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de Ceballos, M. L.

Publications and source records attributed to de Ceballos, M. L..

2 recordsLinked to original sources

Transgenerational effects of exercise on mouse brain and cognition

Lifestyle induces long lasting effects on brain and cognition, with some interventions like stress including transgenerational inheritance mediated by epigenetic mechanisms. Physical exercise is one lifestyle intervention driving robust improvements of cognition, including intergenerational transmission to the litter. However, little is known about whether exercise effects are transgenerationally transmitted. Here we analyzed adult hippocampal neurogenesis (AHN) and behavioral phenotype of sedentary adult male mice of F2 generation of exercised grandfathers (F0). Both F1 and F2 were sedentary, while F0 performed moderate exercise. We found F2 mice from exercised F0 acquired and recalled both spatial and non-spatial information better than F2 from sedentary F0. Contextual fear conditioning was not affected, together with no differences in AHN markers. Hippocampal smallRNAseq analysis revealed 35 significant differentially expressed (sDE) microRNAs (miRNAs) associated to relevant brain function families. Moreover, 11 of the 35 miRNAs target gene sets were found also enriched in F0 and F1, as well as target genes of 6 of them were differentially expressed also in F0 or F1. One of these 6 is miRNA-144, that together with miRNA-298 were found inversely correlated to cognitive index in F2. These results demonstrate that transgenerational transmission of the effects of exercise on specific cognitive tasks persists after two generations, even though some cellular changes induced in F1 vanish in F2. Thus, they suggest moderate exercise training has longer-lasting effects than previously thought, probably mediated by a small group of miRNAs acting across generations, and this is worth taking into account in public health programs.

neuroscience↗

A Role For Astrocytic Insulin-Like Growth Factor I Receptors In The Response To Ischemic Insult

Increased neurotrophic support, including insulin-like growth factor I (IGF-I), is an important aspect of the adaptive response to ischemic insult. However, recent findings indicate that the IGF-I receptor (IGF-IR) in neurons plays a detrimental role in the response to stroke. Thus, we investigated the role of astrocytic IGF-IR on ischemic insults by deleting it using tamoxifen-regulated Cre deletion in glial fibrillary acidic protein (GFAP) astrocytes, a major cellular component in the response to injury. Ablation of IGF-IR in astrocytes (GFAP-IGF-IR KO mice) resulted in larger ischemic lesions, greater blood-brain-barrier disruption and more deteriorated sensorimotor coordination. RNAseq detetected increases in inflammatory, cell adhesion and angiogenic pathways, while the expression of various classical biomarkers of response to ischemic lesion, including aquaporin 4, complement 1q subunit a, early growth response protein 1, and C-C motif chemokine ligand 2, were significantly increased at the lesion site compared to control littermates. While serum IGF-I levels after injury were decreased in both control and GFAP-IR KO mice, brain IGF-I mRNA expression show larger increases in the latter. Further, greater damage was also accompanied by altered glial reactivity as reflected by changes in the morphology of GFAP astrocytes, and relative abundance of ionized calcium binding adaptor molecule 1 microglia. These results suggest a protective role for astrocytic IGF-IR in the response to ischemic injury.

neuroscience↗