bioRxiv Science⌕ Search

Biology subjects

Vorobyova, I.

Publications and source records attributed to Vorobyova, I..

3 recordsLinked to original sources

Temporal control of mitochondrial mutagenesis reveals the fate of mtDNA mutations with age

Mutations in the mitochondrial genome (mtDNA) play a critical role in the aging process and a wide variety of age-related diseases. However, it remains unclear when the mutations that drive physiological decline arise. To answer this question, we generated a new mouse model in which mitochondrial mutagenesis can be confined to a defined window of time. Surprisingly, we found that mutations that arise during the first two months of life are sufficient to drive a wide variety of age-related pathologies, and that the severity of this pathology is broadly regulated by distinct, tissue-specific selective pressures that control the fate of mtDNA mutations with age. Further, we found that selection against deleterious variants can be modulated by manipulation of mitochondrial fusion in vitro and in vivo. These observations raise the possibility that in some tissues, the pace of aging is pre-determined by events that occur early in life and that interventions targeting mitochondrial fusion may be able to slow down or reverse the expansion of these pathogenic variants. These results carry far-reaching implications for strategies aimed at preventing or delaying age-related decline.

genetics↗

The longevity effects of reduced IGF-1 signaling depend on the stability of the mitochondrial genome

Suppression of insulin-like growth factor-1 (IGF-1) signaling extends mammalian lifespan and protects against a range of age-related diseases. Surprisingly though, we found that reduced IGF-1 signaling fails to extend the lifespan of mitochondrial mutator mice. Accordingly, most of the longevity pathways that are normally initiated by IGF-1 suppression were either blocked or blunted in the mutator mice. These observations suggest that the pro-longevity effects of IGF-1 suppression critically depend on the integrity of the mitochondrial genome and that mitochondrial mutations may impose a hard limit on mammalian lifespan. Together, these findings deepen our understanding of the interactions between the hallmarks of aging and underscore the need for interventions that preserve the integrity of the mitochondrial genome.

molecular biology↗

Tcf12 controls dynamic calvarial bone growth and motor learning in mice

Heterozygous loss-of-function mutations of TCF12 and TWIST1 can each cause craniosynostosis and neurodevelopmental delay in humans. Twist1-Tcf12 interaction plays an important role in regulating suture development. Although the molecular and cellular mechanisms underlying craniosynostosis and neurocognitive dysfunctions in Twist1+/- mice have been studied, less information on the role of Tcf12 in these defects is available. To investigate the functional mechanism of Tcf12 in regulating skull and brain development, we analyzed the skull shape of Wnt1-Cre;Mesp1-Cre;Tcf12fl/fl mice and found that, despite mild coronal synostosis, their skull shape appears to be similar to that of controls. We also found evidence of impaired motor learning ability in Tcf12 mutant mice. Furthermore, loss of Tcf12 in neural crest lineage leads to upregulated Runx2 expression in the calvarial mesenchyme and posterior expansion of the frontal bone in Wnt1-Cre;Tcf12fl/fl mice. Mechanistically, we show that Lmx1b is a direct downstream target of Tcf12 for the regulation of osteogenic differentiation in the calvarial mesenchyme during embryonic development. Importantly, overexpression of Lmx1b inhibits osteogenic differentiation in the calvarial mesenchyme of Wnt1-Cre;Tcf12fl/fl mice, indicating Tcf12s regulation of Lmx1b expression is crucial for controlling osteogenesis during calvarial bone development. Our study suggests that Tcf12 expression in the brain is crucial for motor learning. Moreover, this study establishes a new molecular mechanism underlying regulation of calvarial bone formation. Author SummaryCraniosynostosis is characterized by premature fusion of cranial sutures and associated with abnormal skull growth, delayed brain development, and often impaired brain functions. Loss-of-function mutation of TCF12 can cause coronal synostosis and neurodevelopmental delay in humans. In developing mouse sutures, Tcf12 is essential for maintaining the boundary between sutural and osteogenic cells. However, roles of Tcf12 in skull formation and brain development have not been fully investigated. In this study, we show that loss of Tcf12 leads to brain abnormalities even in the absence of coronal synostosis and that frontal bone expansion results from upregulated osteogenic differentiation in the calvarial mesenchyme in mice. Furthermore, we identify Lmx1b as a downstream target of Tcf12 for the regulation of osteogenic differentiation in the calvarial mesenchyme during frontal bone development. Our findings highlight the role of Tcf12 in the development of calvarial bones and provide new insight into molecular mechanisms for regulation of calvarial bone formation.

developmental biology↗