hydrogel to Improve Cell Maturation and Study the Impact of Stiffness and Confinement
Published on: August 26, 2021
Lack of COL6/collagen VI causes megakaryocyte dysfunction by impairing autophagy and inducing apoptosis
Vittorio Abbonante1,2,3, Alessandro Malara1,2, Martina Chrisam4
1Department of Molecular Medicine, University of Pavia, Pavia, Italy.
Abstract:
Endoplasmic reticulum stress is an emerging significant player in the molecular pathology of connective tissue disorders. In response to endoplasmic reticulum stress, cells can upregulate macroautophagy/autophagy, a fundamental cellular homeostatic process used by cells to degrade and recycle proteins or remove damaged organelles. In these scenarios, autophagy activation can support cell survival. Here we demonstrated by in vitro and in vivo approaches that megakaryocytes derived from col6a1-⁄- (collagen, type VI, alpha 1) null mice display increased intracellular retention of COL6 polypeptides, endoplasmic reticulum stress and apoptosis. The unfolded protein response is activated in col6a1-⁄- megakaryocytes, as evidenced by the upregulation of molecular chaperones, by the increased splicing of Xbp1 mRNA and by the higher level of the pro-apoptotic regulator DDIT3/CHOP. Despite the endoplasmic reticulum stress, basal autophagy is impaired in col6a1-⁄- megakaryocytes, which show lower BECN1 levels and reduced autophagosome maturation. Starvation and rapamycin treatment rescue the autophagic flux in col6a1-⁄- megakaryocytes, leading to a decrease in intracellular COL6 polypeptide retention, endoplasmic reticulum stress and apoptosis. Furthermore, megakaryocytes cultured from peripheral blood hematopoietic progenitors of patients affected by Bethlem myopathy and Ullrich congenital muscular dystrophy, two COL6-related disorders, displayed increased apoptosis, endoplasmic reticulum stress and impaired autophagy. These data demonstrate that genetic disorders of collagens, endoplasmic reticulum stress and autophagy regulation in megakaryocytes may be interrelated.Abbreviations: 7-AAD: 7-amino-actinomycin D; ATF: activating transcriptional factor; BAX: BCL2 associated X protein; BCL2: B cell leukemia/lymphoma 2; BCL2L1/Bcl-xL: BCL2-like 1; BM: bone marrow; COL6: collagen, type VI; col6a1: mice that are null for Col6a1; DDIT3/CHOP/GADD153: DNA-damage inducible transcript 3; EGFP: enhanced green fluorescent protein; ER: endoplasmic reticulum; reticulophagy: endoplasmic reticulum-selective autophagy; HSPA5/Bip: heat shock protein 5; HSP90B1/GRP94: heat shock protein 90, beta (Grp94), member 1; LAMP2: lysosomal associated membrane protein 2; MAP1LC3B/LC3B: microtubule-associated protein 1 light chain 3 beta; Mk: megakaryocytes; MTOR: mechanistic target of rapamycin kinase; NIMV: noninvasive mechanical ventilation; PI3K: phosphoinositide 3-kinase; PPP1R15A/GADD34: protein phosphatase 1, regulatory subunit 15A; RT-qPCR: reverse transcription-quantitative real-time PCR; ROS: reactive oxygen species; SERPINH1/HSP47: serine (or cysteine) peptidase inhibitor, clade H, member 1; sh-RNA: short hairpin RNA; SOCE: store operated calcium entry; UCMD: Ullrich congenital muscular dystrophy; UPR: unfolded protein response; WIPI2: WD repeat domain, phosphoinositide-interacting 2; WT: wild type; XBP1: X-box binding protein 1.
Insights
Impaired autophagy in megakaryocytes from collagen VI disorders causes endoplasmic reticulum stress and apoptosis. Restoring autophagy alleviates these detrimental effects, suggesting a therapeutic target for connective tissue diseases.
Area of Science:
- Molecular pathology of connective tissue disorders
- Cellular homeostasis and autophagy
- Megakaryocyte biology
Background:
- Endoplasmic reticulum (ER) stress is implicated in connective tissue disorders.
- Autophagy is a cellular process that degrades damaged components and supports survival.
- ER stress can trigger autophagy; however, its role in collagen VI-related disorders is unclear.
Purpose of the Study:
- To investigate the role of ER stress and autophagy in megakaryocytes lacking collagen VI (COL6).
- To examine if impaired autophagy contributes to pathology in COL6-related disorders.
- To explore therapeutic potential of modulating autophagy in these conditions.
Main Methods:
- Utilized in vitro and in vivo models using collagen, type VI, alpha 1 (col6a1) null mice.
- Analyzed megakaryocytes for ER stress markers (e.g., XBP1 splicing, DDIT3/CHOP), apoptosis, and autophagy markers (e.g., BECN1, autophagosome maturation).
- Treated cells with starvation and rapamycin to assess rescue of autophagic flux.
- Examined megakaryocytes from patients with Bethlem myopathy and Ullrich congenital muscular dystrophy.
Main Results:
- col6a1-null megakaryocytes exhibited increased intracellular COL6 retention, ER stress, and apoptosis.
- Unfolded protein response (UPR) was activated, but basal autophagy was impaired with reduced BECN1 levels and autophagosome maturation.
- Starvation and rapamycin treatment restored autophagic flux, decreasing COL6 retention, ER stress, and apoptosis.
- Patient-derived megakaryocytes showed similar increases in apoptosis, ER stress, and impaired autophagy.
Conclusions:
- Genetic defects in collagen VI disrupt megakaryocyte function, leading to ER stress and apoptosis.
- Impaired autophagy is a key feature of COL6-related disorders in megakaryocytes.
- Modulating autophagy can ameliorate the pathological features, highlighting its potential as a therapeutic strategy.
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