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1.
Redox Biol ; 68: 102957, 2023 Dec.
Article in English | MEDLINE | ID: mdl-37977043

ABSTRACT

Progressive respiratory failure is the primary cause of death in the coronavirus disease 2019 (COVID-19) pandemic. It is the final outcome of the acute respiratory distress syndrome (ARDS), characterized by an initial exacerbated inflammatory response, metabolic derangement and ultimate tissue scarring. A positive balance of cellular energy may result crucial for the recovery of clinical COVID-19. Hence, we asked if two key pathways involved in cellular energy generation, AMP-activated protein kinase (AMPK)/acetyl-CoA carboxylase (ACC) signaling and fatty acid oxidation (FAO) could be beneficial. We tested the drugs metformin (AMPK activator) and baicalin (CPT1A activator) in different experimental models mimicking COVID-19 associated inflammation in lung and kidney. We also studied two different cohorts of COVID-19 patients that had been previously treated with metformin. These drugs ameliorated lung damage in an ARDS animal model, while activation of AMPK/ACC signaling increased mitochondrial function and decreased TGF-ß-induced fibrosis, apoptosis and inflammation markers in lung epithelial cells. Similar results were observed with two indole derivatives, IND6 and IND8 with AMPK activating capacity. Consistently, a reduced time of hospitalization and need of intensive care was observed in COVID-19 patients previously exposed to metformin. Baicalin also mitigated the activation of pro-inflammatory bone marrow-derived macrophages (BMDMs) and reduced kidney fibrosis in two animal models of kidney injury, another key target of COVID-19. In human epithelial lung and kidney cells, both drugs improved mitochondrial function and prevented TGF-ß-induced renal epithelial cell dedifferentiation. Our results support that favoring cellular energy production through enhanced FAO may prove useful in the prevention of COVID-19-induced lung and renal damage.


Subject(s)
COVID-19 , Metformin , Respiratory Distress Syndrome , Animals , Humans , Metformin/pharmacology , Metformin/therapeutic use , AMP-Activated Protein Kinases/metabolism , Kidney/metabolism , Lung/metabolism , Inflammation/drug therapy , Transforming Growth Factor beta , Fibrosis , Fatty Acids
2.
Life Sci Alliance ; 6(10)2023 10.
Article in English | MEDLINE | ID: mdl-37487638

ABSTRACT

Tubulointerstitial fibrosis is the common pathological substrate for many etiologies leading to chronic kidney disease. Although perturbations in the circadian rhythm have been associated with renal disease, the role of the molecular clock in the pathogenesis of fibrosis remains incompletely understood. We investigated the relationship between the molecular clock and renal damage in experimental models of injury and fibrosis (unilateral ureteral obstruction, folic acid, and adenine nephrotoxicity), using genetically modified mice with selective deficiencies of the clock components Bmal1, Clock, and Cry We found that the molecular clock pathway was enriched in damaged tubular epithelial cells with marked metabolic alterations. In human tubular epithelial cells, TGFß significantly altered the expression of clock components. Although Clock played a role in the macrophage-mediated inflammatory response, the combined absence of Cry1 and Cry2 was critical for the recruitment of neutrophils, correlating with a worsening of fibrosis and with a major shift in the expression of metabolism-related genes. These results support that renal damage disrupts the kidney peripheral molecular clock, which in turn promotes metabolic derangement linked to inflammatory and fibrotic responses.


Subject(s)
Adenine , Kidney , Humans , Animals , Mice , Circadian Rhythm , Epithelial Cells , Macrophages
3.
Nucleic Acids Res ; 44(19): 9315-9330, 2016 Nov 02.
Article in English | MEDLINE | ID: mdl-27625398

ABSTRACT

A wide range of diseases course with an unbalance between the consumption of oxygen by tissues and its supply. This situation triggers a transcriptional response, mediated by the hypoxia inducible factors (HIFs), that aims to restore oxygen homeostasis. Little is known about the inter-individual variation in this response and its role in the progression of disease. Herein, we sought to identify common genetic variants mapping to hypoxia response elements (HREs) and characterize their effect on transcription. To this end, we constructed a list of genome-wide HIF-binding regions from publicly available experimental datasets and studied the genetic variability in these regions by targeted re-sequencing of genomic samples from 96 chronic obstructive pulmonary disease and 144 obstructive sleep apnea patients. This study identified 14 frequent variants disrupting potential HREs. The analysis of the genomic regions containing these variants by means of reporter assays revealed that variants rs1009329, rs6593210 and rs150921338 impaired the transcriptional response to hypoxia. Finally, using genome editing we confirmed the functional role of rs6593210 in the transcriptional regulation of EGFR. In summary, we found that inter-individual variability in non-coding regions affect the response to hypoxia and could potentially impact on the progression of pulmonary diseases.


Subject(s)
Gene Expression Regulation , Genetic Variation , Hypoxia/genetics , Respiratory Tract Diseases/genetics , Transcription, Genetic , Untranslated Regions , Cell Line , Cluster Analysis , Female , Gene Editing , Gene Expression Profiling , Gene Knockdown Techniques , Genes, erbB-1 , High-Throughput Nucleotide Sequencing , Humans , Hypoxia/metabolism , Male , Nucleotide Motifs , Phenotype , Phosphoglycerate Kinase/genetics , Polymorphism, Genetic , Promoter Regions, Genetic , Respiratory Tract Diseases/metabolism , Respiratory Tract Diseases/physiopathology , Transcriptome
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