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1.
J Cell Sci ; 135(5)2022 03 01.
Article in English | MEDLINE | ID: mdl-34528688

ABSTRACT

In atherosclerotic lesions, vascular smooth muscle cells (VSMCs) represent half of the foam cell population, which is characterized by an aberrant accumulation of undigested lipids within lysosomes. Loss of lysosome function impacts VSMC homeostasis and disease progression. Understanding the molecular mechanisms underlying lysosome dysfunction in these cells is, therefore, crucial. We identify cholesteryl hemiazelate (ChA), a stable oxidation end-product of cholesteryl-polyunsaturated fatty acid esters, as an inducer of lysosome malfunction in VSMCs. ChA-treated VSMCs acquire a foam-cell-like phenotype, characterized by enlarged lysosomes full of ChA and neutral lipids. The lysosomes are perinuclear and exhibit degradative capacity and cargo exit defects. Lysosome luminal pH is also altered. Even though the transcriptional response machinery and autophagy are not activated by ChA, the addition of recombinant lysosomal acid lipase (LAL) is able to rescue lysosome dysfunction. ChA significantly affects VSMC proliferation and migration, impacting atherosclerosis. In summary, this work shows that ChA is sufficient to induce lysosomal dysfunction in VSMCs, that, in ChA-treated VSMCs, neither lysosome biogenesis nor autophagy are triggered, and, finally, that recombinant LAL can be a therapeutic approach for lysosomal dysfunction.


Subject(s)
Muscle, Smooth, Vascular , Myocytes, Smooth Muscle , Cell Proliferation , Cells, Cultured , Foam Cells , Homeostasis , Lysosomes
2.
J Cell Physiol ; 236(8): 6011-6024, 2021 08.
Article in English | MEDLINE | ID: mdl-33469937

ABSTRACT

Alkaptonuria (AKU) is an ultra-rare disease caused by the deficient activity of homogentisate 1,2-dioxygenase enzyme, leading the accumulation of homogentisic acid (HGA) in connective tissues implicating the formation of a black pigmentation called "ochronosis." Although AKU is a multisystemic disease, the most affected tissue is the articular cartilage, which during the pathology appears to be highly damaged. In this study, a model of alkaptonuric chondrocytes and cartilage was realized to investigate the role of HGA in the alteration of the extracellular matrix (ECM). The AKU tissues lost its architecture composed of collagen, proteoglycans, and all the proteins that characterize the ECM. The cause of this alteration in AKU cartilage is attributed to a degeneration of the cytoskeletal network in chondrocytes caused by the accumulation of HGA. The three cytoskeletal proteins, actin, vimentin, and tubulin, were analyzed and a modification in their amount and disposition in AKU chondrocytes model was identified. Cytoskeleton is involved in many fundamental cellular processes; therefore, the aberration in this complex network is involved in the manifestation of AKU disease.


Subject(s)
Cartilage, Articular/drug effects , Chondrocytes/drug effects , Cytoskeleton/drug effects , Extracellular Matrix/drug effects , Homogentisic Acid/pharmacology , Actins/drug effects , Actins/metabolism , Alkaptonuria/metabolism , Cartilage, Articular/metabolism , Chondrocytes/metabolism , Cytoskeleton/metabolism , Extracellular Matrix/metabolism , Humans , Microtubules/drug effects , Microtubules/metabolism , Ochronosis/drug therapy , Vimentin/drug effects , Vimentin/metabolism
3.
Mol Vis ; 22: 761-70, 2016.
Article in English | MEDLINE | ID: mdl-27440994

ABSTRACT

PURPOSE: In this study, we aimed to understand whether glucose transporter 1 (GLUT1) activity affects the secretion capacity of antiangiogenic factor pigment epithelium-derived factor (PEDF) by the RPE cells, thus explaining the reduction in PEDF levels observed in patients with diabetic retinopathy (DR). METHODS: Analysis of GLUT1 expression, localization, and function was performed in vitro in RPE cells (D407) cultured with different glucose concentrations, corresponding to non-diabetic (5 mM of glucose) and diabetic (25 mM of glucose) conditions, further subjected to normoxia or hypoxia. The expression of PEDF was also evaluated in the secretome of the cells cultured in these conditions. Analysis of GLUT1 and PEDF expression was also performed in vivo in the RPE of Ins2(Akita) diabetic mice and age-matched wild-type (WT) controls. RESULTS: We observed an increase in GLUT1 under hypoxia in a glucose-dependent manner, which we found to be directly associated with the translocation and stabilization of GLUT1 in the cell membrane. This stabilization led to an increase in glucose uptake by RPE cells. This increase was followed by a decrease in PEDF expression in RPE cells cultured in conditions that simulated DR. Compared with non-diabetic WT mice, the RPE of Ins2(Akita) mice showed increased GLUT1 overexpression with a concomitant decrease in PEDF expression. CONCLUSIONS: Collectively, our data show that expression of GLUT1 is stimulated by hyperglycemia and low oxygen supply, and this overexpression was associated with increased activity of GLUT1 in the cell membrane that contributes to the impairment of the RPE secretory function of PEDF.


Subject(s)
Diabetic Retinopathy/metabolism , Eye Proteins/metabolism , Glucose Transporter Type 1/metabolism , Nerve Growth Factors/metabolism , Retinal Pigment Epithelium/drug effects , Serpins/metabolism , Animals , Blotting, Western , Cells, Cultured , Diabetes Mellitus, Experimental/metabolism , Fluorescent Antibody Technique, Indirect , Glucose/pharmacology , Humans , Hypoxia/metabolism , Male , Mice , Mice, Inbred C57BL , Retinal Pigment Epithelium/metabolism
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