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Maroto, R.

Publications and source records attributed to Maroto, R..

2 recordsLinked to original sources

Rejuvenating Senescent Cells and Organisms with Only Ultrasound

The presence of an appreciable number of senescent cells causes age-related pathologies as their removal by genetic or pharmacological means, as well as possibly by exercise, improves outcome in animal models. An alternative to depleting such cells would be to rejuvenate them to promote their return to a replicative state. Means to do so have not been explored, but here we report that treatment of non-growing senescent cells with low-frequency ultrasound (LFU) rejuvenates the cells. Notably, we find 15 characteristics of senescent cells that are reversed by LFU, including decreased cell and organelle motility. Mechanistically, LFU causes Ca2+ entry that precedes dramatic increases in autophagy and an inhibition of mTORC1 signaling and the movement of Sirtuin1 from the nucleus to cytoplasm. Also, there is inhibition of SASP secretion, as well as {beta}-galactosidase expression, telomere length is increased, while nuclear 5mc, H3K9me3, {gamma}H2AX, nuclear p53, ROS and mitoROS levels are all restored to normal levels. Repeated LFU treatments enables expansion of primary cells and stem cells beyond normal replicative limits without altering their phenotype. The rejuvenation process is enhanced by co-treatment with rapamycin or Rho kinase inhibition but is inhibited by blocking Sirtuin1 or Piezo1 activity. We further optimized the LFU treatment parameters to increase mouse lifespan and healthspan. These results suggest that mechanically-induced pressure waves alone can reverse senescence and aging effects at the cellular and organismal level, providing a non-pharmacological way to treat the effects of aging. One-Sentence SummaryLow frequency ultrasound is sufficient to rejuvenate senescent cells by activating autophagy in aged mice to improve healthspan.

physiology↗

Skeletal Muscle Transcriptome Alterations Related to Physical Function Decline in Older Mice

One inevitable consequence of aging is the gradual deterioration of physical function and exercise capacity, driven in part by the adverse effect of age on muscle tissue. Our primary purpose was to determine the relationship between patterns of gene expression in skeletal muscle and this loss of physical function. We hypothesized that some genes changing expression with age would correlate with functional decline, or conversely with preservation of function. Male C57BL/6 mice (6-months old, 6m, 24-months, 24m, and 28+-months, 28m; all n=8) were tested for physical ability using a comprehensive functional assessment battery (CFAB). CFAB is a composite scoring system comprised of five functional tests: rotarod (overall motor function), grip strength (fore-limb strength), inverted cling (4-limb strength/endurance), voluntary wheel running (activity rate/volitional exercise), and treadmill (endurance). We then extracted total RNA from the tibialis anterior muscle, analyzed with Next Generation Sequencing RNAseq to determine differential gene expression during aging, and compared these changes to physical function. Aging resulted in gene expression differences >[boxv]1.0[boxv] log2 fold change (multiple comparison adjusted p<0.05) in 219 genes in the 24m and in 6587 genes in the 28m. Linear regression with CFAB determined 253 differentially expressed genes strongly associated (R>0.70) with functional status in the 28m, and 22 genes in the 24m. We conclude that specific age-related transcriptomic changes are associated with declines in physical function, providing mechanistic clues. Future work will establish the underlying cellular mechanisms and the physiological relevance of these genes to age-related loss of physical function. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=96 SRC="FIGDIR/small/444371v1_ufig1.gif" ALT="Figure 1"> View larger version (36K): org.highwire.dtl.DTLVardef@ad7362org.highwire.dtl.DTLVardef@17267e7org.highwire.dtl.DTLVardef@38600org.highwire.dtl.DTLVardef@15283a7_HPS_FORMAT_FIGEXP M_FIG C_FIG RNA sequencing of skeletal muscle from young and old mice were compared to physical function status obtained by performing a comprehensive functional assessment battery of tests. Between adulthood (6-months) and older age (28-months), 6707 genes were differentially expressed with 253 of these genes being significantly associated with physical function. Specific age-related changes to the skeletal muscle transcriptome are associated with a decline in physical function.

physiology↗