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Paladini, M. S.

Publications and source records attributed to Paladini, M. S..

2 recordsLinked to original sources

Fate mapping of peripherally derived macrophages reveals a long-lasting engrafted population that maintains a distinct transcriptomic profile for up to 8 months after Traumatic Brain Injury

Traumatic Brain Injury (TBI) is one of the most established environmental risk factors for the development of dementia and long term neurological deficits representing a critical health problem for our society. It is well-established that TBI-induced neuroinflammation contributes to the long-lasting cognitive deficits and engages brain-resident macrophages (microglia) as well as monocytes-derived macrophages (MDMs) recruited from the periphery. While numerous studies have characterized microglia response to TBI, and the critical role of early infiltrated MDMs in the development of cognitive dysfunctions, the fate of MDMs in TBI remains unknown. Microglia and MDMs have distinct embryological origins and it is unclear if MDMs can fully transition to microglia after infiltrating the brain. This gap in knowledge is due to the fact that after brain engraftment, MDMs stop expressing their signature markers, thus making discrimination from resident microglia cells elusive. Here, for the first time, we longitudinally trace the fate of MDMs by taking advantage of two complementary yet distinct fate mapping mouse lines, CCR2-creERT2 and Ms4a3-cre, where inflammatory monocytes are permanently labeled even after in situ reprogramming. We demonstrated that early infiltrated MDMs persist in the brain for up to 8 months after TBI in adult female and male mice. Notably, MDMs retain their phagocytic activity while remaining transcriptomically distinct from microglia, and show a signature associated with aging and disease. Our data significantly advance the understanding of long-lasting MDMs and provide critical knowledge for developing more targeted therapeutic interventions for myeloid cells.

immunology↗

Aberrant cortical spine dynamics after concussive injury are reversed by integrated stress response inhibition.

Traumatic brain injury (TBI) is a leading cause of long-term neurological disability in the world and the strongest environmental risk factor for the development of dementia. Even mild TBI (resulting from concussive injuries) is associated with a >2-fold increase in the risk of dementia onset. Little is known about the cellular mechanisms responsible for the progression of long lasting cognitive deficits. The integrated stress response (ISR), a phylogenetically conserved pathway involved in the cellular response to stress, is activated after TBI, axsnd inhibition of the ISR -- even weeks after injury -- can reverse behavioral and cognitive deficits. However, the cellular mechanisms by which ISR inhibition restores cognition are unknown. Here we used longitudinal two-photon imaging in vivo after concussive injury in mice to study dendritic spine dynamics in the parietal cortex, a brain region involved in working memory. Concussive injury profoundly altered spine dynamics measured up to a month after injury. Strikingly, brief pharmacological treatment with the drug-like small-molecule ISR inhibitor ISRIB entirely reversed the structural changes measured in the parietal cortex and the associated working memory deficits. Thus, both neural and cognitive consequences of concussive injury are mediated in part by activation of the ISR and can be corrected by its inhibition. These findings suggest that targeting ISR activation could serve as a promising approach for the clinical treatment of chronic cognitive deficits after TBI. Significance StatementAfter traumatic brain injury, temporary pharmacological inhibition of the integrated stress response (ISR), with a small-molecule inhibitor (ISRIB), rescued long lasting trauma-induced cognitive deficits. Here, we found that ISRIB treatment rapidly and persistently reversed the aberrant changes in cortical spine dynamics in the parietal cortex while rescuing working memory deficits. These data suggests that the link between the ISR and memory function involves, at least in part, changes in neuronal structure. Targeting ISR activation could serve as a promising approach for the clinical treatment of chronic cognitive deficits after brain injuries.

neuroscience↗