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Vaananen, J.

Publications and source records attributed to Vaananen, J..

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Human models of GLE1 associated LCCS1 reveal neural crest deficiency and multisystem developmental failure accompanied by altered RNA metabolism

Lethal congenital contracture syndrome 1 (LCCS1) is a neurodevelopmental disorder caused by GLE1 c.432-10A>G variant and presenting fetal akinesia, defects in anterior horn spinal cord, skin, skull, and skeletal muscle development. The uniform prenatal lethality of LCCS1 limits access to patient material, thereby hindering mechanistic studies in physiologically relevant models. To overcome this, human embryonic stem cells (hESCs) carrying the LCCS1 variant, patient-derived fetal fibroblasts, and transcriptomic and proteomic profiling were utilized to examine early GLE1 dysfunction in human cells and tissues. Across LCCS1 cell types, reduced global transcription and translation were observed, while nucleocytoplasmic poly(A)+ RNA distribution was unchanged. Despite its context-dependent effects on proliferation, LCCS1 variant altered mRNA decay kinetics and increased stress granule formation in differentiated cells. LCCS1 hESCs retained core pluripotency but reduced choline acetyltransferase and {beta} tubulin III levels, together with increased neurofilament inclusion incidence, indicate functional immaturity in differentiated spinal motor neurons. Differentiation of LCCS1 hESC-derived gastruloids uncovered broad perturbations in neuromuscular and neural crest derivative development, results which were supported by phenotypes detected in ectodermal organoids and fetal LCCS1 tissue. These findings provide new mechanistic insight into LCCS1 pathogenesis and establish a robust human model framework for studying neurodevelopmental disorders.

developmental biology↗

GLE1 dysfunction compromises cellular homeostasis, spatial organization, and peripheral axon branching

The GLE1 protein is an enigmatic factor of RNA processing, associated with multiple developmental disorders including lethal congenital contracture syndrome 1 (LCCS1). Using in vivo genetic engineering to study disturbed GLE1 functions under physiological conditions we demonstrate that inactivation of Gle1 impedes cellular function and organization and causes pre-gastrulation lethality due to defects in adhesion and lineage specification. In contrast, the knock-in mice genocopying LCCS1-associated GLE1FinMajor variant (Gle1PFQ/PFQ) survive prenatal period but die suddenly at mid-adulthood. Gle1PFQ/PFQ mice present irregular count and distribution of spinal motor neurons and impaired development of neural crest-derived tissues as demonstrated by defects in their sympathetic innervation of heart ventricles, paravertebral sympathetic ganglia volume, and adrenal chromaffin cell counts. Unlike previously reported for yeast and HeLa cells, analysis of molecular consequences of GLE1FinMajor variant identified normal poly(A)+ RNA distribution in Gle1PFQ/PFQ cells, which however were impaired in RNA and protein synthesis and simultaneously showed typical signs of cellular senescence. Gle1PFQ/PFQ also induced disturbed stress responses with significant changes in G3BP1-positive stress granule count. Our results show necessity of GLE1 functions for life and indicate that LCCS1 etiology is resultant of pathogenic GLE1FinMajor variant impinging differentiation of neural crest derivatives and leading to complex multiorgan defects. HighlightsO_LITotal inactivation of GLE1 results in disorganization of blastocyst inner cell mass and early embryonic lethality. C_LIO_LIThe Gle1 knock-in (KI) mice, which genocopy the human GLE1FinMajor variant causative for lethal congenital contracture syndrome 1 (LCCS1), die suddenly in mid-adulthood. C_LIO_LINormal poly(A)+ RNA distribution was observed in Gle1 KI cells, but decreased number of G3BP1-positive stress granules were detected in response to stress. C_LIO_LIAbnormal sympathetic innervation of heart ventricles was detected in Gle1 KI mice. C_LIO_LINeural crest-derived tissues represent a new target of GLE1FinMajor and GLE1-related disorders. C_LI

developmental biology↗