Automated Author Profile

Fernández, Agustín F.

Current S-Index

5.5

Sum of Dataset Indices for all datasets

Average Dataset Index per Dataset

0.6

Average Dataset Index per dataset

Total Datasets

9

Total datasets for this author

Average FAIR Score

65.0%

Average FAIR Score per dataset

Total Citations

5

Total citations to the author's datasets

Total Mentions

0

Total mentions of the author's datasets

S-Index Interpretation

S-Index Over Time

Cumulative Citations Over Time

Cumulative Mentions Over Time

Datasets

Conservation of aging and cancer epigenetic signatures across human and mouse

Aging and cancer are two interrelated biological processes, with aging being one of the most important risk factors for the development of cancer. Parallel epigenetic alterations have been described for both, although differences, especially within the DNA hypomethylation scenario, have also been identified in recent literature. While many of these observations arise from the use of mouse models, there is a lack of systematic and single-base resolution comparisons of human and mouse epigenetic patterns in the context of disease. However, such comparisons are especially significant with respect to the DNA methylation alterations found independently in the two species as they allow to establish the extent to which some of the observed similarities or differences arise from pre-existing species-specific epigenetic traits. Here, we have used reduced representation bisulfite sequencing to profile the brain methylomes of young and old, tumoral and non-tumoral brain samples from human and mouse. We first characterized the baseline epigenomic patterns of the species and subsequently focused on the DNA methylation alterations associated with cancer and aging. Next, we described the functional genomic and epigenomic context associated with the alterations, and finally we integrated our data in order to study interspecies DNA methylation levels at specific CpG sites. Globally, we found robust evidence for the conservation of cancer and aging-associated epigenomic patterns in both species, and our observations point towards the preservation of the functional consequences of these alterations at multiple levels of genomic regulation.

Authors

  • Pérez, Raúl F. ;
  • Tejedor, Juan Ramón ;
  • Santamarina-Ojeda, Pablo ;
  • López, Virginia ;
  • Urdinguio, Rocío G. ;
  • Villamañán, Lucía ;
  • Candiota, Ana Paula ;
  • Vidal Sarró, Noemí ;
  • Barradas, Marta ;
  • Fernandez-Marcos, Pablo Jose ;
  • Serrano, Manuel ;
  • Fernández, Agustín F. ;
  • Fraga, Mario F.
0 Citations0 Mentions50% FAIR0.3 Dataset Index
10.20350/digitalcsic/138152021

No genome-wide DNA methylation changes found associated with medium-term reduced graphene oxide exposure in human lung epithelial cells

The presence of nanomaterials in our everyday life is ever increasing, and so too are concerns about the possible health consequences of exposure to them. While evidence of their biological activity is growing, there is still scant knowledge of the epigenetic mechanisms that could be at play in these processes. Moreover, the great variability in the chemical and physical structures of these compounds handicaps the study of their possible health risks. Here we have synthesized reduced graphene oxide (rGO) through the thermal exfoliation/reduction of graphite oxide, and characterized the resulting material. We have then made use of Illumina’s MethylationEPIC arrays and bisulphite pyrosequencing to analyse the genome-wide and global DNA methylation dynamics associated with the medium-term exposure of human lung epithelial cells to rGO at concentrations of 1 and 10 µg/mL. The results show no genome-wide or global DNA methylation changes associated with either condition. Our observations thus suggest that medium-term rGO exposure does not have significant effects on the DNA methylation patterns of human lung epithelial cells.

Authors

  • Pérez, Raúl F. ;
  • Fernández, Anna Yunuen Soto ;
  • Muñoz, Pablo Bousquets ;
  • Sierra, Marta I. ;
  • Tejedor, Juan Ramón ;
  • Morales-Sánchez, Paula ;
  • Valdés, Adolfo F. ;
  • Santamaría, Ricardo ;
  • Blanco, Clara ;
  • Torrecillas, Ramón ;
  • Fraga, Mario F. ;
  • Fernández, Agustín F.
1 Citation0 Mentions85% FAIR0.9 Dataset Index
10.6084/m9.figshare.9810605.v22019

No genome-wide DNA methylation changes found associated with medium-term reduced graphene oxide exposure in human lung epithelial cells

The presence of nanomaterials in our everyday life is ever increasing, and so too are concerns about the possible health consequences of exposure to them. While evidence of their biological activity is growing, there is still scant knowledge of the epigenetic mechanisms that could be at play in these processes. Moreover, the great variability in the chemical and physical structures of these compounds handicaps the study of their possible health risks. Here we have synthesized reduced graphene oxide (rGO) through the thermal exfoliation/reduction of graphite oxide, and characterized the resulting material. We have then made use of Illumina’s MethylationEPIC arrays and bisulphite pyrosequencing to analyse the genome-wide and global DNA methylation dynamics associated with the medium-term exposure of human lung epithelial cells to rGO at concentrations of 1 and 10 µg/mL. The results show no genome-wide or global DNA methylation changes associated with either condition. Our observations thus suggest that medium-term rGO exposure does not have significant effects on the DNA methylation patterns of human lung epithelial cells.

Authors

  • Pérez, Raúl F. ;
  • Fernández, Anna Yunuen Soto ;
  • Muñoz, Pablo Bousquets ;
  • Sierra, Marta I. ;
  • Tejedor, Juan Ramón ;
  • Morales-Sánchez, Paula ;
  • Valdés, Adolfo F. ;
  • Santamaría, Ricardo ;
  • Blanco, Clara ;
  • Torrecillas, Ramón ;
  • Fraga, Mario F. ;
  • Fernández, Agustín F.
1 Citation0 Mentions85% FAIR0.8 Dataset Index
10.6084/m9.figshare.98106052019

No genome-wide DNA methylation changes found associated with medium-term reduced graphene oxide exposure in human lung epithelial cells

The presence of nanomaterials in our everyday life is ever increasing, and so too are concerns about the possible health consequences of exposure to them. While evidence of their biological activity is growing, there is still scant knowledge of the epigenetic mechanisms that could be at play in these processes. Moreover, the great variability in the chemical and physical structures of these compounds handicaps the study of their possible health risks. Here we have synthesized reduced graphene oxide (rGO) through the thermal exfoliation/reduction of graphite oxide, and characterized the resulting material. We have then made use of Illumina’s MethylationEPIC arrays and bisulphite pyrosequencing to analyse the genome-wide and global DNA methylation dynamics associated with the medium-term exposure of human lung epithelial cells to rGO at concentrations of 1 and 10 µg/mL. The results show no genome-wide or global DNA methylation changes associated with either condition. Our observations thus suggest that medium-term rGO exposure does not have significant effects on the DNA methylation patterns of human lung epithelial cells.

Authors

  • Pérez, Raúl F. ;
  • Fernández, Anna Yunuen Soto ;
  • Muñoz, Pablo Bousquets ;
  • Sierra, Marta I. ;
  • Tejedor, Juan Ramón ;
  • Morales-Sánchez, Paula ;
  • Valdés, Adolfo F. ;
  • Santamaría, Ricardo ;
  • Blanco, Clara ;
  • Torrecillas, Ramón ;
  • Fraga, Mario F. ;
  • Fernández, Agustín F.
1 Citation0 Mentions85% FAIR0.8 Dataset Index
10.6084/m9.figshare.9810605.v12019

Chromatin regulation by Histone H4 acetylation at Lysine 16 during cell death and differentiation in the myeloid compartment

Histone H4 acetylation at Lysine 16 (H4K16ac) is a key epigenetic mark involved in gene regulation, DNA repair and chromatin remodeling, and though it is known to be essential for embryonic development, its role during adult life is still poorly understood. Here we show that this lysine is massively hyperacetylated in peripheral neutrophils. Genome-wide mapping of H4K16ac in terminally differentiated blood cells, along with functional experiments, supported a role for this histone post-translational modification in the regulation of cell differentiation and apoptosis in the hematopoietic system. Furthermore, in neutrophils, H4K16ac was enriched at specific DNA repeats. These DNA regions presented an accessible chromatin conformation and were associated with the cleavage sites that generate the 50 kb DNA fragments during the first stages of programmed cell death. Our results thus suggest that H4K16ac plays a dual role in myeloid cells as it not only regulates differentiation and apoptosis, but it also exhibits a non-canonical structural role in poising chromatin for cleavage at an early stage of neutrophil cell death.

Authors

  • Urdinguio, Rocío G. ;
  • López, Virginia ;
  • Bayón, Gustavo F. ;
  • Díaz De La Guardia, Rafael ;
  • Sierra, Marta I. ;
  • García-Toraño, Estela ;
  • Pérez, Raúl F. ;
  • García, María G. ;
  • Carella, Antonella ;
  • Pruneda, Patricia C. ;
  • Prieto, Cristina ;
  • Dmitrijeva, Marija ;
  • Santamarina-Ojeda, Pablo ;
  • Belmonte, Thalia ;
  • Mangas, Cristina ;
  • Diaconu, Elena ;
  • Ferrero, Cecilia ;
  • Tejedor, Juan Ramón ;
  • Fernández-Morera, Juan L. ;
  • Bravo, Cristina ;
  • Bueno, Clara ;
  • Sanjuan-Pla, Alejandra ;
  • Rodríguez López, Ramón María ;
  • Suarez-Alvarez, Beatriz ;
  • López-Larrea, Carlos ;
  • Bernal, Teresa ;
  • Colado, Enrique ;
  • Balbín, Milagros ;
  • García-Suarez, Olivia ;
  • Chiara, María-Dolores ;
  • Sáenz-De-Santa-María, Inés ;
  • Rodríguez, Francisco ;
  • Pando-Sandoval, Ana ;
  • Rodrigo, Luis ;
  • Santos, Laura ;
  • Salas, Ana ;
  • Vallejo-Díaz, Jesús ;
  • Carrera, Ana C. ;
  • Rico, Daniel ;
  • Hernández-López, Inmaculada ;
  • Vayá, Amparo ;
  • Ricart, José M. ;
  • Seto, Edward ;
  • Sima-Teruel, Núria ;
  • Vaquero, Alejandro ;
  • Valledor, Luis ;
  • Cañal, Maria Jesus ;
  • Pisano, David ;
  • Graña-Castro, Osvaldo ;
  • Thomas, Tim ;
  • Voss, Anne K. ;
  • Menéndez, Pablo ;
  • Villar-Garea, Ana ;
  • Deutzmann, Rainer ;
  • Fernández, Agustín F. ;
  • Fraga, Mario F.
0 Citations0 Mentions31% FAIR0.2 Dataset Index
10.20350/digitalcsic/138212018

Epigenome-wide analysis reveals specific DNA hypermethylation of T cells during human hematopoietic differentiation

Epigenetic regulation plays an important role in cellular development and differentiation. A detailed map of the DNA methylation dynamics that occur during cell differentiation would contribute to decipher the molecular networks governing cell fate commitment. In this study we used the most recent Illumina MethylationEPIC Beadchip platform to describe the genome-wide DNA methylation changes observed throughout hematopoietic maturation by analyzing multiple hematopoietic cell types at different developmental stages.

Authors

  • Tejedor, Juan Ramón ;
  • Bueno, Clara ;
  • Cobo, Isabel ;
  • Bayón, Gustavo F. ;
  • Prieto, Cristina ;
  • Mangas, Cristina ;
  • Pérez, Raúl F. ;
  • Santamarina-Ojeda, Pablo ;
  • Urdinguio, Rocío G. ;
  • Menéndez, Pablo ;
  • Fraga, Mario F. ;
  • Fernández, Agustín F.
0 Citations0 Mentions50% FAIR0.3 Dataset Index
10.20350/digitalcsic/138192017

Distinct chromatin signatures of DNA hypomethylation in aging and cancer (Datasets and additional files)

Cancer is an aging-associated disease but the underlying molecular links between these processes are still largely unknown. Gene promoters that become hypermethylated in aging and cancer share a common chromatin signature in ES cells. In addition, there is also global DNA hypomethylation in both processes. However, any similarities of the regions where this loss of DNA methylation occurs is currently not well characterized, nor is it known whether such regions also share a common chromatin signature in aging and cancer. To address this issue we analysed TCGA DNA methylation data from a total of 2,311 samples, including control and cancer cases from patients with breast, kidney, thyroid, skin, brain and lung tumors and healthy blood, and integrated the results with histone, chromatin state and transcription factor binding site data from the NIH Roadmap Epigenomics and ENCODE projects. We identified 98,857 CpG sites differentially methylated in aging, and 286,746 in cancer. Hyper- and hypomethylated changes in both processes each had a similar genomic distribution across tissues and displayed tissue-independent alterations. The identified hypermethylated regions in aging and cancer shared a similar bivalent chromatin signature. In contrast, hypomethylated DNA sequences occurred in very different chromatin contexts. DNA hypomethylated sequences were enriched at genomic regions marked with the activating histone posttranslational modification H3K4me1 in aging, whilst in cancer, loss of DNA methylation was primarily associated with the repressive H3K9me3 mark.

Authors

  • Pérez, Raúl F. ;
  • Tejedor, Juan Ramón ;
  • Bayón, Gustavo F. ;
  • Fernández, Agustín F. ;
  • Fraga, Mario F.
0 Citations0 Mentions31% FAIR0.2 Dataset Index
10.20350/digitalcsic/138162017

Differential analysis of genome-wide methylation and gene expression in mesenchymal stem cells of patients with fractures and osteoarthritis

Insufficient activity of the bone-forming osteoblasts leads to low bone mass and predisposes to fragility fractures. The functional capacity of human mesenchymal stem cells (hMSCs), the precursors of osteoblasts, may be compromised in elderly individuals, in relation with the epigenetic changes associated with aging. However, the role of hMSCs in the pathogenesis of osteoporosis is still unclear. Therefore, we aimed to characterize the genome-wide methylation and gene expression signatures and the differentiation capacity of hMSCs from patients with hip fractures. We obtained hMSCs from the femoral heads of women undergoing hip replacement due to hip fractures and controls with hip osteoarthritis. DNA methylation was explored with the Infinium 450K bead array. Transcriptome analysis was done by RNA sequencing. The genomic analyses revealed that most differentially methylated loci were situated in genomic regions with enhancer activity, distant from gene bodies and promoters. These regions were associated with differentially expressed genes enriched in pathways related to hMSC growth and osteoblast differentiation. hMSCs from patients with fractures showed enhanced proliferation and upregulation of the osteogenic drivers RUNX2/OSX. Also, they showed some signs of accelerated methylation aging. When cultured in osteogenic medium, hMSCs from patients with fractures showed an impaired differentiation capacity, with reduced alkaline phosphatase activity and poor accumulation of a mineralized matrix. Our results point to 2 areas of potential interest for discovering new therapeutic targets for low bone mass disorders and bone regeneration: the mechanisms stimulating MSCs proliferation after fracture and those impairing their terminal differentiation.

Authors

  • del Real, Alvaro ;
  • Pérez-Campo, Flor M. ;
  • Fernández, Agustín F. ;
  • Sañudo, Carolina ;
  • Ibarbia, Carmen G. ;
  • Pérez-Núñez, María I. ;
  • Criekinge, Wim Van ;
  • Braspenning, Maarten ;
  • Alonso, María A. ;
  • F. Fraga, Mario ;
  • Riancho, Jose A.
1 Citation0 Mentions85% FAIR0.9 Dataset Index
10.6084/m9.figshare.4476629.v12016

Differential analysis of genome-wide methylation and gene expression in mesenchymal stem cells of patients with fractures and osteoarthritis

Insufficient activity of the bone-forming osteoblasts leads to low bone mass and predisposes to fragility fractures. The functional capacity of human mesenchymal stem cells (hMSCs), the precursors of osteoblasts, may be compromised in elderly individuals, in relation with the epigenetic changes associated with aging. However, the role of hMSCs in the pathogenesis of osteoporosis is still unclear. Therefore, we aimed to characterize the genome-wide methylation and gene expression signatures and the differentiation capacity of hMSCs from patients with hip fractures. We obtained hMSCs from the femoral heads of women undergoing hip replacement due to hip fractures and controls with hip osteoarthritis. DNA methylation was explored with the Infinium 450K bead array. Transcriptome analysis was done by RNA sequencing. The genomic analyses revealed that most differentially methylated loci were situated in genomic regions with enhancer activity, distant from gene bodies and promoters. These regions were associated with differentially expressed genes enriched in pathways related to hMSC growth and osteoblast differentiation. hMSCs from patients with fractures showed enhanced proliferation and upregulation of the osteogenic drivers RUNX2/OSX. Also, they showed some signs of accelerated methylation aging. When cultured in osteogenic medium, hMSCs from patients with fractures showed an impaired differentiation capacity, with reduced alkaline phosphatase activity and poor accumulation of a mineralized matrix. Our results point to 2 areas of potential interest for discovering new therapeutic targets for low bone mass disorders and bone regeneration: the mechanisms stimulating MSCs proliferation after fracture and those impairing their terminal differentiation.

Authors

  • del Real, Alvaro ;
  • Pérez-Campo, Flor M. ;
  • Fernández, Agustín F. ;
  • Sañudo, Carolina ;
  • Ibarbia, Carmen G. ;
  • Pérez-Núñez, María I. ;
  • Criekinge, Wim Van ;
  • Braspenning, Maarten ;
  • Alonso, María A. ;
  • F. Fraga, Mario ;
  • Riancho, Jose A.
1 Citation0 Mentions85% FAIR1.1 Dataset Index
10.6084/m9.figshare.44766292016