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Biology subjects

Schaffer, A. E.

Publications and source records attributed to Schaffer, A. E..

2 recordsLinked to original sources

Mechanisms of mRNA processing defects in inherited THOC6 intellectual disability syndrome

THOC6 is the genetic basis of autosomal recessive THOC6 Intellectual Disability Syndrome (TIDS). THOC6 facilitates the formation of the Transcription Export complex (TREX) tetramer, composed of four THO monomers. The TREX tetramer supports mammalian mRNA processing that is distinct from yeast TREX dimer functions. Human and mouse TIDS model systems allow novel THOC6-dependent TREX tetramer functions to be investigated. Biallelic loss-of-function (LOF) THOC6 variants do not influence the expression and localization of TREX members in human cells, but our data suggests reduced binding affinity of ALYREF. Impairment of TREX nuclear export functions were not detected in cells with biallelic THOC6 LOF. Instead, mRNA mis-splicing was observed in human and mouse neural tissue, revealing novel insights into THOC6-mediated TREX coordination of mRNA processing. We demonstrate that THOC6 is required for regulation of key signaling pathways in human corticogenesis that dictate the transition from proliferative to neurogenic divisions that may inform TIDS neuropathology.

molecular biology↗

Adaptation to chronic ER stress enforces pancreatic β-cell plasticity

Pancreatic {beta}-cells undergo high levels of endoplasmic reticulum (ER) stress due to their role in insulin secretion. Hence, they require sustainable and efficient adaptive stress responses to cope with the stress. Whether duration and episodes of chronic ER stress directly compromises {beta}-cell identity is largely unknown. We show that under reversible, chronic ER stress, {beta}-cells undergo a distinct transcriptional and translational reprogramming. During reprogramming, expression of master regulators of {beta}-cell function and identity and proinsulin processing is impaired. Upon recovery from stress, {beta}-cells regain their identity, highlighting a high-degree of adaptive {beta}-cell plasticity. Remarkably, when stress episodes exceed a certain threshold, {beta}-cell identity is gradually lost. Single cell RNA-seq analysis of islets from type 1 diabetes (T1D) patients, identifies the severe deregulation of the chronic stress-adaptation program, and reveals novel biomarkers for progression of T1D. Our results suggest {beta}-cell adaptive exhaustion ({beta}EAR) is a significant component of the pathogenesis of T1D.

systems biology↗