Search bioRxiv⌕ Search

Biology subjects

Paran, F. J.

Publications and source records attributed to Paran, F. J..

2 recordsLinked to original sources

BCR, not TCR, repertoire diversity is associated with favorable COVID-19 prognosis

The SARS-CoV-2 pandemic has had a widespread and severe impact on society, yet there have also been instances of remarkable recovery, even in critically ill patients. In this study, we used single-cell RNA sequencing to analyze the immune responses in recovered and deceased COVID-19 patients during moderate and critical stages. The study included three unvaccinated patients from each outcome category. Although expanded T cell receptor (TCR) clones were predominantly SARS-CoV-2-specific, they represented only a small fraction of the total repertoire in all patients. In contrast, while deceased patients exhibited monoclonal B cell receptor (BCR) expansions without COVID-19 specificity, survivors demonstrated diverse and specific BCR clones. These findings suggest that neither TCR diversity nor BCR monoclonal expansions are sufficient for viral clearance and subsequent recovery. Differential gene expression analysis revealed that protein biosynthetic processes were enriched in survivors, but that potentially damaging mitochondrial ATP metabolism was activated in the deceased. This study underscores that BCR repertoire diversity, but not TCR diversity, correlates with favorable outcomes in COVID-19.

immunology↗

Carvedilol suppresses ryanodine receptor-dependent Ca2+ bursts in human neurons bearing PSEN1 variants found in early onset Alzheimer's disease

Seizures are increasingly being recognized as the hallmark of Alzheimers disease (AD). Neuronal hyperactivity can be a consequence of neuronal damage caused by abnormal amyloid {beta} (A{beta}) depositions. However, it can also be a cell-autonomous phenomenon causing AD by A{beta}-independent mechanisms. Indeed, various studies using animal models showed that Ca2+ releases from the endoplasmic reticulum (ER) via type 1 inositol triphosphate receptors (InsP3R1s) and ryanodine receptors (RyRs). To investigate which is the main pathophysiological mechanism in human neurons, we measured Ca2+ signaling in neural cells derived from three early-onset AD patients harboring variants of Presenilin-1 (PSEN1 p.A246E, p.L286V, and p.M146L). Of these, it has been reported that PSEN1 p.A246E and p.L286V did not produce a significant amount of abnormal A{beta}. We found that all PSEN1-mutant neurons, but not wild-type, caused abnormal Ca2+-bursts in a manner dependent on the calcium channel, Ryanodine Receptor 2 (RyR2). Indeed, carvedilol, anRyR2 inhibitor, and VK-II-86, an analog of carvedilol without the {beta}-blocking effects, sufficiently eliminated the abnormal Ca2+ bursts. In contrast, Dantrolene, a RyR1 inhibitor, and Xestospongin c, an IP3R inhibitor, did not attenuate the Ca2+-bursts. The RNA-Seq data revealed that ER-stress responsive genes were increased, and mitochondrial Ca2+-transporter genes were decreased in PSEN1A246E cells compared to the WT neurons. Thus, we propose that aberrant Ca2+ signaling is a key link between human pathogenic PSEN1 variants and cell-intrinsic hyperactivity prior to deposition of abnormal A{beta}, offering prospects for the development of targeted prevention strategies for at-risk individuals. One Sentence SummaryAberrant Ca2+-signaling causes PSEN1-related early onset Alzheimers disease.

neuroscience↗