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Paul, A.

Publications and source records attributed to Paul, A..

4 recordsLinked to original sources

Translational regulation of Syngap1 by FMRP modulates NMDAR mediated signalling

SYNGAP1, a Synaptic Ras-GTPase activating protein, regulates synapse maturation during a critical developmental window. Heterozygous mutation in SYNGAP1 (SYNGAP1+/-) has been shown to cause Intellectual Disability (ID) in children. Recent studies have provided evidence for altered neuronal protein synthesis in a mouse model of Syngap1+/-. However, the molecular mechanisms behind the same is unclear. Here, we report the reduced expression of a known translation regulator, FMRP, during a specific developmental period in Syngap1+/- mice. Our results demonstrated that FMRP interacts with and regulates the translation of Syngap1 mRNA. We further show that, during development, reduced translation of FMRP and this decrease in FMRP leads to a compensatory increase of Syngap1 translation in Syngap1+/-. These developmental changes are reflected in the altered response of eEF2 phosphorylation downstream of NMDA receptor signalling. We propose a cross-talk between FMRP and SYNGAP1 mediated signalling which can also explain the compensatory effect of impaired signalling observed in Syngap1+/- mice.

neuroscience

Cognate T and B cell interaction and association of Follicular helper T cells with B cell responses in Vibrio cholerae O1 infected Bangladeshi adults

Vibrio cholerae O1 can cause life threatening diarrheal disease if left untreated. A long lasting immune response, producing 3-5 years of protection from subsequent, symptomatic disease following natural infection, is mediated by B cell mediated humoral immunity. T cells can play critical roles in inducing such immunity. However, the mechanism of T cell dependent B cell maturation and whether a key sub-population of T cells are involved is not well established in cholera. We hypothesized that a specific population of T cells, follicular helper T (Tfh) cells, are involved in B cell maturation following cholera; we used flow cytometry, culture and colorimetric assays to address this question. We found that V. cholerae infection induces significant increase in circulating Tfh cells expressing B cell maturation associated protein CD40L early in disease. The increased Tfh cells expressing CD40L recognize cholera toxin most prominently, with lessened responses to two antigens tested, V. cholerae membrane preparation (MP) and Vibrio cholerae cytolysin (VCC). We further showed that early induction of Tfh cells and CD40L was associated with later memory B cell responses to same antigens. Lastly, we demonstrated in vitro that Tfh cells isolated after cholera can stimulate class switching of cocultured, isolated B cells from patients with cholera, leading to production of the more durable IgG antibody isotype. These studies were conducted on circulating Tfh cells; future studies will be directed at examining role of Tfh cells during cholera directly in the gut mucosa of biopsied samples, at the single cell level if feasible.

immunology

Transcriptional Architecture of Synaptic Communication Delineates Cortical GABAergic Neuron Identity

Understanding the organizational logic of neural circuits requires deciphering the biological basis of neuron type diversity and identity, but there is no consensus on defining a neuron type. We analyzed single cell transcriptomes of anatomically and physiologically characterized cortical ground truth populations and conducted a computational genomic screen for transcription profiles that distinguish them. We discovered that cardinal GABAergic neuron types are delineated by a transcriptional architecture that encodes their synaptic communication patterns. This architecture comprises 6 categories of ~40 gene families including cell adhesion molecules, transmitter-modulator receptors, ion channels, signaling proteins, neuropeptides and vesicular release components, and transcription factors. Combinatorial expression of select members across families shapes a multi-layered molecular scaffold along cell membrane that may customize synaptic connectivity patterns and input-output signaling properties. This molecular genetic framework of neuronal identity integrates cell phenotypes along multiple axes and provides a foundation for discovering and classifying neuron types.

neuroscience

Addressing the looming identity crisis in single cell RNA-seq

Single cell RNA-sequencing technology (scRNA-seq) provides a new avenue to discover and characterize cell types, but the experiment-specific technical biases and analytic variability inherent to current pipelines may undermine the replicability of these studies. Meta-analysis of rapidly accumulating data is further hampered by the use of ad hoc naming conventions. Here we demonstrate our replication framework, MetaNeighbor, that allows researchers to quantify the degree to which cell types replicate across datasets, and to rapidly identify clusters with high similarity for further testing. We first measure the replicability of neuronal identity by comparing more than 13 thousand individual scRNA-seq transcriptomes, then assess cross-dataset evidence for novel pyramidal neuron and cortical interneuron subtypes identified by scRNA-seq. We find that 24/45 cortical interneuron subtypes and 10/48 pyramidal neuron subtypes have evidence of replication in at least one other study. Identifying these putative replicates allows us to re-analyze the data for differential expression and provide lists of robust candidate marker genes. Across tasks we find that large sets of variably expressed genes can identify replicable cell types and subtypes with high accuracy, indicating many of the transcriptional changes characterizing cell identity are pervasive and easily detected.

bioinformatics