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Soto, M. S.

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

2 recordsLinked to original sources

Master transcription factor binding sites are necessary for early replication control element activity

Eukaryotic genomes replicate in a defined temporal order called the replication timing (RT) program. RT is developmentally regulated with potential to drive cell fate transitions, but mechanisms controlling RT remain elusive. We previously identified "Early Replication Control Elements" (ERCEs) necessary for early RT, domain-wide transcription, 3D chromatin architecture and compartmentalization in mouse embryonic stem cells (mESCs) but, deletions identifying ERCEs were large and encompassed many putative regulatory elements. Here, we show that ERCEs are compound elements whose RT activity can largely be accounted for by multiple sites of diverse master transcription factor binding (subERCEs), distinguished from other such sites by their long-range interactions. While deletion of subERCEs had large effects on both transcription and RT, deleting transcription start sites eliminated nearly all transcription with moderate effects on RT. Our results suggest a model in which subERCEs respond to diverse master transcription factors by functioning both as transcription enhancers and as elements that organize chromatin domains structurally and support early RT, potentially providing a feed-forward loop to drive robust epigenomic change during cell fate transitions.

molecular biology↗

INFLAMMATORY BOWEL DISEASE INDUCES α-SYNUCLEIN AGGREGATION IN GUT AND BRAIN

According to Braaks hypothesis, it is plausible that Parkinso[n]s disease (PD) starts in the enteric nervous system (ENS) to spread the brain via the vagus nerve. Thus, we were wondering whether human inflammatory bowel diseases (IBD) can progress with appearance of pathogenic -synuclein (-syn) in the gastrointestinal tract and midbrain dopaminergic neurons. Analysis of human gastrointestinal tract sections from IBD patients demonstrated the presence of pathogenic phosphorylated -syn in both myenteric (Auerbachs) and submucosal (Meissners) plexuses. Remarkably, PD subjects exhibit -syn pathology in identical gastrointestinal locations. Analysis of human midbrain sections from IBD subjects revealed a clear displacement of neuromelanin in some nigral neurons from the ventral mesencephalon, which were inherently associated with presence of -syn aggregates reminiscent of pale bodies. We also used different dextran sodium sulfate (DSS)-based rat models of gut inflammation (subchronic and chronic) to study the appearance of phosphorylated -syn inclusions in both Auerbachs and Meissners plexuses (gut), and in dopaminergic neuritic processes (brain) along with degeneration of nigral dopaminergic neurons, which are considered classical hallmarks of PD. Vagotomized DSS-treated animals exhibited pathological -syn in the gut but failed to show dopaminergic cells degeneration and -syn aggregation in the ventral mesencephalon. Taken together, these results strongly suggest that Braaks hypothesis is plausible.

neuroscience↗