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High-Throughput Screen Detects Calcium Signaling Dysfunction in Hutchinson-Gilford Progeria Syndrome
Juan A Fafián-Labora1, Miriam Morente-López1, Fco Javier de Toro1
1Grupo de Terapia Celular y Medicina Regenerativa, Departamento de Fisioterapia, Ciencias Biomédicas y Medicina, Universdidade da Coruña, Agrupación Estratégica INIBIC-CICA, 15006 A Coruña, Spain.
Insights
Hutchinson-Gilford progeria syndrome (HGPS), a rare aging disorder, involves altered calcium signaling. Increased intracellular calcium and reactive oxygen species (ROS) in HGPS cells suggest new therapeutic targets for progeria and aging research.
Area of Science:
- Genetics and Molecular Biology
- Cellular Biology
- Pathophysiology
Background:
- Hutchinson-Gilford progeria syndrome (HGPS) is a rare, fatal childhood disorder characterized by rapid aging.
- It results from a dominant mutation in the LMNA gene.
- Understanding HGPS molecular pathways is crucial for developing effective treatments.
Purpose of the Study:
- To identify novel molecular pathways affected in HGPS.
- To investigate the role of calcium signaling in HGPS pathogenesis.
- To explore potential therapeutic strategies for HGPS.
Main Methods:
- Next-generation sequencing (NGS) of HGPS and healthy cell lines.
- Differential gene expression analysis.
- Western blot, calcium imaging (FlexStation 3), flow cytometry for ROS and apoptosis.
Main Results:
- Nine hundred and eleven transcripts were differentially expressed between HGPS and healthy cells.
- Genes linked to calcium signaling (ITPR1, ITPR3, CACNA2D1, CAMK2N1) were significantly altered.
- HGPS cells exhibited higher basal intracellular Ca2+ and increased ROS production, linking Ca2+ signaling to ROS in HGPS.
Conclusions:
- The calcium signaling pathway is significantly altered in HGPS, partly due to ROS overproduction.
- These findings highlight a potential therapeutic window for HGPS treatment.
- The study opens new avenues for researching accelerated and healthy aging processes.
Abstract:
Hutchinson-Gilford progeria syndrome (HGPS) is a deadly childhood disorder, which is considered a very rare disease. It is caused by an autosomal dominant mutation on the LMNA gene, and it is characterized by accelerated aging. Human cell lines from HGPS patients and healthy parental controls were studied in parallel using next-generation sequencing (NGS) to unravel new non-previously altered molecular pathways. Nine hundred and eleven transcripts were differentially expressed when comparing healthy versus HGPS cell lines from a total of 21,872 transcripts; ITPR1, ITPR3, CACNA2D1, and CAMK2N1 stood out among them due to their links with calcium signaling, and these were validated by Western blot analysis. It was observed that the basal concentration of intracellular Ca2+ was statistically higher in HGPS cell lines compared to healthy ones. The relationship between genes involved in Ca2+ signaling and mitochondria-associated membranes (MAM) was demonstrated through cytosolic calcium handling by means of an automated fluorescent plate reading system (FlexStation 3, Molecular Devices), and apoptosis and mitochondrial ROS production were examined by means of flow cytometry analysis. Altogether, our data suggest that the Ca2+ signaling pathway is altered in HGPS at least in part due to the overproduction of reactive oxygen species (ROS). Our results unravel a new therapeutic window for the treatment of this rare disease and open new strategies to study pathologies involving both accelerated and healthy aging.
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