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Givon, L.

Publications and source records attributed to Givon, L..

2 recordsLinked to original sources

Systematic DNA nicking reveals the structural logic of protein recognition

Transcription factors (TFs) bind to specific genomic sites to regulate gene expression1,2. These interactions almost universally require DNA deformation and the accumulation of local mechanical strain within the double helix. As a result, TF-DNA recognition is determined not only by the linear base sequence but also by the spatial alignment of bases and phosphates, as well as their ability to adopt and retain structural deformations3. However, the sequence-centric focus of existing studies makes it challenging to directly probe DNA structural determinants and to decouple their impact from alterations in base sequences, limiting our ability to unravel the key factors influencing binding beyond the sequence identity and leaving significant gaps in our understanding of the principles governing TF-DNA recognition. Here, we introduce a high-throughput strategy to perturb TF binding sites without altering their base sequence, enabling systematic investigation of the structural features of DNA that govern TF binding. Our method, PIC-NIC, introduces single-strand breaks (SSBs) at every position within the binding site, selectively disrupting backbone continuity while preserving nucleotide identity, with the resulting effects on TF binding measured quantitatively. Applied to 15 human TFs spanning eight structural classes, and supported by seven high-resolution TF-DNA crystal structures and molecular dynamics simulations, PIC-NIC uncovers discrete backbone positions serving as structural anchor points where nicks can abolish binding, rewire sequence preferences, or even enhance affinity. By decoupling structural and chemical contributions, we demonstrate that DNA mechanics--encoded in backbone geometry and continuity--can independently shape binding specificity beyond the linear code of base identity. These findings shift the paradigm of TF-DNA recognition, establishing the backbone not as a passive scaffold, but as a functional determinant capable of directing regulatory mechanisms through its physical architecture.

biophysics↗

Post Adversity Changes in Nigro-Striatal Dopamine: a Mechanism for Anxiety Induced Exacerbated Innate Repetitive Behaviors.

Anxiety exacerbates symptoms in various psychiatric disorders. In conditions such as obsessive-compulsive disorder (OCD) or Tourette syndrome, anxiety intensifies stereotypic and repetitive behaviors. Rodent self-grooming, a structured, repetitive innate behavior, serves as an effective rodent platform for studying these behaviors in neuropsychiatric research. Anxiety is also linked to altered functioning of the dopamine (DA) system, particularly within the substantia-nigra pars compacta (SNc), the main DA source to the dorsal striatum through the nigro-striatal pathway. Striatal modulation by DA signal also plays a complex role in repetitive behaviors and OCD-like symptoms, suggesting this system as linking anxiety to the induced exacerbation of repetitive behavior. In the present study, we observed several long-term effects of anxiety inducing foot shock on grooming behavior. Recordings single unit neuronal activity in the SNc revealed distinct response patterns related to grooming behavior with changes in the magnitude and timing following the shock treatment. Notably, DA neurons of different nigro-striatal pathways demonstrated different changes in different response pattern type units. DA neurons projecting to the dorsolateral striatum (DLS) showed increase, while those targeting the dorsomedial striatum (DMS) exhibited decrease in transient activity -suggesting a shift in cortico-striatal circuitry of behavioral control. These neural changes were correlated with the observed behavioral alterations following adversity. Furthermore, targeted stimulation of DLS-projecting DA neurons rescued the anxiety-induced behavioral effects, highlighting the critical role of the nigro-striatal pathway to the DLS in mediating the interaction between anxiety and repetitive behaviors, thus offering future direction for mitigation of relevant psychiatric symptoms.

neuroscience↗