Search bioRxiv⌕ Search

Biology subjects

Scaramuzza, F.

Publications and source records attributed to Scaramuzza, F..

3 recordsLinked to original sources

PER2- and state-dependent transcriptional programs gate neural stem cell proliferation with niche-specific circadian autonomy

Adult neural stem cells (NSCs) in the mouse brain are predominantly quiescent, with activation tightly regulated to balance neurogenesis and stem cell maintenance. Circadian clocks temporally organize core cellular processes, potentially gating NSC activation. We examined adult NSC temporal dynamics across the day and observed rhythmic expression of core circadian clock components BMAL1 and PER2 in both mammalian niches, the subgranular zone (SGZ) of the dentate gyrus and the subventricular zone (SVZ). While cell cultures derived from both niches show BMAL1 and PER2 protein, only SGZ-derived NSCs exhibit synchronized self-sustained core clock oscillations across the population. Comparative analyses of WT and Per2 knockout NSCs revealed state-specific, circadian clock-dependent oscillatory transcriptional programs. This identified ASCL1 and CCND1 as candidate regulators of cell-cycle coordination, with daytime accumulation preceding a nighttime S-phase peak. The temporal control of S-phase entry in NSCs was abolished in Per2 knockout mice. Together, our findings reveal state-specific, PER2-dependent circadian regulation of adult NSCs in both neurogenic niches, and a specific dependence on external stimuli for synchronization in the SVZ.

cell biology↗

Peripheral tissues of deep-sea mussels exhibit autonomous circadian timing via an atypical mechanism

While biological rhythms are crucial to life, the deep sea has long been considered an arrhythmic exception. However, at hydrothermal vents - devoid of diel cues yet shaped by tides - the mussel Bathymodiolus azoricus shows both tidal and, unexpectedly, circadian rhythms at -1700 m. Whether endogenous clock(s) drive these cycles remained unanswered. Here, we report endogenous circadian rhythms in B. azoricus cell cultures under constant conditions: isolated cells displayed a circadian oscillator despite tidal-dominant rhythms in situ. Reporter assays using genomic regions upstream of the mussels per gene and containing E-box motifs indicate that a functional transcription-translation feedback loop (TTFL) underpins circadian timing even in the deep sea. In contrast to conventional models, however, BazPeriod lacks autonomous repressive activity but modulates BazCry2. As BazPeriod itself oscillates tidally, it may explain how a single endogenous clock yields both tidal and diel rhythms. The work also spotlights the highly time-sensitive biology of vastly unexplored deep-sea biology.

molecular biology↗

A cryptochrome photoreceptor controls animal light-dependent growth and lifespan via evolutionary conserved hormonal pathways

Natural light is severely affected by human impact on Earth, yet little is known about the roles light receptors have outside vision and rhythmic processes. Here we show that loss-of-function of the light-receptive cryptochrome (l-cry) in marine bristleworms significantly increases lifespan and adult size, similarly to wild-types reared in constant darkness. Quantitative transcriptomics revealed hormonal players crucial for invertebrate and vertebrate sexual development and reproduction affected in l-cry mutants. These include nr0b1/2, ortholog of dax-1 (nr0b1) and shp (nr0b2), long considered vertebrate novelties. Depending on moon-phase, nr0b1/2 is up- or down-regulated in l-cry mutants. Matching the complex regulation, loss of nr0b1/2 function partially recapitulates l-cry phenotypes. Molecularly, Platynereis Nr0b1/2 affects steroidogenic and other endocrine pathways, nuclear receptor signaling, and transcription factor orthologs, involved in sexual developmental, reproductive, and timing processes in other organisms. Thus, our study reveals profound effects of light on adult animal life-time, likely at least in part by conserved endocrine pathways involved in sexual maturation and reproduction in annelids and vertebrates.

evolutionary biology↗