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Biology subjects

Jaber, K.

Publications and source records attributed to Jaber, K..

4 recordsLinked to original sources

Thalamic Interictal Epileptic and Non-Epileptic Events during NREM Sleep in Patients with Focal Epilepsy: a Stereo-EEG Study

BackgroundThalamic recordings are increasingly incorporated into stereo-electroencephalography (SEEG) evaluations of drug-resistant focal epilepsy to guide neuromodulation targeting. Human thalamic electrophysiology, however, is poorly defined, limiting the distinction between pathological and physiological activity. Here, we characterized interictal epileptic and non-epileptic events during non-rapid eye movement (NREM) sleep across multiple thalamic nuclei and examined their relationship to seizure outcomes. MethodsWe analyzed NREM sleep SEEG recordings from 64 patients with drug-resistant focal epilepsy. Electrodes sampled four thalamic nuclei: centromedian (CM), pulvinar (Pu), ventral lateral (VL), and ventral posterolateral (VPL). Patients were classified into three outcome groups: favorable, unfavorable, and surgically non-remediable. Rates of thalamic spikes, high-frequency oscillations (HFOs), spike-fast activity, and sleep spindles were analyzed and compared across nuclei and outcomes. FindingsRecordings of the thalamus revealed both pathological and physiological interictal events. Interictal epileptic events were infrequent. Only [~]0.2% of seizure-onset zone spikes propagated to the thalamus. Thalamic spike-fast activity was indicative of unfavorable surgical outcomes (CM: p = 0.047, d = 0.46) or surgically non-remediable epilepsy (VL: p = 0.002, d = 0.84). In contrast, thalamic sleep spindles were ubiquitous but reduced in surgically non-remediable patients (CM: p = 0.031, d = -0.58; VL: p = 0.005, d = -0.79). Finally, unique thalamic SEEG patterns were identified, including spikes concomitant with spindles, isolated spikes, and physiological fast ripples. InterpretationThis study provides a comprehensive characterization of thalamic interictal events during NREM sleep, enriching our understanding of thalamic pathophysiology and highlighting the value of thalamic recordings in presurgical evaluation.

neuroscience↗

Sleep fragmentation drives local, network-specific epileptic activity in human epilepsy

Sleep has complex links with epileptic activity, yet the causal role of sleep instability in driving and modulating pathological discharges in the human brain remains incompletely understood. Here we directly examine this by characterising the fine-scale temporal coupling between experimentally induced sleep arousals and interictal epileptiform discharges (IEDs), using combined stereo-electroencephalography and polysomnography recordings in patients with epilepsy. Sleep arousals triggered rapid IED increases, with effects gated by anatomical region and sleep stage. Increases were confined to neocortical regions and occurred during both non-rapid eye movement stage 2 (N2) and stage 3 (N3) sleep, with a larger effect observed in N2. IED increases did not differ between the seizure-onset zone and surrounding regions. Despite elevating IED counts, arousals did not alter IED spatial propagation, indicating state-dependent enhancement of local cortical excitability without recruitment of broader epileptic networks. These findings establish a causal role for sleep instability in actively driving pathological activity on fine-grained spatiotemporal scales, and highlight sleep stabilisation as a promising therapeutic strategy to reduce epileptic burden and preserve cortical network function.

neuroscience↗

An ATM-PPM1D Circuit Controls the Processing and Restart of DNA Replication Forks

In response to DNA replication stress, DNA damage signaling kinases inhibit origin firing and promote the remodeling and stabilization of replication forks, leading to a systemic reduction in DNA synthesis, which collectively protects genomic integrity. Little is understood about the regulatory mechanisms of replication stress recovery, including the mechanisms involved in the restart of stalled replication forks. Here, we identify the oncogenic phosphatase PPM1D/WIP1 as a regulator of replication fork restart. During recovery from replication stress, PPM1D prevents excessive MRE11- and DNA2-dependent nucleolytic degradation of stalled forks. Loss of PPM1D function leads to defects in RAD51 recruitment to chromatin and impairs RAD51-dependent fork restart. Phosphoproteomic analysis reveals that PPM1D regulates a network of ATM substrates, several of which are phosphorylated at an S/T-Q-(E/D)n motif. Strikingly, inhibition of ATM suppresses the deleterious consequences of impaired PPM1D function at replication forks, enabling timely fork restart. The dominant effect of ATM hyper-signaling in suppressing fork restart occurs, in part, through the excessive engagement of 53BP1 and consequent RAD51 antagonization. These findings uncover a new mode of ATM signaling responding to fork stalling and highlight the need for PPM1D to restrain ATM signaling and facilitate proper fork restart.

biochemistry↗

Colonization with Oxalobacter formigenes slows the progression of CKD and reduces cardiac remodeling in CKD

Accumulation of oxalate in patients with chronic kidney disease (CKD) is associated with CKD progression and increased risk of cardiac death. Whether reducing plasma or urine oxalate slows CKD progression and prevents cardiovascular complications remains unexplored. We colonized the intestines of control and CKD mice with Oxalobacter formigenes (Oxf), an oxalate-degrading microorganism. The mice were fed with the oxalate precursor hydroxyproline for 23 weeks at which time we assessed pathological changes in the kidney and heart. We demonstrate that Oxf reduces plasma oxalate (pOx) and creatinine levels, mitigates inflammation and fibrosis in the kidney, and reduces pathologic cardiac remodeling in the hearts of CKD mice. RNA-seq analysis of ventricular tissue of CKD mice reveals dysregulated expression of metabolic pathways while Oxf colonization reverses these changes. These findings demonstrate that oxalate accumulation plays a role not only in CKD progression but also in associated cardiovascular complications and suggest that strategies to reduce plasma oxalate levels may have therapeutic benefit. Translational statementChronic kidney disease (CKD) is a major health problem that can lead to kidney failure and which increases the risk of cardiovascular disease (CVD) mortality. Oxalate accumulation in advanced kidney disease contributes to further CKD progression and CVD complications. Intestinal colonization with Oxalobacter formigenes (Oxf) in a CKD animal model reduces plasma oxalate level and slows progression of both CKD and CVD. Strategies to reduce plasma oxalate levels may have therapeutic benefit in the setting of CKD.

microbiology↗